xref: /btstack/src/hci.c (revision 591e55515a007c95deb6181153935ed9e9027647)
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 MATTHIAS
24  * RINGWALD 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 /*
39  *  hci.c
40  *
41  *  Created by Matthias Ringwald on 4/29/09.
42  *
43  */
44 
45 #include "btstack_config.h"
46 
47 
48 #ifdef HAVE_TICK
49 #include "btstack_run_loop_embedded.h"
50 #endif
51 
52 #ifdef HAVE_PLATFORM_IPHONE_OS
53 #include "../port/ios/src/btstack_control_iphone.h"
54 #endif
55 
56 #ifdef ENABLE_BLE
57 #include "gap.h"
58 #endif
59 
60 #include <stdarg.h>
61 #include <string.h>
62 #include <stdio.h>
63 #include <inttypes.h>
64 
65 #include "btstack_debug.h"
66 #include "btstack_linked_list.h"
67 #include "btstack_memory.h"
68 #include "gap.h"
69 #include "hci.h"
70 #include "hci_cmd.h"
71 #include "hci_dump.h"
72 
73 
74 #define HCI_CONNECTION_TIMEOUT_MS 10000
75 
76 // prototypes
77 static void hci_update_scan_enable(void);
78 static gap_security_level_t gap_security_level_for_connection(hci_connection_t * connection);
79 static void hci_connection_timeout_handler(btstack_timer_source_t *timer);
80 static void hci_connection_timestamp(hci_connection_t *connection);
81 static int  hci_power_control_on(void);
82 static void hci_power_control_off(void);
83 static void hci_state_reset(void);
84 static void hci_emit_connection_complete(hci_connection_t *conn, uint8_t status);
85 static void hci_emit_l2cap_check_timeout(hci_connection_t *conn);
86 static void hci_emit_disconnection_complete(hci_con_handle_t con_handle, uint8_t reason);
87 static void hci_emit_nr_connections_changed(void);
88 static void hci_emit_hci_open_failed(void);
89 static void hci_emit_discoverable_enabled(uint8_t enabled);
90 static void hci_emit_security_level(hci_con_handle_t con_handle, gap_security_level_t level);
91 static void hci_emit_dedicated_bonding_result(bd_addr_t address, uint8_t status);
92 static void hci_emit_event(uint8_t * event, uint16_t size, int dump);
93 static void hci_emit_acl_packet(uint8_t * packet, uint16_t size);
94 static void hci_notify_if_sco_can_send_now(void);
95 static void hci_run(void);
96 static int  hci_is_le_connection(hci_connection_t * connection);
97 static int  hci_number_free_acl_slots_for_connection_type( bd_addr_type_t address_type);
98 static int  hci_local_ssp_activated(void);
99 static int  hci_remote_ssp_supported(hci_con_handle_t con_handle);
100 
101 #ifdef ENABLE_BLE
102 // called from test/ble_client/advertising_data_parser.c
103 void le_handle_advertisement_report(uint8_t *packet, int size);
104 static void hci_remove_from_whitelist(bd_addr_type_t address_type, bd_addr_t address);
105 #endif
106 
107 // the STACK is here
108 #ifndef HAVE_MALLOC
109 static hci_stack_t   hci_stack_static;
110 #endif
111 static hci_stack_t * hci_stack = NULL;
112 
113 // test helper
114 static uint8_t disable_l2cap_timeouts = 0;
115 
116 /**
117  * create connection for given address
118  *
119  * @return connection OR NULL, if no memory left
120  */
121 static hci_connection_t * create_connection_for_bd_addr_and_type(bd_addr_t addr, bd_addr_type_t addr_type){
122     log_info("create_connection_for_addr %s, type %x", bd_addr_to_str(addr), addr_type);
123     hci_connection_t * conn = btstack_memory_hci_connection_get();
124     if (!conn) return NULL;
125     memset(conn, 0, sizeof(hci_connection_t));
126     bd_addr_copy(conn->address, addr);
127     conn->address_type = addr_type;
128     conn->con_handle = 0xffff;
129     conn->authentication_flags = AUTH_FLAGS_NONE;
130     conn->bonding_flags = 0;
131     conn->requested_security_level = LEVEL_0;
132     btstack_run_loop_set_timer_handler(&conn->timeout, hci_connection_timeout_handler);
133     btstack_run_loop_set_timer_context(&conn->timeout, conn);
134     hci_connection_timestamp(conn);
