xref: /btstack/src/ble/sm.c (revision c824d78c0a34df89b57d535abafcc7dacf30bb06)
1 /*
2  * Copyright (C) 2014 BlueKitchen GmbH
3  *
4  * Redistribution and use in source and binary forms, with or without
5  * modification, are permitted provided that the following conditions
6  * are met:
7  *
8  * 1. Redistributions of source code must retain the above copyright
9  *    notice, this list of conditions and the following disclaimer.
10  * 2. Redistributions in binary form must reproduce the above copyright
11  *    notice, this list of conditions and the following disclaimer in the
12  *    documentation and/or other materials provided with the distribution.
13  * 3. Neither the name of the copyright holders nor the names of
14  *    contributors may be used to endorse or promote products derived
15  *    from this software without specific prior written permission.
16  * 4. Any redistribution, use, or modification is done solely for
17  *    personal benefit and not for any commercial purpose or for
18  *    monetary gain.
19  *
20  * THIS SOFTWARE IS PROVIDED BY BLUEKITCHEN GMBH AND CONTRIBUTORS
21  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
22  * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS
23  * FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL BLUEKITCHEN
24  * GMBH OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT,
25  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
26  * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS
27  * OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
28  * AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
29  * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF
30  * THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
31  * SUCH DAMAGE.
32  *
33  * Please inquire about commercial licensing options at
34  * [email protected]
35  *
36  */
37 
38 #define BTSTACK_FILE__ "sm.c"
39 
40 #include <string.h>
41 #include <inttypes.h>
42 
43 #include "ble/le_device_db.h"
44 #include "ble/core.h"
45 #include "ble/sm.h"
46 #include "bluetooth_company_id.h"
47 #include "btstack_bool.h"
48 #include "btstack_crypto.h"
49 #include "btstack_debug.h"
50 #include "btstack_event.h"
51 #include "btstack_linked_list.h"
52 #include "btstack_memory.h"
53 #include "btstack_tlv.h"
54 #include "gap.h"
55 #include "hci.h"
56 #include "hci_dump.h"
57 #include "l2cap.h"
58 
59 #if !defined(ENABLE_LE_PERIPHERAL) && !defined(ENABLE_LE_CENTRAL)
60 #error "LE Security Manager used, but neither ENABLE_LE_PERIPHERAL nor ENABLE_LE_CENTRAL defined. Please add at least one to btstack_config.h."
61 #endif
62 
63 #if defined(ENABLE_CROSS_TRANSPORT_KEY_DERIVATION) && (!defined(ENABLE_CLASSIC) || !defined(ENABLE_LE_SECURE_CONNECTIONS))
64 #error "Cross Transport Key Derivation requires support for LE Secure Connections and BR/EDR (Classic)"
65 #endif
66 
67 // assert SM Public Key can be sent/received
68 #ifdef ENABLE_LE_SECURE_CONNECTIONS
69 #if HCI_ACL_PAYLOAD_SIZE < 69
70 #error "HCI_ACL_PAYLOAD_SIZE must be at least 69 bytes when using LE Secure Conection. Please increase HCI_ACL_PAYLOAD_SIZE or disable ENABLE_LE_SECURE_CONNECTIONS"
71 #endif
72 #endif
73 
74 #if defined(ENABLE_LE_PERIPHERAL) && defined(ENABLE_LE_CENTRAL)
75 #define IS_RESPONDER(role) (role)
76 #else
77 #ifdef ENABLE_LE_CENTRAL
78 // only central - never responder (avoid 'unused variable' warnings)
79 #define IS_RESPONDER(role) (0 && role)
80 #else
81 // only peripheral - always responder (avoid 'unused variable' warnings)
82 #define IS_RESPONDER(role) (1 || role)
83 #endif
84 #endif
85 
86 #if defined(ENABLE_LE_SIGNED_WRITE) || defined(ENABLE_LE_SECURE_CONNECTIONS)
87 #define USE_CMAC_ENGINE
88 #endif
89 
90 
91 #define BTSTACK_TAG32(A,B,C,D) (((A) << 24) | ((B) << 16) | ((C) << 8) | (D))
92 
93 //
94 // SM internal types and globals
95 //
96 
97 typedef enum {
98     DKG_W4_WORKING,
99     DKG_CALC_IRK,
100     DKG_CALC_DHK,
101     DKG_READY
102 } derived_key_generation_t;
103 
104 typedef enum {
105     RAU_IDLE,
106     RAU_GET_RANDOM,
107     RAU_W4_RANDOM,
108     RAU_GET_ENC,
109     RAU_W4_ENC,
110 } random_address_update_t;
111 
112 typedef enum {
113     CMAC_IDLE,
114     CMAC_CALC_SUBKEYS,
115     CMAC_W4_SUBKEYS,
116     CMAC_CALC_MI,
117     CMAC_W4_MI,
118     CMAC_CALC_MLAST,
119     CMAC_W4_MLAST
120 } cmac_state_t;
121 
122 typedef enum {
123     JUST_WORKS,
124     PK_RESP_INPUT,       // Initiator displays PK, responder inputs PK
125     PK_INIT_INPUT,       // Responder displays PK, initiator inputs PK
126     PK_BOTH_INPUT,       // Only input on both, both input PK
127     NUMERIC_COMPARISON,  // Only numerical compparison (yes/no) on on both sides
128     OOB                  // OOB available on one (SC) or both sides (legacy)
129 } stk_generation_method_t;
130 
131 typedef enum {
132     SM_USER_RESPONSE_IDLE,
133     SM_USER_RESPONSE_PENDING,
134     SM_USER_RESPONSE_CONFIRM,
135     SM_USER_RESPONSE_PASSKEY,
136     SM_USER_RESPONSE_DECLINE
137 } sm_user_response_t;
138 
139 typedef enum {
140     SM_AES128_IDLE,
141     SM_AES128_ACTIVE
142 } sm_aes128_state_t;
143 
144 typedef enum {
145     ADDRESS_RESOLUTION_IDLE,
146     ADDRESS_RESOLUTION_GENERAL,
147     ADDRESS_RESOLUTION_FOR_CONNECTION,
148 } address_resolution_mode_t;
149 
150 typedef enum {
151     ADDRESS_RESOLUTION_SUCCEEDED,
152     ADDRESS_RESOLUTION_FAILED,
153 } address_resolution_event_t;
154 
155 typedef enum {
156     EC_KEY_GENERATION_IDLE,
157     EC_KEY_GENERATION_ACTIVE,
158     EC_KEY_GENERATION_DONE,
159 } ec_key_generation_state_t;
160 
161 typedef enum {
162     SM_STATE_VAR_DHKEY_NEEDED = 1 << 0,
163     SM_STATE_VAR_DHKEY_CALCULATED = 1 << 1,
164     SM_STATE_VAR_DHKEY_COMMAND_RECEIVED = 1 << 2,
165 } sm_state_var_t;
166 
167 typedef enum {
168     SM_SC_OOB_IDLE,
169     SM_SC_OOB_W4_RANDOM,
170     SM_SC_OOB_W2_CALC_CONFIRM,
171     SM_SC_OOB_W4_CONFIRM,
172 } sm_sc_oob_state_t;
173 
174 typedef uint8_t sm_key24_t[3];
175 typedef uint8_t sm_key56_t[7];
176 typedef uint8_t sm_key256_t[32];
177 
178 //
179 // GLOBAL DATA
180 //
181 
182 static bool sm_initialized;
183 
184 static bool test_use_fixed_local_csrk;
185 static bool test_use_fixed_local_irk;
186 
187 #ifdef ENABLE_TESTING_SUPPORT
188 static uint8_t test_pairing_failure;
189 #endif
190 
191 // configuration
192 static uint8_t sm_accepted_stk_generation_methods;
193 static uint8_t sm_max_encryption_key_size;
194 static uint8_t sm_min_encryption_key_size;
195 static uint8_t sm_auth_req = 0;
196 static uint8_t sm_io_capabilities = IO_CAPABILITY_NO_INPUT_NO_OUTPUT;
197 static uint32_t sm_fixed_passkey_in_display_role;
198 static bool sm_reconstruct_ltk_without_le_device_db_entry;
199 
200 #ifdef ENABLE_LE_PERIPHERAL
201 static uint8_t sm_slave_request_security;
202 #endif
203 
204 #ifdef ENABLE_LE_SECURE_CONNECTIONS
205 static bool sm_sc_only_mode;
206 static uint8_t sm_sc_oob_random[16];
207 static void (*sm_sc_oob_callback)(const uint8_t * confirm_value, const uint8_t * random_value);
208 static sm_sc_oob_state_t sm_sc_oob_state;
209 #endif
210 
211 
212 static bool                  sm_persistent_keys_random_active;
213 static const btstack_tlv_t * sm_tlv_impl;
214 static void *                sm_tlv_context;
215 
216 // Security Manager Master Keys, please use sm_set_er(er) and sm_set_ir(ir) with your own 128 bit random values
217 static sm_key_t sm_persistent_er;
218 static sm_key_t sm_persistent_ir;
219 
220 // derived from sm_persistent_ir
221 static sm_key_t sm_persistent_dhk;
222 static sm_key_t sm_persistent_irk;
223 static derived_key_generation_t dkg_state;
224 
225 // derived from sm_persistent_er
226 // ..
227 
228 // random address update
229 static random_address_update_t rau_state;
230 static bd_addr_t sm_random_address;
231 
232 #ifdef USE_CMAC_ENGINE
233 // CMAC Calculation: General
234 static btstack_crypto_aes128_cmac_t sm_cmac_request;
235 static void (*sm_cmac_done_callback)(uint8_t hash[8]);
236 static uint8_t sm_cmac_active;
237 static uint8_t sm_cmac_hash[16];
238 #endif
239 
240 // CMAC for ATT Signed Writes
241 #ifdef ENABLE_LE_SIGNED_WRITE
242 static uint16_t        sm_cmac_signed_write_message_len;
243 static uint8_t         sm_cmac_signed_write_header[3];
244 static const uint8_t * sm_cmac_signed_write_message;
245 static uint8_t         sm_cmac_signed_write_sign_counter[4];
246 #endif
247 
248 // CMAC for Secure Connection functions
249 #ifdef ENABLE_LE_SECURE_CONNECTIONS
250 static sm_connection_t * sm_cmac_connection;
251 static uint8_t           sm_cmac_sc_buffer[80];
252 #endif
253 
254 // resolvable private address lookup / CSRK calculation
255 static int       sm_address_resolution_test;
256 static int       sm_address_resolution_ah_calculation_active;
257 static uint8_t   sm_address_resolution_addr_type;
258 static bd_addr_t sm_address_resolution_address;
259 static void *    sm_address_resolution_context;
260 static address_resolution_mode_t sm_address_resolution_mode;
261 static btstack_linked_list_t sm_address_resolution_general_queue;
262 
263 // aes128 crypto engine.
264 static sm_aes128_state_t  sm_aes128_state;
265 
266 // crypto
267 static btstack_crypto_random_t   sm_crypto_random_request;
268 static btstack_crypto_aes128_t   sm_crypto_aes128_request;
269 #ifdef ENABLE_LE_SECURE_CONNECTIONS
270 static btstack_crypto_ecc_p256_t sm_crypto_ecc_p256_request;
271 #endif
272 
273 // temp storage for random data
274 static uint8_t sm_random_data[8];
275 static uint8_t sm_aes128_key[16];
276 static uint8_t sm_aes128_plaintext[16];
277 static uint8_t sm_aes128_ciphertext[16];
278 
279 // to receive hci events
280 static btstack_packet_callback_registration_t hci_event_callback_registration;
281 
282 /* to dispatch sm event */
283 static btstack_linked_list_t sm_event_handlers;
284 
285 /* to schedule calls to sm_run */
286 static btstack_timer_source_t sm_run_timer;
287 
288 // LE Secure Connections
289 #ifdef ENABLE_LE_SECURE_CONNECTIONS
290 static ec_key_generation_state_t ec_key_generation_state;
291 static uint8_t ec_q[64];
292 #endif
293 
294 //
295 // Volume 3, Part H, Chapter 24
296 // "Security shall be initiated by the Security Manager in the device in the master role.
297 // The device in the slave role shall be the responding device."
298 // -> master := initiator, slave := responder
299 //
300 
301 // data needed for security setup
302 typedef struct sm_setup_context {
303 
304     btstack_timer_source_t sm_timeout;
305 
306     // user response, (Phase 1 and/or 2)
307     uint8_t   sm_user_response;
308     uint8_t   sm_keypress_notification; // bitmap: passkey started, digit entered, digit erased, passkey cleared, passkey complete, 3 bit count
309 
310     // defines which keys will be send after connection is encrypted - calculated during Phase 1, used Phase 3
311     uint8_t   sm_key_distribution_send_set;
312     uint8_t   sm_key_distribution_sent_set;
313     uint8_t   sm_key_distribution_expected_set;
314     uint8_t   sm_key_distribution_received_set;
315 
316     // Phase 2 (Pairing over SMP)
317     stk_generation_method_t sm_stk_generation_method;
318     sm_key_t  sm_tk;
319     uint8_t   sm_have_oob_data;
320     uint8_t   sm_use_secure_connections;
321 
322     sm_key_t  sm_c1_t3_value;   // c1 calculation
323     sm_pairing_packet_t sm_m_preq; // pairing request - needed only for c1
324     sm_pairing_packet_t sm_s_pres; // pairing response - needed only for c1
325     sm_key_t  sm_local_random;
326     sm_key_t  sm_local_confirm;
327     sm_key_t  sm_peer_random;
328     sm_key_t  sm_peer_confirm;
329     uint8_t   sm_m_addr_type;   // address and type can be removed
330     uint8_t   sm_s_addr_type;   //  ''
331     bd_addr_t sm_m_address;     //  ''
332     bd_addr_t sm_s_address;     //  ''
333     sm_key_t  sm_ltk;
334 
335     uint8_t   sm_state_vars;
336 #ifdef ENABLE_LE_SECURE_CONNECTIONS
337     uint8_t   sm_peer_q[64];    // also stores random for EC key generation during init
338     sm_key_t  sm_peer_nonce;    // might be combined with sm_peer_random
339     sm_key_t  sm_local_nonce;   // might be combined with sm_local_random
340     uint8_t   sm_dhkey[32];
341     sm_key_t  sm_peer_dhkey_check;
342     sm_key_t  sm_local_dhkey_check;
343     sm_key_t  sm_ra;
344     sm_key_t  sm_rb;
345     sm_key_t  sm_t;             // used for f5 and h6
346     sm_key_t  sm_mackey;
347     uint8_t   sm_passkey_bit;   // also stores number of generated random bytes for EC key generation
348 #endif
349 
350     // Phase 3
351 
352     // key distribution, we generate
353     uint16_t  sm_local_y;
354     uint16_t  sm_local_div;
355     uint16_t  sm_local_ediv;
356     uint8_t   sm_local_rand[8];
357     sm_key_t  sm_local_ltk;
358     sm_key_t  sm_local_csrk;
359     sm_key_t  sm_local_irk;
360     // sm_local_address/addr_type not needed
361 
362     // key distribution, received from peer
363     uint16_t  sm_peer_y;
364     uint16_t  sm_peer_div;
365     uint16_t  sm_peer_ediv;
366     uint8_t   sm_peer_rand[8];
367     sm_key_t  sm_peer_ltk;
368     sm_key_t  sm_peer_irk;
369     sm_key_t  sm_peer_csrk;
370     uint8_t   sm_peer_addr_type;
371     bd_addr_t sm_peer_address;
372 #ifdef ENABLE_LE_SIGNED_WRITE
373     int       sm_le_device_index;
374 #endif
375 #ifdef ENABLE_CROSS_TRANSPORT_KEY_DERIVATION
376     link_key_t sm_link_key;
377     link_key_type_t sm_link_key_type;
378 #endif
379 } sm_setup_context_t;
380 
381 //
382 static sm_setup_context_t the_setup;
383 static sm_setup_context_t * setup = &the_setup;
384 
385 // active connection - the one for which the_setup is used for
386 static uint16_t sm_active_connection_handle = HCI_CON_HANDLE_INVALID;
387 
388 // @return 1 if oob data is available
389 // stores oob data in provided 16 byte buffer if not null
390 static int (*sm_get_oob_data)(uint8_t addres_type, bd_addr_t addr, uint8_t * oob_data) = NULL;
391 static int (*sm_get_sc_oob_data)(uint8_t addres_type, bd_addr_t addr, uint8_t * oob_sc_peer_confirm, uint8_t * oob_sc_peer_random);
392 static bool (*sm_get_ltk_callback)(hci_con_handle_t con_handle, uint8_t addres_type, bd_addr_t addr, uint8_t * ltk);
393 
394 static void sm_run(void);
395 static void sm_state_reset(void);
396 static void sm_done_for_handle(hci_con_handle_t con_handle);
397 static sm_connection_t * sm_get_connection_for_handle(hci_con_handle_t con_handle);
398 #ifdef ENABLE_CROSS_TRANSPORT_KEY_DERIVATION
399 static sm_connection_t * sm_get_connection_for_bd_addr_and_type(bd_addr_t address, bd_addr_type_t addr_type);
400 #endif
401 static inline int sm_calc_actual_encryption_key_size(int other);
402 static int sm_validate_stk_generation_method(void);
403 static void sm_handle_encryption_result_address_resolution(void *arg);
404 static void sm_handle_encryption_result_dkg_dhk(void *arg);
405 static void sm_handle_encryption_result_dkg_irk(void *arg);
406 static void sm_handle_encryption_result_enc_a(void *arg);
407 static void sm_handle_encryption_result_enc_b(void *arg);
408 static void sm_handle_encryption_result_enc_c(void *arg);
409 static void sm_handle_encryption_result_enc_csrk(void *arg);
410 static void sm_handle_encryption_result_enc_d(void * arg);
411 static void sm_handle_encryption_result_enc_ph3_ltk(void *arg);
412 static void sm_handle_encryption_result_enc_ph3_y(void *arg);
413 #ifdef ENABLE_LE_PERIPHERAL
414 static void sm_handle_encryption_result_enc_ph4_ltk(void *arg);
415 static void sm_handle_encryption_result_enc_ph4_y(void *arg);
416 #endif
417 static void sm_handle_encryption_result_enc_stk(void *arg);
418 static void sm_handle_encryption_result_rau(void *arg);
419 static void sm_handle_random_result_ph2_tk(void * arg);
420 static void sm_handle_random_result_rau(void * arg);
421 #ifdef ENABLE_LE_SECURE_CONNECTIONS
422 static void sm_cmac_message_start(const sm_key_t key, uint16_t message_len, const uint8_t * message, void (*done_callback)(uint8_t * hash));
423 static void sm_ec_generate_new_key(void);
424 static void sm_handle_random_result_sc_next_w2_cmac_for_confirmation(void * arg);
425 static void sm_handle_random_result_sc_next_send_pairing_random(void * arg);
426 static int sm_passkey_entry(stk_generation_method_t method);
427 #endif
428 static void sm_pairing_complete(sm_connection_t * sm_conn, uint8_t status, uint8_t reason);
429 
430 static void log_info_hex16(const char * name, uint16_t value){
431     log_info("%-6s 0x%04x", name, value);
432 }
433 
434 // static inline uint8_t sm_pairing_packet_get_code(sm_pairing_packet_t packet){
435 //     return packet[0];
436 // }
437 static inline uint8_t sm_pairing_packet_get_io_capability(sm_pairing_packet_t packet){
438     return packet[1];
439 }
440 static inline uint8_t sm_pairing_packet_get_oob_data_flag(sm_pairing_packet_t packet){
441     return packet[2];
442 }
443 static inline uint8_t sm_pairing_packet_get_auth_req(sm_pairing_packet_t packet){
444     return packet[3];
445 }
446 static inline uint8_t sm_pairing_packet_get_max_encryption_key_size(sm_pairing_packet_t packet){
447     return packet[4];
448 }
449 static inline uint8_t sm_pairing_packet_get_initiator_key_distribution(sm_pairing_packet_t packet){
450     return packet[5];
451 }
452 static inline uint8_t sm_pairing_packet_get_responder_key_distribution(sm_pairing_packet_t packet){
453     return packet[6];
454 }
455 
456 static inline void sm_pairing_packet_set_code(sm_pairing_packet_t packet, uint8_t code){
457     packet[0] = code;
458 }
459 static inline void sm_pairing_packet_set_io_capability(sm_pairing_packet_t packet, uint8_t io_capability){
460     packet[1] = io_capability;
461 }
462 static inline void sm_pairing_packet_set_oob_data_flag(sm_pairing_packet_t packet, uint8_t oob_data_flag){
463     packet[2] = oob_data_flag;
464 }
465 static inline void sm_pairing_packet_set_auth_req(sm_pairing_packet_t packet, uint8_t auth_req){
466     packet[3] = auth_req;
467 }
468 static inline void sm_pairing_packet_set_max_encryption_key_size(sm_pairing_packet_t packet, uint8_t max_encryption_key_size){
469     packet[4] = max_encryption_key_size;
470 }
471 static inline void sm_pairing_packet_set_initiator_key_distribution(sm_pairing_packet_t packet, uint8_t initiator_key_distribution){
472     packet[5] = initiator_key_distribution;
473 }
474 static inline void sm_pairing_packet_set_responder_key_distribution(sm_pairing_packet_t packet, uint8_t responder_key_distribution){
475     packet[6] = responder_key_distribution;
476 }
477 
478 // @return 1 if all bytes are 0
479 static bool sm_is_null(uint8_t * data, int size){
480     int i;
481     for (i=0; i < size ; i++){
482         if (data[i] != 0) {
483             return false;
484         }
485     }
486     return true;
487 }
488 
489 static bool sm_is_null_random(uint8_t random[8]){
490     return sm_is_null(random, 8);
491 }
492 
493 static bool sm_is_null_key(uint8_t * key){
494     return sm_is_null(key, 16);
495 }
496 
497 // sm_trigger_run allows to schedule callback from main run loop // reduces stack depth
498 static void sm_run_timer_handler(btstack_timer_source_t * ts){
499 	UNUSED(ts);
500 	sm_run();
501 }
502 static void sm_trigger_run(void){
503     if (!sm_initialized) return;
504 	(void)btstack_run_loop_remove_timer(&sm_run_timer);
505 	btstack_run_loop_set_timer(&sm_run_timer, 0);
506 	btstack_run_loop_add_timer(&sm_run_timer);
507 }
508 
509 // Key utils
510 static void sm_reset_tk(void){
511     int i;
512     for (i=0;i<16;i++){
513         setup->sm_tk[i] = 0;
514     }
515 }
516 
517 // "For example, if a 128-bit encryption key is 0x123456789ABCDEF0123456789ABCDEF0
518 // and it is reduced to 7 octets (56 bits), then the resulting key is 0x0000000000000000003456789ABCDEF0.""
519 static void sm_truncate_key(sm_key_t key, int max_encryption_size){
520     int i;
521     for (i = max_encryption_size ; i < 16 ; i++){
522         key[15-i] = 0;
523     }
524 }
525 
526 // ER / IR checks
527 static void sm_er_ir_set_default(void){
528     int i;
529     for (i=0;i<16;i++){
530         sm_persistent_er[i] = 0x30 + i;
531         sm_persistent_ir[i] = 0x90 + i;
532     }
533 }
534 
535 static int sm_er_is_default(void){
536     int i;
537     for (i=0;i<16;i++){
538         if (sm_persistent_er[i] != (0x30+i)) return 0;
539     }
540     return 1;
541 }
542 
543 static int sm_ir_is_default(void){
544     int i;
545     for (i=0;i<16;i++){
546         if (sm_persistent_ir[i] != (0x90+i)) return 0;
547     }
548     return 1;
549 }
550 
551 static void sm_dispatch_event(uint8_t packet_type, uint16_t channel, uint8_t * packet, uint16_t size){
552     UNUSED(channel);
553 
554     // log event
555     hci_dump_packet(packet_type, 1, packet, size);
556     // dispatch to all event handlers
557     btstack_linked_list_iterator_t it;
558     btstack_linked_list_iterator_init(&it, &sm_event_handlers);
559     while (btstack_linked_list_iterator_has_next(&it)){
560         btstack_packet_callback_registration_t * entry = (btstack_packet_callback_registration_t*) btstack_linked_list_iterator_next(&it);
561         entry->callback(packet_type, 0, packet, size);
562     }
563 }
564 
565 static void sm_setup_event_base(uint8_t * event, int event_size, uint8_t type, hci_con_handle_t con_handle, uint8_t addr_type, bd_addr_t address){
566     event[0] = type;
567     event[1] = event_size - 2;
568     little_endian_store_16(event, 2, con_handle);
569     event[4] = addr_type;
570     reverse_bd_addr(address, &event[5]);
571 }
572 
573 static void sm_notify_client_base(uint8_t type, hci_con_handle_t con_handle, uint8_t addr_type, bd_addr_t address){
574     uint8_t event[11];
575     sm_setup_event_base(event, sizeof(event), type, con_handle, addr_type, address);
576     sm_dispatch_event(HCI_EVENT_PACKET, 0, event, sizeof(event));
577 }
578 
579 static void sm_notify_client_index(uint8_t type, hci_con_handle_t con_handle, uint8_t addr_type, bd_addr_t address, uint16_t index){
580     // fetch addr and addr type from db, only called for valid entries
581     bd_addr_t identity_address;
582     int identity_address_type;
583     le_device_db_info(index, &identity_address_type, identity_address, NULL);
584 
585     uint8_t event[20];
586     sm_setup_event_base(event, sizeof(event), type, con_handle, addr_type, address);
587     event[11] = identity_address_type;
588     reverse_bd_addr(identity_address, &event[12]);
589     little_endian_store_16(event, 18, index);
590     sm_dispatch_event(HCI_EVENT_PACKET, 0, event, sizeof(event));
591 }
592 
593 static void sm_notify_client_status(uint8_t type, hci_con_handle_t con_handle, uint8_t addr_type, bd_addr_t address, uint8_t status){
594     uint8_t event[12];
595     sm_setup_event_base(event, sizeof(event), type, con_handle, addr_type, address);
596     event[11] = status;
597     sm_dispatch_event(HCI_EVENT_PACKET, 0, (uint8_t*) &event, sizeof(event));
598 }
599 
600 
601 static void sm_reencryption_started(sm_connection_t * sm_conn){
602 
603     if (sm_conn->sm_reencryption_active) return;
604 
605     sm_conn->sm_reencryption_active = true;
606 
607     int       identity_addr_type;
608     bd_addr_t identity_addr;
609     if (sm_conn->sm_le_db_index >= 0){
610         // fetch addr and addr type from db, only called for valid entries
611         le_device_db_info(sm_conn->sm_le_db_index, &identity_addr_type, identity_addr, NULL);
612     } else {
613         // for legacy pairing with LTK re-construction, use current peer addr
614         identity_addr_type = sm_conn->sm_peer_addr_type;
615         memcpy(identity_addr, sm_conn->sm_peer_address, 6);
616     }
617 
618     sm_notify_client_base(SM_EVENT_REENCRYPTION_STARTED, sm_conn->sm_handle, identity_addr_type, identity_addr);
619 }
620 
621 static void sm_reencryption_complete(sm_connection_t * sm_conn, uint8_t status){
622 
623     if (!sm_conn->sm_reencryption_active) return;
624 
625     sm_conn->sm_reencryption_active = false;
626 
627     int       identity_addr_type;
628     bd_addr_t identity_addr;
629     if (sm_conn->sm_le_db_index >= 0){
630         // fetch addr and addr type from db, only called for valid entries
631         le_device_db_info(sm_conn->sm_le_db_index, &identity_addr_type, identity_addr, NULL);
632     } else {
633         // for legacy pairing with LTK re-construction, use current peer addr
634         identity_addr_type = sm_conn->sm_peer_addr_type;
635         memcpy(identity_addr, sm_conn->sm_peer_address, 6);
636     }
637 
638     sm_notify_client_status(SM_EVENT_REENCRYPTION_COMPLETE, sm_conn->sm_handle, identity_addr_type, identity_addr, status);
639 }
640 
641 static void sm_pairing_started(sm_connection_t * sm_conn){
642 
643     if (sm_conn->sm_pairing_active) return;
644 
645     sm_conn->sm_pairing_active = true;
646 
647     uint8_t event[11];
648     sm_setup_event_base(event, sizeof(event), SM_EVENT_PAIRING_STARTED, sm_conn->sm_handle, setup->sm_peer_addr_type, setup->sm_peer_address);
649     sm_dispatch_event(HCI_EVENT_PACKET, 0, (uint8_t*) &event, sizeof(event));
650 }
651 
652 static void sm_pairing_complete(sm_connection_t * sm_conn, uint8_t status, uint8_t reason){
653 
654     if (!sm_conn->sm_pairing_active) return;
655 
656     sm_conn->sm_pairing_active = false;
657 
658     uint8_t event[13];
659     sm_setup_event_base(event, sizeof(event), SM_EVENT_PAIRING_COMPLETE, sm_conn->sm_handle, setup->sm_peer_addr_type, setup->sm_peer_address);
660     event[11] = status;
661     event[12] = reason;
662     sm_dispatch_event(HCI_EVENT_PACKET, 0, (uint8_t*) &event, sizeof(event));
663 }
664 
665 // SMP Timeout implementation
666 
667 // Upon transmission of the Pairing Request command or reception of the Pairing Request command,
668 // the Security Manager Timer shall be reset and started.
669 //
670 // The Security Manager Timer shall be reset when an L2CAP SMP command is queued for transmission.
671 //
672 // If the Security Manager Timer reaches 30 seconds, the procedure shall be considered to have failed,
673 // and the local higher layer shall be notified. No further SMP commands shall be sent over the L2CAP
674 // Security Manager Channel. A new SM procedure shall only be performed when a new physical link has been
675 // established.
676 
677 static void sm_timeout_handler(btstack_timer_source_t * timer){
678     log_info("SM timeout");
679     sm_connection_t * sm_conn = (sm_connection_t*) btstack_run_loop_get_timer_context(timer);
680     sm_conn->sm_engine_state = SM_GENERAL_TIMEOUT;
681     sm_reencryption_complete(sm_conn, ERROR_CODE_CONNECTION_TIMEOUT);
682     sm_pairing_complete(sm_conn, ERROR_CODE_CONNECTION_TIMEOUT, 0);
683     sm_done_for_handle(sm_conn->sm_handle);
684 
685     // trigger handling of next ready connection
686     sm_run();
687 }
688 static void sm_timeout_start(sm_connection_t * sm_conn){
689     btstack_run_loop_remove_timer(&setup->sm_timeout);
690     btstack_run_loop_set_timer_context(&setup->sm_timeout, sm_conn);
691     btstack_run_loop_set_timer_handler(&setup->sm_timeout, sm_timeout_handler);
692     btstack_run_loop_set_timer(&setup->sm_timeout, 30000); // 30 seconds sm timeout
693     btstack_run_loop_add_timer(&setup->sm_timeout);
694 }
695 static void sm_timeout_stop(void){
696     btstack_run_loop_remove_timer(&setup->sm_timeout);
697 }
698 static void sm_timeout_reset(sm_connection_t * sm_conn){
699     sm_timeout_stop();
700     sm_timeout_start(sm_conn);
701 }
702 
703 // end of sm timeout
704 
705 // GAP Random Address updates
706 static gap_random_address_type_t gap_random_adress_type;
707 static btstack_timer_source_t gap_random_address_update_timer;
708 static uint32_t gap_random_adress_update_period;
709 
710 static void gap_random_address_trigger(void){
711     log_info("gap_random_address_trigger, state %u", rau_state);
712     if (rau_state != RAU_IDLE) return;
713     rau_state = RAU_GET_RANDOM;
714     sm_trigger_run();
715 }
716 
717 static void gap_random_address_update_handler(btstack_timer_source_t * timer){
718     UNUSED(timer);
719 
720     log_info("GAP Random Address Update due");
721     btstack_run_loop_set_timer(&gap_random_address_update_timer, gap_random_adress_update_period);
722     btstack_run_loop_add_timer(&gap_random_address_update_timer);
723     gap_random_address_trigger();
724 }
725 
726 static void gap_random_address_update_start(void){
727     btstack_run_loop_set_timer_handler(&gap_random_address_update_timer, gap_random_address_update_handler);
728     btstack_run_loop_set_timer(&gap_random_address_update_timer, gap_random_adress_update_period);
729     btstack_run_loop_add_timer(&gap_random_address_update_timer);
730 }
731 
732 static void gap_random_address_update_stop(void){
733     btstack_run_loop_remove_timer(&gap_random_address_update_timer);
734 }
735 
736 // ah(k,r) helper
737 // r = padding || r
738 // r - 24 bit value
739 static void sm_ah_r_prime(uint8_t r[3], uint8_t * r_prime){
740     // r'= padding || r
741     memset(r_prime, 0, 16);
742     (void)memcpy(&r_prime[13], r, 3);
743 }
744 
745 // d1 helper
746 // d' = padding || r || d
747 // d,r - 16 bit values
748 static void sm_d1_d_prime(uint16_t d, uint16_t r, uint8_t * d1_prime){
749     // d'= padding || r || d
750     memset(d1_prime, 0, 16);
751     big_endian_store_16(d1_prime, 12, r);
752     big_endian_store_16(d1_prime, 14, d);
753 }
754 
755 // calculate arguments for first AES128 operation in C1 function
756 static void sm_c1_t1(sm_key_t r, uint8_t preq[7], uint8_t pres[7], uint8_t iat, uint8_t rat, uint8_t * t1){
757 
758     // p1 = pres || preq || rat’ || iat’
759     // "The octet of iat’ becomes the least significant octet of p1 and the most signifi-
760     // cant octet of pres becomes the most significant octet of p1.