135     conn->acl_recombination_length = 0;
136     conn->acl_recombination_pos = 0;
137     conn->num_acl_packets_sent = 0;
138     conn->num_sco_packets_sent = 0;
139     conn->le_con_parameter_update_state = CON_PARAMETER_UPDATE_NONE;
140     btstack_linked_list_add(&hci_stack->connections, (btstack_linked_item_t *) conn);
141     return conn;
142 }
143 
144 
145 /**
146  * get le connection parameter range
147 *
148  * @return le connection parameter range struct
149  */
150 void gap_get_connection_parameter_range(le_connection_parameter_range_t range){
151     range = hci_stack->le_connection_parameter_range;
152 }
153 
154 /**
155  * set le connection parameter range
156  *
157  */
158 
159 void gap_set_connection_parameter_range(le_connection_parameter_range_t range){
160     hci_stack->le_connection_parameter_range = range;
161 }
162 
163 /**
164  * get hci connections iterator
165  *
166  * @return hci connections iterator
167  */
168 
169 void hci_connections_get_iterator(btstack_linked_list_iterator_t *it){
170     btstack_linked_list_iterator_init(it, &hci_stack->connections);
171 }
172 
173 /**
174  * get connection for a given handle
175  *
176  * @return connection OR NULL, if not found
177  */
178 hci_connection_t * hci_connection_for_handle(hci_con_handle_t con_handle){
179     btstack_linked_list_iterator_t it;
180     btstack_linked_list_iterator_init(&it, &hci_stack->connections);
181     while (btstack_linked_list_iterator_has_next(&it)){
182         hci_connection_t * item = (hci_connection_t *) btstack_linked_list_iterator_next(&it);
183         if ( item->con_handle == con_handle ) {
184             return item;
185         }
186     }
187     return NULL;
188 }
189 
190 /**
191  * get connection for given address
192  *
193  * @return connection OR NULL, if not found
194  */
195 hci_connection_t * hci_connection_for_bd_addr_and_type(bd_addr_t  addr, bd_addr_type_t addr_type){
196     btstack_linked_list_iterator_t it;
197     btstack_linked_list_iterator_init(&it, &hci_stack->connections);
198     while (btstack_linked_list_iterator_has_next(&it)){
199         hci_connection_t * connection = (hci_connection_t *) btstack_linked_list_iterator_next(&it);
200         if (connection->address_type != addr_type)  continue;
201         if (memcmp(addr, connection->address, 6) != 0) continue;
202         return connection;
203     }
204     return NULL;
205 }
206 
207 static void hci_connection_timeout_handler(btstack_timer_source_t *timer){
208     hci_connection_t * connection = (hci_connection_t *) btstack_run_loop_get_timer_context(timer);
209 #ifdef HAVE_TIME
210     struct timeval tv;
211     gettimeofday(&tv, NULL);
212     if (tv.tv_sec >= connection->timestamp.tv_sec + HCI_CONNECTION_TIMEOUT_MS/1000) {
213         // connections might be timed out
214         hci_emit_l2cap_check_timeout(connection);
215     }
216 #endif
217 #ifdef HAVE_TICK
218     if (btstack_run_loop_embedded_get_ticks() > connection->timestamp + btstack_run_loop_embedded_ticks_for_ms(HCI_CONNECTION_TIMEOUT_MS)){
219         // connections might be timed out
220         hci_emit_l2cap_check_timeout(connection);
221     }
222 #endif
223 #ifdef HAVE_TIME_MS
224     if (btstack_run_loop_get_time_ms() > connection->timestamp + HCI_CONNECTION_TIMEOUT_MS){
225         // connections might be timed out
226         hci_emit_l2cap_check_timeout(connection);
227     }
228 #endif
229     btstack_run_loop_set_timer(timer, HCI_CONNECTION_TIMEOUT_MS);
230     btstack_run_loop_add_timer(timer);
231 }
232 
233 static void hci_connection_timestamp(hci_connection_t *connection){
234 #ifdef HAVE_TIME
235     gettimeofday(&connection->timestamp, NULL);
236 #endif
237 #ifdef HAVE_TICK
238     connection->timestamp = btstack_run_loop_embedded_get_ticks();
239 #endif
240 #ifdef HAVE_TIME_MS
241     connection->timestamp = btstack_run_loop_get_time_ms();
242 #endif
243 }
244 
245 
246 inline static void connectionSetAuthenticationFlags(hci_connection_t * conn, hci_authentication_flags_t flags){
247     conn->authentication_flags = (hci_authentication_flags_t)(conn->authentication_flags | flags);
248 }
249 
250 inline static void connectionClearAuthenticationFlags(hci_connection_t * conn, hci_authentication_flags_t flags){
251     conn->authentication_flags = (hci_authentication_flags_t)(conn->authentication_flags & ~flags);
252 }
253 
254 
255 /**
256  * add authentication flags and reset timer
257  * @note: assumes classic connection
258  * @note: bd_addr is passed in as litle endian uint8_t * as it is called from parsing packets
259  */
260 static void hci_add_connection_flags_for_flipped_bd_addr(uint8_t *bd_addr, hci_authentication_flags_t flags){
261     bd_addr_t addr;
262     reverse_bd_addr(bd_addr, addr);
263     hci_connection_t * conn = hci_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_CLASSIC);
264     if (conn) {
265         connectionSetAuthenticationFlags(conn, flags);
266         hci_connection_timestamp(conn);
267     }
268 }
269 
270 int  hci_authentication_active_for_handle(hci_con_handle_t handle){
271     hci_connection_t * conn = hci_connection_for_handle(handle);
272     if (!conn) return 0;
273     if (conn->authentication_flags & LEGACY_PAIRING_ACTIVE) return 1;
274     if (conn->authentication_flags & SSP_PAIRING_ACTIVE) return 1;
275     return 0;
276 }
277 
278 void gap_drop_link_key_for_bd_addr(bd_addr_t addr){
279     if (hci_stack->link_key_db) {
280         hci_stack->link_key_db->delete_link_key(addr);
281     }
282 }
283 
284 static int hci_is_le_connection(hci_connection_t * connection){
285     return  connection->address_type == BD_ADDR_TYPE_LE_PUBLIC ||
286     connection->address_type == BD_ADDR_TYPE_LE_RANDOM;
287 }
288 
289 
290 /**
291  * count connections
292  */
293 static int nr_hci_connections(void){
294     int count = 0;
295     btstack_linked_item_t *it;
296     for (it = (btstack_linked_item_t *) hci_stack->connections; it ; it = it->next, count++);
297     return count;
298 }
299 
300 static int hci_number_free_acl_slots_for_connection_type(bd_addr_type_t address_type){
301 
302     int num_packets_sent_classic = 0;
303     int num_packets_sent_le = 0;
304 
305     btstack_linked_item_t *it;
306     for (it = (btstack_linked_item_t *) hci_stack->connections; it ; it = it->next){
307         hci_connection_t * connection = (hci_connection_t *) it;
308         if (connection->address_type == BD_ADDR_TYPE_CLASSIC){
309             num_packets_sent_classic += connection->num_acl_packets_sent;
310         } else {
311             num_packets_sent_le += connection->num_acl_packets_sent;
312         }
313     }
314 
315     int free_slots_classic = hci_stack->acl_packets_total_num - num_packets_sent_classic;
316     int free_slots_le = 0;
317 
318     if (free_slots_classic < 0){
319         log_error("hci_number_free_acl_slots: outgoing classic packets (%u) > total classic packets (%u)", num_packets_sent_classic, hci_stack->acl_packets_total_num);
320         return 0;
321     }
322 
323     if (hci_stack->le_acl_packets_total_num){
324         // if we have LE slots, they are used
325         free_slots_le = hci_stack->le_acl_packets_total_num - num_packets_sent_le;
326         if (free_slots_le < 0){
327             log_error("hci_number_free_acl_slots: outgoing le packets (%u) > total le packets (%u)", num_packets_sent_le, hci_stack->le_acl_packets_total_num);
328             return 0;
329         }
330     } else {
331         // otherwise, classic slots are used for LE, too
332         free_slots_classic -= num_packets_sent_le;
333         if (free_slots_classic < 0){