761     // For example, if the 8-bit iat’ is 0x01, the 8-bit rat’ is 0x00, the 56-bit preq
762     // is 0x07071000000101 and the 56 bit pres is 0x05000800000302 then
763     // p1 is 0x05000800000302070710000001010001."
764 
765     sm_key_t p1;
766     reverse_56(pres, &p1[0]);
767     reverse_56(preq, &p1[7]);
768     p1[14] = rat;
769     p1[15] = iat;
770     log_info_key("p1", p1);
771     log_info_key("r", r);
772 
773     // t1 = r xor p1
774     int i;
775     for (i=0;i<16;i++){
776         t1[i] = r[i] ^ p1[i];
777     }
778     log_info_key("t1", t1);
779 }
780 
781 // calculate arguments for second AES128 operation in C1 function
782 static void sm_c1_t3(sm_key_t t2, bd_addr_t ia, bd_addr_t ra, uint8_t * t3){
783      // p2 = padding || ia || ra
784     // "The least significant octet of ra becomes the least significant octet of p2 and
785     // the most significant octet of padding becomes the most significant octet of p2.
786     // For example, if 48-bit ia is 0xA1A2A3A4A5A6 and the 48-bit ra is
787     // 0xB1B2B3B4B5B6 then p2 is 0x00000000A1A2A3A4A5A6B1B2B3B4B5B6.
788 
789     sm_key_t p2;
790     memset(p2, 0, 16);
791     (void)memcpy(&p2[4], ia, 6);
792     (void)memcpy(&p2[10], ra, 6);
793     log_info_key("p2", p2);
794 
795     // c1 = e(k, t2_xor_p2)
796     int i;
797     for (i=0;i<16;i++){
798         t3[i] = t2[i] ^ p2[i];
799     }
800     log_info_key("t3", t3);
801 }
802 
803 static void sm_s1_r_prime(sm_key_t r1, sm_key_t r2, uint8_t * r_prime){
804     log_info_key("r1", r1);
805     log_info_key("r2", r2);
806     (void)memcpy(&r_prime[8], &r2[8], 8);
807     (void)memcpy(&r_prime[0], &r1[8], 8);
808 }
809 
810 
811 // decide on stk generation based on
812 // - pairing request
813 // - io capabilities
814 // - OOB data availability
815 static void sm_setup_tk(void){
816 
817     // horizontal: initiator capabilities
818     // vertial:    responder capabilities
819     static const stk_generation_method_t stk_generation_method [5] [5] = {
820             { JUST_WORKS,      JUST_WORKS,       PK_INIT_INPUT,   JUST_WORKS,    PK_INIT_INPUT },
821             { JUST_WORKS,      JUST_WORKS,       PK_INIT_INPUT,   JUST_WORKS,    PK_INIT_INPUT },
822             { PK_RESP_INPUT,   PK_RESP_INPUT,    PK_BOTH_INPUT,   JUST_WORKS,    PK_RESP_INPUT },
823             { JUST_WORKS,      JUST_WORKS,       JUST_WORKS,      JUST_WORKS,    JUST_WORKS    },
824             { PK_RESP_INPUT,   PK_RESP_INPUT,    PK_INIT_INPUT,   JUST_WORKS,    PK_RESP_INPUT },
825     };
826 
827     // uses numeric comparison if one side has DisplayYesNo and KeyboardDisplay combinations
828 #ifdef ENABLE_LE_SECURE_CONNECTIONS
829     static const stk_generation_method_t stk_generation_method_with_secure_connection[5][5] = {
830             { JUST_WORKS,      JUST_WORKS,         PK_INIT_INPUT,   JUST_WORKS,    PK_INIT_INPUT      },
831             { JUST_WORKS,      NUMERIC_COMPARISON, PK_INIT_INPUT,   JUST_WORKS,    NUMERIC_COMPARISON },
832             { PK_RESP_INPUT,   PK_RESP_INPUT,      PK_BOTH_INPUT,   JUST_WORKS,    PK_RESP_INPUT      },
833             { JUST_WORKS,      JUST_WORKS,         JUST_WORKS,      JUST_WORKS,    JUST_WORKS         },
834             { PK_RESP_INPUT,   NUMERIC_COMPARISON, PK_INIT_INPUT,   JUST_WORKS,    NUMERIC_COMPARISON },
835     };
836 #endif
837 
838     // default: just works
839     setup->sm_stk_generation_method = JUST_WORKS;
840 
841 #ifdef ENABLE_LE_SECURE_CONNECTIONS
842     setup->sm_use_secure_connections = ( sm_pairing_packet_get_auth_req(setup->sm_m_preq)
843                                        & sm_pairing_packet_get_auth_req(setup->sm_s_pres)
844                                        & SM_AUTHREQ_SECURE_CONNECTION ) != 0u;
845 #else
846     setup->sm_use_secure_connections = 0;
847 #endif
848     log_info("Secure pairing: %u", setup->sm_use_secure_connections);
849 
850 
851     // decide if OOB will be used based on SC vs. Legacy and oob flags
852     bool use_oob;
853     if (setup->sm_use_secure_connections){
854         // In LE Secure Connections pairing, the out of band method is used if at least
855         // one device has the peer device's out of band authentication data available.
856         use_oob = (sm_pairing_packet_get_oob_data_flag(setup->sm_m_preq) | sm_pairing_packet_get_oob_data_flag(setup->sm_s_pres)) != 0;
857     } else {
858         // In LE legacy pairing, the out of band method is used if both the devices have
859         // the other device's out of band authentication data available.
860         use_oob = (sm_pairing_packet_get_oob_data_flag(setup->sm_m_preq) & sm_pairing_packet_get_oob_data_flag(setup->sm_s_pres)) != 0;
861     }
862     if (use_oob){
863         log_info("SM: have OOB data");
864         log_info_key("OOB", setup->sm_tk);
865         setup->sm_stk_generation_method = OOB;
866         return;
867     }
868 
869     // If both devices have not set the MITM option in the Authentication Requirements
870     // Flags, then the IO capabilities shall be ignored and the Just Works association
871     // model shall be used.
872     if (((sm_pairing_packet_get_auth_req(setup->sm_m_preq) & SM_AUTHREQ_MITM_PROTECTION) == 0u)
873         &&  ((sm_pairing_packet_get_auth_req(setup->sm_s_pres) & SM_AUTHREQ_MITM_PROTECTION) == 0u)){
874         log_info("SM: MITM not required by both -> JUST WORKS");
875         return;
876     }
877 
878     // Reset TK as it has been setup in sm_init_setup
879     sm_reset_tk();
880 
881     // Also use just works if unknown io capabilites
882     if ((sm_pairing_packet_get_io_capability(setup->sm_m_preq) > IO_CAPABILITY_KEYBOARD_DISPLAY) || (sm_pairing_packet_get_io_capability(setup->sm_s_pres) > IO_CAPABILITY_KEYBOARD_DISPLAY)){
883         return;
884     }
885 
886     // Otherwise the IO capabilities of the devices shall be used to determine the
887     // pairing method as defined in Table 2.4.
888     // see http://stackoverflow.com/a/1052837/393697 for how to specify pointer to 2-dimensional array
889     const stk_generation_method_t (*generation_method)[5] = stk_generation_method;
890 
891 #ifdef ENABLE_LE_SECURE_CONNECTIONS
892     // table not define by default
893     if (setup->sm_use_secure_connections){
894         generation_method = stk_generation_method_with_secure_connection;
895     }
896 #endif
897     setup->sm_stk_generation_method = generation_method[sm_pairing_packet_get_io_capability(setup->sm_s_pres)][sm_pairing_packet_get_io_capability(setup->sm_m_preq)];
898 
899     log_info("sm_setup_tk: master io cap: %u, slave io cap: %u -> method %u",
900         sm_pairing_packet_get_io_capability(setup->sm_m_preq), sm_pairing_packet_get_io_capability(setup->sm_s_pres), setup->sm_stk_generation_method);
901 }
902 
903 static int sm_key_distribution_flags_for_set(uint8_t key_set){
904     int flags = 0;
905     if (key_set & SM_KEYDIST_ENC_KEY){
906         flags |= SM_KEYDIST_FLAG_ENCRYPTION_INFORMATION;
907         flags |= SM_KEYDIST_FLAG_MASTER_IDENTIFICATION;
908     }
909     if (key_set & SM_KEYDIST_ID_KEY){
910         flags |= SM_KEYDIST_FLAG_IDENTITY_INFORMATION;
911         flags |= SM_KEYDIST_FLAG_IDENTITY_ADDRESS_INFORMATION;
912     }
913     if (key_set & SM_KEYDIST_SIGN){
914         flags |= SM_KEYDIST_FLAG_SIGNING_IDENTIFICATION;
915     }
916     return flags;
917 }
918 
919 static void sm_setup_key_distribution(uint8_t keys_to_send, uint8_t keys_to_receive){
920     setup->sm_key_distribution_received_set = 0;
921     setup->sm_key_distribution_expected_set = sm_key_distribution_flags_for_set(keys_to_receive);
922     setup->sm_key_distribution_send_set = sm_key_distribution_flags_for_set(keys_to_send);
923     setup->sm_key_distribution_sent_set = 0;
924 #ifdef ENABLE_LE_SIGNED_WRITE
925     setup->sm_le_device_index = -1;
926 #endif
927 }
928 
929 // CSRK Key Lookup
930 
931 
932 static int sm_address_resolution_idle(void){
933     return sm_address_resolution_mode == ADDRESS_RESOLUTION_IDLE;
934 }
935 
936 static void sm_address_resolution_start_lookup(uint8_t addr_type, hci_con_handle_t con_handle, bd_addr_t addr, address_resolution_mode_t mode, void * context){
937     (void)memcpy(sm_address_resolution_address, addr, 6);
938     sm_address_resolution_addr_type = addr_type;
939     sm_address_resolution_test = 0;
940     sm_address_resolution_mode = mode;
941     sm_address_resolution_context = context;
942     sm_notify_client_base(SM_EVENT_IDENTITY_RESOLVING_STARTED, con_handle, addr_type, addr);
943 }
944 
945 int sm_address_resolution_lookup(uint8_t address_type, bd_addr_t address){
946     // check if already in list
947     btstack_linked_list_iterator_t it;
948     sm_lookup_entry_t * entry;
949     btstack_linked_list_iterator_init(&it, &sm_address_resolution_general_queue);
950     while(btstack_linked_list_iterator_has_next(&it)){
951         entry = (sm_lookup_entry_t *) btstack_linked_list_iterator_next(&it);
952         if (entry->address_type != address_type) continue;
953         if (memcmp(entry->address, address, 6))  continue;
954         // already in list
955         return BTSTACK_BUSY;
956     }
957     entry = btstack_memory_sm_lookup_entry_get();
958     if (!entry) return BTSTACK_MEMORY_ALLOC_FAILED;
959     entry->address_type = (bd_addr_type_t) address_type;
960     (void)memcpy(entry->address, address, 6);
961     btstack_linked_list_add(&sm_address_resolution_general_queue, (btstack_linked_item_t *) entry);
962     sm_trigger_run();
963     return 0;
964 }
965 
966 // CMAC calculation using AES Engineq
967 #ifdef USE_CMAC_ENGINE
968 
969 static void sm_cmac_done_trampoline(void * arg){
970     UNUSED(arg);
971     sm_cmac_active = 0;
972     (*sm_cmac_done_callback)(sm_cmac_hash);
973     sm_trigger_run();
974 }
975 
976 int sm_cmac_ready(void){
977     return sm_cmac_active == 0u;
978 }
979 #endif
980 
981 #ifdef ENABLE_LE_SECURE_CONNECTIONS
982 // generic cmac calculation
983 static void sm_cmac_message_start(const sm_key_t key, uint16_t message_len, const uint8_t * message, void (*done_callback)(uint8_t * hash)){
984     sm_cmac_active = 1;
985     sm_cmac_done_callback = done_callback;
986     btstack_crypto_aes128_cmac_message(&sm_cmac_request, key, message_len, message, sm_cmac_hash, sm_cmac_done_trampoline, NULL);
987 }
988 #endif
989 
990 // cmac for ATT Message signing
991 #ifdef ENABLE_LE_SIGNED_WRITE
992 
993 static void sm_cmac_generator_start(const sm_key_t key, uint16_t message_len, uint8_t (*get_byte_callback)(uint16_t offset), void (*done_callback)(uint8_t * hash)){
994     sm_cmac_active = 1;
995     sm_cmac_done_callback = done_callback;
996     btstack_crypto_aes128_cmac_generator(&sm_cmac_request, key, message_len, get_byte_callback, sm_cmac_hash, sm_cmac_done_trampoline, NULL);
997 }
998 
999 static uint8_t sm_cmac_signed_write_message_get_byte(uint16_t offset){
1000     if (offset >= sm_cmac_signed_write_message_len) {
1001         log_error("sm_cmac_signed_write_message_get_byte. out of bounds, access %u, len %u", offset, sm_cmac_signed_write_message_len);
1002         return 0;
1003     }
1004 
1005     offset = sm_cmac_signed_write_message_len - 1 - offset;
1006 
1007     // sm_cmac_signed_write_header[3] | message[] | sm_cmac_signed_write_sign_counter[4]
1008     if (offset < 3){
1009         return sm_cmac_signed_write_header[offset];
1010     }
1011     int actual_message_len_incl_header = sm_cmac_signed_write_message_len - 4;
1012     if (offset <  actual_message_len_incl_header){
1013         return sm_cmac_signed_write_message[offset - 3];
1014     }
1015     return sm_cmac_signed_write_sign_counter[offset - actual_message_len_incl_header];
1016 }
1017 
1018 void sm_cmac_signed_write_start(const sm_key_t k, uint8_t opcode, hci_con_handle_t con_handle, uint16_t message_len, const uint8_t * message, uint32_t sign_counter, void (*done_handler)(uint8_t * hash)){
1019     // ATT Message Signing
1020     sm_cmac_signed_write_header[0] = opcode;
1021     little_endian_store_16(sm_cmac_signed_write_header, 1, con_handle);
1022     little_endian_store_32(sm_cmac_signed_write_sign_counter, 0, sign_counter);
1023     uint16_t total_message_len = 3 + message_len + 4;  // incl. virtually prepended att opcode, handle and appended sign_counter in LE
1024     sm_cmac_signed_write_message     = message;
1025     sm_cmac_signed_write_message_len = total_message_len;
1026     sm_cmac_generator_start(k, total_message_len, &sm_cmac_signed_write_message_get_byte, done_handler);
1027 }
1028 #endif
1029 
1030 static void sm_trigger_user_response_basic(sm_connection_t * sm_conn, uint8_t event_type){
1031     setup->sm_user_response = SM_USER_RESPONSE_PENDING;
1032     uint8_t event[12];
1033     sm_setup_event_base(event, sizeof(event), event_type, sm_conn->sm_handle, sm_conn->sm_peer_addr_type, sm_conn->sm_peer_address);
1034     event[11] = setup->sm_use_secure_connections ? 1 : 0;
1035     sm_dispatch_event(HCI_EVENT_PACKET, 0, event, sizeof(event));
1036 }
1037 
1038 static void sm_trigger_user_response_passkey(sm_connection_t * sm_conn){
1039     uint8_t event[16];
1040     uint32_t passkey = big_endian_read_32(setup->sm_tk, 12);
1041     sm_setup_event_base(event, sizeof(event), SM_EVENT_PASSKEY_DISPLAY_NUMBER, sm_conn->sm_handle,
1042                         sm_conn->sm_peer_addr_type, sm_conn->sm_peer_address);
1043     event[11] = setup->sm_use_secure_connections ? 1 : 0;
1044     little_endian_store_32(event, 12, passkey);
1045     sm_dispatch_event(HCI_EVENT_PACKET, 0, event, sizeof(event));
1046 }
1047 
1048 static void sm_trigger_user_response(sm_connection_t * sm_conn){
1049     // notify client for: JUST WORKS confirm, Numeric comparison confirm, PASSKEY display or input
1050     setup->sm_user_response = SM_USER_RESPONSE_IDLE;
1051     sm_conn->sm_pairing_active = true;
1052     switch (setup->sm_stk_generation_method){
1053         case PK_RESP_INPUT:
1054             if (IS_RESPONDER(sm_conn->sm_role)){
1055                 sm_trigger_user_response_basic(sm_conn, SM_EVENT_PASSKEY_INPUT_NUMBER);
1056             } else {
1057                 sm_trigger_user_response_passkey(sm_conn);
1058             }
1059             break;
1060         case PK_INIT_INPUT:
1061             if (IS_RESPONDER(sm_conn->sm_role)){
1062                 sm_trigger_user_response_passkey(sm_conn);
1063             } else {
1064                 sm_trigger_user_response_basic(sm_conn, SM_EVENT_PASSKEY_INPUT_NUMBER);
1065             }
1066             break;
1067         case PK_BOTH_INPUT:
1068             sm_trigger_user_response_basic(sm_conn, SM_EVENT_PASSKEY_INPUT_NUMBER);
1069             break;
1070         case NUMERIC_COMPARISON:
1071             sm_trigger_user_response_basic(sm_conn, SM_EVENT_NUMERIC_COMPARISON_REQUEST);
1072             break;
1073         case JUST_WORKS:
1074             sm_trigger_user_response_basic(sm_conn, SM_EVENT_JUST_WORKS_REQUEST);
1075             break;
1076         case OOB:
1077             // client already provided OOB data, let's skip notification.
1078             break;
1079         default:
1080             btstack_assert(false);
1081             break;
1082     }
1083 }
1084 
1085 static bool sm_key_distribution_all_received(void) {
1086     log_debug("sm_key_distribution_all_received: received 0x%02x, expecting 0x%02x", setup->sm_key_distribution_received_set, setup->sm_key_distribution_expected_set);
1087     return (setup->sm_key_distribution_expected_set & setup->sm_key_distribution_received_set) == setup->sm_key_distribution_expected_set;
1088 }
1089 
1090 static void sm_done_for_handle(hci_con_handle_t con_handle){
1091     if (sm_active_connection_handle == con_handle){
1092         sm_timeout_stop();
1093         sm_active_connection_handle = HCI_CON_HANDLE_INVALID;
1094         log_info("sm: connection 0x%x released setup context", con_handle);
1095 
1096 #ifdef ENABLE_LE_SECURE_CONNECTIONS
1097         // generate new ec key after each pairing (that used it)
1098         if (setup->sm_use_secure_connections){
1099             sm_ec_generate_new_key();
1100         }
1101 #endif
1102     }
1103 }
1104 
1105 static void sm_master_pairing_success(sm_connection_t *connection) {// master -> all done
1106     connection->sm_engine_state = SM_INITIATOR_CONNECTED;
1107     sm_pairing_complete(connection, ERROR_CODE_SUCCESS, 0);
1108     sm_done_for_handle(connection->sm_handle);
1109 }
1110 
1111 static int sm_key_distribution_flags_for_auth_req(void){
1112 
1113     int flags = SM_KEYDIST_ID_KEY;
1114     if (sm_auth_req & SM_AUTHREQ_BONDING){
1115         // encryption and signing information only if bonding requested
1116         flags |= SM_KEYDIST_ENC_KEY;
1117 #ifdef ENABLE_LE_SIGNED_WRITE
1118         flags |= SM_KEYDIST_SIGN;
1119 #endif
1120 #ifdef ENABLE_CROSS_TRANSPORT_KEY_DERIVATION
1121         // LinkKey for CTKD requires SC
1122         if (sm_auth_req & SM_AUTHREQ_SECURE_CONNECTION){
1123         	flags |= SM_KEYDIST_LINK_KEY;
1124         }
1125 #endif
1126     }
1127     return flags;
1128 }
1129 
1130 static void sm_reset_setup(void){
1131     // fill in sm setup
1132     setup->sm_state_vars = 0;
1133     setup->sm_keypress_notification = 0;
1134     setup->sm_have_oob_data = 0;
1135     sm_reset_tk();
1136 }
1137 
1138 static void sm_init_setup(sm_connection_t * sm_conn){
1139     // fill in sm setup
1140     setup->sm_peer_addr_type = sm_conn->sm_peer_addr_type;
1141     (void)memcpy(setup->sm_peer_address, sm_conn->sm_peer_address, 6);
1142 
1143     // query client for Legacy Pairing OOB data
1144     if (sm_get_oob_data != NULL) {
1145         setup->sm_have_oob_data = (*sm_get_oob_data)(sm_conn->sm_peer_addr_type, sm_conn->sm_peer_address, setup->sm_tk);
1146     }
1147 
1148     // if available and SC supported, also ask for SC OOB Data
1149 #ifdef ENABLE_LE_SECURE_CONNECTIONS
1150     memset(setup->sm_ra, 0, 16);
1151     memset(setup->sm_rb, 0, 16);
1152     if (setup->sm_have_oob_data && (sm_auth_req & SM_AUTHREQ_SECURE_CONNECTION)){
1153         if (sm_get_sc_oob_data != NULL){
1154             if (IS_RESPONDER(sm_conn->sm_role)){
1155                 setup->sm_have_oob_data = (*sm_get_sc_oob_data)(
1156                     sm_conn->sm_peer_addr_type,
1157                     sm_conn->sm_peer_address,
1158                     setup->sm_peer_confirm,
1159                     setup->sm_ra);
1160             } else {
1161                 setup->sm_have_oob_data = (*sm_get_sc_oob_data)(
1162                     sm_conn->sm_peer_addr_type,
1163                     sm_conn->sm_peer_address,
1164                     setup->sm_peer_confirm,
1165                     setup->sm_rb);
1166             }
1167         } else {
1168             setup->sm_have_oob_data = 0;
1169         }
1170     }
1171 #endif
1172 
1173     sm_pairing_packet_t * local_packet;
1174     if (IS_RESPONDER(sm_conn->sm_role)){
1175         // slave
1176         local_packet = &setup->sm_s_pres;
1177         setup->sm_m_addr_type = sm_conn->sm_peer_addr_type;
1178         setup->sm_s_addr_type = sm_conn->sm_own_addr_type;
1179         (void)memcpy(setup->sm_m_address, sm_conn->sm_peer_address, 6);
1180         (void)memcpy(setup->sm_s_address, sm_conn->sm_own_address, 6);
1181     } else {
1182         // master
1183         local_packet = &setup->sm_m_preq;
1184         setup->sm_s_addr_type = sm_conn->sm_peer_addr_type;
1185         setup->sm_m_addr_type = sm_conn->sm_own_addr_type;
1186         (void)memcpy(setup->sm_s_address, sm_conn->sm_peer_address, 6);
1187         (void)memcpy(setup->sm_m_address, sm_conn->sm_own_address, 6);
1188 
1189         uint8_t key_distribution_flags = sm_key_distribution_flags_for_auth_req();
1190         sm_pairing_packet_set_initiator_key_distribution(setup->sm_m_preq, key_distribution_flags);
1191         sm_pairing_packet_set_responder_key_distribution(setup->sm_m_preq, key_distribution_flags);
1192     }
1193 
1194     uint8_t auth_req = sm_auth_req & ~SM_AUTHREQ_CT2;
1195     uint8_t max_encryption_key_size = sm_max_encryption_key_size;
1196 #ifdef ENABLE_LE_SECURE_CONNECTIONS
1197     // enable SC for SC only mode
1198     if (sm_sc_only_mode){
1199         auth_req |= SM_AUTHREQ_SECURE_CONNECTION;
1200         max_encryption_key_size = 16;
1201     }
1202 #endif
1203 #ifdef ENABLE_CROSS_TRANSPORT_KEY_DERIVATION
1204 	// set CT2 if SC + Bonding + CTKD
1205 	const uint8_t auth_req_for_ct2 = SM_AUTHREQ_SECURE_CONNECTION | SM_AUTHREQ_BONDING;
1206 	if ((auth_req & auth_req_for_ct2) == auth_req_for_ct2){
1207 		auth_req |= SM_AUTHREQ_CT2;
1208 	}
1209 #endif
1210     sm_pairing_packet_set_io_capability(*local_packet, sm_io_capabilities);
1211     sm_pairing_packet_set_oob_data_flag(*local_packet, setup->sm_have_oob_data);
1212     sm_pairing_packet_set_auth_req(*local_packet, auth_req);
1213     sm_pairing_packet_set_max_encryption_key_size(*local_packet, max_encryption_key_size);
1214 }
1215 
1216 static int sm_stk_generation_init(sm_connection_t * sm_conn){
1217 
1218     sm_pairing_packet_t * remote_packet;
1219     uint8_t               keys_to_send;
1220     uint8_t               keys_to_receive;
1221     if (IS_RESPONDER(sm_conn->sm_role)){
1222         // slave / responder
1223         remote_packet   = &setup->sm_m_preq;
1224         keys_to_send    = sm_pairing_packet_get_responder_key_distribution(setup->sm_m_preq);
1225         keys_to_receive = sm_pairing_packet_get_initiator_key_distribution(setup->sm_m_preq);
1226     } else {
1227         // master / initiator
1228         remote_packet   = &setup->sm_s_pres;
1229         keys_to_send    = sm_pairing_packet_get_initiator_key_distribution(setup->sm_s_pres);
1230         keys_to_receive = sm_pairing_packet_get_responder_key_distribution(setup->sm_s_pres);
1231     }
1232 
1233     // check key size
1234 #ifdef ENABLE_LE_SECURE_CONNECTIONS
1235     // SC Only mandates 128 bit key size
1236     if (sm_sc_only_mode && (sm_pairing_packet_get_max_encryption_key_size(*remote_packet) < 16)) {
1237         return SM_REASON_ENCRYPTION_KEY_SIZE;
1238     }
1239 #endif
1240     sm_conn->sm_actual_encryption_key_size = sm_calc_actual_encryption_key_size(sm_pairing_packet_get_max_encryption_key_size(*remote_packet));
1241     if (sm_conn->sm_actual_encryption_key_size == 0u) return SM_REASON_ENCRYPTION_KEY_SIZE;
1242 
1243     // decide on STK generation method / SC
1244     sm_setup_tk();
1245     log_info("SMP: generation method %u", setup->sm_stk_generation_method);
1246 
1247     // check if STK generation method is acceptable by client
1248     if (!sm_validate_stk_generation_method()) return SM_REASON_AUTHENTHICATION_REQUIREMENTS;
1249 
1250 #ifdef ENABLE_LE_SECURE_CONNECTIONS
1251     // Check LE SC Only mode
1252     if (sm_sc_only_mode && (setup->sm_use_secure_connections == false)){
1253         log_info("SC Only mode active but SC not possible");
1254         return SM_REASON_AUTHENTHICATION_REQUIREMENTS;
1255     }
1256 
1257     // LTK (= encryption information & master identification) only used exchanged for LE Legacy Connection
1258     if (setup->sm_use_secure_connections){
1259         keys_to_send &= ~SM_KEYDIST_ENC_KEY;
1260         keys_to_receive  &= ~SM_KEYDIST_ENC_KEY;
1261     }
1262 #endif
1263 
1264     // identical to responder
1265     sm_setup_key_distribution(keys_to_send, keys_to_receive);
1266 
1267     // JUST WORKS doens't provide authentication
1268     sm_conn->sm_connection_authenticated = (setup->sm_stk_generation_method == JUST_WORKS) ? 0 : 1;
1269 
1270     return 0;
1271 }
1272 
1273 static void sm_address_resolution_handle_event(address_resolution_event_t event){
1274 
1275     // cache and reset context
1276     int matched_device_id = sm_address_resolution_test;
1277     address_resolution_mode_t mode = sm_address_resolution_mode;
1278     void * context = sm_address_resolution_context;
1279 
1280     // reset context
1281     sm_address_resolution_mode = ADDRESS_RESOLUTION_IDLE;
1282     sm_address_resolution_context = NULL;
1283     sm_address_resolution_test = -1;
1284     hci_con_handle_t con_handle = 0;
1285 
1286     sm_connection_t * sm_connection;
1287     sm_key_t ltk;
1288     bool have_ltk;
1289 #ifdef ENABLE_LE_CENTRAL
1290     bool trigger_pairing;
1291 #endif
1292     switch (mode){
1293         case ADDRESS_RESOLUTION_GENERAL:
1294             break;
1295         case ADDRESS_RESOLUTION_FOR_CONNECTION:
1296             sm_connection = (sm_connection_t *) context;
1297             con_handle = sm_connection->sm_handle;
1298 
1299             // have ltk -> start encryption / send security request
1300             // Core 5, Vol 3, Part C, 10.3.2 Initiating a Service Request
1301             // "When a bond has been created between two devices, any reconnection should result in the local device
1302             //  enabling or requesting encryption with the remote device before initiating any service request."
1303 
1304             switch (event){
1305                 case ADDRESS_RESOLUTION_SUCCEEDED:
1306                     sm_connection->sm_irk_lookup_state = IRK_LOOKUP_SUCCEEDED;
1307                     sm_connection->sm_le_db_index = matched_device_id;
1308                     log_info("ADDRESS_RESOLUTION_SUCCEEDED, index %d", sm_connection->sm_le_db_index);
1309 
1310                     le_device_db_encryption_get(sm_connection->sm_le_db_index, NULL, NULL, ltk, NULL, NULL, NULL, NULL);
1311                     have_ltk = !sm_is_null_key(ltk);
1312 
1313                     if (sm_connection->sm_role) {
1314 #ifdef ENABLE_LE_PERIPHERAL
1315                         // IRK required before, continue
1316                         if (sm_connection->sm_engine_state == SM_RESPONDER_PH0_RECEIVED_LTK_W4_IRK){
1317                             sm_connection->sm_engine_state = SM_RESPONDER_PH0_RECEIVED_LTK_REQUEST;
1318                             break;
1319                         }
1320                         if (sm_connection->sm_engine_state == SM_RESPONDER_PH1_PAIRING_REQUEST_RECEIVED_W4_IRK){
1321                             sm_connection->sm_engine_state = SM_RESPONDER_PH1_PAIRING_REQUEST_RECEIVED;
1322                             break;
1323                         }
1324                         bool trigger_security_request = (sm_connection->sm_pairing_requested != 0) || (sm_slave_request_security != 0);
1325                         sm_connection->sm_pairing_requested = 0;
1326 #ifdef ENABLE_LE_PROACTIVE_AUTHENTICATION
1327                         // trigger security request for Proactive Authentication if LTK available
1328                         trigger_security_request = trigger_security_request || have_ltk;
1329 #endif
1330 
1331                         log_info("peripheral: pairing request local %u, have_ltk %u => trigger_security_request %u",
1332                                  sm_connection->sm_pairing_requested, (int) have_ltk, trigger_security_request);
1333 
1334                         if (trigger_security_request){
1335                             sm_connection->sm_engine_state = SM_RESPONDER_SEND_SECURITY_REQUEST;
1336                             if (have_ltk){
1337                                 sm_reencryption_started(sm_connection);
1338                             } else {
1339                                 sm_pairing_started(sm_connection);
1340                             }
1341                             sm_trigger_run();
1342                         }
1343 #endif
1344                     } else {
1345 
1346 #ifdef ENABLE_LE_CENTRAL
1347                         // check if pairing already requested and reset requests
1348                         trigger_pairing = sm_connection->sm_pairing_requested || sm_connection->sm_security_request_received;
1349                         log_info("central: pairing request local %u, remote %u => trigger_pairing %u. have_ltk %u",
1350                                  sm_connection->sm_pairing_requested, sm_connection->sm_security_request_received, (int) trigger_pairing, (int) have_ltk);
1351                         sm_connection->sm_security_request_received = 0;
1352                         sm_connection->sm_pairing_requested = 0;
1353                         bool trigger_reencryption = false;
1354 
1355                         if (have_ltk){
1356 #ifdef ENABLE_LE_PROACTIVE_AUTHENTICATION
1357                             trigger_reencryption = true;
1358 #else
1359                             if (trigger_pairing){
1360                                 trigger_reencryption = true;
1361                             } else {
1362                                 log_info("central: defer enabling encryption for bonded device");
1363                             }
1364 #endif
1365                         }
1366 
1367                         if (trigger_reencryption){
1368                             log_info("central: enable encryption for bonded device");
1369                             sm_connection->sm_engine_state = SM_INITIATOR_PH4_HAS_LTK;
1370                             break;
1371                         }
1372 
1373                         // pairing_request -> send pairing request
1374                         if (trigger_pairing){
1375                             sm_connection->sm_engine_state = SM_INITIATOR_PH1_W2_SEND_PAIRING_REQUEST;
1376                             break;
1377                         }
1378 #endif
1379                     }
1380                     break;
1381                 case ADDRESS_RESOLUTION_FAILED:
1382                     sm_connection->sm_irk_lookup_state = IRK_LOOKUP_FAILED;
1383                     if (sm_connection->sm_role) {
1384 #ifdef ENABLE_LE_PERIPHERAL
1385                         // LTK request received before, IRK required -> negative LTK reply
1386                         if (sm_connection->sm_engine_state == SM_RESPONDER_PH0_RECEIVED_LTK_W4_IRK){
1387                             sm_connection->sm_engine_state = SM_RESPONDER_PH0_SEND_LTK_REQUESTED_NEGATIVE_REPLY;
1388                         }
1389                         // send security request if requested
1390                         bool trigger_security_request = (sm_connection->sm_pairing_requested != 0) || (sm_slave_request_security != 0);
1391                         sm_connection->sm_pairing_requested = 0;
1392                         if (trigger_security_request){
1393                             sm_connection->sm_engine_state = SM_RESPONDER_SEND_SECURITY_REQUEST;
1394                             sm_pairing_started(sm_connection);
1395                         }
1396                         break;
1397 #endif
1398                     }
1399 #ifdef ENABLE_LE_CENTRAL
1400                     if (!sm_connection->sm_pairing_requested && !sm_connection->sm_security_request_received) break;
1401                     sm_connection->sm_security_request_received = 0;
1402                     sm_connection->sm_pairing_requested = 0;
1403                     sm_connection->sm_engine_state = SM_INITIATOR_PH1_W2_SEND_PAIRING_REQUEST;
1404 #endif
1405                     break;
1406 
1407                 default:
1408                     btstack_assert(false);
1409                     break;
1410             }
1411             break;
1412         default:
1413             break;
1414     }
1415 
1416     switch (event){
1417         case ADDRESS_RESOLUTION_SUCCEEDED:
1418             sm_notify_client_index(SM_EVENT_IDENTITY_RESOLVING_SUCCEEDED, con_handle, sm_address_resolution_addr_type, sm_address_resolution_address, matched_device_id);
1419             break;
1420         case ADDRESS_RESOLUTION_FAILED:
1421             sm_notify_client_base(SM_EVENT_IDENTITY_RESOLVING_FAILED, con_handle, sm_address_resolution_addr_type, sm_address_resolution_address);
1422             break;
1423         default:
1424             btstack_assert(false);
1425             break;
1426     }
1427 }
1428 
1429 static void sm_store_bonding_information(sm_connection_t * sm_conn){
1430     int le_db_index = -1;
1431 
1432     // lookup device based on IRK
1433     if (setup->sm_key_distribution_received_set & SM_KEYDIST_FLAG_IDENTITY_INFORMATION){
1434         int i;
1435         for (i=0; i < le_device_db_max_count(); i++){
1436             sm_key_t irk;
1437             bd_addr_t address;
1438             int address_type = BD_ADDR_TYPE_UNKNOWN;
1439             le_device_db_info(i, &address_type, address, irk);
1440             // skip unused entries
1441             if (address_type == BD_ADDR_TYPE_UNKNOWN) continue;
1442             // compare Identity Address
1443             if (memcmp(address, setup->sm_peer_address, 6) != 0) continue;
1444             // compare Identity Resolving Key
1445             if (memcmp(irk, setup->sm_peer_irk, 16) != 0) continue;
1446 
1447             log_info("sm: device found for IRK, updating");
1448             le_db_index = i;
1449             break;
1450         }
1451     } else {
1452         // assert IRK is set to zero
1453         memset(setup->sm_peer_irk, 0, 16);
1454     }
1455 
1456     // if not found, lookup via public address if possible
1457     log_info("sm peer addr type %u, peer addres %s", setup->sm_peer_addr_type, bd_addr_to_str(setup->sm_peer_address));
1458     if ((le_db_index < 0) && (setup->sm_peer_addr_type == BD_ADDR_TYPE_LE_PUBLIC)){
1459         int i;
1460         for (i=0; i < le_device_db_max_count(); i++){
1461             bd_addr_t address;
1462             int address_type = BD_ADDR_TYPE_UNKNOWN;
1463             le_device_db_info(i, &address_type, address, NULL);
1464             // skip unused entries
1465             if (address_type == BD_ADDR_TYPE_UNKNOWN) continue;
1466             log_info("device %u, sm peer addr type %u, peer addres %s", i, address_type, bd_addr_to_str(address));
1467             if ((address_type == BD_ADDR_TYPE_LE_PUBLIC) && (memcmp(address, setup->sm_peer_address, 6) == 0)){
1468                 log_info("sm: device found for public address, updating");
1469                 le_db_index = i;
1470                 break;
1471             }
1472         }
1473     }
1474 
1475     // if not found, add to db
1476     bool new_to_le_device_db = false;
1477     if (le_db_index < 0) {
1478         le_db_index = le_device_db_add(setup->sm_peer_addr_type, setup->sm_peer_address, setup->sm_peer_irk);
1479         new_to_le_device_db = true;
1480     }
1481 
1482     if (le_db_index >= 0){
1483 
1484 #ifdef ENABLE_LE_PRIVACY_ADDRESS_RESOLUTION
1485         if (!new_to_le_device_db){
1486             hci_remove_le_device_db_entry_from_resolving_list(le_db_index);
1487         }
1488         hci_load_le_device_db_entry_into_resolving_list(le_db_index);
1489 #else
1490         UNUSED(new_to_le_device_db);
1491 #endif
1492 
1493         sm_notify_client_index(SM_EVENT_IDENTITY_CREATED, sm_conn->sm_handle, setup->sm_peer_addr_type, setup->sm_peer_address, le_db_index);
1494         sm_conn->sm_irk_lookup_state = IRK_LOOKUP_SUCCEEDED;
1495         sm_conn->sm_le_db_index = le_db_index;
1496 
1497 #ifdef ENABLE_LE_SIGNED_WRITE
1498         // store local CSRK
1499         setup->sm_le_device_index = le_db_index;
1500         if ((setup->sm_key_distribution_sent_set) & SM_KEYDIST_FLAG_SIGNING_IDENTIFICATION){
1501             log_info("sm: store local CSRK");
1502             le_device_db_local_csrk_set(le_db_index, setup->sm_local_csrk);
1503             le_device_db_local_counter_set(le_db_index, 0);
1504         }
1505 
1506         // store remote CSRK
1507         if (setup->sm_key_distribution_received_set & SM_KEYDIST_FLAG_SIGNING_IDENTIFICATION){
1508             log_info("sm: store remote CSRK");
1509             le_device_db_remote_csrk_set(le_db_index, setup->sm_peer_csrk);
1510             le_device_db_remote_counter_set(le_db_index, 0);
1511         }
1512 #endif
1513         // store encryption information for secure connections: LTK generated by ECDH
1514         if (setup->sm_use_secure_connections){
1515             log_info("sm: store SC LTK (key size %u, authenticated %u)", sm_conn->sm_actual_encryption_key_size, sm_conn->sm_connection_authenticated);
1516             uint8_t zero_rand[8];
1517             memset(zero_rand, 0, 8);
1518             le_device_db_encryption_set(le_db_index, 0, zero_rand, setup->sm_ltk, sm_conn->sm_actual_encryption_key_size,
1519                                         sm_conn->sm_connection_authenticated, sm_conn->sm_connection_authorization_state == AUTHORIZATION_GRANTED, 1);
1520         }
1521 
1522         // store encryption information for legacy pairing: peer LTK, EDIV, RAND
1523         else if ( (setup->sm_key_distribution_received_set & SM_KEYDIST_FLAG_ENCRYPTION_INFORMATION)
1524         && (setup->sm_key_distribution_received_set & SM_KEYDIST_FLAG_MASTER_IDENTIFICATION )){
1525             log_info("sm: set encryption information (key size %u, authenticated %u)", sm_conn->sm_actual_encryption_key_size, sm_conn->sm_connection_authenticated);
1526             le_device_db_encryption_set(le_db_index, setup->sm_peer_ediv, setup->sm_peer_rand, setup->sm_peer_ltk,
1527                                         sm_conn->sm_actual_encryption_key_size, sm_conn->sm_connection_authenticated, sm_conn->sm_connection_authorization_state == AUTHORIZATION_GRANTED, 0);
1528 
1529         }
1530     }
1531 }
1532 
1533 static void sm_pairing_error(sm_connection_t * sm_conn, uint8_t reason){
1534     sm_conn->sm_pairing_failed_reason = reason;
1535     sm_conn->sm_engine_state = SM_GENERAL_SEND_PAIRING_FAILED;
1536 }
1537 
1538 static int sm_lookup_by_address(void) {
1539     int i;
1540     for (i=0; i < le_device_db_max_count(); i++){
1541         bd_addr_t address;
1542         int address_type = BD_ADDR_TYPE_UNKNOWN;
1543         le_device_db_info(i, &address_type, address, NULL);
1544         // skip unused entries
1545         if (address_type == BD_ADDR_TYPE_UNKNOWN) continue;
1546         if ((address_type == BD_ADDR_TYPE_LE_PUBLIC) && (memcmp(address, setup->sm_peer_address, 6) == 0)){
1547             return i;
1548         }
1549     }
1550     return -1;
1551 }
1552 
1553 static void sm_remove_le_device_db_entry(uint16_t i) {
1554     le_device_db_remove(i);
1555 #ifdef ENABLE_LE_PRIVACY_ADDRESS_RESOLUTION
1556     // to remove an entry from the resolving list requires its identity address, which was already deleted
1557     // fully reload resolving list instead
1558     gap_load_resolving_list_from_le_device_db();
1559 #endif
1560 }
1561 
1562 static uint8_t sm_key_distribution_validate_received(sm_connection_t * sm_conn){
1563     // if identity is provided, abort if we have bonding with same address but different irk
1564     if (setup->sm_key_distribution_received_set & SM_KEYDIST_FLAG_IDENTITY_INFORMATION){
1565         int index = sm_lookup_by_address();
1566         if (index >= 0){
1567             sm_key_t irk;
1568             le_device_db_info(index, NULL, NULL, irk);
1569             if (memcmp(irk, setup->sm_peer_irk, 16) != 0){
1570                 // IRK doesn't match, delete bonding information
1571                 log_info("New IRK for %s (type %u) does not match stored IRK -> delete bonding information", bd_addr_to_str(sm_conn->sm_peer_address), sm_conn->sm_peer_addr_type);
1572                 sm_remove_le_device_db_entry(index);
1573             }
1574         }
1575     }
1576     return 0;
1577 }
1578 
1579 static void sm_key_distribution_handle_all_received(sm_connection_t * sm_conn){
1580 
1581     // abort pairing if received keys are not valid
1582     uint8_t reason = sm_key_distribution_validate_received(sm_conn);
1583     if (reason != 0){
1584         sm_pairing_error(sm_conn, reason);
1585         return;
1586     }
1587 
1588     // only store pairing information if both sides are bondable, i.e., the bonadble flag is set
1589     bool bonding_enabled = (sm_pairing_packet_get_auth_req(setup->sm_m_preq)
1590                             & sm_pairing_packet_get_auth_req(setup->sm_s_pres)
1591                             & SM_AUTHREQ_BONDING ) != 0u;
1592 
1593     if (bonding_enabled){
1594         sm_store_bonding_information(sm_conn);
1595     } else {
1596         log_info("Ignoring received keys, bonding not enabled");
1597     }
1598 }
1599 
1600 static inline void sm_pdu_received_in_wrong_state(sm_connection_t * sm_conn){
1601     sm_pairing_error(sm_conn, SM_REASON_UNSPECIFIED_REASON);
1602 }
1603 
1604 #ifdef ENABLE_LE_SECURE_CONNECTIONS
1605 
1606 static void sm_sc_prepare_dhkey_check(sm_connection_t * sm_conn);
1607 static int sm_passkey_used(stk_generation_method_t method);
1608 static int sm_just_works_or_numeric_comparison(stk_generation_method_t method);
1609 
1610 static void sm_sc_start_calculating_local_confirm(sm_connection_t * sm_conn){
1611     if (setup->sm_stk_generation_method == OOB){
1612         sm_conn->sm_engine_state = SM_SC_W2_CMAC_FOR_CONFIRMATION;
1613     } else {
1614         btstack_crypto_random_generate(&sm_crypto_random_request, setup->sm_local_nonce, 16, &sm_handle_random_result_sc_next_w2_cmac_for_confirmation, (void *)(uintptr_t) sm_conn->sm_handle);
1615     }
1616 }
1617 
1618 static void sm_sc_state_after_receiving_random(sm_connection_t * sm_conn){
1619     if (IS_RESPONDER(sm_conn->sm_role)){
1620         // Responder
1621         if (setup->sm_stk_generation_method == OOB){
1622             // generate Nb
1623             log_info("Generate Nb");
1624             btstack_crypto_random_generate(&sm_crypto_random_request, setup->sm_local_nonce, 16, &sm_handle_random_result_sc_next_send_pairing_random, (void *)(uintptr_t) sm_conn->sm_handle);
1625         } else {
1626             sm_conn->sm_engine_state = SM_SC_SEND_PAIRING_RANDOM;
1627         }
1628     } else {
1629         // Initiator role
1630         switch (setup->sm_stk_generation_method){
1631             case JUST_WORKS:
1632                 sm_sc_prepare_dhkey_check(sm_conn);
1633                 break;
1634 
1635             case NUMERIC_COMPARISON:
1636                 sm_conn->sm_engine_state = SM_SC_W2_CALCULATE_G2;
1637                 break;
1638             case PK_INIT_INPUT:
1639             case PK_RESP_INPUT:
1640             case PK_BOTH_INPUT:
1641                 if (setup->sm_passkey_bit < 20u) {
1642                     sm_sc_start_calculating_local_confirm(sm_conn);
1643                 } else {
1644                     sm_sc_prepare_dhkey_check(sm_conn);
1645                 }
1646                 break;
1647             case OOB:
1648                 sm_sc_prepare_dhkey_check(sm_conn);
1649                 break;
1650             default:
1651                 btstack_assert(false);
1652                 break;
1653         }
1654     }
1655 }
1656 
1657 static void sm_sc_cmac_done(uint8_t * hash){
1658     log_info("sm_sc_cmac_done: ");
1659     log_info_hexdump(hash, 16);
1660 
1661     if (sm_sc_oob_state == SM_SC_OOB_W4_CONFIRM){
1662         sm_sc_oob_state = SM_SC_OOB_IDLE;
1663         (*sm_sc_oob_callback)(hash, sm_sc_oob_random);
1664         return;
1665     }
1666 
1667     sm_connection_t * sm_conn = sm_cmac_connection;
1668     sm_cmac_connection = NULL;
1669 #ifdef ENABLE_CROSS_TRANSPORT_KEY_DERIVATION
1670     link_key_type_t link_key_type;
1671 #endif
1672 
1673     switch (sm_conn->sm_engine_state){
1674         case SM_SC_W4_CMAC_FOR_CONFIRMATION:
1675             (void)memcpy(setup->sm_local_confirm, hash, 16);
1676             sm_conn->sm_engine_state = SM_SC_SEND_CONFIRMATION;
1677             break;
1678         case SM_SC_W4_CMAC_FOR_CHECK_CONFIRMATION:
1679             // check
1680             if (0 != memcmp(hash, setup->sm_peer_confirm, 16)){
1681                 sm_pairing_error(sm_conn, SM_REASON_CONFIRM_VALUE_FAILED);
1682                 break;
1683             }
1684             sm_sc_state_after_receiving_random(sm_conn);
1685             break;
1686         case SM_SC_W4_CALCULATE_G2: {
1687             uint32_t vab = big_endian_read_32(hash, 12) % 1000000;
1688             big_endian_store_32(setup->sm_tk, 12, vab);
1689             sm_conn->sm_engine_state = SM_SC_W4_USER_RESPONSE;
1690             sm_trigger_user_response(sm_conn);
1691             break;
1692         }
1693         case SM_SC_W4_CALCULATE_F5_SALT:
1694             (void)memcpy(setup->sm_t, hash, 16);
1695             sm_conn->sm_engine_state = SM_SC_W2_CALCULATE_F5_MACKEY;
1696             break;
1697         case SM_SC_W4_CALCULATE_F5_MACKEY:
1698             (void)memcpy(setup->sm_mackey, hash, 16);
1699             sm_conn->sm_engine_state = SM_SC_W2_CALCULATE_F5_LTK;
1700             break;
1701         case SM_SC_W4_CALCULATE_F5_LTK:
1702             // truncate sm_ltk, but keep full LTK for cross-transport key derivation in sm_local_ltk
1703             // Errata Service Release to the Bluetooth Specification: ESR09
1704             //   E6405 – Cross transport key derivation from a key of size less than 128 bits
1705             //   Note: When the BR/EDR link key is being derived from the LTK, the derivation is done before the LTK gets masked."
1706             (void)memcpy(setup->sm_ltk, hash, 16);
1707             (void)memcpy(setup->sm_local_ltk, hash, 16);
1708             sm_truncate_key(setup->sm_ltk, sm_conn->sm_actual_encryption_key_size);
1709             sm_conn->sm_engine_state = SM_SC_W2_CALCULATE_F6_FOR_DHKEY_CHECK;
1710             break;
1711         case SM_SC_W4_CALCULATE_F6_FOR_DHKEY_CHECK:
1712             (void)memcpy(setup->sm_local_dhkey_check, hash, 16);
1713             if (IS_RESPONDER(sm_conn->sm_role)){
1714                 // responder
1715                 if (setup->sm_state_vars & SM_STATE_VAR_DHKEY_COMMAND_RECEIVED){
1716                     sm_conn->sm_engine_state = SM_SC_W2_CALCULATE_F6_TO_VERIFY_DHKEY_CHECK;
1717                 } else {
1718                     sm_conn->sm_engine_state = SM_SC_W4_DHKEY_CHECK_COMMAND;
1719                 }
1720             } else {
1721                 sm_conn->sm_engine_state = SM_SC_SEND_DHKEY_CHECK_COMMAND;
1722             }
1723             break;
1724         case SM_SC_W4_CALCULATE_F6_TO_VERIFY_DHKEY_CHECK:
1725             if (0 != memcmp(hash, setup->sm_peer_dhkey_check, 16) ){
1726                 sm_pairing_error(sm_conn, SM_REASON_DHKEY_CHECK_FAILED);
1727                 break;
1728             }
1729             if (IS_RESPONDER(sm_conn->sm_role)){
1730                 // responder
1731                 sm_conn->sm_engine_state = SM_SC_SEND_DHKEY_CHECK_COMMAND;
1732             } else {
1733                 // initiator
1734                 sm_conn->sm_engine_state = SM_INITIATOR_PH3_SEND_START_ENCRYPTION;
1735             }
1736             break;
1737 #ifdef ENABLE_CROSS_TRANSPORT_KEY_DERIVATION
1738         case SM_SC_W4_CALCULATE_ILK:
1739             (void)memcpy(setup->sm_t, hash, 16);
1740             sm_conn->sm_engine_state = SM_SC_W2_CALCULATE_BR_EDR_LINK_KEY;
1741             break;
1742         case SM_SC_W4_CALCULATE_BR_EDR_LINK_KEY:
1743             reverse_128(hash, setup->sm_t);
1744             link_key_type = sm_conn->sm_connection_authenticated ?
1745                 AUTHENTICATED_COMBINATION_KEY_GENERATED_FROM_P256 : UNAUTHENTICATED_COMBINATION_KEY_GENERATED_FROM_P256;
1746             log_info("Derived classic link key from LE using h6, type %u", (int) link_key_type);
1747 			gap_store_link_key_for_bd_addr(setup->sm_peer_address, setup->sm_t, link_key_type);
1748             if (IS_RESPONDER(sm_conn->sm_role)){
1749                 sm_conn->sm_engine_state = SM_RESPONDER_IDLE;
1750             } else {
1751                 sm_conn->sm_engine_state = SM_INITIATOR_CONNECTED;
1752             }
1753             sm_pairing_complete(sm_conn, ERROR_CODE_SUCCESS, 0);
1754             sm_done_for_handle(sm_conn->sm_handle);
1755             break;
1756         case SM_BR_EDR_W4_CALCULATE_ILK:
1757             (void)memcpy(setup->sm_t, hash, 16);
1758             sm_conn->sm_engine_state = SM_BR_EDR_W2_CALCULATE_LE_LTK;
1759             break;
1760         case SM_BR_EDR_W4_CALCULATE_LE_LTK:
1761             log_info("Derived LE LTK from BR/EDR Link Key");
1762             log_info_key("Link Key", hash);
1763             (void)memcpy(setup->sm_ltk, hash, 16);
1764             sm_truncate_key(setup->sm_ltk, sm_conn->sm_actual_encryption_key_size);
1765             sm_conn->sm_connection_authenticated = setup->sm_link_key_type == AUTHENTICATED_COMBINATION_KEY_GENERATED_FROM_P256;
1766             sm_store_bonding_information(sm_conn);
1767             sm_done_for_handle(sm_conn->sm_handle);
1768             break;
1769 #endif
1770         default:
1771             log_error("sm_sc_cmac_done in state %u", sm_conn->sm_engine_state);
1772             break;
1773     }
1774     sm_trigger_run();
1775 }
1776 
1777 static void f4_engine(sm_connection_t * sm_conn, const sm_key256_t u, const sm_key256_t v, const sm_key_t x, uint8_t z){
1778     const uint16_t message_len = 65;
1779     sm_cmac_connection = sm_conn;
1780     (void)memcpy(sm_cmac_sc_buffer, u, 32);
1781     (void)memcpy(sm_cmac_sc_buffer + 32, v, 32);
1782     sm_cmac_sc_buffer[64] = z;
1783     log_info("f4 key");
1784     log_info_hexdump(x, 16);
1785     log_info("f4 message");
1786     log_info_hexdump(sm_cmac_sc_buffer, message_len);
1787     sm_cmac_message_start(x, message_len, sm_cmac_sc_buffer, &sm_sc_cmac_done);
1788 }
1789 
1790 static const uint8_t f5_key_id[] = { 0x62, 0x74, 0x6c, 0x65 };
1791 static const uint8_t f5_length[] = { 0x01, 0x00};
1792 
1793 static void f5_calculate_salt(sm_connection_t * sm_conn){
1794 
1795     static const sm_key_t f5_salt = { 0x6C ,0x88, 0x83, 0x91, 0xAA, 0xF5, 0xA5, 0x38, 0x60, 0x37, 0x0B, 0xDB, 0x5A, 0x60, 0x83, 0xBE};
1796 
1797     log_info("f5_calculate_salt");
1798     // calculate salt for f5
1799     const uint16_t message_len = 32;
1800     sm_cmac_connection = sm_conn;
1801     (void)memcpy(sm_cmac_sc_buffer, setup->sm_dhkey, message_len);
1802     sm_cmac_message_start(f5_salt, message_len, sm_cmac_sc_buffer, &sm_sc_cmac_done);
1803 }
1804 
1805 static inline void f5_mackkey(sm_connection_t * sm_conn, sm_key_t t, const sm_key_t n1, const sm_key_t n2, const sm_key56_t a1, const sm_key56_t a2){
1806     const uint16_t message_len = 53;
1807     sm_cmac_connection = sm_conn;
1808 
1809     // f5(W, N1, N2, A1, A2) = AES-CMACT (Counter = 0 || keyID || N1 || N2|| A1|| A2 || Length = 256) -- this is the MacKey
1810     sm_cmac_sc_buffer[0] = 0;
1811     (void)memcpy(sm_cmac_sc_buffer + 01, f5_key_id, 4);
1812     (void)memcpy(sm_cmac_sc_buffer + 05, n1, 16);
1813     (void)memcpy(sm_cmac_sc_buffer + 21, n2, 16);
1814     (void)memcpy(sm_cmac_sc_buffer + 37, a1, 7);
1815     (void)memcpy(sm_cmac_sc_buffer + 44, a2, 7);
1816     (void)memcpy(sm_cmac_sc_buffer + 51, f5_length, 2);
1817     log_info("f5 key");
1818     log_info_hexdump(t, 16);
1819     log_info("f5 message for MacKey");
1820     log_info_hexdump(sm_cmac_sc_buffer, message_len);
1821     sm_cmac_message_start(t, message_len, sm_cmac_sc_buffer, &sm_sc_cmac_done);
1822 }
1823 
1824 static void f5_calculate_mackey(sm_connection_t * sm_conn){
1825     sm_key56_t bd_addr_master, bd_addr_slave;
1826     bd_addr_master[0] =  setup->sm_m_addr_type;
1827     bd_addr_slave[0]  =  setup->sm_s_addr_type;
1828     (void)memcpy(&bd_addr_master[1], setup->sm_m_address, 6);
1829     (void)memcpy(&bd_addr_slave[1], setup->sm_s_address, 6);
1830     if (IS_RESPONDER(sm_conn->sm_role)){
1831         // responder
1832         f5_mackkey(sm_conn, setup->sm_t, setup->sm_peer_nonce, setup->sm_local_nonce, bd_addr_master, bd_addr_slave);
1833     } else {
1834         // initiator
1835         f5_mackkey(sm_conn, setup->sm_t, setup->sm_local_nonce, setup->sm_peer_nonce, bd_addr_master, bd_addr_slave);
1836     }
1837 }
1838 
1839 // note: must be called right after f5_mackey, as sm_cmac_buffer[1..52] will be reused
1840 static inline void f5_ltk(sm_connection_t * sm_conn, sm_key_t t){
1841     const uint16_t message_len = 53;
1842     sm_cmac_connection = sm_conn;
1843     sm_cmac_sc_buffer[0] = 1;
1844     // 1..52 setup before
1845     log_info("f5 key");
1846     log_info_hexdump(t, 16);
1847     log_info("f5 message for LTK");
1848     log_info_hexdump(sm_cmac_sc_buffer, message_len);
1849     sm_cmac_message_start(t, message_len, sm_cmac_sc_buffer, &sm_sc_cmac_done);
1850 }
1851 
1852 static void f5_calculate_ltk(sm_connection_t * sm_conn){
1853     f5_ltk(sm_conn, setup->sm_t);
1854 }
1855 
1856 static void f6_setup(const sm_key_t n1, const sm_key_t n2, const sm_key_t r, const sm_key24_t io_cap, const sm_key56_t a1, const sm_key56_t a2){
1857     (void)memcpy(sm_cmac_sc_buffer, n1, 16);
1858     (void)memcpy(sm_cmac_sc_buffer + 16, n2, 16);
1859     (void)memcpy(sm_cmac_sc_buffer + 32, r, 16);
1860     (void)memcpy(sm_cmac_sc_buffer + 48, io_cap, 3);
1861     (void)memcpy(sm_cmac_sc_buffer + 51, a1, 7);
1862     (void)memcpy(sm_cmac_sc_buffer + 58, a2, 7);
1863 }
1864 
1865 static void f6_engine(sm_connection_t * sm_conn, const sm_key_t w){
1866     const uint16_t message_len = 65;
1867     sm_cmac_connection = sm_conn;
1868     log_info("f6 key");
1869     log_info_hexdump(w, 16);
1870     log_info("f6 message");
1871     log_info_hexdump(sm_cmac_sc_buffer, message_len);
1872     sm_cmac_message_start(w, 65, sm_cmac_sc_buffer, &sm_sc_cmac_done);
1873 }
1874 
1875 // g2(U, V, X, Y) = AES-CMACX(U || V || Y) mod 2^32
1876 // - U is 256 bits
1877 // - V is 256 bits
1878 // - X is 128 bits
1879 // - Y is 128 bits
1880 static void g2_engine(sm_connection_t * sm_conn, const sm_key256_t u, const sm_key256_t v, const sm_key_t x, const sm_key_t y){
1881     const uint16_t message_len = 80;
1882     sm_cmac_connection = sm_conn;
1883     (void)memcpy(sm_cmac_sc_buffer, u, 32);
1884     (void)memcpy(sm_cmac_sc_buffer + 32, v, 32);
1885     (void)memcpy(sm_cmac_sc_buffer + 64, y, 16);
1886     log_info("g2 key");
1887     log_info_hexdump(x, 16);
1888     log_info("g2 message");
1889     log_info_hexdump(sm_cmac_sc_buffer, message_len);
1890     sm_cmac_message_start(x, message_len, sm_cmac_sc_buffer, &sm_sc_cmac_done);
1891 }
1892 
1893 static void g2_calculate(sm_connection_t * sm_conn) {
1894     // calc Va if numeric comparison
1895     if (IS_RESPONDER(sm_conn->sm_role)){
1896         // responder
1897         g2_engine(sm_conn, setup->sm_peer_q, ec_q, setup->sm_peer_nonce, setup->sm_local_nonce);;
1898     } else {
1899         // initiator
1900         g2_engine(sm_conn, ec_q, setup->sm_peer_q, setup->sm_local_nonce, setup->sm_peer_nonce);
1901     }
1902 }
1903 
1904 static void sm_sc_calculate_local_confirm(sm_connection_t * sm_conn){
1905     uint8_t z = 0;
1906     if (sm_passkey_entry(setup->sm_stk_generation_method)){
1907         // some form of passkey
1908         uint32_t pk = big_endian_read_32(setup->sm_tk, 12);
1909         z = 0x80u | ((pk >> setup->sm_passkey_bit) & 1u);
1910         setup->sm_passkey_bit++;
1911     }
1912     f4_engine(sm_conn, ec_q, setup->sm_peer_q, setup->sm_local_nonce, z);
1913 }
1914 
1915 static void sm_sc_calculate_remote_confirm(sm_connection_t * sm_conn){
1916     // OOB
1917     if (setup->sm_stk_generation_method == OOB){
1918         if (IS_RESPONDER(sm_conn->sm_role)){
1919             f4_engine(sm_conn, setup->sm_peer_q, setup->sm_peer_q, setup->sm_ra, 0);
1920         } else {
1921             f4_engine(sm_conn, setup->sm_peer_q, setup->sm_peer_q, setup->sm_rb, 0);
1922         }
1923         return;
1924     }
1925 
1926     uint8_t z = 0;
1927     if (sm_passkey_entry(setup->sm_stk_generation_method)){
1928         // some form of passkey
1929         uint32_t pk = big_endian_read_32(setup->sm_tk, 12);
1930         // sm_passkey_bit was increased before sending confirm value
1931         z = 0x80u | ((pk >> (setup->sm_passkey_bit-1u)) & 1u);
1932     }
1933     f4_engine(sm_conn, setup->sm_peer_q, ec_q, setup->sm_peer_nonce, z);
1934 }
1935 
1936 static void sm_sc_prepare_dhkey_check(sm_connection_t * sm_conn){
1937     log_info("sm_sc_prepare_dhkey_check, DHKEY calculated %u", (setup->sm_state_vars & SM_STATE_VAR_DHKEY_CALCULATED) ? 1 : 0);
1938 
1939     if (setup->sm_state_vars & SM_STATE_VAR_DHKEY_CALCULATED){
1940         sm_conn->sm_engine_state = SM_SC_W2_CALCULATE_F5_SALT;
1941         return;
1942     } else {
1943         sm_conn->sm_engine_state = SM_SC_W4_CALCULATE_DHKEY;
1944     }
1945 }
1946 
1947 static void sm_sc_dhkey_calculated(void * arg){
1948     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
1949     sm_connection_t * sm_conn = sm_get_connection_for_handle(con_handle);
1950     if (sm_conn == NULL) return;
1951 
1952     log_info("dhkey");
1953     log_info_hexdump(&setup->sm_dhkey[0], 32);
1954     setup->sm_state_vars |= SM_STATE_VAR_DHKEY_CALCULATED;
1955     // trigger next step
1956     if (sm_conn->sm_engine_state == SM_SC_W4_CALCULATE_DHKEY){
1957         sm_conn->sm_engine_state = SM_SC_W2_CALCULATE_F5_SALT;
1958     }
1959     sm_trigger_run();
1960 }
1961 
1962 static void sm_sc_calculate_f6_for_dhkey_check(sm_connection_t * sm_conn){
1963     // calculate DHKCheck
1964     sm_key56_t bd_addr_master, bd_addr_slave;
1965     bd_addr_master[0] =  setup->sm_m_addr_type;
1966     bd_addr_slave[0]  =  setup->sm_s_addr_type;
1967     (void)memcpy(&bd_addr_master[1], setup->sm_m_address, 6);
1968     (void)memcpy(&bd_addr_slave[1], setup->sm_s_address, 6);
1969     uint8_t iocap_a[3];
1970     iocap_a[0] = sm_pairing_packet_get_auth_req(setup->sm_m_preq);
1971     iocap_a[1] = sm_pairing_packet_get_oob_data_flag(setup->sm_m_preq);
1972     iocap_a[2] = sm_pairing_packet_get_io_capability(setup->sm_m_preq);
1973     uint8_t iocap_b[3];
1974     iocap_b[0] = sm_pairing_packet_get_auth_req(setup->sm_s_pres);
1975     iocap_b[1] = sm_pairing_packet_get_oob_data_flag(setup->sm_s_pres);
1976     iocap_b[2] = sm_pairing_packet_get_io_capability(setup->sm_s_pres);
1977     if (IS_RESPONDER(sm_conn->sm_role)){
1978         // responder
1979         f6_setup(setup->sm_local_nonce, setup->sm_peer_nonce, setup->sm_ra, iocap_b, bd_addr_slave, bd_addr_master);
1980         f6_engine(sm_conn, setup->sm_mackey);
1981     } else {
1982         // initiator
1983         f6_setup( setup->sm_local_nonce, setup->sm_peer_nonce, setup->sm_rb, iocap_a, bd_addr_master, bd_addr_slave);
1984         f6_engine(sm_conn, setup->sm_mackey);
1985     }
1986 }
1987 
1988 static void sm_sc_calculate_f6_to_verify_dhkey_check(sm_connection_t * sm_conn){
1989     // validate E = f6()
1990     sm_key56_t bd_addr_master, bd_addr_slave;
1991     bd_addr_master[0] =  setup->sm_m_addr_type;
1992     bd_addr_slave[0]  =  setup->sm_s_addr_type;
1993     (void)memcpy(&bd_addr_master[1], setup->sm_m_address, 6);
1994     (void)memcpy(&bd_addr_slave[1], setup->sm_s_address, 6);
1995 
1996     uint8_t iocap_a[3];
1997     iocap_a[0] = sm_pairing_packet_get_auth_req(setup->sm_m_preq);
1998     iocap_a[1] = sm_pairing_packet_get_oob_data_flag(setup->sm_m_preq);
1999     iocap_a[2] = sm_pairing_packet_get_io_capability(setup->sm_m_preq);
2000     uint8_t iocap_b[3];
2001     iocap_b[0] = sm_pairing_packet_get_auth_req(setup->sm_s_pres);
2002     iocap_b[1] = sm_pairing_packet_get_oob_data_flag(setup->sm_s_pres);
2003     iocap_b[2] = sm_pairing_packet_get_io_capability(setup->sm_s_pres);
2004     if (IS_RESPONDER(sm_conn->sm_role)){
2005         // responder
2006         f6_setup(setup->sm_peer_nonce, setup->sm_local_nonce, setup->sm_rb, iocap_a, bd_addr_master, bd_addr_slave);
2007         f6_engine(sm_conn, setup->sm_mackey);
2008     } else {
2009         // initiator
2010         f6_setup(setup->sm_peer_nonce, setup->sm_local_nonce, setup->sm_ra, iocap_b, bd_addr_slave, bd_addr_master);
2011         f6_engine(sm_conn, setup->sm_mackey);
2012     }
2013 }
2014 
2015 #ifdef ENABLE_CROSS_TRANSPORT_KEY_DERIVATION
2016 
2017 //
2018 // Link Key Conversion Function h6
2019 //
2020 // h6(W, keyID) = AES-CMAC_W(keyID)
2021 // - W is 128 bits
2022 // - keyID is 32 bits
2023 static void h6_engine(sm_connection_t * sm_conn, const sm_key_t w, const uint32_t key_id){
2024     const uint16_t message_len = 4;
2025     sm_cmac_connection = sm_conn;
2026     big_endian_store_32(sm_cmac_sc_buffer, 0, key_id);
2027     log_info("h6 key");
2028     log_info_hexdump(w, 16);
2029     log_info("h6 message");
2030     log_info_hexdump(sm_cmac_sc_buffer, message_len);
2031     sm_cmac_message_start(w, message_len, sm_cmac_sc_buffer, &sm_sc_cmac_done);
2032 }
2033 //
2034 // Link Key Conversion Function h7
2035 //
2036 // h7(SALT, W) = AES-CMAC_SALT(W)
2037 // - SALT is 128 bits
2038 // - W    is 128 bits
2039 static void h7_engine(sm_connection_t * sm_conn, const sm_key_t salt, const sm_key_t w) {
2040 	const uint16_t message_len = 16;
2041 	sm_cmac_connection = sm_conn;
2042 	log_info("h7 key");
2043 	log_info_hexdump(salt, 16);
2044 	log_info("h7 message");
2045 	log_info_hexdump(w, 16);
2046 	sm_cmac_message_start(salt, message_len, w, &sm_sc_cmac_done);
2047 }
2048 
2049 // For SC, setup->sm_local_ltk holds full LTK (sm_ltk is already truncated)
2050 // Errata Service Release to the Bluetooth Specification: ESR09
2051 //   E6405 – Cross transport key derivation from a key of size less than 128 bits
2052 //   "Note: When the BR/EDR link key is being derived from the LTK, the derivation is done before the LTK gets masked."