334             log_error("hci_number_free_acl_slots: outgoing classic + le packets (%u + %u) > total packets (%u)", num_packets_sent_classic, num_packets_sent_le, hci_stack->acl_packets_total_num);
335             return 0;
336         }
337     }
338 
339     switch (address_type){
340         case BD_ADDR_TYPE_UNKNOWN:
341             log_error("hci_number_free_acl_slots: unknown address type");
342             return 0;
343 
344         case BD_ADDR_TYPE_CLASSIC:
345             return free_slots_classic;
346 
347         default:
348            if (hci_stack->le_acl_packets_total_num){
349                return free_slots_le;
350            }
351            return free_slots_classic;
352     }
353 }
354 
355 int hci_number_free_acl_slots_for_handle(hci_con_handle_t con_handle){
356     // get connection type
357     hci_connection_t * connection = hci_connection_for_handle(con_handle);
358     if (!connection){
359         log_error("hci_number_free_acl_slots: handle 0x%04x not in connection list", con_handle);
360         return 0;
361     }
362     return hci_number_free_acl_slots_for_connection_type(connection->address_type);
363 }
364 
365 static int hci_number_free_sco_slots(void){
366     int num_sco_packets_sent = 0;
367     btstack_linked_item_t *it;
368     for (it = (btstack_linked_item_t *) hci_stack->connections; it ; it = it->next){
369         hci_connection_t * connection = (hci_connection_t *) it;
370         num_sco_packets_sent += connection->num_sco_packets_sent;
371     }
372     if (num_sco_packets_sent > hci_stack->sco_packets_total_num){
373         log_info("hci_number_free_sco_slots:packets (%u) > total packets (%u)", num_sco_packets_sent, hci_stack->sco_packets_total_num);
374         return 0;
375     }
376     // log_info("hci_number_free_sco_slots u", handle, num_sco_packets_sent);
377     return hci_stack->sco_packets_total_num - num_sco_packets_sent;
378 }
379 
380 // new functions replacing hci_can_send_packet_now[_using_packet_buffer]
381 int hci_can_send_command_packet_now(void){
382     if (hci_stack->hci_packet_buffer_reserved) return 0;
383 
384     // check for async hci transport implementations
385     if (hci_stack->hci_transport->can_send_packet_now){
386         if (!hci_stack->hci_transport->can_send_packet_now(HCI_COMMAND_DATA_PACKET)){
387             return 0;
388         }
389     }
390 
391     return hci_stack->num_cmd_packets > 0;
392 }
393 
394 static int hci_transport_can_send_prepared_packet_now(uint8_t packet_type){
395     // check for async hci transport implementations
396     if (!hci_stack->hci_transport->can_send_packet_now) return 1;
397     return hci_stack->hci_transport->can_send_packet_now(packet_type);
398 }
399 
400 static int hci_can_send_prepared_acl_packet_for_address_type(bd_addr_type_t address_type){
401     if (!hci_transport_can_send_prepared_packet_now(HCI_ACL_DATA_PACKET)) return 0;
402     return hci_number_free_acl_slots_for_connection_type(address_type) > 0;
403 }
404 
405 int hci_can_send_acl_classic_packet_now(void){
406     if (hci_stack->hci_packet_buffer_reserved) return 0;
407     return hci_can_send_prepared_acl_packet_for_address_type(BD_ADDR_TYPE_CLASSIC);
408 }
409 
410 int hci_can_send_acl_le_packet_now(void){
411     if (hci_stack->hci_packet_buffer_reserved) return 0;
412     return hci_can_send_prepared_acl_packet_for_address_type(BD_ADDR_TYPE_LE_PUBLIC);
413 }
414 
415 int hci_can_send_prepared_acl_packet_now(hci_con_handle_t con_handle) {
416     if (!hci_transport_can_send_prepared_packet_now(HCI_ACL_DATA_PACKET)) return 0;
417     return hci_number_free_acl_slots_for_handle(con_handle) > 0;
418 }
419 
420 int hci_can_send_acl_packet_now(hci_con_handle_t con_handle){
421     if (hci_stack->hci_packet_buffer_reserved) return 0;
422     return hci_can_send_prepared_acl_packet_now(con_handle);