2053 
2054 static void h6_calculate_ilk_from_le_ltk(sm_connection_t * sm_conn){
2055     h6_engine(sm_conn, setup->sm_local_ltk, 0x746D7031);    // "tmp1"
2056 }
2057 
2058 static void h6_calculate_ilk_from_br_edr(sm_connection_t * sm_conn){
2059     h6_engine(sm_conn, setup->sm_link_key, 0x746D7032);    // "tmp2"
2060 }
2061 
2062 static void h6_calculate_br_edr_link_key(sm_connection_t * sm_conn){
2063     h6_engine(sm_conn, setup->sm_t, 0x6c656272);    // "lebr"
2064 }
2065 
2066 static void h6_calculate_le_ltk(sm_connection_t * sm_conn){
2067     h6_engine(sm_conn, setup->sm_t, 0x62726C65);    // "brle"
2068 }
2069 
2070 static void h7_calculate_ilk_from_le_ltk(sm_connection_t * sm_conn){
2071 	const uint8_t salt[16] = { 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,  0x00, 0x00, 0x00, 0x00, 0x74, 0x6D, 0x70, 0x31};  // "tmp1"
2072 	h7_engine(sm_conn, salt, setup->sm_local_ltk);
2073 }
2074 
2075 static void h7_calculate_ilk_from_br_edr(sm_connection_t * sm_conn){
2076     const uint8_t salt[16] = { 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,  0x00, 0x00, 0x00, 0x00, 0x74, 0x6D, 0x70, 0x32};  // "tmp2"
2077     h7_engine(sm_conn, salt, setup->sm_link_key);
2078 }
2079 
2080 static void sm_ctkd_fetch_br_edr_link_key(sm_connection_t * sm_conn){
2081     hci_connection_t * hci_connection = hci_connection_for_handle(sm_conn->sm_handle);
2082     btstack_assert(hci_connection != NULL);
2083     reverse_128(hci_connection->link_key, setup->sm_link_key);
2084     setup->sm_link_key_type =  hci_connection->link_key_type;
2085 }
2086 
2087 static void sm_ctkd_start_from_br_edr(sm_connection_t * connection){
2088     bool use_h7 = (sm_pairing_packet_get_auth_req(setup->sm_m_preq) & sm_pairing_packet_get_auth_req(setup->sm_s_pres) & SM_AUTHREQ_CT2) != 0;
2089     connection->sm_engine_state = use_h7 ? SM_BR_EDR_W2_CALCULATE_ILK_USING_H7 : SM_BR_EDR_W2_CALCULATE_ILK_USING_H6;
2090 }
2091 
2092 #endif
2093 
2094 #endif
2095 
2096 // key management legacy connections:
2097 // - potentially two different LTKs based on direction. each device stores LTK provided by peer
2098 // - master stores LTK, EDIV, RAND. responder optionally stored master LTK (only if it needs to reconnect)
2099 // - initiators reconnects: initiator uses stored LTK, EDIV, RAND generated by responder
2100 // - responder  reconnects: responder uses LTK receveived from master
2101 
2102 // key management secure connections:
2103 // - both devices store same LTK from ECDH key exchange.
2104 
2105 #if defined(ENABLE_LE_SECURE_CONNECTIONS) || defined(ENABLE_LE_CENTRAL)
2106 static void sm_load_security_info(sm_connection_t * sm_connection){
2107     int encryption_key_size;
2108     int authenticated;
2109     int authorized;
2110     int secure_connection;
2111 
2112     // fetch data from device db - incl. authenticated/authorized/key size. Note all sm_connection_X require encryption enabled
2113     le_device_db_encryption_get(sm_connection->sm_le_db_index, &setup->sm_peer_ediv, setup->sm_peer_rand, setup->sm_peer_ltk,
2114                                 &encryption_key_size, &authenticated, &authorized, &secure_connection);
2115     log_info("db index %u, key size %u, authenticated %u, authorized %u, secure connetion %u", sm_connection->sm_le_db_index, encryption_key_size, authenticated, authorized, secure_connection);
2116     sm_connection->sm_actual_encryption_key_size = encryption_key_size;
2117     sm_connection->sm_connection_authenticated = authenticated;
2118     sm_connection->sm_connection_authorization_state = authorized ? AUTHORIZATION_GRANTED : AUTHORIZATION_UNKNOWN;
2119     sm_connection->sm_connection_sc = secure_connection;
2120 }
2121 #endif
2122 
2123 #ifdef ENABLE_LE_PERIPHERAL
2124 static void sm_start_calculating_ltk_from_ediv_and_rand(sm_connection_t * sm_connection){
2125     (void)memcpy(setup->sm_local_rand, sm_connection->sm_local_rand, 8);
2126     setup->sm_local_ediv = sm_connection->sm_local_ediv;
2127     // re-establish used key encryption size
2128     // no db for encryption size hack: encryption size is stored in lowest nibble of setup->sm_local_rand
2129     sm_connection->sm_actual_encryption_key_size = (setup->sm_local_rand[7u] & 0x0fu) + 1u;
2130     // no db for authenticated flag hack: flag is stored in bit 4 of LSB
2131     sm_connection->sm_connection_authenticated = (setup->sm_local_rand[7u] & 0x10u) >> 4u;
2132     // Legacy paring -> not SC
2133     sm_connection->sm_connection_sc = 0;
2134     log_info("sm: received ltk request with key size %u, authenticated %u",
2135             sm_connection->sm_actual_encryption_key_size, sm_connection->sm_connection_authenticated);
2136 }
2137 #endif
2138 
2139 // distributed key generation
2140 static bool sm_run_dpkg(void){
2141     switch (dkg_state){
2142         case DKG_CALC_IRK:
2143             // already busy?
2144             if (sm_aes128_state == SM_AES128_IDLE) {
2145                 log_info("DKG_CALC_IRK started");
2146                 // IRK = d1(IR, 1, 0)
2147                 sm_d1_d_prime(1, 0, sm_aes128_plaintext);  // plaintext = d1 prime
2148                 sm_aes128_state = SM_AES128_ACTIVE;
2149                 btstack_crypto_aes128_encrypt(&sm_crypto_aes128_request, sm_persistent_ir, sm_aes128_plaintext, sm_persistent_irk, sm_handle_encryption_result_dkg_irk, NULL);
2150                 return true;
2151             }
2152             break;
2153         case DKG_CALC_DHK:
2154             // already busy?
2155             if (sm_aes128_state == SM_AES128_IDLE) {
2156                 log_info("DKG_CALC_DHK started");
2157                 // DHK = d1(IR, 3, 0)
2158                 sm_d1_d_prime(3, 0, sm_aes128_plaintext);  // plaintext = d1 prime
2159                 sm_aes128_state = SM_AES128_ACTIVE;
2160                 btstack_crypto_aes128_encrypt(&sm_crypto_aes128_request, sm_persistent_ir, sm_aes128_plaintext, sm_persistent_dhk, sm_handle_encryption_result_dkg_dhk, NULL);
2161                 return true;
2162             }
2163             break;
2164         default:
2165             break;
2166     }
2167     return false;
2168 }
2169 
2170 // random address updates
2171 static bool sm_run_rau(void){
2172     switch (rau_state){
2173         case RAU_GET_RANDOM:
2174             rau_state = RAU_W4_RANDOM;
2175             btstack_crypto_random_generate(&sm_crypto_random_request, sm_random_address, 6, &sm_handle_random_result_rau, NULL);
2176             return true;
2177         case RAU_GET_ENC:
2178             // already busy?
2179             if (sm_aes128_state == SM_AES128_IDLE) {
2180                 sm_ah_r_prime(sm_random_address, sm_aes128_plaintext);
2181                 sm_aes128_state = SM_AES128_ACTIVE;
2182                 btstack_crypto_aes128_encrypt(&sm_crypto_aes128_request, sm_persistent_irk, sm_aes128_plaintext, sm_aes128_ciphertext, sm_handle_encryption_result_rau, NULL);
2183                 return true;
2184             }
2185             break;
2186         default:
2187             break;
2188     }
2189     return false;
2190 }
2191 
2192 // CSRK Lookup
2193 static bool sm_run_csrk(void){
2194     btstack_linked_list_iterator_t it;
2195 
2196     // -- if csrk lookup ready, find connection that require csrk lookup
2197     if (sm_address_resolution_idle()){
2198         hci_connections_get_iterator(&it);
2199         while(btstack_linked_list_iterator_has_next(&it)){
2200             hci_connection_t * hci_connection = (hci_connection_t *) btstack_linked_list_iterator_next(&it);
2201             sm_connection_t  * sm_connection  = &hci_connection->sm_connection;
2202             if (sm_connection->sm_irk_lookup_state == IRK_LOOKUP_W4_READY){
2203                 // and start lookup
2204                 sm_address_resolution_start_lookup(sm_connection->sm_peer_addr_type, sm_connection->sm_handle, sm_connection->sm_peer_address, ADDRESS_RESOLUTION_FOR_CONNECTION, sm_connection);
2205                 sm_connection->sm_irk_lookup_state = IRK_LOOKUP_STARTED;
2206                 break;
2207             }
2208         }
2209     }
2210 
2211     // -- if csrk lookup ready, resolved addresses for received addresses
2212     if (sm_address_resolution_idle()) {
2213         if (!btstack_linked_list_empty(&sm_address_resolution_general_queue)){
2214             sm_lookup_entry_t * entry = (sm_lookup_entry_t *) sm_address_resolution_general_queue;
2215             btstack_linked_list_remove(&sm_address_resolution_general_queue, (btstack_linked_item_t *) entry);
2216             sm_address_resolution_start_lookup(entry->address_type, 0, entry->address, ADDRESS_RESOLUTION_GENERAL, NULL);
2217             btstack_memory_sm_lookup_entry_free(entry);
2218         }
2219     }
2220 
2221     // -- Continue with device lookup by public or resolvable private address
2222     if (!sm_address_resolution_idle()){
2223         while (sm_address_resolution_test < le_device_db_max_count()){
2224             int addr_type = BD_ADDR_TYPE_UNKNOWN;
2225             bd_addr_t addr;
2226             sm_key_t irk;
2227             le_device_db_info(sm_address_resolution_test, &addr_type, addr, irk);
2228 
2229             // skip unused entries
2230             if (addr_type == BD_ADDR_TYPE_UNKNOWN){
2231                 sm_address_resolution_test++;
2232                 continue;
2233             }
2234 
2235             log_info("LE Device Lookup: device %u of %u", sm_address_resolution_test, le_device_db_max_count());
2236 
2237             if ((sm_address_resolution_addr_type == addr_type) && (memcmp(addr, sm_address_resolution_address, 6) == 0)){
2238                 log_info("LE Device Lookup: found by { addr_type, address} ");
2239                 sm_address_resolution_handle_event(ADDRESS_RESOLUTION_SUCCEEDED);
2240                 break;
2241             }
2242 
2243             // if connection type is public, it must be a different one
2244             if (sm_address_resolution_addr_type == BD_ADDR_TYPE_LE_PUBLIC){
2245                 sm_address_resolution_test++;
2246                 continue;
2247             }
2248 
2249             // skip AH if no IRK
2250             if (sm_is_null_key(irk)){
2251                 sm_address_resolution_test++;
2252                 continue;
2253             }
2254 
2255             if (sm_aes128_state == SM_AES128_ACTIVE) break;
2256 
2257             log_info("LE Device Lookup: calculate AH");
2258             log_info_key("IRK", irk);
2259 
2260             (void)memcpy(sm_aes128_key, irk, 16);
2261             sm_ah_r_prime(sm_address_resolution_address, sm_aes128_plaintext);
2262             sm_address_resolution_ah_calculation_active = 1;
2263             sm_aes128_state = SM_AES128_ACTIVE;
2264             btstack_crypto_aes128_encrypt(&sm_crypto_aes128_request, sm_aes128_key, sm_aes128_plaintext, sm_aes128_ciphertext, sm_handle_encryption_result_address_resolution, NULL);
2265             return true;
2266         }
2267 
2268         if (sm_address_resolution_test >= le_device_db_max_count()){
2269             log_info("LE Device Lookup: not found");
2270             sm_address_resolution_handle_event(ADDRESS_RESOLUTION_FAILED);
2271         }
2272     }
2273     return false;
2274 }
2275 
2276 // SC OOB
2277 static bool sm_run_oob(void){
2278 #ifdef ENABLE_LE_SECURE_CONNECTIONS
2279     switch (sm_sc_oob_state){
2280         case SM_SC_OOB_W2_CALC_CONFIRM:
2281             if (!sm_cmac_ready()) break;
2282             sm_sc_oob_state = SM_SC_OOB_W4_CONFIRM;
2283             f4_engine(NULL, ec_q, ec_q, sm_sc_oob_random, 0);
2284             return true;
2285         default:
2286             break;
2287     }
2288 #endif
2289     return false;
2290 }
2291 
2292 static void sm_send_connectionless(sm_connection_t * sm_connection, const uint8_t * buffer, uint16_t size){
2293     l2cap_send_connectionless(sm_connection->sm_handle, sm_connection->sm_cid, (uint8_t*) buffer, size);
2294 }
2295 
2296 // handle basic actions that don't requires the full context
2297 static bool sm_run_basic(void){
2298     btstack_linked_list_iterator_t it;
2299     hci_connections_get_iterator(&it);
2300     while(btstack_linked_list_iterator_has_next(&it)){
2301         hci_connection_t * hci_connection = (hci_connection_t *) btstack_linked_list_iterator_next(&it);
2302         sm_connection_t  * sm_connection = &hci_connection->sm_connection;
2303         switch(sm_connection->sm_engine_state){
2304 
2305             // general
2306             case SM_GENERAL_SEND_PAIRING_FAILED: {
2307                 uint8_t buffer[2];
2308                 buffer[0] = SM_CODE_PAIRING_FAILED;
2309                 buffer[1] = sm_connection->sm_pairing_failed_reason;
2310                 sm_connection->sm_engine_state = sm_connection->sm_role ? SM_RESPONDER_IDLE : SM_INITIATOR_CONNECTED;
2311                 sm_send_connectionless(sm_connection, (uint8_t*) buffer, sizeof(buffer));
2312                 sm_pairing_complete(sm_connection, ERROR_CODE_AUTHENTICATION_FAILURE, sm_connection->sm_pairing_failed_reason);
2313                 sm_done_for_handle(sm_connection->sm_handle);
2314                 break;
2315             }
2316 
2317             // responder side
2318             case SM_RESPONDER_PH0_SEND_LTK_REQUESTED_NEGATIVE_REPLY:
2319                 sm_connection->sm_engine_state = SM_RESPONDER_IDLE;
2320                 hci_send_cmd(&hci_le_long_term_key_negative_reply, sm_connection->sm_handle);
2321                 return true;
2322 
2323 #ifdef ENABLE_LE_SECURE_CONNECTIONS
2324             case SM_SC_RECEIVED_LTK_REQUEST:
2325                 switch (sm_connection->sm_irk_lookup_state){
2326                     case IRK_LOOKUP_FAILED:
2327                         log_info("LTK Request: IRK Lookup Failed)");
2328                         sm_connection->sm_engine_state = SM_RESPONDER_IDLE;
2329                         hci_send_cmd(&hci_le_long_term_key_negative_reply, sm_connection->sm_handle);
2330                         return true;
2331                     default:
2332                         break;
2333                 }
2334                 break;
2335 #endif
2336             default:
2337                 break;
2338         }
2339     }
2340     return false;
2341 }
2342 
2343 static void sm_run_activate_connection(void){
2344     // Find connections that requires setup context and make active if no other is locked
2345     btstack_linked_list_iterator_t it;
2346     hci_connections_get_iterator(&it);
2347     while((sm_active_connection_handle == HCI_CON_HANDLE_INVALID) && btstack_linked_list_iterator_has_next(&it)){
2348         hci_connection_t * hci_connection = (hci_connection_t *) btstack_linked_list_iterator_next(&it);
2349         sm_connection_t  * sm_connection = &hci_connection->sm_connection;
2350         // - if no connection locked and we're ready/waiting for setup context, fetch it and start
2351         bool done = true;
2352         int err;
2353         UNUSED(err);
2354 
2355 #ifdef ENABLE_LE_SECURE_CONNECTIONS
2356         // assert ec key is ready
2357         if (   (sm_connection->sm_engine_state == SM_RESPONDER_PH1_PAIRING_REQUEST_RECEIVED)
2358             || (sm_connection->sm_engine_state == SM_INITIATOR_PH1_W2_SEND_PAIRING_REQUEST)
2359 			|| (sm_connection->sm_engine_state == SM_RESPONDER_SEND_SECURITY_REQUEST)){
2360             if (ec_key_generation_state == EC_KEY_GENERATION_IDLE){
2361                 sm_ec_generate_new_key();
2362             }
2363             if (ec_key_generation_state != EC_KEY_GENERATION_DONE){
2364                 continue;
2365             }
2366         }
2367 #endif
2368 
2369         switch (sm_connection->sm_engine_state) {
2370 #ifdef ENABLE_LE_PERIPHERAL
2371             case SM_RESPONDER_SEND_SECURITY_REQUEST:
2372             case SM_RESPONDER_PH1_PAIRING_REQUEST_RECEIVED:
2373             case SM_RESPONDER_PH0_RECEIVED_LTK_REQUEST:
2374 #ifdef ENABLE_LE_SECURE_CONNECTIONS
2375             case SM_SC_RECEIVED_LTK_REQUEST:
2376 #endif
2377 #endif
2378 #ifdef ENABLE_LE_CENTRAL
2379             case SM_INITIATOR_PH4_HAS_LTK:
2380 			case SM_INITIATOR_PH1_W2_SEND_PAIRING_REQUEST:
2381 #endif
2382 #ifdef ENABLE_CROSS_TRANSPORT_KEY_DERIVATION
2383             case SM_BR_EDR_RESPONDER_PAIRING_REQUEST_RECEIVED:
2384             case SM_BR_EDR_INITIATOR_SEND_PAIRING_REQUEST:
2385 #endif
2386 				// just lock context
2387 				break;
2388             default:
2389                 done = false;
2390                 break;
2391         }
2392         if (done){
2393             sm_active_connection_handle = sm_connection->sm_handle;
2394             log_info("sm: connection 0x%04x locked setup context as %s, state %u", sm_active_connection_handle, sm_connection->sm_role ? "responder" : "initiator", sm_connection->sm_engine_state);
2395         }
2396     }
2397 }
2398 
2399 static void sm_run_send_keypress_notification(sm_connection_t * connection){
2400     int i;
2401     uint8_t flags       = setup->sm_keypress_notification & 0x1fu;
2402     uint8_t num_actions = setup->sm_keypress_notification >> 5;
2403     uint8_t action = 0;
2404     for (i=SM_KEYPRESS_PASSKEY_ENTRY_STARTED;i<=SM_KEYPRESS_PASSKEY_ENTRY_COMPLETED;i++){
2405         if (flags & (1u<<i)){
2406             bool clear_flag = true;
2407             switch (i){
2408                 case SM_KEYPRESS_PASSKEY_ENTRY_STARTED:
2409                 case SM_KEYPRESS_PASSKEY_CLEARED:
2410                 case SM_KEYPRESS_PASSKEY_ENTRY_COMPLETED:
2411                 default:
2412                     break;
2413                 case SM_KEYPRESS_PASSKEY_DIGIT_ENTERED:
2414                 case SM_KEYPRESS_PASSKEY_DIGIT_ERASED:
2415                     num_actions--;
2416                     clear_flag = num_actions == 0u;
2417                     break;
2418             }
2419             if (clear_flag){
2420                 flags &= ~(1<<i);
2421             }
2422             action = i;
2423             break;
2424         }
2425     }
2426     setup->sm_keypress_notification = (num_actions << 5) | flags;
2427 
2428     // send keypress notification
2429     uint8_t buffer[2];
2430     buffer[0] = SM_CODE_KEYPRESS_NOTIFICATION;
2431     buffer[1] = action;
2432     sm_send_connectionless(connection, (uint8_t*) buffer, sizeof(buffer));
2433 
2434     // try
2435     l2cap_request_can_send_fix_channel_now_event(sm_active_connection_handle, connection->sm_cid);
2436 }
2437 
2438 static void sm_run_distribute_keys(sm_connection_t * connection){
2439     if (setup->sm_key_distribution_send_set &   SM_KEYDIST_FLAG_ENCRYPTION_INFORMATION){
2440         setup->sm_key_distribution_send_set &= ~SM_KEYDIST_FLAG_ENCRYPTION_INFORMATION;
2441         setup->sm_key_distribution_sent_set |=  SM_KEYDIST_FLAG_ENCRYPTION_INFORMATION;
2442         uint8_t buffer[17];
2443         buffer[0] = SM_CODE_ENCRYPTION_INFORMATION;
2444         reverse_128(setup->sm_ltk, &buffer[1]);
2445         sm_send_connectionless(connection, (uint8_t*) buffer, sizeof(buffer));
2446         sm_timeout_reset(connection);
2447         return;
2448     }
2449     if (setup->sm_key_distribution_send_set &   SM_KEYDIST_FLAG_MASTER_IDENTIFICATION){
2450         setup->sm_key_distribution_send_set &= ~SM_KEYDIST_FLAG_MASTER_IDENTIFICATION;
2451         setup->sm_key_distribution_sent_set |=  SM_KEYDIST_FLAG_MASTER_IDENTIFICATION;
2452         uint8_t buffer[11];
2453         buffer[0] = SM_CODE_MASTER_IDENTIFICATION;
2454         little_endian_store_16(buffer, 1, setup->sm_local_ediv);
2455         reverse_64(setup->sm_local_rand, &buffer[3]);
2456         sm_send_connectionless(connection, (uint8_t*) buffer, sizeof(buffer));
2457         sm_timeout_reset(connection);
2458         return;
2459     }
2460     if (setup->sm_key_distribution_send_set &   SM_KEYDIST_FLAG_IDENTITY_INFORMATION){
2461         setup->sm_key_distribution_send_set &= ~SM_KEYDIST_FLAG_IDENTITY_INFORMATION;
2462         setup->sm_key_distribution_sent_set |=  SM_KEYDIST_FLAG_IDENTITY_INFORMATION;
2463         uint8_t buffer[17];
2464         buffer[0] = SM_CODE_IDENTITY_INFORMATION;
2465         reverse_128(sm_persistent_irk, &buffer[1]);
2466         sm_send_connectionless(connection, (uint8_t*) buffer, sizeof(buffer));
2467         sm_timeout_reset(connection);
2468         return;
2469     }
2470     if (setup->sm_key_distribution_send_set &   SM_KEYDIST_FLAG_IDENTITY_ADDRESS_INFORMATION){
2471         setup->sm_key_distribution_send_set &= ~SM_KEYDIST_FLAG_IDENTITY_ADDRESS_INFORMATION;
2472         setup->sm_key_distribution_sent_set |=  SM_KEYDIST_FLAG_IDENTITY_ADDRESS_INFORMATION;
2473         bd_addr_t local_address;
2474         uint8_t buffer[8];
2475         buffer[0] = SM_CODE_IDENTITY_ADDRESS_INFORMATION;
2476         switch (gap_random_address_get_mode()){
2477             case GAP_RANDOM_ADDRESS_TYPE_OFF:
2478             case GAP_RANDOM_ADDRESS_TYPE_STATIC:
2479                 // public or static random
2480                 gap_le_get_own_address(&buffer[1], local_address);
2481                 break;
2482             case GAP_RANDOM_ADDRESS_NON_RESOLVABLE:
2483             case GAP_RANDOM_ADDRESS_RESOLVABLE:
2484                 // fallback to public
2485                 gap_local_bd_addr(local_address);
2486                 buffer[1] = 0;
2487                 break;
2488             default:
2489                 btstack_assert(false);
2490                 break;
2491         }
2492         reverse_bd_addr(local_address, &buffer[2]);
2493         sm_send_connectionless(connection, (uint8_t*) buffer, sizeof(buffer));
2494         sm_timeout_reset(connection);
2495         return;
2496     }
2497     if (setup->sm_key_distribution_send_set &   SM_KEYDIST_FLAG_SIGNING_IDENTIFICATION){
2498         setup->sm_key_distribution_send_set &= ~SM_KEYDIST_FLAG_SIGNING_IDENTIFICATION;
2499         setup->sm_key_distribution_sent_set |=  SM_KEYDIST_FLAG_SIGNING_IDENTIFICATION;
2500 
2501 #ifdef ENABLE_LE_SIGNED_WRITE
2502         // hack to reproduce test runs
2503                     if (test_use_fixed_local_csrk){
2504                         memset(setup->sm_local_csrk, 0xcc, 16);
2505                     }
2506 
2507                     // store local CSRK
2508                     if (setup->sm_le_device_index >= 0){
2509                         log_info("sm: store local CSRK");
2510                         le_device_db_local_csrk_set(setup->sm_le_device_index, setup->sm_local_csrk);
2511                         le_device_db_local_counter_set(setup->sm_le_device_index, 0);
2512                     }
2513 #endif
2514 
2515         uint8_t buffer[17];
2516         buffer[0] = SM_CODE_SIGNING_INFORMATION;
2517         reverse_128(setup->sm_local_csrk, &buffer[1]);
2518         sm_send_connectionless(connection, (uint8_t*) buffer, sizeof(buffer));
2519         sm_timeout_reset(connection);
2520         return;
2521     }
2522     btstack_assert(false);
2523 }
2524 
2525 static bool sm_ctkd_from_le(sm_connection_t *sm_connection) {
2526 #ifdef ENABLE_CROSS_TRANSPORT_KEY_DERIVATION
2527     // requirements to derive link key from  LE:
2528     // - use secure connections
2529     if (setup->sm_use_secure_connections == 0) return false;
2530     // - bonding needs to be enabled:
2531     bool bonding_enabled = (sm_pairing_packet_get_auth_req(setup->sm_m_preq) & sm_pairing_packet_get_auth_req(setup->sm_s_pres) & SM_AUTHREQ_BONDING ) != 0u;
2532     if (!bonding_enabled) return false;
2533     // - need identity address / public addr
2534     bool have_identity_address_info = ((setup->sm_key_distribution_received_set & SM_KEYDIST_FLAG_IDENTITY_ADDRESS_INFORMATION) != 0) || (setup->sm_peer_addr_type == 0);
2535     if (!have_identity_address_info) return false;
2536     // - there is no stored BR/EDR link key or the derived key has at least the same level of authentication (bail if stored key has higher authentication)
2537     //   this requirement is motivated by BLURtooth paper. The paper recommends to not overwrite keys at all.
2538     //      If SC is authenticated, we consider it safe to overwrite a stored key.
2539     //      If stored link key is not authenticated, it could already be compromised by a MITM attack. Allowing overwrite by unauthenticated derived key does not make it worse.
2540     uint8_t link_key[16];
2541     link_key_type_t link_key_type;
2542     bool have_link_key             = gap_get_link_key_for_bd_addr(setup->sm_peer_address, link_key, &link_key_type);
2543     bool link_key_authenticated    = gap_authenticated_for_link_key_type(link_key_type);
2544     bool derived_key_authenticated = sm_connection->sm_connection_authenticated != 0;
2545     if (have_link_key && link_key_authenticated && !derived_key_authenticated) {
2546         return false;
2547     }
2548     // get started (all of the above are true)
2549     return true;
2550 #else
2551     UNUSED(sm_connection);
2552 	return false;
2553 #endif
2554 }
2555 
2556 static void sm_key_distribution_complete_responder(sm_connection_t * connection){
2557     if (sm_ctkd_from_le(connection)){
2558         bool use_h7 = (sm_pairing_packet_get_auth_req(setup->sm_m_preq) & sm_pairing_packet_get_auth_req(setup->sm_s_pres) & SM_AUTHREQ_CT2) != 0;
2559         connection->sm_engine_state = use_h7 ? SM_SC_W2_CALCULATE_ILK_USING_H7 : SM_SC_W2_CALCULATE_ILK_USING_H6;
2560     } else {
2561         connection->sm_engine_state = SM_RESPONDER_IDLE;
2562         sm_pairing_complete(connection, ERROR_CODE_SUCCESS, 0);
2563         sm_done_for_handle(connection->sm_handle);
2564     }
2565 }
2566 
2567 static void sm_key_distribution_complete_initiator(sm_connection_t * connection){
2568     if (sm_ctkd_from_le(connection)){
2569         bool use_h7 = (sm_pairing_packet_get_auth_req(setup->sm_m_preq) & sm_pairing_packet_get_auth_req(setup->sm_s_pres) & SM_AUTHREQ_CT2) != 0;
2570         connection->sm_engine_state = use_h7 ? SM_SC_W2_CALCULATE_ILK_USING_H7 : SM_SC_W2_CALCULATE_ILK_USING_H6;
2571     } else {
2572         sm_master_pairing_success(connection);
2573     }
2574 }
2575 
2576 static void sm_run(void){
2577 
2578     // assert that stack has already bootet
2579     if (hci_get_state() != HCI_STATE_WORKING) return;
2580 
2581     // assert that we can send at least commands
2582     if (!hci_can_send_command_packet_now()) return;
2583 
2584     // pause until IR/ER are ready
2585     if (sm_persistent_keys_random_active) return;
2586 
2587     bool done;
2588 
2589     //
2590     // non-connection related behaviour
2591     //
2592 
2593     done = sm_run_dpkg();
2594     if (done) return;
2595 
2596     done = sm_run_rau();
2597     if (done) return;
2598 
2599     done = sm_run_csrk();
2600     if (done) return;
2601 
2602     done = sm_run_oob();
2603     if (done) return;
2604 
2605     // assert that we can send at least commands - cmd might have been sent by crypto engine
2606     if (!hci_can_send_command_packet_now()) return;
2607 
2608     // handle basic actions that don't requires the full context
2609     done = sm_run_basic();
2610     if (done) return;
2611 
2612     //
2613     // active connection handling
2614     // -- use loop to handle next connection if lock on setup context is released
2615 
2616     while (true) {
2617 
2618         sm_run_activate_connection();
2619 
2620         if (sm_active_connection_handle == HCI_CON_HANDLE_INVALID) return;
2621 
2622         //
2623         // active connection handling
2624         //
2625 
2626         sm_connection_t * connection = sm_get_connection_for_handle(sm_active_connection_handle);
2627         if (!connection) {
2628             log_info("no connection for handle 0x%04x", sm_active_connection_handle);
2629             return;
2630         }
2631 
2632         // assert that we could send a SM PDU - not needed for all of the following
2633         if (!l2cap_can_send_fixed_channel_packet_now(sm_active_connection_handle, connection->sm_cid)) {
2634             log_info("cannot send now, requesting can send now event");
2635             l2cap_request_can_send_fix_channel_now_event(sm_active_connection_handle, connection->sm_cid);
2636             return;
2637         }
2638 
2639         // send keypress notifications
2640         if (setup->sm_keypress_notification){
2641             sm_run_send_keypress_notification(connection);
2642             return;
2643         }
2644 
2645 #ifdef ENABLE_LE_SECURE_CONNECTIONS
2646         // assert that sm cmac engine is ready
2647         if (sm_cmac_ready() == false){
2648             break;
2649         }
2650 #endif
2651 
2652         int key_distribution_flags;
2653         UNUSED(key_distribution_flags);
2654 #ifdef ENABLE_LE_PERIPHERAL
2655         int err;
2656         bool have_ltk;
2657         uint8_t ltk[16];
2658 #endif
2659 
2660         log_info("sm_run: state %u", connection->sm_engine_state);
2661         switch (connection->sm_engine_state){
2662 
2663             // secure connections, initiator + responding states
2664 #ifdef ENABLE_LE_SECURE_CONNECTIONS
2665             case SM_SC_W2_CMAC_FOR_CONFIRMATION:
2666                 connection->sm_engine_state = SM_SC_W4_CMAC_FOR_CONFIRMATION;
2667                 sm_sc_calculate_local_confirm(connection);
2668                 break;
2669             case SM_SC_W2_CMAC_FOR_CHECK_CONFIRMATION:
2670                 connection->sm_engine_state = SM_SC_W4_CMAC_FOR_CHECK_CONFIRMATION;
2671                 sm_sc_calculate_remote_confirm(connection);
2672                 break;
2673             case SM_SC_W2_CALCULATE_F6_FOR_DHKEY_CHECK:
2674                 connection->sm_engine_state = SM_SC_W4_CALCULATE_F6_FOR_DHKEY_CHECK;
2675                 sm_sc_calculate_f6_for_dhkey_check(connection);
2676                 break;
2677             case SM_SC_W2_CALCULATE_F6_TO_VERIFY_DHKEY_CHECK:
2678                 connection->sm_engine_state = SM_SC_W4_CALCULATE_F6_TO_VERIFY_DHKEY_CHECK;
2679                 sm_sc_calculate_f6_to_verify_dhkey_check(connection);
2680                 break;
2681             case SM_SC_W2_CALCULATE_F5_SALT:
2682                 connection->sm_engine_state = SM_SC_W4_CALCULATE_F5_SALT;
2683                 f5_calculate_salt(connection);
2684                 break;
2685             case SM_SC_W2_CALCULATE_F5_MACKEY:
2686                 connection->sm_engine_state = SM_SC_W4_CALCULATE_F5_MACKEY;
2687                 f5_calculate_mackey(connection);
2688                 break;
2689             case SM_SC_W2_CALCULATE_F5_LTK:
2690                 connection->sm_engine_state = SM_SC_W4_CALCULATE_F5_LTK;
2691                 f5_calculate_ltk(connection);
2692                 break;
2693             case SM_SC_W2_CALCULATE_G2:
2694                 connection->sm_engine_state = SM_SC_W4_CALCULATE_G2;
2695                 g2_calculate(connection);
2696                 break;
2697 #endif
2698 
2699 #ifdef ENABLE_LE_CENTRAL
2700             // initiator side
2701 
2702             case SM_INITIATOR_PH4_HAS_LTK: {
2703 				sm_reset_setup();
2704 				sm_load_security_info(connection);
2705                 sm_reencryption_started(connection);
2706 
2707                 sm_key_t peer_ltk_flipped;
2708                 reverse_128(setup->sm_peer_ltk, peer_ltk_flipped);
2709                 connection->sm_engine_state = SM_PH4_W4_CONNECTION_ENCRYPTED;
2710                 log_info("sm: hci_le_start_encryption ediv 0x%04x", setup->sm_peer_ediv);
2711                 uint32_t rand_high = big_endian_read_32(setup->sm_peer_rand, 0);
2712                 uint32_t rand_low  = big_endian_read_32(setup->sm_peer_rand, 4);
2713                 hci_send_cmd(&hci_le_start_encryption, connection->sm_handle,rand_low, rand_high, setup->sm_peer_ediv, peer_ltk_flipped);
2714                 return;
2715             }
2716 
2717 			case SM_INITIATOR_PH1_W2_SEND_PAIRING_REQUEST:
2718 				sm_reset_setup();
2719 				sm_init_setup(connection);
2720 				sm_timeout_start(connection);
2721 				sm_pairing_started(connection);
2722 
2723                 sm_pairing_packet_set_code(setup->sm_m_preq, SM_CODE_PAIRING_REQUEST);
2724                 connection->sm_engine_state = SM_INITIATOR_PH1_W4_PAIRING_RESPONSE;
2725                 sm_send_connectionless(connection, (uint8_t*) &setup->sm_m_preq, sizeof(sm_pairing_packet_t));
2726                 sm_timeout_reset(connection);
2727                 break;
2728 #endif
2729 
2730 #ifdef ENABLE_LE_SECURE_CONNECTIONS
2731 
2732             case SM_SC_SEND_PUBLIC_KEY_COMMAND: {
2733                 bool trigger_user_response   = false;
2734                 bool trigger_start_calculating_local_confirm = false;
2735                 uint8_t buffer[65];
2736                 buffer[0] = SM_CODE_PAIRING_PUBLIC_KEY;
2737                 //
2738                 reverse_256(&ec_q[0],  &buffer[1]);
2739                 reverse_256(&ec_q[32], &buffer[33]);
2740 
2741 #ifdef ENABLE_TESTING_SUPPORT
2742                 if (test_pairing_failure == SM_REASON_DHKEY_CHECK_FAILED){
2743                     log_info("testing_support: invalidating public key");
2744                     // flip single bit of public key coordinate
2745                     buffer[1] ^= 1;
2746                 }
2747 #endif
2748 
2749                 // stk generation method
2750                 // passkey entry: notify app to show passkey or to request passkey
2751                 switch (setup->sm_stk_generation_method){
2752                     case JUST_WORKS:
2753                     case NUMERIC_COMPARISON:
2754                         if (IS_RESPONDER(connection->sm_role)){
2755                             // responder
2756                             trigger_start_calculating_local_confirm = true;
2757                             connection->sm_engine_state = SM_SC_W4_LOCAL_NONCE;
2758                         } else {
2759                             // initiator
2760                             connection->sm_engine_state = SM_SC_W4_PUBLIC_KEY_COMMAND;
2761                         }
2762                         break;
2763                     case PK_INIT_INPUT:
2764                     case PK_RESP_INPUT:
2765                     case PK_BOTH_INPUT:
2766                         // use random TK for display
2767                         (void)memcpy(setup->sm_ra, setup->sm_tk, 16);
2768                         (void)memcpy(setup->sm_rb, setup->sm_tk, 16);
2769                         setup->sm_passkey_bit = 0;
2770 
2771                         if (IS_RESPONDER(connection->sm_role)){
2772                             // responder
2773                             connection->sm_engine_state = SM_SC_W4_CONFIRMATION;
2774                         } else {
2775                             // initiator
2776                             connection->sm_engine_state = SM_SC_W4_PUBLIC_KEY_COMMAND;
2777                         }
2778                         trigger_user_response = true;
2779                         break;
2780                     case OOB:
2781                         if (IS_RESPONDER(connection->sm_role)){
2782                             // responder
2783                             connection->sm_engine_state = SM_SC_W4_PAIRING_RANDOM;
2784                         } else {
2785                             // initiator
2786                             connection->sm_engine_state = SM_SC_W4_PUBLIC_KEY_COMMAND;
2787                         }
2788                         break;
2789                     default:
2790                         btstack_assert(false);
2791                         break;
2792                 }
2793 
2794                 sm_send_connectionless(connection, (uint8_t*) buffer, sizeof(buffer));
2795                 sm_timeout_reset(connection);
2796 
2797                 // trigger user response and calc confirm after sending pdu
2798                 if (trigger_user_response){
2799                     sm_trigger_user_response(connection);
2800                 }
2801                 if (trigger_start_calculating_local_confirm){
2802                     sm_sc_start_calculating_local_confirm(connection);
2803                 }
2804                 break;
2805             }
2806             case SM_SC_SEND_CONFIRMATION: {
2807                 uint8_t buffer[17];
2808                 buffer[0] = SM_CODE_PAIRING_CONFIRM;
2809                 reverse_128(setup->sm_local_confirm, &buffer[1]);
2810                 if (IS_RESPONDER(connection->sm_role)){
2811                     connection->sm_engine_state = SM_SC_W4_PAIRING_RANDOM;
2812                 } else {
2813                     connection->sm_engine_state = SM_SC_W4_CONFIRMATION;
2814                 }
2815                 sm_send_connectionless(connection, (uint8_t*) buffer, sizeof(buffer));
2816                 sm_timeout_reset(connection);
2817                 break;
2818             }
2819             case SM_SC_SEND_PAIRING_RANDOM: {
2820                 uint8_t buffer[17];
2821                 buffer[0] = SM_CODE_PAIRING_RANDOM;
2822                 reverse_128(setup->sm_local_nonce, &buffer[1]);
2823                 log_info("stk method %u, bit num: %u", setup->sm_stk_generation_method, setup->sm_passkey_bit);
2824                 if (sm_passkey_entry(setup->sm_stk_generation_method) && (setup->sm_passkey_bit < 20u)){
2825                     log_info("SM_SC_SEND_PAIRING_RANDOM A");
2826                     if (IS_RESPONDER(connection->sm_role)){
2827                         // responder
2828                         connection->sm_engine_state = SM_SC_W4_CONFIRMATION;
2829                     } else {
2830                         // initiator
2831                         connection->sm_engine_state = SM_SC_W4_PAIRING_RANDOM;
2832                     }
2833                 } else {
2834                     log_info("SM_SC_SEND_PAIRING_RANDOM B");
2835                     if (IS_RESPONDER(connection->sm_role)){
2836                         // responder
2837                         if (setup->sm_stk_generation_method == NUMERIC_COMPARISON){
2838                             log_info("SM_SC_SEND_PAIRING_RANDOM B1");
2839                             connection->sm_engine_state = SM_SC_W2_CALCULATE_G2;
2840                         } else {
2841                             log_info("SM_SC_SEND_PAIRING_RANDOM B2");
2842                             sm_sc_prepare_dhkey_check(connection);
2843                         }
2844                     } else {
2845                         // initiator
2846                         connection->sm_engine_state = SM_SC_W4_PAIRING_RANDOM;
2847                     }
2848                 }
2849                 sm_send_connectionless(connection, (uint8_t*) buffer, sizeof(buffer));
2850                 sm_timeout_reset(connection);
2851                 break;
2852             }
2853             case SM_SC_SEND_DHKEY_CHECK_COMMAND: {
2854                 uint8_t buffer[17];
2855                 buffer[0] = SM_CODE_PAIRING_DHKEY_CHECK;
2856                 reverse_128(setup->sm_local_dhkey_check, &buffer[1]);
2857 
2858                 if (IS_RESPONDER(connection->sm_role)){
2859                     connection->sm_engine_state = SM_SC_W4_LTK_REQUEST_SC;
2860                 } else {
2861                     connection->sm_engine_state = SM_SC_W4_DHKEY_CHECK_COMMAND;
2862                 }
2863 
2864                 sm_send_connectionless(connection, (uint8_t*) buffer, sizeof(buffer));
2865                 sm_timeout_reset(connection);
2866                 break;
2867             }
2868 
2869 #endif
2870 
2871 #ifdef ENABLE_LE_PERIPHERAL
2872 
2873 			case SM_RESPONDER_SEND_SECURITY_REQUEST: {
2874 				const uint8_t buffer[2] = {SM_CODE_SECURITY_REQUEST, sm_auth_req};
2875 				connection->sm_engine_state = SM_RESPONDER_PH1_W4_PAIRING_REQUEST;
2876 				sm_send_connectionless(connection,  (uint8_t *) buffer, sizeof(buffer));
2877 				sm_timeout_start(connection);
2878 				break;
2879 			}
2880 
2881 #ifdef ENABLE_LE_SECURE_CONNECTIONS
2882 			case SM_SC_RECEIVED_LTK_REQUEST:
2883 				switch (connection->sm_irk_lookup_state){
2884 					case IRK_LOOKUP_SUCCEEDED:
2885 						// assuming Secure Connection, we have a stored LTK and the EDIV/RAND are null
2886 						// start using context by loading security info
2887 						sm_reset_setup();
2888 						sm_load_security_info(connection);
2889 						if ((setup->sm_peer_ediv == 0u) && sm_is_null_random(setup->sm_peer_rand) && !sm_is_null_key(setup->sm_peer_ltk)){
2890 							(void)memcpy(setup->sm_ltk, setup->sm_peer_ltk, 16);
2891 							connection->sm_engine_state = SM_RESPONDER_PH4_SEND_LTK_REPLY;
2892                             sm_reencryption_started(connection);
2893                             sm_trigger_run();
2894 							break;
2895 						}
2896 						log_info("LTK Request: ediv & random are empty, but no stored LTK (IRK Lookup Succeeded)");
2897 						connection->sm_engine_state = SM_RESPONDER_IDLE;
2898 						hci_send_cmd(&hci_le_long_term_key_negative_reply, connection->sm_handle);
2899 						return;
2900 					default:
2901 						// just wait until IRK lookup is completed
2902 						break;
2903 				}
2904 				break;
2905 #endif /* ENABLE_LE_SECURE_CONNECTIONS */
2906 
2907 			case SM_RESPONDER_PH1_PAIRING_REQUEST_RECEIVED:
2908                 sm_reset_setup();
2909 
2910 			    // handle Pairing Request with LTK available
2911                 switch (connection->sm_irk_lookup_state) {
2912                     case IRK_LOOKUP_SUCCEEDED:
2913                         le_device_db_encryption_get(connection->sm_le_db_index, NULL, NULL, ltk, NULL, NULL, NULL, NULL);
2914                         have_ltk = !sm_is_null_key(ltk);
2915                         if (have_ltk){
2916                             log_info("pairing request but LTK available");
2917                             // emit re-encryption start/fail sequence
2918                             sm_reencryption_started(connection);
2919                             sm_reencryption_complete(connection, ERROR_CODE_PIN_OR_KEY_MISSING);
2920                         }
2921                         break;
2922                     default:
2923                         break;
2924                 }
2925 
2926 				sm_init_setup(connection);
2927                 sm_pairing_started(connection);
2928 
2929 				// recover pairing request
2930 				(void)memcpy(&setup->sm_m_preq, &connection->sm_m_preq, sizeof(sm_pairing_packet_t));
2931 				err = sm_stk_generation_init(connection);
2932 
2933 #ifdef ENABLE_TESTING_SUPPORT
2934 				if ((0 < test_pairing_failure) && (test_pairing_failure < SM_REASON_DHKEY_CHECK_FAILED)){
2935                         log_info("testing_support: respond with pairing failure %u", test_pairing_failure);
2936                         err = test_pairing_failure;
2937                     }
2938 #endif
2939 				if (err != 0){
2940                     sm_pairing_error(connection, err);
2941 					sm_trigger_run();
2942 					break;
2943 				}
2944 
2945 				sm_timeout_start(connection);
2946 
2947 				// generate random number first, if we need to show passkey, otherwise send response
2948 				if (setup->sm_stk_generation_method == PK_INIT_INPUT){
2949 					btstack_crypto_random_generate(&sm_crypto_random_request, sm_random_data, 8, &sm_handle_random_result_ph2_tk, (void *)(uintptr_t) connection->sm_handle);
2950 					break;
2951 				}
2952 
2953 				/* fall through */
2954 
2955             case SM_RESPONDER_PH1_SEND_PAIRING_RESPONSE:
2956                 sm_pairing_packet_set_code(setup->sm_s_pres,SM_CODE_PAIRING_RESPONSE);
2957 
2958                 // start with initiator key dist flags
2959                 key_distribution_flags = sm_key_distribution_flags_for_auth_req();
2960 
2961 #ifdef ENABLE_LE_SECURE_CONNECTIONS
2962                 // LTK (= encyrption information & master identification) only exchanged for LE Legacy Connection
2963                 if (setup->sm_use_secure_connections){
2964                     key_distribution_flags &= ~SM_KEYDIST_ENC_KEY;
2965                 }
2966 #endif
2967                 // setup in response
2968                 sm_pairing_packet_set_initiator_key_distribution(setup->sm_s_pres, sm_pairing_packet_get_initiator_key_distribution(setup->sm_m_preq) & key_distribution_flags);
2969                 sm_pairing_packet_set_responder_key_distribution(setup->sm_s_pres, sm_pairing_packet_get_responder_key_distribution(setup->sm_m_preq) & key_distribution_flags);
2970 
2971                 // update key distribution after ENC was dropped
2972                 sm_setup_key_distribution(sm_pairing_packet_get_responder_key_distribution(setup->sm_s_pres), sm_pairing_packet_get_initiator_key_distribution(setup->sm_s_pres));
2973 
2974                 if (setup->sm_use_secure_connections){
2975                     connection->sm_engine_state = SM_SC_W4_PUBLIC_KEY_COMMAND;
2976                 } else {
2977                     connection->sm_engine_state = SM_RESPONDER_PH1_W4_PAIRING_CONFIRM;
2978                 }
2979 
2980                 sm_send_connectionless(connection, (uint8_t*) &setup->sm_s_pres, sizeof(sm_pairing_packet_t));
2981                 sm_timeout_reset(connection);
2982                 // SC Numeric Comparison will trigger user response after public keys & nonces have been exchanged
2983                 if (!setup->sm_use_secure_connections || (setup->sm_stk_generation_method == JUST_WORKS)){
2984                     sm_trigger_user_response(connection);
2985                 }
2986                 return;
2987 #endif
2988 
2989             case SM_PH2_SEND_PAIRING_RANDOM: {
2990                 uint8_t buffer[17];
2991                 buffer[0] = SM_CODE_PAIRING_RANDOM;
2992                 reverse_128(setup->sm_local_random, &buffer[1]);
2993                 if (IS_RESPONDER(connection->sm_role)){
2994                     connection->sm_engine_state = SM_RESPONDER_PH2_W4_LTK_REQUEST;
2995                 } else {
2996                     connection->sm_engine_state = SM_INITIATOR_PH2_W4_PAIRING_RANDOM;
2997                 }
2998                 sm_send_connectionless(connection, (uint8_t*) buffer, sizeof(buffer));
2999                 sm_timeout_reset(connection);
3000                 break;
3001             }
3002 
3003             case SM_PH2_C1_GET_ENC_A:
3004                 // already busy?
3005                 if (sm_aes128_state == SM_AES128_ACTIVE) break;
3006                 // calculate confirm using aes128 engine - step 1
3007                 sm_c1_t1(setup->sm_local_random, (uint8_t*) &setup->sm_m_preq, (uint8_t*) &setup->sm_s_pres, setup->sm_m_addr_type, setup->sm_s_addr_type, sm_aes128_plaintext);
3008                 connection->sm_engine_state = SM_PH2_C1_W4_ENC_A;
3009                 sm_aes128_state = SM_AES128_ACTIVE;
3010                 btstack_crypto_aes128_encrypt(&sm_crypto_aes128_request, setup->sm_tk, sm_aes128_plaintext, sm_aes128_ciphertext, sm_handle_encryption_result_enc_a, (void *)(uintptr_t) connection->sm_handle);
3011                 break;
3012 
3013             case SM_PH2_C1_GET_ENC_C:
3014                 // already busy?
3015                 if (sm_aes128_state == SM_AES128_ACTIVE) break;
3016                 // calculate m_confirm using aes128 engine - step 1
3017                 sm_c1_t1(setup->sm_peer_random, (uint8_t*) &setup->sm_m_preq, (uint8_t*) &setup->sm_s_pres, setup->sm_m_addr_type, setup->sm_s_addr_type, sm_aes128_plaintext);
3018                 connection->sm_engine_state = SM_PH2_C1_W4_ENC_C;
3019                 sm_aes128_state = SM_AES128_ACTIVE;
3020                 btstack_crypto_aes128_encrypt(&sm_crypto_aes128_request, setup->sm_tk, sm_aes128_plaintext, sm_aes128_ciphertext, sm_handle_encryption_result_enc_c, (void *)(uintptr_t) connection->sm_handle);
3021                 break;
3022 
3023             case SM_PH2_CALC_STK:
3024                 // already busy?
3025                 if (sm_aes128_state == SM_AES128_ACTIVE) break;
3026                 // calculate STK
3027                 if (IS_RESPONDER(connection->sm_role)){
3028                     sm_s1_r_prime(setup->sm_local_random, setup->sm_peer_random, sm_aes128_plaintext);
3029                 } else {
3030                     sm_s1_r_prime(setup->sm_peer_random, setup->sm_local_random, sm_aes128_plaintext);
3031                 }
3032                 connection->sm_engine_state = SM_PH2_W4_STK;
3033                 sm_aes128_state = SM_AES128_ACTIVE;
3034                 btstack_crypto_aes128_encrypt(&sm_crypto_aes128_request, setup->sm_tk, sm_aes128_plaintext, setup->sm_ltk, sm_handle_encryption_result_enc_stk, (void *)(uintptr_t) connection->sm_handle);
3035                 break;
3036 
3037             case SM_PH3_Y_GET_ENC:
3038                 // already busy?
3039                 if (sm_aes128_state == SM_AES128_ACTIVE) break;
3040                 // PH3B2 - calculate Y from      - enc
3041 
3042                 // dm helper (was sm_dm_r_prime)
3043                 // r' = padding || r
3044                 // r - 64 bit value
3045                 memset(&sm_aes128_plaintext[0], 0, 8);
3046                 (void)memcpy(&sm_aes128_plaintext[8], setup->sm_local_rand, 8);
3047 
3048                 // Y = dm(DHK, Rand)
3049                 connection->sm_engine_state = SM_PH3_Y_W4_ENC;
3050                 sm_aes128_state = SM_AES128_ACTIVE;
3051                 btstack_crypto_aes128_encrypt(&sm_crypto_aes128_request, sm_persistent_dhk, sm_aes128_plaintext, sm_aes128_ciphertext, sm_handle_encryption_result_enc_ph3_y, (void *)(uintptr_t) connection->sm_handle);
3052                 break;
3053 
3054             case SM_PH2_C1_SEND_PAIRING_CONFIRM: {
3055                 uint8_t buffer[17];
3056                 buffer[0] = SM_CODE_PAIRING_CONFIRM;
3057                 reverse_128(setup->sm_local_confirm, &buffer[1]);
3058                 if (IS_RESPONDER(connection->sm_role)){
3059                     connection->sm_engine_state = SM_RESPONDER_PH2_W4_PAIRING_RANDOM;
3060                 } else {
3061                     connection->sm_engine_state = SM_INITIATOR_PH2_W4_PAIRING_CONFIRM;
3062                 }
3063                 sm_send_connectionless(connection, (uint8_t*) buffer, sizeof(buffer));
3064                 sm_timeout_reset(connection);
3065                 return;
3066             }
3067 #ifdef ENABLE_LE_PERIPHERAL
3068             case SM_RESPONDER_PH2_SEND_LTK_REPLY: {
3069                 sm_key_t stk_flipped;
3070                 reverse_128(setup->sm_ltk, stk_flipped);
3071                 connection->sm_engine_state = SM_PH2_W4_CONNECTION_ENCRYPTED;
3072                 hci_send_cmd(&hci_le_long_term_key_request_reply, connection->sm_handle, stk_flipped);
3073                 return;
3074             }
3075             case SM_RESPONDER_PH4_SEND_LTK_REPLY: {
3076                 // allow to override LTK
3077                 if (sm_get_ltk_callback != NULL){
3078                     (void)(*sm_get_ltk_callback)(connection->sm_handle, connection->sm_peer_addr_type, connection->sm_peer_address, setup->sm_ltk);
3079                 }
3080                 sm_key_t ltk_flipped;
3081                 reverse_128(setup->sm_ltk, ltk_flipped);
3082                 connection->sm_engine_state = SM_PH4_W4_CONNECTION_ENCRYPTED;
3083                 hci_send_cmd(&hci_le_long_term_key_request_reply, connection->sm_handle, ltk_flipped);
3084                 return;
3085             }
3086 
3087 			case SM_RESPONDER_PH0_RECEIVED_LTK_REQUEST:
3088                 // already busy?
3089                 if (sm_aes128_state == SM_AES128_ACTIVE) break;
3090                 log_info("LTK Request: recalculating with ediv 0x%04x", setup->sm_local_ediv);
3091 
3092 				sm_reset_setup();
3093 				sm_start_calculating_ltk_from_ediv_and_rand(connection);
3094 
3095 				sm_reencryption_started(connection);
3096 
3097                 // dm helper (was sm_dm_r_prime)
3098                 // r' = padding || r
3099                 // r - 64 bit value
3100                 memset(&sm_aes128_plaintext[0], 0, 8);
3101                 (void)memcpy(&sm_aes128_plaintext[8], setup->sm_local_rand, 8);
3102 
3103                 // Y = dm(DHK, Rand)
3104                 connection->sm_engine_state = SM_RESPONDER_PH4_Y_W4_ENC;
3105                 sm_aes128_state = SM_AES128_ACTIVE;
3106                 btstack_crypto_aes128_encrypt(&sm_crypto_aes128_request, sm_persistent_dhk, sm_aes128_plaintext, sm_aes128_ciphertext, sm_handle_encryption_result_enc_ph4_y, (void *)(uintptr_t) connection->sm_handle);
3107                 return;
3108 #endif
3109 #ifdef ENABLE_LE_CENTRAL
3110             case SM_INITIATOR_PH3_SEND_START_ENCRYPTION: {
3111                 sm_key_t stk_flipped;
3112                 reverse_128(setup->sm_ltk, stk_flipped);
3113                 connection->sm_engine_state = SM_PH2_W4_CONNECTION_ENCRYPTED;
3114                 hci_send_cmd(&hci_le_start_encryption, connection->sm_handle, 0, 0, 0, stk_flipped);
3115                 return;
3116             }
3117 #endif
3118 
3119             case SM_PH3_DISTRIBUTE_KEYS:
3120                 // send next key
3121                 if (setup->sm_key_distribution_send_set != 0){
3122                     sm_run_distribute_keys(connection);
3123                 }
3124 
3125                 // more to send?
3126                 if (setup->sm_key_distribution_send_set != 0){
3127                     return;
3128                 }
3129 
3130                 // keys are sent
3131                 if (IS_RESPONDER(connection->sm_role)){
3132                     // slave -> receive master keys if any
3133                     if (sm_key_distribution_all_received()){
3134                         sm_key_distribution_handle_all_received(connection);
3135                         sm_key_distribution_complete_responder(connection);
3136                         // start CTKD right away
3137                         continue;
3138                     } else {
3139                         connection->sm_engine_state = SM_PH3_RECEIVE_KEYS;
3140                     }
3141                 } else {
3142                     sm_master_pairing_success(connection);
3143                 }
3144                 break;
3145 
3146 #ifdef ENABLE_CROSS_TRANSPORT_KEY_DERIVATION
3147             case SM_BR_EDR_INITIATOR_SEND_PAIRING_REQUEST:
3148                 // fill in sm setup (lite version of sm_init_setup)
3149                 sm_reset_setup();
3150                 setup->sm_peer_addr_type = connection->sm_peer_addr_type;
3151                 setup->sm_m_addr_type = connection->sm_peer_addr_type;
3152                 setup->sm_s_addr_type = connection->sm_own_addr_type;
3153                 (void) memcpy(setup->sm_peer_address, connection->sm_peer_address, 6);
3154                 (void) memcpy(setup->sm_m_address, connection->sm_peer_address, 6);
3155                 (void) memcpy(setup->sm_s_address, connection->sm_own_address, 6);
3156                 setup->sm_use_secure_connections = true;
3157                 sm_ctkd_fetch_br_edr_link_key(connection);
3158 
3159                 // Enc Key and IRK if requested
3160                 key_distribution_flags = SM_KEYDIST_ID_KEY | SM_KEYDIST_ENC_KEY;
3161 #ifdef ENABLE_LE_SIGNED_WRITE
3162                 // Plus signing key if supported
3163                 key_distribution_flags |= SM_KEYDIST_ID_KEY;
3164 #endif
3165                 sm_pairing_packet_set_code(setup->sm_m_preq, SM_CODE_PAIRING_REQUEST);
3166                 sm_pairing_packet_set_io_capability(setup->sm_m_preq, 0);
3167                 sm_pairing_packet_set_oob_data_flag(setup->sm_m_preq, 0);
3168                 sm_pairing_packet_set_auth_req(setup->sm_m_preq, SM_AUTHREQ_CT2);
3169                 sm_pairing_packet_set_max_encryption_key_size(setup->sm_m_preq, sm_max_encryption_key_size);
3170                 sm_pairing_packet_set_initiator_key_distribution(setup->sm_m_preq, key_distribution_flags);
3171                 sm_pairing_packet_set_responder_key_distribution(setup->sm_m_preq, key_distribution_flags);
3172 
3173                 // set state and send pairing response
3174                 sm_timeout_start(connection);
3175                 connection->sm_engine_state = SM_BR_EDR_INITIATOR_W4_PAIRING_RESPONSE;
3176                 sm_send_connectionless(connection, (uint8_t *) &setup->sm_m_preq, sizeof(sm_pairing_packet_t));
3177                 break;
3178 
3179             case SM_BR_EDR_RESPONDER_PAIRING_REQUEST_RECEIVED:
3180                 // fill in sm setup (lite version of sm_init_setup)
3181                 sm_reset_setup();
3182                 setup->sm_peer_addr_type = connection->sm_peer_addr_type;
3183                 setup->sm_m_addr_type = connection->sm_peer_addr_type;
3184                 setup->sm_s_addr_type = connection->sm_own_addr_type;
3185                 (void) memcpy(setup->sm_peer_address, connection->sm_peer_address, 6);
3186                 (void) memcpy(setup->sm_m_address, connection->sm_peer_address, 6);
3187                 (void) memcpy(setup->sm_s_address, connection->sm_own_address, 6);
3188                 setup->sm_use_secure_connections = true;
3189                 sm_ctkd_fetch_br_edr_link_key(connection);
3190                 (void) memcpy(&setup->sm_m_preq, &connection->sm_m_preq, sizeof(sm_pairing_packet_t));
3191 
3192                 // Enc Key and IRK if requested
3193                 key_distribution_flags = SM_KEYDIST_ID_KEY | SM_KEYDIST_ENC_KEY;
3194 #ifdef ENABLE_LE_SIGNED_WRITE
3195                 // Plus signing key if supported
3196                 key_distribution_flags |= SM_KEYDIST_ID_KEY;
3197 #endif
3198                 // drop flags not requested by initiator
3199                 key_distribution_flags &= sm_pairing_packet_get_initiator_key_distribution(connection->sm_m_preq);
3200 
3201                 // If Secure Connections pairing has been initiated over BR/EDR, the following fields of the SM Pairing Request PDU are reserved for future use:
3202                 // - the IO Capability field,
3203                 // - the OOB data flag field, and
3204                 // - all bits in the Auth Req field except the CT2 bit.
3205                 sm_pairing_packet_set_code(setup->sm_s_pres, SM_CODE_PAIRING_RESPONSE);
3206                 sm_pairing_packet_set_io_capability(setup->sm_s_pres, 0);
3207                 sm_pairing_packet_set_oob_data_flag(setup->sm_s_pres, 0);
3208                 sm_pairing_packet_set_auth_req(setup->sm_s_pres, SM_AUTHREQ_CT2);
3209                 sm_pairing_packet_set_max_encryption_key_size(setup->sm_s_pres, connection->sm_actual_encryption_key_size);
3210                 sm_pairing_packet_set_initiator_key_distribution(setup->sm_s_pres, key_distribution_flags);
3211                 sm_pairing_packet_set_responder_key_distribution(setup->sm_s_pres, key_distribution_flags);
3212 
3213                 // configure key distribution, LTK is derived locally
3214                 key_distribution_flags &= ~SM_KEYDIST_ENC_KEY;
3215                 sm_setup_key_distribution(key_distribution_flags, key_distribution_flags);
3216 
3217                 // set state and send pairing response
3218                 sm_timeout_start(connection);
3219                 connection->sm_engine_state = SM_BR_EDR_DISTRIBUTE_KEYS;
3220                 sm_send_connectionless(connection, (uint8_t *) &setup->sm_s_pres, sizeof(sm_pairing_packet_t));
3221                 break;
3222             case SM_BR_EDR_DISTRIBUTE_KEYS:
3223                 if (setup->sm_key_distribution_send_set != 0) {
3224                     sm_run_distribute_keys(connection);
3225                     return;
3226                 }
3227                 // keys are sent
3228                 if (IS_RESPONDER(connection->sm_role)) {
3229                     // responder -> receive master keys if there are any
3230                     if (!sm_key_distribution_all_received()){
3231                         connection->sm_engine_state = SM_BR_EDR_RECEIVE_KEYS;
3232                         break;
3233                     }
3234                 }
3235                 // otherwise start CTKD right away (responder and no keys to receive / initiator)
3236                 sm_ctkd_start_from_br_edr(connection);
3237                 continue;
3238             case SM_SC_W2_CALCULATE_ILK_USING_H6:
3239                 if (!sm_cmac_ready()) break;
3240                 connection->sm_engine_state = SM_SC_W4_CALCULATE_ILK;
3241                 h6_calculate_ilk_from_le_ltk(connection);
3242                 break;
3243             case SM_SC_W2_CALCULATE_BR_EDR_LINK_KEY:
3244                 if (!sm_cmac_ready()) break;
3245                 connection->sm_engine_state = SM_SC_W4_CALCULATE_BR_EDR_LINK_KEY;
3246                 h6_calculate_br_edr_link_key(connection);
3247                 break;
3248             case SM_SC_W2_CALCULATE_ILK_USING_H7:
3249                 if (!sm_cmac_ready()) break;
3250                 connection->sm_engine_state = SM_SC_W4_CALCULATE_ILK;
3251                 h7_calculate_ilk_from_le_ltk(connection);
3252                 break;
3253             case SM_BR_EDR_W2_CALCULATE_ILK_USING_H6:
3254                 if (!sm_cmac_ready()) break;
3255                 connection->sm_engine_state = SM_BR_EDR_W4_CALCULATE_ILK;
3256                 h6_calculate_ilk_from_br_edr(connection);
3257                 break;
3258             case SM_BR_EDR_W2_CALCULATE_LE_LTK:
3259                 if (!sm_cmac_ready()) break;
3260                 connection->sm_engine_state = SM_BR_EDR_W4_CALCULATE_LE_LTK;
3261                 h6_calculate_le_ltk(connection);
3262                 break;
3263             case SM_BR_EDR_W2_CALCULATE_ILK_USING_H7:
3264                 if (!sm_cmac_ready()) break;
3265                 connection->sm_engine_state = SM_BR_EDR_W4_CALCULATE_ILK;
3266                 h7_calculate_ilk_from_br_edr(connection);
3267                 break;
3268 #endif
3269 
3270             default:
3271                 break;
3272         }
3273 
3274         // check again if active connection was released
3275         if (sm_active_connection_handle != HCI_CON_HANDLE_INVALID) break;
3276     }
3277 }
3278 
3279 // sm_aes128_state stays active
3280 static void sm_handle_encryption_result_enc_a(void *arg){
3281     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
3282     sm_aes128_state = SM_AES128_IDLE;
3283 
3284     sm_connection_t * connection = sm_get_connection_for_handle(con_handle);
3285     if (connection == NULL) return;
3286 
3287     sm_c1_t3(sm_aes128_ciphertext, setup->sm_m_address, setup->sm_s_address, setup->sm_c1_t3_value);
3288     sm_aes128_state = SM_AES128_ACTIVE;
3289     btstack_crypto_aes128_encrypt(&sm_crypto_aes128_request, setup->sm_tk, setup->sm_c1_t3_value, setup->sm_local_confirm, sm_handle_encryption_result_enc_b, (void *)(uintptr_t) connection->sm_handle);
3290 }
3291 
3292 static void sm_handle_encryption_result_enc_b(void *arg){
3293     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
3294     sm_aes128_state = SM_AES128_IDLE;
3295 
3296     sm_connection_t * connection = sm_get_connection_for_handle(con_handle);
3297     if (connection == NULL) return;
3298 
3299     log_info_key("c1!", setup->sm_local_confirm);
3300     connection->sm_engine_state = SM_PH2_C1_SEND_PAIRING_CONFIRM;
3301     sm_trigger_run();
3302 }
3303 
3304 // sm_aes128_state stays active
3305 static void sm_handle_encryption_result_enc_c(void *arg){
3306     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
3307     sm_aes128_state = SM_AES128_IDLE;
3308 
3309     sm_connection_t * connection = sm_get_connection_for_handle(con_handle);
3310     if (connection == NULL) return;
3311 
3312     sm_c1_t3(sm_aes128_ciphertext, setup->sm_m_address, setup->sm_s_address, setup->sm_c1_t3_value);
3313     sm_aes128_state = SM_AES128_ACTIVE;
3314     btstack_crypto_aes128_encrypt(&sm_crypto_aes128_request, setup->sm_tk, setup->sm_c1_t3_value, sm_aes128_ciphertext, sm_handle_encryption_result_enc_d, (void *)(uintptr_t) connection->sm_handle);
3315 }
3316 
3317 static void sm_handle_encryption_result_enc_d(void * arg){
3318     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
3319     sm_aes128_state = SM_AES128_IDLE;
3320 
3321     sm_connection_t * connection = sm_get_connection_for_handle(con_handle);
3322     if (connection == NULL) return;
3323 
3324     log_info_key("c1!", sm_aes128_ciphertext);
3325     if (memcmp(setup->sm_peer_confirm, sm_aes128_ciphertext, 16) != 0){
3326         sm_pairing_error(connection, SM_REASON_CONFIRM_VALUE_FAILED);
3327         sm_trigger_run();
3328         return;
3329     }
3330     if (IS_RESPONDER(connection->sm_role)){
3331         connection->sm_engine_state = SM_PH2_SEND_PAIRING_RANDOM;
3332         sm_trigger_run();
3333     } else {
3334         sm_s1_r_prime(setup->sm_peer_random, setup->sm_local_random, sm_aes128_plaintext);
3335         sm_aes128_state = SM_AES128_ACTIVE;
3336         btstack_crypto_aes128_encrypt(&sm_crypto_aes128_request, setup->sm_tk, sm_aes128_plaintext, setup->sm_ltk, sm_handle_encryption_result_enc_stk, (void *)(uintptr_t) connection->sm_handle);
3337     }
3338 }
3339 
3340 static void sm_handle_encryption_result_enc_stk(void *arg){
3341     sm_aes128_state = SM_AES128_IDLE;
3342     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
3343 
3344     sm_connection_t * connection = sm_get_connection_for_handle(con_handle);
3345     if (connection == NULL) return;
3346 
3347     sm_truncate_key(setup->sm_ltk, connection->sm_actual_encryption_key_size);
3348     log_info_key("stk", setup->sm_ltk);
3349     if (IS_RESPONDER(connection->sm_role)){
3350         connection->sm_engine_state = SM_RESPONDER_PH2_SEND_LTK_REPLY;
3351     } else {
3352         connection->sm_engine_state = SM_INITIATOR_PH3_SEND_START_ENCRYPTION;
3353     }
3354     sm_trigger_run();
3355 }
3356 
3357 // sm_aes128_state stays active
3358 static void sm_handle_encryption_result_enc_ph3_y(void *arg){
3359     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
3360     sm_aes128_state = SM_AES128_IDLE;
3361 
3362     sm_connection_t * connection = sm_get_connection_for_handle(con_handle);
3363     if (connection == NULL) return;
3364 
3365     setup->sm_local_y = big_endian_read_16(sm_aes128_ciphertext, 14);
3366     log_info_hex16("y", setup->sm_local_y);
3367     // PH3B3 - calculate EDIV
3368     setup->sm_local_ediv = setup->sm_local_y ^ setup->sm_local_div;
3369     log_info_hex16("ediv", setup->sm_local_ediv);
3370     // PH3B4 - calculate LTK         - enc
3371     // LTK = d1(ER, DIV, 0))
3372     sm_d1_d_prime(setup->sm_local_div, 0, sm_aes128_plaintext);
3373     sm_aes128_state = SM_AES128_ACTIVE;
3374     btstack_crypto_aes128_encrypt(&sm_crypto_aes128_request, sm_persistent_er, sm_aes128_plaintext, setup->sm_ltk, sm_handle_encryption_result_enc_ph3_ltk, (void *)(uintptr_t) connection->sm_handle);
3375 }
3376 
3377 #ifdef ENABLE_LE_PERIPHERAL
3378 // sm_aes128_state stays active
3379 static void sm_handle_encryption_result_enc_ph4_y(void *arg){
3380     sm_aes128_state = SM_AES128_IDLE;
3381     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
3382 
3383     sm_connection_t * connection = sm_get_connection_for_handle(con_handle);
3384     if (connection == NULL) return;
3385 
3386     setup->sm_local_y = big_endian_read_16(sm_aes128_ciphertext, 14);
3387     log_info_hex16("y", setup->sm_local_y);
3388 
3389     // PH3B3 - calculate DIV
3390     setup->sm_local_div = setup->sm_local_y ^ setup->sm_local_ediv;
3391     log_info_hex16("ediv", setup->sm_local_ediv);
3392     // PH3B4 - calculate LTK         - enc
3393     // LTK = d1(ER, DIV, 0))
3394     sm_d1_d_prime(setup->sm_local_div, 0, sm_aes128_plaintext);
3395     sm_aes128_state = SM_AES128_ACTIVE;
3396     btstack_crypto_aes128_encrypt(&sm_crypto_aes128_request, sm_persistent_er, sm_aes128_plaintext, setup->sm_ltk, sm_handle_encryption_result_enc_ph4_ltk, (void *)(uintptr_t) connection->sm_handle);
3397 }
3398 #endif
3399 
3400 // sm_aes128_state stays active
3401 static void sm_handle_encryption_result_enc_ph3_ltk(void *arg){
3402     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
3403     sm_aes128_state = SM_AES128_IDLE;
3404 
3405     sm_connection_t * connection = sm_get_connection_for_handle(con_handle);
3406     if (connection == NULL) return;
3407 
3408     log_info_key("ltk", setup->sm_ltk);
3409     // calc CSRK next
3410     sm_d1_d_prime(setup->sm_local_div, 1, sm_aes128_plaintext);
3411     sm_aes128_state = SM_AES128_ACTIVE;
3412     btstack_crypto_aes128_encrypt(&sm_crypto_aes128_request, sm_persistent_er, sm_aes128_plaintext, setup->sm_local_csrk, sm_handle_encryption_result_enc_csrk, (void *)(uintptr_t) connection->sm_handle);
3413 }
3414 
3415 static void sm_handle_encryption_result_enc_csrk(void *arg){
3416     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
3417     sm_aes128_state = SM_AES128_IDLE;
3418 
3419     sm_connection_t * connection = sm_get_connection_for_handle(con_handle);
3420     if (connection == NULL) return;
3421 
3422     sm_aes128_state = SM_AES128_IDLE;
3423     log_info_key("csrk", setup->sm_local_csrk);
3424     if (setup->sm_key_distribution_send_set){
3425         connection->sm_engine_state = SM_PH3_DISTRIBUTE_KEYS;
3426     } else {
3427         // no keys to send, just continue
3428         if (IS_RESPONDER(connection->sm_role)){
3429             if (sm_key_distribution_all_received()){
3430                 sm_key_distribution_handle_all_received(connection);
3431                 sm_key_distribution_complete_responder(connection);
3432             } else {
3433                 // slave -> receive master keys
3434                 connection->sm_engine_state = SM_PH3_RECEIVE_KEYS;
3435             }
3436         } else {
3437             sm_key_distribution_complete_initiator(connection);
3438         }
3439     }
3440     sm_trigger_run();
3441 }
3442 
3443 #ifdef ENABLE_LE_PERIPHERAL
3444 static void sm_handle_encryption_result_enc_ph4_ltk(void *arg){
3445     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
3446     sm_aes128_state = SM_AES128_IDLE;
3447 
3448     sm_connection_t * connection = sm_get_connection_for_handle(con_handle);
3449     if (connection == NULL) return;
3450 
3451     sm_truncate_key(setup->sm_ltk, connection->sm_actual_encryption_key_size);
3452     log_info_key("ltk", setup->sm_ltk);
3453     connection->sm_engine_state = SM_RESPONDER_PH4_SEND_LTK_REPLY;
3454     sm_trigger_run();
3455 }
3456 #endif
3457 
3458 static void sm_handle_encryption_result_address_resolution(void *arg){
3459     UNUSED(arg);
3460     sm_aes128_state = SM_AES128_IDLE;
3461 
3462     sm_address_resolution_ah_calculation_active = 0;
3463     // compare calulated address against connecting device
3464     uint8_t * hash = &sm_aes128_ciphertext[13];
3465     if (memcmp(&sm_address_resolution_address[3], hash, 3) == 0){
3466         log_info("LE Device Lookup: matched resolvable private address");
3467         sm_address_resolution_handle_event(ADDRESS_RESOLUTION_SUCCEEDED);
3468         sm_trigger_run();
3469         return;
3470     }
3471     // no match, try next
3472     sm_address_resolution_test++;
3473     sm_trigger_run();
3474 }
3475 
3476 static void sm_handle_encryption_result_dkg_irk(void *arg){
3477     UNUSED(arg);
3478     sm_aes128_state = SM_AES128_IDLE;
3479 
3480     log_info_key("irk", sm_persistent_irk);
3481     dkg_state = DKG_CALC_DHK;
3482     sm_trigger_run();
3483 }
3484 
3485 static void sm_handle_encryption_result_dkg_dhk(void *arg){
3486     UNUSED(arg);
3487     sm_aes128_state = SM_AES128_IDLE;
3488 
3489     log_info_key("dhk", sm_persistent_dhk);
3490     dkg_state = DKG_READY;
3491     sm_trigger_run();
3492 }
3493 
3494 static void sm_handle_encryption_result_rau(void *arg){
3495     UNUSED(arg);
3496     sm_aes128_state = SM_AES128_IDLE;
3497 
3498     (void)memcpy(&sm_random_address[3], &sm_aes128_ciphertext[13], 3);
3499     rau_state = RAU_IDLE;
3500     hci_le_random_address_set(sm_random_address);
3501 
3502     sm_trigger_run();
3503 }
3504 
3505 static void sm_handle_random_result_rau(void * arg){
3506     UNUSED(arg);
3507     // non-resolvable vs. resolvable
3508     switch (gap_random_adress_type){
3509         case GAP_RANDOM_ADDRESS_RESOLVABLE:
3510             // resolvable: use random as prand and calc address hash
3511             // "The two most significant bits of prand shall be equal to ‘0’ and ‘1"
3512             sm_random_address[0u] &= 0x3fu;
3513             sm_random_address[0u] |= 0x40u;
3514             rau_state = RAU_GET_ENC;
3515             break;
3516         case GAP_RANDOM_ADDRESS_NON_RESOLVABLE:
3517         default:
3518             // "The two most significant bits of the address shall be equal to ‘0’""
3519             sm_random_address[0u] &= 0x3fu;
3520             rau_state = RAU_IDLE;
3521             hci_le_random_address_set(sm_random_address);
3522             break;
3523     }
3524     sm_trigger_run();
3525 }
3526 
3527 #ifdef ENABLE_LE_SECURE_CONNECTIONS
3528 static void sm_handle_random_result_sc_next_send_pairing_random(void * arg){
3529     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
3530     sm_connection_t * connection = sm_get_connection_for_handle(con_handle);
3531     if (connection == NULL) return;
3532 
3533     connection->sm_engine_state = SM_SC_SEND_PAIRING_RANDOM;
3534     sm_trigger_run();
3535 }
3536 
3537 static void sm_handle_random_result_sc_next_w2_cmac_for_confirmation(void * arg){
3538     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
3539     sm_connection_t * connection = sm_get_connection_for_handle(con_handle);
3540     if (connection == NULL) return;
3541 
3542     connection->sm_engine_state = SM_SC_W2_CMAC_FOR_CONFIRMATION;
3543     sm_trigger_run();
3544 }
3545 #endif
3546 
3547 static void sm_handle_random_result_ph2_random(void * arg){
3548     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
3549     sm_connection_t * connection = sm_get_connection_for_handle(con_handle);
3550     if (connection == NULL) return;
3551 
3552     connection->sm_engine_state = SM_PH2_C1_GET_ENC_A;
3553     sm_trigger_run();
3554 }
3555 
3556 static void sm_handle_random_result_ph2_tk(void * arg){
3557     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
3558     sm_connection_t * connection = sm_get_connection_for_handle(con_handle);
3559     if (connection == NULL) return;
3560 
3561     sm_reset_tk();
3562     uint32_t tk;
3563     if (sm_fixed_passkey_in_display_role == 0xffffffffU){
3564         // map random to 0-999999 without speding much cycles on a modulus operation
3565         tk = little_endian_read_32(sm_random_data,0);
3566         tk = tk & 0xfffff;  // 1048575
3567         if (tk >= 999999u){
3568             tk = tk - 999999u;
3569         }
3570     } else {
3571         // override with pre-defined passkey
3572         tk = sm_fixed_passkey_in_display_role;
3573     }
3574     big_endian_store_32(setup->sm_tk, 12, tk);
3575     if (IS_RESPONDER(connection->sm_role)){
3576         connection->sm_engine_state = SM_RESPONDER_PH1_SEND_PAIRING_RESPONSE;
3577     } else {
3578         if (setup->sm_use_secure_connections){
3579             connection->sm_engine_state = SM_SC_SEND_PUBLIC_KEY_COMMAND;
3580         } else {
3581             connection->sm_engine_state = SM_PH1_W4_USER_RESPONSE;
3582             sm_trigger_user_response(connection);
3583             // response_idle == nothing <--> sm_trigger_user_response() did not require response
3584             if (setup->sm_user_response == SM_USER_RESPONSE_IDLE){
3585                 btstack_crypto_random_generate(&sm_crypto_random_request, setup->sm_local_random, 16, &sm_handle_random_result_ph2_random, (void *)(uintptr_t) connection->sm_handle);
3586             }
3587         }
3588     }
3589     sm_trigger_run();
3590 }
3591 
3592 static void sm_handle_random_result_ph3_div(void * arg){
3593     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
3594     sm_connection_t * connection = sm_get_connection_for_handle(con_handle);
3595     if (connection == NULL) return;
3596 
3597     // use 16 bit from random value as div
3598     setup->sm_local_div = big_endian_read_16(sm_random_data, 0);
3599     log_info_hex16("div", setup->sm_local_div);
3600     connection->sm_engine_state = SM_PH3_Y_GET_ENC;
3601     sm_trigger_run();
3602 }
3603 
3604 static void sm_handle_random_result_ph3_random(void * arg){
3605     hci_con_handle_t con_handle = (hci_con_handle_t) (uintptr_t) arg;
3606     sm_connection_t * connection = sm_get_connection_for_handle(con_handle);
3607     if (connection == NULL) return;
3608 
3609     reverse_64(sm_random_data, setup->sm_local_rand);
3610     // no db for encryption size hack: encryption size is stored in lowest nibble of setup->sm_local_rand
3611     setup->sm_local_rand[7u] = (setup->sm_local_rand[7u] & 0xf0u) + (connection->sm_actual_encryption_key_size - 1u);
3612     // no db for authenticated flag hack: store flag in bit 4 of LSB
3613     setup->sm_local_rand[7u] = (setup->sm_local_rand[7u] & 0xefu) + (connection->sm_connection_authenticated << 4u);
3614     btstack_crypto_random_generate(&sm_crypto_random_request, sm_random_data, 2, &sm_handle_random_result_ph3_div, (void *)(uintptr_t) connection->sm_handle);
3615 }
3616 static void sm_validate_er_ir(void){
3617     // warn about default ER/IR
3618     bool warning = false;
3619     if (sm_ir_is_default()){
3620         warning = true;
3621         log_error("Persistent IR not set with sm_set_ir. Use of private addresses will cause pairing issues");
3622     }
3623     if (sm_er_is_default()){
3624         warning = true;
3625         log_error("Persistent ER not set with sm_set_er. Legacy Pairing LTK is not secure");
3626     }
3627     if (warning) {
3628         log_error("Please configure btstack_tlv to let BTstack setup ER and IR keys");
3629     }
3630 }
3631 
3632 static void sm_handle_random_result_ir(void *arg){
3633     sm_persistent_keys_random_active = false;
3634     if (arg != NULL){
3635         // key generated, store in tlv
3636         int status = sm_tlv_impl->store_tag(sm_tlv_context, BTSTACK_TAG32('S','M','I','R'), sm_persistent_ir, 16u);
3637         log_info("Generated IR key. Store in TLV status: %d", status);
3638         UNUSED(status);
3639     }
3640     log_info_key("IR", sm_persistent_ir);
3641     dkg_state = DKG_CALC_IRK;
3642 
3643     if (test_use_fixed_local_irk){
3644         log_info_key("IRK", sm_persistent_irk);
3645         dkg_state = DKG_CALC_DHK;
3646     }
3647 
3648     sm_trigger_run();
3649 }
3650 
3651 static void sm_handle_random_result_er(void *arg){
3652     sm_persistent_keys_random_active = false;
3653     if (arg != 0){
3654         // key generated, store in tlv
3655         int status = sm_tlv_impl->store_tag(sm_tlv_context, BTSTACK_TAG32('S','M','E','R'), sm_persistent_er, 16u);
3656         log_info("Generated ER key. Store in TLV status: %d", status);
3657         UNUSED(status);
3658     }
3659     log_info_key("ER", sm_persistent_er);
3660 
3661     // try load ir
3662     int key_size = sm_tlv_impl->get_tag(sm_tlv_context, BTSTACK_TAG32('S','M','I','R'), sm_persistent_ir, 16u);
3663     if (key_size == 16){
3664         // ok, let's continue
3665         log_info("IR from TLV");
3666         sm_handle_random_result_ir( NULL );
3667     } else {
3668         // invalid, generate new random one
3669         sm_persistent_keys_random_active = true;
3670         btstack_crypto_random_generate(&sm_crypto_random_request, sm_persistent_ir, 16, &sm_handle_random_result_ir, &sm_persistent_ir);
3671     }
3672 }
3673 
3674 static void sm_connection_init(sm_connection_t * sm_conn, hci_con_handle_t con_handle, uint8_t role, uint8_t addr_type, bd_addr_t address){
3675 
3676     // connection info
3677     sm_conn->sm_handle = con_handle;
3678     sm_conn->sm_role = role;
3679     sm_conn->sm_peer_addr_type = addr_type;
3680     memcpy(sm_conn->sm_peer_address, address, 6);
3681 
3682     // security properties
3683     sm_conn->sm_connection_encrypted = 0;
3684     sm_conn->sm_connection_authenticated = 0;
3685     sm_conn->sm_connection_authorization_state = AUTHORIZATION_UNKNOWN;
3686     sm_conn->sm_le_db_index = -1;
3687     sm_conn->sm_reencryption_active = false;
3688 
3689     // prepare CSRK lookup (does not involve setup)
3690     sm_conn->sm_irk_lookup_state = IRK_LOOKUP_W4_READY;
3691 
3692     sm_conn->sm_engine_state = SM_GENERAL_IDLE;
3693 }
3694 
3695 static void sm_event_packet_handler (uint8_t packet_type, uint16_t channel, uint8_t *packet, uint16_t size){
3696 
3697     UNUSED(channel);    // ok: there is no channel
3698     UNUSED(size);       // ok: fixed format HCI events
3699 
3700     sm_connection_t * sm_conn;
3701     hci_con_handle_t  con_handle;
3702     uint8_t           status;
3703     bd_addr_t         addr;
3704 
3705     switch (packet_type) {
3706 
3707 		case HCI_EVENT_PACKET:
3708 			switch (hci_event_packet_get_type(packet)) {
3709 
3710                 case BTSTACK_EVENT_STATE:
3711                     switch (btstack_event_state_get_state(packet)){
3712                         case HCI_STATE_WORKING:
3713                             log_info("HCI Working!");
3714                             // setup IR/ER with TLV
3715                             btstack_tlv_get_instance(&sm_tlv_impl, &sm_tlv_context);
3716                             if (sm_tlv_impl != NULL){
3717                                 int key_size = sm_tlv_impl->get_tag(sm_tlv_context, BTSTACK_TAG32('S','M','E','R'), sm_persistent_er, 16u);
3718                                 if (key_size == 16){
3719                                     // ok, let's continue
3720                                     log_info("ER from TLV");
3721                                     sm_handle_random_result_er( NULL );
3722                                 } else {
3723                                     // invalid, generate random one
3724                                     sm_persistent_keys_random_active = true;
3725                                     btstack_crypto_random_generate(&sm_crypto_random_request, sm_persistent_er, 16, &sm_handle_random_result_er, &sm_persistent_er);
3726                                 }
3727                             } else {
3728                                 sm_validate_er_ir();
3729                                 dkg_state = DKG_CALC_IRK;
3730 
3731                                 if (test_use_fixed_local_irk){
3732                                     log_info_key("IRK", sm_persistent_irk);
3733                                     dkg_state = DKG_CALC_DHK;
3734                                 }
3735                             }
3736 
3737 #ifdef ENABLE_LE_SECURE_CONNECTIONS
3738                             // trigger ECC key generation
3739                             if (ec_key_generation_state == EC_KEY_GENERATION_IDLE){
3740                                 sm_ec_generate_new_key();
3741                             }
3742 #endif
3743 
3744                             // restart random address updates after power cycle
3745                             if (gap_random_adress_type == GAP_RANDOM_ADDRESS_TYPE_STATIC){
3746                                 gap_random_address_set(sm_random_address);
3747                             } else {
3748                                 gap_random_address_set_mode(gap_random_adress_type);
3749                             }
3750                             break;
3751 
3752                         case HCI_STATE_OFF:
3753                         case HCI_STATE_HALTING:
3754                             log_info("SM: reset state");
3755                             // stop random address update
3756                             gap_random_address_update_stop();
3757                             // reset state
3758                             sm_state_reset();
3759                             break;
3760 
3761                         default:
3762                             break;
3763                     }
3764 					break;
3765 
3766 #ifdef ENABLE_CLASSIC
3767 			    case HCI_EVENT_CONNECTION_COMPLETE:
3768 			        // ignore if connection failed
3769 			        if (hci_event_connection_complete_get_status(packet)) return;
3770 
3771 			        con_handle = hci_event_connection_complete_get_connection_handle(packet);
3772 			        sm_conn = sm_get_connection_for_handle(con_handle);
3773 			        if (!sm_conn) break;
3774 
3775                     hci_event_connection_complete_get_bd_addr(packet, addr);
3776 			        sm_connection_init(sm_conn,
3777                                        con_handle,
3778                                        (uint8_t) gap_get_role(con_handle),
3779                                        BD_ADDR_TYPE_LE_PUBLIC,
3780                                        addr);
3781 			        // classic connection corresponds to public le address
3782 			        sm_conn->sm_own_addr_type = BD_ADDR_TYPE_LE_PUBLIC;
3783                     gap_local_bd_addr(sm_conn->sm_own_address);
3784                     sm_conn->sm_cid = L2CAP_CID_BR_EDR_SECURITY_MANAGER;
3785                     sm_conn->sm_engine_state = SM_BR_EDR_W4_ENCRYPTION_COMPLETE;
3786 			        break;
3787 #endif
3788 
3789 #ifdef ENABLE_CROSS_TRANSPORT_KEY_DERIVATION
3790 			    case HCI_EVENT_SIMPLE_PAIRING_COMPLETE:
3791 			        if (hci_event_simple_pairing_complete_get_status(packet) != ERROR_CODE_SUCCESS) break;
3792                     hci_event_simple_pairing_complete_get_bd_addr(packet, addr);
3793                     sm_conn = sm_get_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_ACL);
3794                     if (sm_conn == NULL) break;
3795                     sm_conn->sm_pairing_requested = 1;
3796 			        break;
3797 #endif
3798 
3799                 case HCI_EVENT_LE_META:
3800                     switch (packet[2]) {
3801                         case HCI_SUBEVENT_LE_CONNECTION_COMPLETE:
3802                             // ignore if connection failed
3803                             if (packet[3]) return;
3804 
3805                             con_handle = little_endian_read_16(packet, 4);
3806                             sm_conn = sm_get_connection_for_handle(con_handle);
3807                             if (!sm_conn) break;
3808 
3809                             hci_subevent_le_connection_complete_get_peer_address(packet, addr);
3810                             sm_connection_init(sm_conn,
3811                                                con_handle,
3812                                                hci_subevent_le_connection_complete_get_role(packet),
3813                                                hci_subevent_le_connection_complete_get_peer_address_type(packet),
3814                                                addr);
3815                             sm_conn->sm_cid = L2CAP_CID_SECURITY_MANAGER_PROTOCOL;
3816 
3817                             // track our addr used for this connection and set state
3818 #ifdef ENABLE_LE_PERIPHERAL
3819                             if (hci_subevent_le_connection_complete_get_role(packet) != 0){
3820                                 // responder - use own address from advertisements
3821                                 gap_le_get_own_advertisements_address(&sm_conn->sm_own_addr_type, sm_conn->sm_own_address);
3822                                 sm_conn->sm_engine_state = SM_RESPONDER_IDLE;
3823                             }
3824 #endif
3825 #ifdef ENABLE_LE_CENTRAL
3826                             if (hci_subevent_le_connection_complete_get_role(packet) == 0){
3827                                 // initiator - use own address from create connection
3828                                 gap_le_get_own_connection_address(&sm_conn->sm_own_addr_type, sm_conn->sm_own_address);
3829                                 sm_conn->sm_engine_state = SM_INITIATOR_CONNECTED;
3830                             }
3831 #endif
3832                             break;
3833 
3834                         case HCI_SUBEVENT_LE_LONG_TERM_KEY_REQUEST:
3835                             con_handle = little_endian_read_16(packet, 3);
3836                             sm_conn = sm_get_connection_for_handle(con_handle);
3837                             if (!sm_conn) break;
3838 
3839                             log_info("LTK Request: state %u", sm_conn->sm_engine_state);
3840                             if (sm_conn->sm_engine_state == SM_RESPONDER_PH2_W4_LTK_REQUEST){
3841                                 sm_conn->sm_engine_state = SM_PH2_CALC_STK;
3842                                 break;
3843                             }
3844                             if (sm_conn->sm_engine_state == SM_SC_W4_LTK_REQUEST_SC){
3845                                 // PH2 SEND LTK as we need to exchange keys in PH3
3846                                 sm_conn->sm_engine_state = SM_RESPONDER_PH2_SEND_LTK_REPLY;
3847                                 break;
3848                             }
3849 
3850                             // store rand and ediv
3851                             reverse_64(&packet[5], sm_conn->sm_local_rand);
3852                             sm_conn->sm_local_ediv = little_endian_read_16(packet, 13);
3853 
3854                             // For Legacy Pairing (<=> EDIV != 0 || RAND != NULL), we need to recalculated our LTK as a
3855                             // potentially stored LTK is from the master
3856                             if ((sm_conn->sm_local_ediv != 0u) || !sm_is_null_random(sm_conn->sm_local_rand)){
3857                                 if (sm_reconstruct_ltk_without_le_device_db_entry){
3858                                     sm_conn->sm_engine_state = SM_RESPONDER_PH0_RECEIVED_LTK_REQUEST;
3859                                     break;
3860                                 }
3861                                 // additionally check if remote is in LE Device DB if requested
3862                                 switch(sm_conn->sm_irk_lookup_state){
3863                                     case IRK_LOOKUP_FAILED:
3864                                         log_info("LTK Request: device not in device db");
3865                                         sm_conn->sm_engine_state = SM_RESPONDER_PH0_SEND_LTK_REQUESTED_NEGATIVE_REPLY;
3866                                         break;
3867                                     case IRK_LOOKUP_SUCCEEDED:
3868                                         sm_conn->sm_engine_state = SM_RESPONDER_PH0_RECEIVED_LTK_REQUEST;
3869                                         break;
3870                                     default:
3871                                         // wait for irk look doen
3872                                         sm_conn->sm_engine_state = SM_RESPONDER_PH0_RECEIVED_LTK_W4_IRK;
3873                                         break;
3874                                 }
3875                                 break;
3876                             }
3877 
3878 #ifdef ENABLE_LE_SECURE_CONNECTIONS
3879                             sm_conn->sm_engine_state = SM_SC_RECEIVED_LTK_REQUEST;
3880 #else
3881                             log_info("LTK Request: ediv & random are empty, but LE Secure Connections not supported");
3882                             sm_conn->sm_engine_state = SM_RESPONDER_PH0_SEND_LTK_REQUESTED_NEGATIVE_REPLY;
3883 #endif
3884                             break;
3885 
3886                         default:
3887                             break;
3888                     }
3889                     break;
3890 
3891                 case HCI_EVENT_ENCRYPTION_CHANGE:
3892                 case HCI_EVENT_ENCRYPTION_CHANGE_V2:
3893                 	con_handle = hci_event_encryption_change_get_connection_handle(packet);
3894                     sm_conn = sm_get_connection_for_handle(con_handle);
3895                     if (!sm_conn) break;
3896 
3897                     sm_conn->sm_connection_encrypted = hci_event_encryption_change_get_encryption_enabled(packet);
3898                     log_info("Encryption state change: %u, key size %u", sm_conn->sm_connection_encrypted,
3899                         sm_conn->sm_actual_encryption_key_size);
3900                     log_info("event handler, state %u", sm_conn->sm_engine_state);
3901 
3902                     switch (sm_conn->sm_engine_state){
3903 
3904                         case SM_PH4_W4_CONNECTION_ENCRYPTED:
3905                             // encryption change event concludes re-encryption for bonded devices (even if it fails)
3906                             if (sm_conn->sm_connection_encrypted) {
3907                                 status = ERROR_CODE_SUCCESS;
3908                                 if (sm_conn->sm_role){
3909                                     sm_conn->sm_engine_state = SM_RESPONDER_IDLE;
3910                                 } else {
3911                                     sm_conn->sm_engine_state = SM_INITIATOR_CONNECTED;
3912                                 }
3913                             } else {
3914                                 status = hci_event_encryption_change_get_status(packet);
3915                                 // set state to 'RE-ENCRYPTION FAILED' to allow pairing but prevent other interactions
3916                                 // also, gap_reconnect_security_setup_active will return true
3917                                 sm_conn->sm_engine_state = SM_GENERAL_REENCRYPTION_FAILED;
3918                             }
3919 
3920                             // emit re-encryption complete
3921                             sm_reencryption_complete(sm_conn, status);
3922 
3923                             // notify client, if pairing was requested before
3924                             if (sm_conn->sm_pairing_requested){
3925                                 sm_conn->sm_pairing_requested = 0;
3926                                 sm_pairing_complete(sm_conn, status, 0);
3927                             }
3928 
3929                             sm_done_for_handle(sm_conn->sm_handle);
3930                             break;
3931 
3932                         case SM_PH2_W4_CONNECTION_ENCRYPTED:
3933                             if (!sm_conn->sm_connection_encrypted) break;
3934                             sm_conn->sm_connection_sc = setup->sm_use_secure_connections;
3935                             if (IS_RESPONDER(sm_conn->sm_role)){
3936                                 // slave
3937                                 if (setup->sm_use_secure_connections){
3938                                     sm_conn->sm_engine_state = SM_PH3_DISTRIBUTE_KEYS;
3939                                 } else {
3940                                     btstack_crypto_random_generate(&sm_crypto_random_request, sm_random_data, 8, &sm_handle_random_result_ph3_random, (void *)(uintptr_t) sm_conn->sm_handle);
3941                                 }
3942                             } else {
3943                                 // master
3944                                 if (sm_key_distribution_all_received()){
3945                                     // skip receiving keys as there are none
3946                                     sm_key_distribution_handle_all_received(sm_conn);
3947                                     btstack_crypto_random_generate(&sm_crypto_random_request, sm_random_data, 8, &sm_handle_random_result_ph3_random, (void *)(uintptr_t) sm_conn->sm_handle);
3948                                 } else {
3949                                     sm_conn->sm_engine_state = SM_PH3_RECEIVE_KEYS;
3950                                 }
3951                             }
3952                             break;
3953 
3954 #ifdef ENABLE_CROSS_TRANSPORT_KEY_DERIVATION
3955                         case SM_BR_EDR_W4_ENCRYPTION_COMPLETE:
3956                             if (sm_conn->sm_connection_encrypted != 2) break;
3957                             // prepare for pairing request
3958                             if (IS_RESPONDER(sm_conn->sm_role)){
3959                                 sm_conn->sm_engine_state = SM_BR_EDR_RESPONDER_W4_PAIRING_REQUEST;
3960                             } else if (sm_conn->sm_pairing_requested){
3961                                 // only send LE pairing request after BR/EDR SSP
3962                                 sm_conn->sm_engine_state = SM_BR_EDR_INITIATOR_SEND_PAIRING_REQUEST;
3963                             }
3964                             break;
3965 #endif
3966                         default:
3967                             break;
3968                     }
3969                     break;
3970 
3971                 case HCI_EVENT_ENCRYPTION_KEY_REFRESH_COMPLETE:
3972                     con_handle = little_endian_read_16(packet, 3);
3973                     sm_conn = sm_get_connection_for_handle(con_handle);
3974                     if (!sm_conn) break;
3975 
3976                     log_info("Encryption key refresh complete, key size %u", sm_conn->sm_actual_encryption_key_size);
3977                     log_info("event handler, state %u", sm_conn->sm_engine_state);
3978                     // continue if part of initial pairing
3979                     switch (sm_conn->sm_engine_state){
3980                         case SM_PH4_W4_CONNECTION_ENCRYPTED:
3981                             if (sm_conn->sm_role){
3982                                 sm_conn->sm_engine_state = SM_RESPONDER_IDLE;
3983                             } else {
3984                                 sm_conn->sm_engine_state = SM_INITIATOR_CONNECTED;
3985                             }
3986                             sm_done_for_handle(sm_conn->sm_handle);
3987                             break;
3988                         case SM_PH2_W4_CONNECTION_ENCRYPTED:
3989                             if (IS_RESPONDER(sm_conn->sm_role)){
3990                                 // slave
3991                                 btstack_crypto_random_generate(&sm_crypto_random_request, sm_random_data, 8, &sm_handle_random_result_ph3_random, (void *)(uintptr_t) sm_conn->sm_handle);
3992                             } else {
3993                                 // master
3994                                 sm_conn->sm_engine_state = SM_PH3_RECEIVE_KEYS;
3995                             }
3996                             break;
3997                         default:
3998                             break;
3999                     }
4000                     break;
4001 
4002 
4003                 case HCI_EVENT_DISCONNECTION_COMPLETE:
4004                     con_handle = little_endian_read_16(packet, 3);
4005                     sm_done_for_handle(con_handle);
4006                     sm_conn = sm_get_connection_for_handle(con_handle);
4007                     if (!sm_conn) break;
4008 
4009                     // pairing failed, if it was ongoing
4010                     switch (sm_conn->sm_engine_state){
4011                         case SM_GENERAL_IDLE:
4012                         case SM_INITIATOR_CONNECTED:
4013                         case SM_RESPONDER_IDLE:
4014                             break;
4015                         default:
4016                             sm_reencryption_complete(sm_conn, ERROR_CODE_REMOTE_USER_TERMINATED_CONNECTION);
4017                             sm_pairing_complete(sm_conn, ERROR_CODE_REMOTE_USER_TERMINATED_CONNECTION, 0);
4018                             break;
4019                     }
4020 
4021                     sm_conn->sm_engine_state = SM_GENERAL_IDLE;
4022                     sm_conn->sm_handle = 0;
4023                     break;
4024 
4025                 case HCI_EVENT_COMMAND_COMPLETE:
4026                     if (hci_event_command_complete_get_command_opcode(packet) == HCI_OPCODE_HCI_READ_BD_ADDR) {
4027                         // set local addr for le device db
4028                         reverse_bd_addr(&packet[OFFSET_OF_DATA_IN_COMMAND_COMPLETE + 1], addr);
4029                         le_device_db_set_local_bd_addr(addr);
4030                     }
4031                     break;
4032                 default:
4033                     break;
4034 			}
4035             break;
4036         default:
4037             break;
4038 	}
4039 
4040     sm_run();
4041 }
4042 
4043 static inline int sm_calc_actual_encryption_key_size(int other){
4044     if (other < sm_min_encryption_key_size) return 0;
4045     if (other < sm_max_encryption_key_size) return other;
4046     return sm_max_encryption_key_size;
4047 }
4048 
4049 
4050 #ifdef ENABLE_LE_SECURE_CONNECTIONS
4051 static int sm_just_works_or_numeric_comparison(stk_generation_method_t method){
4052     switch (method){
4053         case JUST_WORKS:
4054         case NUMERIC_COMPARISON:
4055             return 1;
4056         default:
4057             return 0;
4058     }
4059 }
4060 // responder
4061 
4062 static int sm_passkey_used(stk_generation_method_t method){
4063     switch (method){
4064         case PK_RESP_INPUT:
4065             return 1;
4066         default:
4067             return 0;
4068     }
4069 }
4070 
4071 static int sm_passkey_entry(stk_generation_method_t method){
4072     switch (method){
4073         case PK_RESP_INPUT:
4074         case PK_INIT_INPUT:
4075         case PK_BOTH_INPUT:
4076             return 1;
4077         default:
4078             return 0;
4079     }
4080 }
4081 
4082 #endif
4083 
4084 /**
4085  * @return ok
4086  */
4087 static int sm_validate_stk_generation_method(void){
4088     // check if STK generation method is acceptable by client
4089     switch (setup->sm_stk_generation_method){
4090         case JUST_WORKS:
4091             return (sm_accepted_stk_generation_methods & SM_STK_GENERATION_METHOD_JUST_WORKS) != 0u;
4092         case PK_RESP_INPUT:
4093         case PK_INIT_INPUT:
4094         case PK_BOTH_INPUT:
4095             return (sm_accepted_stk_generation_methods & SM_STK_GENERATION_METHOD_PASSKEY) != 0u;
4096         case OOB:
4097             return (sm_accepted_stk_generation_methods & SM_STK_GENERATION_METHOD_OOB) != 0u;
4098         case NUMERIC_COMPARISON:
4099             return (sm_accepted_stk_generation_methods & SM_STK_GENERATION_METHOD_NUMERIC_COMPARISON) != 0u;
4100         default:
4101             return 0;
4102     }
4103 }
4104 
4105 #ifdef ENABLE_LE_CENTRAL
4106 static void sm_initiator_connected_handle_security_request(sm_connection_t * sm_conn, const uint8_t *packet){
4107 #ifdef ENABLE_LE_SECURE_CONNECTIONS
4108     if (sm_sc_only_mode){
4109         uint8_t auth_req = packet[1];
4110         if ((auth_req & SM_AUTHREQ_SECURE_CONNECTION) == 0){
4111             sm_pairing_error(sm_conn, SM_REASON_AUTHENTHICATION_REQUIREMENTS);
4112             return;
4113         }
4114     }
4115 #else
4116     UNUSED(packet);
4117 #endif
4118 
4119     int have_ltk;
4120     uint8_t ltk[16];
4121 
4122     // IRK complete?
4123     switch (sm_conn->sm_irk_lookup_state){
4124         case IRK_LOOKUP_FAILED:
4125             // start pairing
4126             sm_conn->sm_engine_state = SM_INITIATOR_PH1_W2_SEND_PAIRING_REQUEST;
4127             break;
4128         case IRK_LOOKUP_SUCCEEDED:
4129             le_device_db_encryption_get(sm_conn->sm_le_db_index, NULL, NULL, ltk, NULL, NULL, NULL, NULL);
4130             have_ltk = !sm_is_null_key(ltk);
4131             log_info("central: security request - have_ltk %u, encryption %u", have_ltk, sm_conn->sm_connection_encrypted);
4132             if (have_ltk && (sm_conn->sm_connection_encrypted == 0)){
4133                 // start re-encrypt if we have LTK and the connection is not already encrypted
4134                 sm_conn->sm_engine_state = SM_INITIATOR_PH4_HAS_LTK;
4135             } else {
4136                 // start pairing
4137                 sm_conn->sm_engine_state = SM_INITIATOR_PH1_W2_SEND_PAIRING_REQUEST;
4138             }
4139             break;
4140         default:
4141             // otherwise, store security request
4142             sm_conn->sm_security_request_received = 1;
4143             break;
4144     }
4145 }
4146 #endif
4147 
4148 static void sm_pdu_handler(uint8_t packet_type, hci_con_handle_t con_handle, uint8_t *packet, uint16_t size){
4149 
4150     // size of complete sm_pdu used to validate input
4151     static const uint8_t sm_pdu_size[] = {
4152             0,  // 0x00 invalid opcode
4153             7,  // 0x01 pairing request
4154             7,  // 0x02 pairing response
4155             17, // 0x03 pairing confirm
4156             17, // 0x04 pairing random
4157             2,  // 0x05 pairing failed
4158             17, // 0x06 encryption information
4159             11, // 0x07 master identification
4160             17, // 0x08 identification information
4161             8,  // 0x09 identify address information
4162             17, // 0x0a signing information
4163             2,  // 0x0b security request
4164             65, // 0x0c pairing public key
4165             17, // 0x0d pairing dhk check
4166             2,  // 0x0e keypress notification
4167     };
4168 
4169     if ((packet_type == HCI_EVENT_PACKET) && (packet[0] == L2CAP_EVENT_CAN_SEND_NOW)){
4170         sm_run();
4171     }
4172 
4173     if (packet_type != SM_DATA_PACKET) return;
4174     if (size == 0u) return;
4175 
4176     uint8_t sm_pdu_code = packet[0];
4177 
4178     // validate pdu size
4179     if (sm_pdu_code >= sizeof(sm_pdu_size)) return;
4180     if (sm_pdu_size[sm_pdu_code] != size)   return;
4181 
4182     sm_connection_t * sm_conn = sm_get_connection_for_handle(con_handle);
4183     if (!sm_conn) return;
4184 
4185     if (sm_pdu_code == SM_CODE_PAIRING_FAILED){
4186         sm_reencryption_complete(sm_conn, ERROR_CODE_AUTHENTICATION_FAILURE);
4187         sm_pairing_complete(sm_conn, ERROR_CODE_AUTHENTICATION_FAILURE, packet[1]);
4188         sm_done_for_handle(con_handle);
4189         sm_conn->sm_engine_state = sm_conn->sm_role ? SM_RESPONDER_IDLE : SM_INITIATOR_CONNECTED;
4190         return;
4191     }
4192 
4193     log_debug("sm_pdu_handler: state %u, pdu 0x%02x", sm_conn->sm_engine_state, sm_pdu_code);
4194 
4195     int err;
4196     UNUSED(err);
4197 
4198     if (sm_pdu_code == SM_CODE_KEYPRESS_NOTIFICATION){
4199         uint8_t buffer[5];
4200         buffer[0] = SM_EVENT_KEYPRESS_NOTIFICATION;
4201         buffer[1] = 3;
4202         little_endian_store_16(buffer, 2, con_handle);
4203         buffer[4] = packet[1];
4204         sm_dispatch_event(HCI_EVENT_PACKET, 0, buffer, sizeof(buffer));
4205         return;
4206     }
4207 
4208     switch (sm_conn->sm_engine_state){
4209 
4210         // a sm timeout requires a new physical connection
4211         case SM_GENERAL_TIMEOUT:
4212             return;
4213 
4214 #ifdef ENABLE_LE_CENTRAL
4215 
4216         // Initiator
4217         case SM_INITIATOR_CONNECTED:
4218             if ((sm_pdu_code != SM_CODE_SECURITY_REQUEST) || (sm_conn->sm_role)){
4219                 sm_pdu_received_in_wrong_state(sm_conn);
4220                 break;
4221             }
4222             sm_initiator_connected_handle_security_request(sm_conn, packet);
4223             break;
4224 
4225         case SM_INITIATOR_PH1_W4_PAIRING_RESPONSE:
4226             // Core 5, Vol 3, Part H, 2.4.6:
4227             // "The master shall ignore the slave’s Security Request if the master has sent a Pairing Request
4228             //  without receiving a Pairing Response from the slave or if the master has initiated encryption mode setup."
4229             if (sm_pdu_code == SM_CODE_SECURITY_REQUEST){
4230                 log_info("Ignoring Security Request");
4231                 break;
4232             }
4233 
4234             // all other pdus are incorrect
4235             if (sm_pdu_code != SM_CODE_PAIRING_RESPONSE){
4236                 sm_pdu_received_in_wrong_state(sm_conn);
4237                 break;
4238             }
4239 
4240             // store pairing request
4241             (void)memcpy(&setup->sm_s_pres, packet,
4242                          sizeof(sm_pairing_packet_t));
4243             err = sm_stk_generation_init(sm_conn);
4244 
4245 #ifdef ENABLE_TESTING_SUPPORT
4246             if (0 < test_pairing_failure && test_pairing_failure < SM_REASON_DHKEY_CHECK_FAILED){
4247                 log_info("testing_support: abort with pairing failure %u", test_pairing_failure);
4248                 err = test_pairing_failure;
4249             }
4250 #endif
4251 
4252             if (err != 0){
4253                 sm_pairing_error(sm_conn, err);
4254                 break;
4255             }
4256 
4257             // generate random number first, if we need to show passkey
4258             if (setup->sm_stk_generation_method == PK_RESP_INPUT){
4259                 btstack_crypto_random_generate(&sm_crypto_random_request, sm_random_data, 8, &sm_handle_random_result_ph2_tk,  (void *)(uintptr_t) sm_conn->sm_handle);
4260                 break;
4261             }
4262 
4263 #ifdef ENABLE_LE_SECURE_CONNECTIONS
4264             if (setup->sm_use_secure_connections){
4265                 // SC Numeric Comparison will trigger user response after public keys & nonces have been exchanged
4266                 if (setup->sm_stk_generation_method == JUST_WORKS){
4267                     sm_conn->sm_engine_state = SM_PH1_W4_USER_RESPONSE;
4268                     sm_trigger_user_response(sm_conn);
4269                     if (setup->sm_user_response == SM_USER_RESPONSE_IDLE){
4270                         sm_conn->sm_engine_state = SM_SC_SEND_PUBLIC_KEY_COMMAND;
4271                     }
4272                 } else {
4273                     sm_conn->sm_engine_state = SM_SC_SEND_PUBLIC_KEY_COMMAND;
4274                 }
4275                 break;
4276             }
4277 #endif
4278             sm_conn->sm_engine_state = SM_PH1_W4_USER_RESPONSE;
4279             sm_trigger_user_response(sm_conn);
4280             // response_idle == nothing <--> sm_trigger_user_response() did not require response
4281             if (setup->sm_user_response == SM_USER_RESPONSE_IDLE){
4282                 btstack_crypto_random_generate(&sm_crypto_random_request, setup->sm_local_random, 16, &sm_handle_random_result_ph2_random, (void *)(uintptr_t) sm_conn->sm_handle);
4283             }
4284             break;
4285 
4286         case SM_INITIATOR_PH2_W4_PAIRING_CONFIRM:
4287             if (sm_pdu_code != SM_CODE_PAIRING_CONFIRM){
4288                 sm_pdu_received_in_wrong_state(sm_conn);
4289                 break;
4290             }
4291 
4292             // store s_confirm
4293             reverse_128(&packet[1], setup->sm_peer_confirm);
4294 
4295             // abort if s_confirm matches m_confirm
4296             if (memcmp(setup->sm_local_confirm, setup->sm_peer_confirm, 16) == 0){
4297                 sm_pdu_received_in_wrong_state(sm_conn);
4298                 break;
4299             }
4300 
4301 #ifdef ENABLE_TESTING_SUPPORT
4302             if (test_pairing_failure == SM_REASON_CONFIRM_VALUE_FAILED){
4303                 log_info("testing_support: reset confirm value");
4304                 memset(setup->sm_peer_confirm, 0, 16);
4305             }
4306 #endif
4307             sm_conn->sm_engine_state = SM_PH2_SEND_PAIRING_RANDOM;
4308             break;
4309 
4310         case SM_INITIATOR_PH2_W4_PAIRING_RANDOM:
4311             if (sm_pdu_code != SM_CODE_PAIRING_RANDOM){
4312                 sm_pdu_received_in_wrong_state(sm_conn);
4313                 break;;
4314             }
4315 
4316             // received random value
4317             reverse_128(&packet[1], setup->sm_peer_random);
4318             sm_conn->sm_engine_state = SM_PH2_C1_GET_ENC_C;
4319             break;
4320 #endif
4321 
4322 #ifdef ENABLE_LE_PERIPHERAL
4323         // Responder
4324         case SM_RESPONDER_IDLE:
4325         case SM_RESPONDER_SEND_SECURITY_REQUEST:
4326         case SM_RESPONDER_PH1_W4_PAIRING_REQUEST:
4327             if (sm_pdu_code != SM_CODE_PAIRING_REQUEST){
4328                 sm_pdu_received_in_wrong_state(sm_conn);
4329                 break;;
4330             }
4331 
4332             // store pairing request
4333             (void)memcpy(&sm_conn->sm_m_preq, packet, sizeof(sm_pairing_packet_t));
4334 
4335             // check if IRK completed
4336             switch (sm_conn->sm_irk_lookup_state){
4337                 case IRK_LOOKUP_SUCCEEDED:
4338                 case IRK_LOOKUP_FAILED:
4339                     sm_conn->sm_engine_state = SM_RESPONDER_PH1_PAIRING_REQUEST_RECEIVED;
4340                     break;
4341                 default:
4342                     sm_conn->sm_engine_state = SM_RESPONDER_PH1_PAIRING_REQUEST_RECEIVED_W4_IRK;
4343                     break;
4344             }
4345             break;
4346 #endif
4347 
4348 #ifdef ENABLE_LE_SECURE_CONNECTIONS
4349         case SM_SC_W4_PUBLIC_KEY_COMMAND:
4350             if (sm_pdu_code != SM_CODE_PAIRING_PUBLIC_KEY){
4351                 sm_pdu_received_in_wrong_state(sm_conn);
4352                 break;
4353             }
4354 
4355             // store public key for DH Key calculation
4356             reverse_256(&packet[01], &setup->sm_peer_q[0]);
4357             reverse_256(&packet[33], &setup->sm_peer_q[32]);
4358 
4359             // CVE-2020-26558: abort pairing if remote uses the same public key
4360             if (memcmp(&setup->sm_peer_q, ec_q, 64) == 0){
4361                 log_info("Remote PK matches ours");
4362                 sm_pairing_error(sm_conn, SM_REASON_DHKEY_CHECK_FAILED);
4363                 break;
4364             }
4365 
4366             // validate public key
4367             err = btstack_crypto_ecc_p256_validate_public_key(setup->sm_peer_q);
4368             if (err != 0){
4369                 log_info("sm: peer public key invalid %x", err);
4370                 sm_pairing_error(sm_conn, SM_REASON_DHKEY_CHECK_FAILED);
4371                 break;
4372             }
4373 
4374             // start calculating dhkey
4375             btstack_crypto_ecc_p256_calculate_dhkey(&sm_crypto_ecc_p256_request, setup->sm_peer_q, setup->sm_dhkey, sm_sc_dhkey_calculated, (void*)(uintptr_t) sm_conn->sm_handle);
4376 
4377 
4378             log_info("public key received, generation method %u", setup->sm_stk_generation_method);
4379             if (IS_RESPONDER(sm_conn->sm_role)){
4380                 // responder
4381                 sm_conn->sm_engine_state = SM_SC_SEND_PUBLIC_KEY_COMMAND;
4382             } else {
4383                 // initiator
4384                 // stk generation method
4385                 // passkey entry: notify app to show passkey or to request passkey
4386                 switch (setup->sm_stk_generation_method){
4387                     case JUST_WORKS:
4388                     case NUMERIC_COMPARISON:
4389                         sm_conn->sm_engine_state = SM_SC_W4_CONFIRMATION;
4390                         break;
4391                     case PK_RESP_INPUT:
4392                         sm_sc_start_calculating_local_confirm(sm_conn);
4393                         break;
4394                     case PK_INIT_INPUT:
4395                     case PK_BOTH_INPUT:
4396                         if (setup->sm_user_response != SM_USER_RESPONSE_PASSKEY){
4397                             sm_conn->sm_engine_state = SM_SC_W4_USER_RESPONSE;
4398                             break;
4399                         }
4400                         sm_sc_start_calculating_local_confirm(sm_conn);
4401                         break;
4402                     case OOB:
4403                         // generate Nx
4404                         log_info("Generate Na");
4405                         btstack_crypto_random_generate(&sm_crypto_random_request, setup->sm_local_nonce, 16, &sm_handle_random_result_sc_next_send_pairing_random, (void*)(uintptr_t) sm_conn->sm_handle);
4406                         break;
4407                     default:
4408                         btstack_assert(false);
4409                         break;
4410                 }
4411             }
4412             break;
4413 
4414         case SM_SC_W4_CONFIRMATION:
4415             if (sm_pdu_code != SM_CODE_PAIRING_CONFIRM){
4416                 sm_pdu_received_in_wrong_state(sm_conn);
4417                 break;
4418             }
4419             // received confirm value
4420             reverse_128(&packet[1], setup->sm_peer_confirm);
4421 
4422 #ifdef ENABLE_TESTING_SUPPORT
4423             if (test_pairing_failure == SM_REASON_CONFIRM_VALUE_FAILED){
4424                 log_info("testing_support: reset confirm value");
4425                 memset(setup->sm_peer_confirm, 0, 16);
4426             }
4427 #endif
4428             if (IS_RESPONDER(sm_conn->sm_role)){
4429                 // responder
4430                 if (sm_passkey_used(setup->sm_stk_generation_method)){
4431                     if (setup->sm_user_response != SM_USER_RESPONSE_PASSKEY){
4432                         // still waiting for passkey
4433                         sm_conn->sm_engine_state = SM_SC_W4_USER_RESPONSE;
4434                         break;
4435                     }
4436                 }
4437                 sm_sc_start_calculating_local_confirm(sm_conn);
4438             } else {
4439                 // initiator
4440                 if (sm_just_works_or_numeric_comparison(setup->sm_stk_generation_method)){
4441                     btstack_crypto_random_generate(&sm_crypto_random_request, setup->sm_local_nonce, 16, &sm_handle_random_result_sc_next_send_pairing_random, (void*)(uintptr_t) sm_conn->sm_handle);
4442                 } else {
4443                     sm_conn->sm_engine_state = SM_SC_SEND_PAIRING_RANDOM;
4444                 }
4445             }
4446             break;
4447 
4448         case SM_SC_W4_PAIRING_RANDOM:
4449             if (sm_pdu_code != SM_CODE_PAIRING_RANDOM){
4450                 sm_pdu_received_in_wrong_state(sm_conn);
4451                 break;
4452             }
4453 
4454             // received random value
4455             reverse_128(&packet[1], setup->sm_peer_nonce);
4456 
4457             // validate confirm value if Cb = f4(Pkb, Pka, Nb, z)
4458             // only check for JUST WORK/NC in initiator role OR passkey entry
4459             log_info("SM_SC_W4_PAIRING_RANDOM, responder: %u, just works: %u, passkey used %u, passkey entry %u",
4460                      IS_RESPONDER(sm_conn->sm_role), sm_just_works_or_numeric_comparison(setup->sm_stk_generation_method),
4461                      sm_passkey_used(setup->sm_stk_generation_method), sm_passkey_entry(setup->sm_stk_generation_method));
4462             if ( (!IS_RESPONDER(sm_conn->sm_role) && sm_just_works_or_numeric_comparison(setup->sm_stk_generation_method))
4463             ||   (sm_passkey_entry(setup->sm_stk_generation_method)) ) {
4464                  sm_conn->sm_engine_state = SM_SC_W2_CMAC_FOR_CHECK_CONFIRMATION;
4465                  break;
4466             }
4467 
4468             // OOB
4469             if (setup->sm_stk_generation_method == OOB){
4470 
4471                 // setup local random, set to zero if remote did not receive our data
4472                 log_info("Received nonce, setup local random ra/rb for dhkey check");
4473                 if (IS_RESPONDER(sm_conn->sm_role)){
4474                     if (sm_pairing_packet_get_oob_data_flag(setup->sm_m_preq) == 0u){
4475                         log_info("Reset rb as A does not have OOB data");
4476                         memset(setup->sm_rb, 0, 16);
4477                     } else {
4478                         (void)memcpy(setup->sm_rb, sm_sc_oob_random, 16);
4479                         log_info("Use stored rb");
4480                         log_info_hexdump(setup->sm_rb, 16);
4481                     }
4482                 }  else {
4483                     if (sm_pairing_packet_get_oob_data_flag(setup->sm_s_pres) == 0u){
4484                         log_info("Reset ra as B does not have OOB data");
4485                         memset(setup->sm_ra, 0, 16);
4486                     } else {
4487                         (void)memcpy(setup->sm_ra, sm_sc_oob_random, 16);
4488                         log_info("Use stored ra");
4489                         log_info_hexdump(setup->sm_ra, 16);
4490                     }
4491                 }
4492 
4493                 // validate confirm value if Cb = f4(PKb, Pkb, rb, 0) for OOB if data received
4494                 if (setup->sm_have_oob_data){
4495                      sm_conn->sm_engine_state = SM_SC_W2_CMAC_FOR_CHECK_CONFIRMATION;
4496                      break;
4497                 }
4498             }
4499 
4500             // TODO: we only get here for Responder role with JW/NC
4501             sm_sc_state_after_receiving_random(sm_conn);
4502             break;
4503 
4504         case SM_SC_W2_CALCULATE_G2:
4505         case SM_SC_W4_CALCULATE_G2:
4506         case SM_SC_W4_CALCULATE_DHKEY:
4507         case SM_SC_W2_CALCULATE_F5_SALT:
4508         case SM_SC_W4_CALCULATE_F5_SALT:
4509         case SM_SC_W2_CALCULATE_F5_MACKEY:
4510         case SM_SC_W4_CALCULATE_F5_MACKEY:
4511         case SM_SC_W2_CALCULATE_F5_LTK:
4512         case SM_SC_W4_CALCULATE_F5_LTK:
4513         case SM_SC_W2_CALCULATE_F6_FOR_DHKEY_CHECK:
4514         case SM_SC_W4_DHKEY_CHECK_COMMAND:
4515         case SM_SC_W4_CALCULATE_F6_FOR_DHKEY_CHECK:
4516         case SM_SC_W4_USER_RESPONSE:
4517             if (sm_pdu_code != SM_CODE_PAIRING_DHKEY_CHECK){
4518                 sm_pdu_received_in_wrong_state(sm_conn);
4519                 break;
4520             }
4521             // store DHKey Check
4522             setup->sm_state_vars |= SM_STATE_VAR_DHKEY_COMMAND_RECEIVED;
4523             reverse_128(&packet[01], setup->sm_peer_dhkey_check);
4524 
4525             // have we been only waiting for dhkey check command?
4526             if (sm_conn->sm_engine_state == SM_SC_W4_DHKEY_CHECK_COMMAND){
4527                 sm_conn->sm_engine_state = SM_SC_W2_CALCULATE_F6_TO_VERIFY_DHKEY_CHECK;
4528             }
4529             break;
4530 #endif
4531 
4532 #ifdef ENABLE_LE_PERIPHERAL
4533         case SM_RESPONDER_PH1_W4_PAIRING_CONFIRM:
4534             if (sm_pdu_code != SM_CODE_PAIRING_CONFIRM){
4535                 sm_pdu_received_in_wrong_state(sm_conn);
4536                 break;
4537             }
4538 
4539             // received confirm value
4540             reverse_128(&packet[1], setup->sm_peer_confirm);
4541 
4542 #ifdef ENABLE_TESTING_SUPPORT
4543             if (test_pairing_failure == SM_REASON_CONFIRM_VALUE_FAILED){
4544                 log_info("testing_support: reset confirm value");
4545                 memset(setup->sm_peer_confirm, 0, 16);
4546             }
4547 #endif
4548             // notify client to hide shown passkey
4549             if (setup->sm_stk_generation_method == PK_INIT_INPUT){
4550                 sm_notify_client_base(SM_EVENT_PASSKEY_DISPLAY_CANCEL, sm_conn->sm_handle, sm_conn->sm_peer_addr_type, sm_conn->sm_peer_address);
4551             }
4552 
4553             // handle user cancel pairing?
4554             if (setup->sm_user_response == SM_USER_RESPONSE_DECLINE){
4555                 sm_pairing_error(sm_conn, SM_REASON_PASSKEY_ENTRY_FAILED);
4556                 break;
4557             }
4558 
4559             // wait for user action?
4560             if (setup->sm_user_response == SM_USER_RESPONSE_PENDING){
4561                 sm_conn->sm_engine_state = SM_PH1_W4_USER_RESPONSE;
4562                 break;
4563             }
4564 
4565             // calculate and send local_confirm
4566             btstack_crypto_random_generate(&sm_crypto_random_request, setup->sm_local_random, 16, &sm_handle_random_result_ph2_random, (void *)(uintptr_t) sm_conn->sm_handle);
4567             break;
4568 
4569         case SM_RESPONDER_PH2_W4_PAIRING_RANDOM:
4570             if (sm_pdu_code != SM_CODE_PAIRING_RANDOM){
4571                 sm_pdu_received_in_wrong_state(sm_conn);
4572                 break;;
4573             }
4574 
4575             // received random value
4576             reverse_128(&packet[1], setup->sm_peer_random);
4577             sm_conn->sm_engine_state = SM_PH2_C1_GET_ENC_C;
4578             break;
4579 #endif
4580 
4581         case SM_PH2_W4_CONNECTION_ENCRYPTED:
4582         case SM_PH3_RECEIVE_KEYS:
4583             switch(sm_pdu_code){
4584                 case SM_CODE_ENCRYPTION_INFORMATION:
4585                     setup->sm_key_distribution_received_set |= SM_KEYDIST_FLAG_ENCRYPTION_INFORMATION;
4586                     reverse_128(&packet[1], setup->sm_peer_ltk);
4587                     break;
4588 
4589                 case SM_CODE_MASTER_IDENTIFICATION:
4590                     setup->sm_key_distribution_received_set |= SM_KEYDIST_FLAG_MASTER_IDENTIFICATION;
4591                     setup->sm_peer_ediv = little_endian_read_16(packet, 1);
4592                     reverse_64(&packet[3], setup->sm_peer_rand);
4593                     break;
4594 
4595                 case SM_CODE_IDENTITY_INFORMATION:
4596                     setup->sm_key_distribution_received_set |= SM_KEYDIST_FLAG_IDENTITY_INFORMATION;
4597                     reverse_128(&packet[1], setup->sm_peer_irk);
4598                     break;
4599 
4600                 case SM_CODE_IDENTITY_ADDRESS_INFORMATION:
4601                     setup->sm_key_distribution_received_set |= SM_KEYDIST_FLAG_IDENTITY_ADDRESS_INFORMATION;
4602                     setup->sm_peer_addr_type = packet[1];
4603                     reverse_bd_addr(&packet[2], setup->sm_peer_address);
4604                     break;
4605 
4606                 case SM_CODE_SIGNING_INFORMATION:
4607                     setup->sm_key_distribution_received_set |= SM_KEYDIST_FLAG_SIGNING_IDENTIFICATION;
4608                     reverse_128(&packet[1], setup->sm_peer_csrk);
4609                     break;
4610                 default:
4611                     // Unexpected PDU
4612                     log_info("Unexpected PDU %u in SM_PH3_RECEIVE_KEYS", packet[0]);
4613                     break;
4614             }
4615             // done with key distribution?
4616             if (sm_key_distribution_all_received()){
4617 
4618                 sm_key_distribution_handle_all_received(sm_conn);
4619 
4620                 if (IS_RESPONDER(sm_conn->sm_role)){
4621                     sm_key_distribution_complete_responder(sm_conn);
4622                 } else {
4623                     if (setup->sm_use_secure_connections){
4624                         sm_conn->sm_engine_state = SM_PH3_DISTRIBUTE_KEYS;
4625                     } else {
4626                         btstack_crypto_random_generate(&sm_crypto_random_request, sm_random_data, 8, &sm_handle_random_result_ph3_random, (void *)(uintptr_t) sm_conn->sm_handle);
4627                     }
4628                 }
4629             }
4630             break;
4631 
4632 #ifdef ENABLE_CROSS_TRANSPORT_KEY_DERIVATION
4633         case SM_BR_EDR_INITIATOR_W4_PAIRING_RESPONSE:
4634             if (sm_pdu_code != SM_CODE_PAIRING_RESPONSE){
4635                 sm_pdu_received_in_wrong_state(sm_conn);
4636                 break;
4637             }
4638             // store pairing response
4639             (void)memcpy(&setup->sm_s_pres, packet, sizeof(sm_pairing_packet_t));
4640 
4641             // validate encryption key size
4642             sm_conn->sm_actual_encryption_key_size = sm_calc_actual_encryption_key_size(sm_pairing_packet_get_max_encryption_key_size(setup->sm_s_pres));
4643             // SC Only mandates 128 bit key size
4644             if (sm_sc_only_mode && (sm_conn->sm_actual_encryption_key_size < 16)) {
4645                 sm_conn->sm_actual_encryption_key_size  = 0;
4646             }
4647             if (sm_conn->sm_actual_encryption_key_size == 0){
4648                 sm_pairing_error(sm_conn, SM_REASON_ENCRYPTION_KEY_SIZE);
4649                 break;
4650             }
4651 
4652             // prepare key exchange, LTK is derived locally
4653             sm_setup_key_distribution(sm_pairing_packet_get_initiator_key_distribution(setup->sm_s_pres) & ~SM_KEYDIST_ENC_KEY,
4654                                       sm_pairing_packet_get_responder_key_distribution(setup->sm_s_pres) & ~SM_KEYDIST_ENC_KEY);
4655 
4656             // skip receive if there are none
4657             if (sm_key_distribution_all_received()){
4658                 // distribute keys in run handles 'no keys to send'
4659                 sm_conn->sm_engine_state = SM_BR_EDR_DISTRIBUTE_KEYS;
4660             } else {
4661                 sm_conn->sm_engine_state = SM_BR_EDR_RECEIVE_KEYS;
4662             }
4663             break;
4664 
4665         case SM_BR_EDR_RESPONDER_W4_PAIRING_REQUEST:
4666             if (sm_pdu_code != SM_CODE_PAIRING_REQUEST){
4667                 sm_pdu_received_in_wrong_state(sm_conn);
4668                 break;
4669             }
4670             // store pairing request
4671             (void)memcpy(&sm_conn->sm_m_preq, packet, sizeof(sm_pairing_packet_t));
4672             // validate encryption key size
4673             sm_conn->sm_actual_encryption_key_size = sm_calc_actual_encryption_key_size(sm_pairing_packet_get_max_encryption_key_size(sm_conn->sm_m_preq));
4674             // SC Only mandates 128 bit key size
4675             if (sm_sc_only_mode && (sm_conn->sm_actual_encryption_key_size < 16)) {
4676                 sm_conn->sm_actual_encryption_key_size  = 0;
4677             }
4678             if (sm_conn->sm_actual_encryption_key_size == 0){
4679                 sm_pairing_error(sm_conn, SM_REASON_ENCRYPTION_KEY_SIZE);
4680                 break;
4681             }
4682             // trigger response
4683             sm_conn->sm_engine_state = SM_BR_EDR_RESPONDER_PAIRING_REQUEST_RECEIVED;
4684             break;
4685 
4686         case SM_BR_EDR_RECEIVE_KEYS:
4687             switch(sm_pdu_code){
4688                 case SM_CODE_IDENTITY_INFORMATION:
4689                     setup->sm_key_distribution_received_set |= SM_KEYDIST_FLAG_IDENTITY_INFORMATION;
4690                     reverse_128(&packet[1], setup->sm_peer_irk);
4691                     break;
4692                 case SM_CODE_IDENTITY_ADDRESS_INFORMATION:
4693                     setup->sm_key_distribution_received_set |= SM_KEYDIST_FLAG_IDENTITY_ADDRESS_INFORMATION;
4694                     setup->sm_peer_addr_type = packet[1];
4695                     reverse_bd_addr(&packet[2], setup->sm_peer_address);
4696                     break;
4697                 case SM_CODE_SIGNING_INFORMATION:
4698                     setup->sm_key_distribution_received_set |= SM_KEYDIST_FLAG_SIGNING_IDENTIFICATION;
4699                     reverse_128(&packet[1], setup->sm_peer_csrk);
4700                     break;
4701                 default:
4702                     // Unexpected PDU
4703                     log_info("Unexpected PDU %u in SM_PH3_RECEIVE_KEYS", packet[0]);
4704                     break;
4705             }
4706 
4707             // all keys received
4708             if (sm_key_distribution_all_received()){
4709                 if (IS_RESPONDER(sm_conn->sm_role)){
4710                     // responder -> keys exchanged, derive LE LTK
4711                     sm_ctkd_start_from_br_edr(sm_conn);
4712                 } else {
4713                     // initiator -> send our keys if any
4714                     sm_conn->sm_engine_state = SM_BR_EDR_DISTRIBUTE_KEYS;
4715                 }
4716             }
4717             break;
4718 #endif
4719 
4720         default:
4721             // Unexpected PDU
4722             log_info("Unexpected PDU %u in state %u", packet[0], sm_conn->sm_engine_state);
4723             sm_pdu_received_in_wrong_state(sm_conn);
4724             break;
4725     }
4726 
4727     // try to send next pdu
4728     sm_trigger_run();
4729 }
4730 
4731 // Security Manager Client API
4732 void sm_register_oob_data_callback( int (*get_oob_data_callback)(uint8_t address_type, bd_addr_t addr, uint8_t * oob_data)){
4733     sm_get_oob_data = get_oob_data_callback;
4734 }
4735 
4736 void sm_register_sc_oob_data_callback( int (*get_sc_oob_data_callback)(uint8_t address_type, bd_addr_t addr, uint8_t * oob_sc_peer_confirm, uint8_t * oob_sc_peer_random)){
4737     sm_get_sc_oob_data = get_sc_oob_data_callback;
4738 }
4739 
4740 void sm_register_ltk_callback( bool (*get_ltk_callback)(hci_con_handle_t con_handle, uint8_t address_type, bd_addr_t addr, uint8_t * ltk)){
4741     sm_get_ltk_callback = get_ltk_callback;
4742 }
4743 
4744 void sm_add_event_handler(btstack_packet_callback_registration_t * callback_handler){
4745     btstack_linked_list_add_tail(&sm_event_handlers, (btstack_linked_item_t*) callback_handler);
4746 }
4747 
4748 void sm_remove_event_handler(btstack_packet_callback_registration_t * callback_handler){
4749     btstack_linked_list_remove(&sm_event_handlers, (btstack_linked_item_t*) callback_handler);
4750 }
4751 
4752 void sm_set_accepted_stk_generation_methods(uint8_t accepted_stk_generation_methods){
4753     sm_accepted_stk_generation_methods = accepted_stk_generation_methods;
4754 }
4755 
4756 void sm_set_encryption_key_size_range(uint8_t min_size, uint8_t max_size){
4757 	sm_min_encryption_key_size = min_size;
4758 	sm_max_encryption_key_size = max_size;
4759 }
4760 
4761 void sm_set_authentication_requirements(uint8_t auth_req){
4762 #ifndef ENABLE_LE_SECURE_CONNECTIONS
4763     if (auth_req & SM_AUTHREQ_SECURE_CONNECTION){
4764         log_error("ENABLE_LE_SECURE_CONNECTIONS not defined, but requested by app. Dropping SC flag");
4765         auth_req &= ~SM_AUTHREQ_SECURE_CONNECTION;
4766     }
4767 #endif
4768     sm_auth_req = auth_req;
4769 }
4770 
4771 void sm_set_io_capabilities(io_capability_t io_capability){
4772     sm_io_capabilities = io_capability;
4773 }
4774 
4775 #ifdef ENABLE_LE_PERIPHERAL
4776 void sm_set_request_security(int enable){
4777     sm_slave_request_security = enable;
4778 }
4779 #endif
4780 
4781 void sm_set_er(sm_key_t er){
4782     (void)memcpy(sm_persistent_er, er, 16);
4783 }
4784 
4785 void sm_set_ir(sm_key_t ir){
4786     (void)memcpy(sm_persistent_ir, ir, 16);
4787 }
4788 
4789 // Testing support only
4790 void sm_test_set_irk(sm_key_t irk){
4791     (void)memcpy(sm_persistent_irk, irk, 16);
4792     dkg_state = DKG_CALC_DHK;
4793     test_use_fixed_local_irk = true;
4794 }
4795 
4796 void sm_test_use_fixed_local_csrk(void){
4797     test_use_fixed_local_csrk = true;
4798 }
4799 
4800 #ifdef ENABLE_LE_SECURE_CONNECTIONS
4801 static void sm_ec_generated(void * arg){
4802     UNUSED(arg);
4803     ec_key_generation_state = EC_KEY_GENERATION_DONE;
4804     // trigger pairing if pending for ec key
4805     sm_trigger_run();
4806 }
4807 static void sm_ec_generate_new_key(void){
4808     log_info("sm: generate new ec key");
4809     ec_key_generation_state = EC_KEY_GENERATION_ACTIVE;
4810     btstack_crypto_ecc_p256_generate_key(&sm_crypto_ecc_p256_request, ec_q, &sm_ec_generated, NULL);
4811 }
4812 #endif
4813 
4814 #ifdef ENABLE_TESTING_SUPPORT
4815 void sm_test_set_pairing_failure(int reason){
4816     test_pairing_failure = reason;
4817 }
4818 #endif
4819 
4820 static void sm_state_reset(void) {
4821 #ifdef USE_CMAC_ENGINE
4822     sm_cmac_active  = 0;
4823 #endif
4824     dkg_state = DKG_W4_WORKING;
4825     rau_state = RAU_IDLE;
4826     sm_aes128_state = SM_AES128_IDLE;
4827     sm_address_resolution_test = -1;    // no private address to resolve yet
4828     sm_address_resolution_ah_calculation_active = 0;
4829     sm_address_resolution_mode = ADDRESS_RESOLUTION_IDLE;
4830     sm_address_resolution_general_queue = NULL;
4831     sm_active_connection_handle = HCI_CON_HANDLE_INVALID;
4832     sm_persistent_keys_random_active = false;
4833 #ifdef ENABLE_LE_SECURE_CONNECTIONS
4834     ec_key_generation_state = EC_KEY_GENERATION_IDLE;
4835 #endif
4836 }
4837 
4838 void sm_init(void){
4839 
4840     if (sm_initialized) return;
4841 
4842     // set default ER and IR values (should be unique - set by app or sm later using TLV)
4843     sm_er_ir_set_default();
4844 
4845     // defaults
4846     sm_accepted_stk_generation_methods = SM_STK_GENERATION_METHOD_JUST_WORKS
4847                                        | SM_STK_GENERATION_METHOD_OOB
4848                                        | SM_STK_GENERATION_METHOD_PASSKEY
4849                                        | SM_STK_GENERATION_METHOD_NUMERIC_COMPARISON;
4850 
4851     sm_max_encryption_key_size = 16;
4852     sm_min_encryption_key_size = 7;
4853 
4854     sm_fixed_passkey_in_display_role = 0xffffffffU;
4855     sm_reconstruct_ltk_without_le_device_db_entry = true;
4856 
4857     gap_random_adress_update_period = 15 * 60 * 1000L;
4858 
4859     test_use_fixed_local_csrk = false;
4860 
4861     // other
4862     btstack_run_loop_set_timer_handler(&sm_run_timer, &sm_run_timer_handler);
4863 
4864     // register for HCI Events from HCI
4865     hci_event_callback_registration.callback = &sm_event_packet_handler;
4866     hci_add_event_handler(&hci_event_callback_registration);
4867 
4868     //
4869     btstack_crypto_init();
4870 
4871     // init le_device_db
4872     le_device_db_init();
4873 
4874     // and L2CAP PDUs + L2CAP_EVENT_CAN_SEND_NOW
4875     l2cap_register_fixed_channel(sm_pdu_handler, L2CAP_CID_SECURITY_MANAGER_PROTOCOL);
4876 #ifdef ENABLE_CLASSIC
4877     l2cap_register_fixed_channel(sm_pdu_handler, L2CAP_CID_BR_EDR_SECURITY_MANAGER);
4878 #endif
4879 
4880     // state
4881     sm_state_reset();
4882 
4883     sm_initialized = true;
4884 }
4885 
4886 void sm_deinit(void){
4887     sm_initialized = false;
4888     btstack_run_loop_remove_timer(&sm_run_timer);
4889 }
4890 
4891 void sm_use_fixed_passkey_in_display_role(uint32_t passkey){
4892     sm_fixed_passkey_in_display_role = passkey;
4893 }
4894 
4895 void sm_allow_ltk_reconstruction_without_le_device_db_entry(int allow){
4896     sm_reconstruct_ltk_without_le_device_db_entry = allow != 0;
4897 }
4898 
4899 static sm_connection_t * sm_get_connection_for_handle(hci_con_handle_t con_handle){
4900     hci_connection_t * hci_con = hci_connection_for_handle(con_handle);
4901     if (!hci_con) return NULL;
4902     return &hci_con->sm_connection;
4903 }
4904 
4905 #ifdef ENABLE_CROSS_TRANSPORT_KEY_DERIVATION
4906 static sm_connection_t * sm_get_connection_for_bd_addr_and_type(bd_addr_t address, bd_addr_type_t addr_type){
4907     hci_connection_t * hci_con = hci_connection_for_bd_addr_and_type(address, addr_type);
4908     if (!hci_con) return NULL;
4909     return &hci_con->sm_connection;
4910 }
4911 #endif
4912 
4913 // @deprecated: map onto sm_request_pairing
4914 void sm_send_security_request(hci_con_handle_t con_handle){
4915     sm_connection_t * sm_conn = sm_get_connection_for_handle(con_handle);
4916     if (!sm_conn) return;
4917     if (!IS_RESPONDER(sm_conn->sm_role)) return;
4918     sm_request_pairing(con_handle);
4919 }
4920 
4921 // request pairing
4922 void sm_request_pairing(hci_con_handle_t con_handle){
4923     sm_connection_t * sm_conn = sm_get_connection_for_handle(con_handle);
4924     if (!sm_conn) return;     // wrong connection
4925 
4926     bool have_ltk;
4927     uint8_t ltk[16];
4928     log_info("sm_request_pairing in role %u, state %u", sm_conn->sm_role, sm_conn->sm_engine_state);
4929     if (IS_RESPONDER(sm_conn->sm_role)){
4930         switch (sm_conn->sm_engine_state){
4931             case SM_GENERAL_IDLE:
4932             case SM_RESPONDER_IDLE:
4933                 switch (sm_conn->sm_irk_lookup_state){
4934                     case IRK_LOOKUP_SUCCEEDED:
4935                         le_device_db_encryption_get(sm_conn->sm_le_db_index, NULL, NULL, ltk, NULL, NULL, NULL, NULL);
4936                         have_ltk = !sm_is_null_key(ltk);
4937                         log_info("have ltk %u", have_ltk);
4938                         if (have_ltk){
4939                             sm_conn->sm_pairing_requested = 1;
4940                             sm_conn->sm_engine_state = SM_RESPONDER_SEND_SECURITY_REQUEST;
4941                             sm_reencryption_started(sm_conn);
4942                             break;
4943                         }
4944                         /* fall through */
4945 
4946                     case IRK_LOOKUP_FAILED:
4947                         sm_conn->sm_pairing_requested = 1;
4948                         sm_conn->sm_engine_state = SM_RESPONDER_SEND_SECURITY_REQUEST;
4949                         sm_pairing_started(sm_conn);
4950                         break;
4951                     default:
4952                         log_info("irk lookup pending");
4953                         sm_conn->sm_pairing_requested = 1;
4954                         break;
4955                 }
4956                 break;
4957             default:
4958                 break;
4959         }
4960     } else {
4961         // used as a trigger to start central/master/initiator security procedures
4962         switch (sm_conn->sm_engine_state){
4963             case SM_INITIATOR_CONNECTED:
4964                 switch (sm_conn->sm_irk_lookup_state){
4965                     case IRK_LOOKUP_SUCCEEDED:
4966                         le_device_db_encryption_get(sm_conn->sm_le_db_index, NULL, NULL, ltk, NULL, NULL, NULL, NULL);
4967                         have_ltk = !sm_is_null_key(ltk);
4968                         log_info("have ltk %u", have_ltk);
4969                         if (have_ltk){
4970                             sm_conn->sm_pairing_requested = 1;
4971                             sm_conn->sm_engine_state = SM_INITIATOR_PH4_HAS_LTK;
4972                             break;
4973                         }
4974                         /* fall through */
4975 
4976                     case IRK_LOOKUP_FAILED:
4977                         sm_conn->sm_engine_state = SM_INITIATOR_PH1_W2_SEND_PAIRING_REQUEST;
4978                         break;
4979                     default:
4980                         log_info("irk lookup pending");
4981                         sm_conn->sm_pairing_requested = 1;
4982                         break;
4983                 }
4984                 break;
4985             case SM_GENERAL_REENCRYPTION_FAILED:
4986                 sm_conn->sm_engine_state = SM_INITIATOR_PH1_W2_SEND_PAIRING_REQUEST;
4987                 break;
4988             case SM_GENERAL_IDLE:
4989                 sm_conn->sm_pairing_requested = 1;
4990                 break;
4991             default:
4992                 break;
4993         }
4994     }
4995     sm_trigger_run();
4996 }
4997 
4998 // called by client app on authorization request
4999 void sm_authorization_decline(hci_con_handle_t con_handle){
5000     sm_connection_t * sm_conn = sm_get_connection_for_handle(con_handle);
5001     if (!sm_conn) return;     // wrong connection
5002     sm_conn->sm_connection_authorization_state = AUTHORIZATION_DECLINED;
5003     sm_notify_client_status(SM_EVENT_AUTHORIZATION_RESULT, sm_conn->sm_handle, sm_conn->sm_peer_addr_type, sm_conn->sm_peer_address, 0);
5004 }
5005 
5006 void sm_authorization_grant(hci_con_handle_t con_handle){
5007     sm_connection_t * sm_conn = sm_get_connection_for_handle(con_handle);
5008     if (!sm_conn) return;     // wrong connection
5009     sm_conn->sm_connection_authorization_state = AUTHORIZATION_GRANTED;
5010     sm_notify_client_status(SM_EVENT_AUTHORIZATION_RESULT, sm_conn->sm_handle, sm_conn->sm_peer_addr_type, sm_conn->sm_peer_address, 1);
5011 }
5012 
5013 // GAP Bonding API
5014 
5015 void sm_bonding_decline(hci_con_handle_t con_handle){
5016     sm_connection_t * sm_conn = sm_get_connection_for_handle(con_handle);
5017     if (!sm_conn) return;     // wrong connection
5018     setup->sm_user_response = SM_USER_RESPONSE_DECLINE;
5019     log_info("decline, state %u", sm_conn->sm_engine_state);
5020     switch(sm_conn->sm_engine_state){
5021 #ifdef ENABLE_LE_SECURE_CONNECTIONS
5022         case SM_SC_W4_USER_RESPONSE:
5023         case SM_SC_W4_CONFIRMATION:
5024         case SM_SC_W4_PUBLIC_KEY_COMMAND:
5025 #endif
5026         case SM_PH1_W4_USER_RESPONSE:
5027             switch (setup->sm_stk_generation_method){
5028                 case PK_RESP_INPUT:
5029                 case PK_INIT_INPUT:
5030                 case PK_BOTH_INPUT:
5031                     sm_pairing_error(sm_conn, SM_REASON_PASSKEY_ENTRY_FAILED);
5032                     break;
5033                 case NUMERIC_COMPARISON:
5034                     sm_pairing_error(sm_conn, SM_REASON_NUMERIC_COMPARISON_FAILED);
5035                     break;
5036                 case JUST_WORKS:
5037                 case OOB:
5038                     sm_pairing_error(sm_conn, SM_REASON_UNSPECIFIED_REASON);
5039                     break;
5040                 default:
5041                     btstack_assert(false);
5042                     break;
5043             }
5044             break;
5045         default:
5046             break;
5047     }
5048     sm_trigger_run();
5049 }
5050 
5051 void sm_just_works_confirm(hci_con_handle_t con_handle){
5052     sm_connection_t * sm_conn = sm_get_connection_for_handle(con_handle);
5053     if (!sm_conn) return;     // wrong connection
5054     setup->sm_user_response = SM_USER_RESPONSE_CONFIRM;
5055     if (sm_conn->sm_engine_state == SM_PH1_W4_USER_RESPONSE){
5056         if (setup->sm_use_secure_connections){
5057             sm_conn->sm_engine_state = SM_SC_SEND_PUBLIC_KEY_COMMAND;
5058         } else {
5059             btstack_crypto_random_generate(&sm_crypto_random_request, setup->sm_local_random, 16, &sm_handle_random_result_ph2_random, (void *)(uintptr_t) sm_conn->sm_handle);
5060         }
5061     }
5062 
5063 #ifdef ENABLE_LE_SECURE_CONNECTIONS
5064     if (sm_conn->sm_engine_state == SM_SC_W4_USER_RESPONSE){
5065         sm_sc_prepare_dhkey_check(sm_conn);
5066     }
5067 #endif
5068 
5069     sm_trigger_run();
5070 }
5071 
5072 void sm_numeric_comparison_confirm(hci_con_handle_t con_handle){
5073     // for now, it's the same
5074     sm_just_works_confirm(con_handle);
5075 }
5076 
5077 void sm_passkey_input(hci_con_handle_t con_handle, uint32_t passkey){
5078     sm_connection_t * sm_conn = sm_get_connection_for_handle(con_handle);
5079     if (!sm_conn) return;     // wrong connection
5080     sm_reset_tk();
5081     big_endian_store_32(setup->sm_tk, 12, passkey);
5082     setup->sm_user_response = SM_USER_RESPONSE_PASSKEY;
5083     if (sm_conn->sm_engine_state == SM_PH1_W4_USER_RESPONSE){
5084         btstack_crypto_random_generate(&sm_crypto_random_request, setup->sm_local_random, 16, &sm_handle_random_result_ph2_random, (void *)(uintptr_t) sm_conn->sm_handle);
5085     }
5086 #ifdef ENABLE_LE_SECURE_CONNECTIONS
5087     (void)memcpy(setup->sm_ra, setup->sm_tk, 16);
5088     (void)memcpy(setup->sm_rb, setup->sm_tk, 16);
5089     if (sm_conn->sm_engine_state == SM_SC_W4_USER_RESPONSE){
5090         sm_sc_start_calculating_local_confirm(sm_conn);
5091     }
5092 #endif
5093     sm_trigger_run();
5094 }
5095 
5096 void sm_keypress_notification(hci_con_handle_t con_handle, uint8_t action){
5097     sm_connection_t * sm_conn = sm_get_connection_for_handle(con_handle);
5098     if (!sm_conn) return;     // wrong connection
5099     if (action > SM_KEYPRESS_PASSKEY_ENTRY_COMPLETED) return;
5100     uint8_t num_actions = setup->sm_keypress_notification >> 5;
5101     uint8_t flags = setup->sm_keypress_notification & 0x1fu;
5102     switch (action){
5103         case SM_KEYPRESS_PASSKEY_ENTRY_STARTED:
5104         case SM_KEYPRESS_PASSKEY_ENTRY_COMPLETED:
5105             flags |= (1u << action);
5106             break;
5107         case SM_KEYPRESS_PASSKEY_CLEARED:
5108             // clear counter, keypress & erased flags + set passkey cleared
5109             flags = (flags & 0x19u) | (1u << SM_KEYPRESS_PASSKEY_CLEARED);
5110             break;
5111         case SM_KEYPRESS_PASSKEY_DIGIT_ENTERED:
5112             if (flags & (1u << SM_KEYPRESS_PASSKEY_DIGIT_ERASED)){
5113                 // erase actions queued
5114                 num_actions--;
5115                 if (num_actions == 0u){
5116                     // clear counter, keypress & erased flags
5117                     flags &= 0x19u;
5118                 }
5119                 break;
5120             }
5121             num_actions++;
5122             flags |= (1u << SM_KEYPRESS_PASSKEY_DIGIT_ENTERED);
5123             break;
5124         case SM_KEYPRESS_PASSKEY_DIGIT_ERASED:
5125             if (flags & (1u << SM_KEYPRESS_PASSKEY_DIGIT_ENTERED)){
5126                 // enter actions queued
5127                 num_actions--;
5128                 if (num_actions == 0u){
5129                     // clear counter, keypress & erased flags
5130                     flags &= 0x19u;
5131                 }
5132                 break;
5133             }
5134             num_actions++;
5135             flags |= (1u << SM_KEYPRESS_PASSKEY_DIGIT_ERASED);
5136             break;
5137         default:
5138             break;
5139     }
5140     setup->sm_keypress_notification = (num_actions << 5) | flags;
5141     sm_trigger_run();
5142 }
5143 
5144 #ifdef ENABLE_LE_SECURE_CONNECTIONS
5145 static void sm_handle_random_result_oob(void * arg){
5146     UNUSED(arg);
5147     sm_sc_oob_state = SM_SC_OOB_W2_CALC_CONFIRM;
5148     sm_trigger_run();
5149 }
5150 uint8_t sm_generate_sc_oob_data(void (*callback)(const uint8_t * confirm_value, const uint8_t * random_value)){
5151 
5152     static btstack_crypto_random_t   sm_crypto_random_oob_request;
5153 
5154     if (sm_sc_oob_state != SM_SC_OOB_IDLE) return ERROR_CODE_COMMAND_DISALLOWED;
5155     sm_sc_oob_callback = callback;
5156     sm_sc_oob_state = SM_SC_OOB_W4_RANDOM;
5157     btstack_crypto_random_generate(&sm_crypto_random_oob_request, sm_sc_oob_random, 16, &sm_handle_random_result_oob, NULL);
5158     return 0;
5159 }
5160 #endif
5161 
5162 /**
5163  * @brief Get Identity Resolving state
5164  * @param con_handle
5165  * @return irk_lookup_state_t
5166  */
5167 irk_lookup_state_t sm_identity_resolving_state(hci_con_handle_t con_handle){
5168     sm_connection_t * sm_conn = sm_get_connection_for_handle(con_handle);
5169     if (!sm_conn) return IRK_LOOKUP_IDLE;
5170     return sm_conn->sm_irk_lookup_state;
5171 }
5172 
5173 /**
5174  * @brief Identify device in LE Device DB
5175  * @param handle
5176  * @return index from le_device_db or -1 if not found/identified
5177  */
5178 int sm_le_device_index(hci_con_handle_t con_handle ){
5179     sm_connection_t * sm_conn = sm_get_connection_for_handle(con_handle);
5180     if (!sm_conn) return -1;
5181     return sm_conn->sm_le_db_index;
5182 }
5183 
5184 static int gap_random_address_type_requires_updates(void){
5185     switch (gap_random_adress_type){
5186         case GAP_RANDOM_ADDRESS_TYPE_OFF:
5187         case GAP_RANDOM_ADDRESS_TYPE_STATIC:
5188             return 0;
5189         default:
5190             return 1;
5191     }
5192 }
5193 
5194 static uint8_t own_address_type(void){
5195     switch (gap_random_adress_type){
5196         case GAP_RANDOM_ADDRESS_TYPE_OFF:
5197             return BD_ADDR_TYPE_LE_PUBLIC;
5198         default:
5199             return BD_ADDR_TYPE_LE_RANDOM;
5200     }
5201 }
5202 
5203 // GAP LE API
5204 void gap_random_address_set_mode(gap_random_address_type_t random_address_type){
5205     gap_random_address_update_stop();
5206     gap_random_adress_type = random_address_type;
5207     hci_le_set_own_address_type(own_address_type());
5208     if (!gap_random_address_type_requires_updates()) return;
5209     gap_random_address_update_start();
5210     gap_random_address_trigger();
5211 }
5212 
5213 gap_random_address_type_t gap_random_address_get_mode(void){
5214     return gap_random_adress_type;
5215 }
5216 
5217 void gap_random_address_set_update_period(int period_ms){
5218     gap_random_adress_update_period = period_ms;
5219     if (!gap_random_address_type_requires_updates()) return;
5220     gap_random_address_update_stop();
5221     gap_random_address_update_start();
5222 }
5223 
5224 void gap_random_address_set(const bd_addr_t addr){
5225     gap_random_address_set_mode(GAP_RANDOM_ADDRESS_TYPE_STATIC);
5226     (void)memcpy(sm_random_address, addr, 6);
5227     hci_le_random_address_set(addr);
5228 }
5229 
5230 #ifdef ENABLE_LE_PERIPHERAL
5231 /*
5232  * @brief Set Advertisement Paramters
5233  * @param adv_int_min
5234  * @param adv_int_max
5235  * @param adv_type
5236  * @param direct_address_type
5237  * @param direct_address
5238  * @param channel_map
5239  * @param filter_policy
5240  *
5241  * @note own_address_type is used from gap_random_address_set_mode
5242  */
5243 void gap_advertisements_set_params(uint16_t adv_int_min, uint16_t adv_int_max, uint8_t adv_type,
5244     uint8_t direct_address_typ, bd_addr_t direct_address, uint8_t channel_map, uint8_t filter_policy){
5245     hci_le_advertisements_set_params(adv_int_min, adv_int_max, adv_type,
5246         direct_address_typ, direct_address, channel_map, filter_policy);
5247 }
5248 #endif
5249 
5250 int gap_reconnect_security_setup_active(hci_con_handle_t con_handle){
5251     sm_connection_t * sm_conn = sm_get_connection_for_handle(con_handle);
5252      // wrong connection
5253     if (!sm_conn) return 0;
5254     // already encrypted
5255     if (sm_conn->sm_connection_encrypted) return 0;
5256     // irk status?
5257     switch(sm_conn->sm_irk_lookup_state){
5258         case IRK_LOOKUP_FAILED:
5259             // done, cannot setup encryption
5260             return 0;
5261         case IRK_LOOKUP_SUCCEEDED:
5262             break;
5263         default:
5264             // IR Lookup pending
5265             return 1;
5266     }
5267     // IRK Lookup Succeeded, re-encryption should be initiated. When done, state gets reset or indicates failure
5268     if (sm_conn->sm_engine_state == SM_GENERAL_REENCRYPTION_FAILED) return 0;
5269     if (sm_conn->sm_role){
5270         return sm_conn->sm_engine_state != SM_RESPONDER_IDLE;
5271     } else {
5272         return sm_conn->sm_engine_state != SM_INITIATOR_CONNECTED;
5273     }
5274 }
5275 
5276 void sm_set_secure_connections_only_mode(bool enable){
5277 #ifdef ENABLE_LE_SECURE_CONNECTIONS
5278     sm_sc_only_mode = enable;
5279 #else
5280     // SC Only mode not possible without support for SC
5281     btstack_assert(enable == false);
5282 #endif
5283 }
5284 
5285 const uint8_t * gap_get_persistent_irk(void){
5286     return sm_persistent_irk;
5287 }
5288 
5289 void gap_delete_bonding(bd_addr_type_t address_type, bd_addr_t address){
5290     uint16_t i;
5291     for (i=0; i < le_device_db_max_count(); i++){
5292         bd_addr_t entry_address;
5293         int entry_address_type = BD_ADDR_TYPE_UNKNOWN;
5294         le_device_db_info(i, &entry_address_type, entry_address, NULL);
5295         // skip unused entries
5296         if (entry_address_type == (int) BD_ADDR_TYPE_UNKNOWN) continue;
5297         if ((entry_address_type == (int) address_type) && (memcmp(entry_address, address, 6) == 0)){
5298             sm_remove_le_device_db_entry(i);
5299             break;
5300         }
5301     }
5302 }
5303