423 }
424 
425 int hci_can_send_prepared_sco_packet_now(void){
426     if (!hci_transport_can_send_prepared_packet_now(HCI_SCO_DATA_PACKET)) {
427         hci_stack->sco_waiting_for_can_send_now = 1;
428         return 0;
429     }
430     if (!hci_stack->synchronous_flow_control_enabled) return 1;
431     return hci_number_free_sco_slots() > 0;
432 }
433 
434 int hci_can_send_sco_packet_now(void){
435     if (hci_stack->hci_packet_buffer_reserved) {
436         hci_stack->sco_waiting_for_can_send_now = 1;
437         return 0;
438     }
439     return hci_can_send_prepared_sco_packet_now();
440 }
441 
442 // used for internal checks in l2cap.c
443 int hci_is_packet_buffer_reserved(void){
444     return hci_stack->hci_packet_buffer_reserved;
445 }
446 
447 // reserves outgoing packet buffer. @returns 1 if successful
448 int hci_reserve_packet_buffer(void){
449     if (hci_stack->hci_packet_buffer_reserved) {
450         log_error("hci_reserve_packet_buffer called but buffer already reserved");
451         return 0;
452     }
453     hci_stack->hci_packet_buffer_reserved = 1;
454     return 1;
455 }
456 
457 void hci_release_packet_buffer(void){
458     hci_stack->hci_packet_buffer_reserved = 0;
459 }
460 
461 // assumption: synchronous implementations don't provide can_send_packet_now as they don't keep the buffer after the call
462 static int hci_transport_synchronous(void){
463     return hci_stack->hci_transport->can_send_packet_now == NULL;
464 }
465 
466 static int hci_send_acl_packet_fragments(hci_connection_t *connection){
467 
468     // log_info("hci_send_acl_packet_fragments  %u/%u (con 0x%04x)", hci_stack->acl_fragmentation_pos, hci_stack->acl_fragmentation_total_size, connection->con_handle);
469 
470     // max ACL data packet length depends on connection type (LE vs. Classic) and available buffers
471     uint16_t max_acl_data_packet_length = hci_stack->acl_data_packet_length;
472     if (hci_is_le_connection(connection) && hci_stack->le_data_packets_length > 0){
473         max_acl_data_packet_length = hci_stack->le_data_packets_length;
474     }
475 
476     // testing: reduce buffer to minimum
477     // max_acl_data_packet_length = 52;
478 
479     int err;
480     // multiple packets could be send on a synchronous HCI transport
481     while (1){
482 
483         // get current data
484         const uint16_t acl_header_pos = hci_stack->acl_fragmentation_pos - 4;
485         int current_acl_data_packet_length = hci_stack->acl_fragmentation_total_size - hci_stack->acl_fragmentation_pos;
486         int more_fragments = 0;
487 
488         // if ACL packet is larger than Bluetooth packet buffer, only send max_acl_data_packet_length
489         if (current_acl_data_packet_length > max_acl_data_packet_length){
490             more_fragments = 1;
491             current_acl_data_packet_length = max_acl_data_packet_length;
492         }
493 
494         // copy handle_and_flags if not first fragment and update packet boundary flags to be 01 (continuing fragmnent)
495         if (acl_header_pos > 0){
496             uint16_t handle_and_flags = little_endian_read_16(hci_stack->hci_packet_buffer, 0);
497             handle_and_flags = (handle_and_flags & 0xcfff) | (1 << 12);
498             little_endian_store_16(hci_stack->hci_packet_buffer, acl_header_pos, handle_and_flags);
499         }
500 
501         // update header len
502         little_endian_store_16(hci_stack->hci_packet_buffer, acl_header_pos + 2, current_acl_data_packet_length);
503 
504         // count packet
505         connection->num_acl_packets_sent++;
506 
507         // send packet
508         uint8_t * packet = &hci_stack->hci_packet_buffer[acl_header_pos];
509         const int size = current_acl_data_packet_length + 4;
510         hci_dump_packet(HCI_ACL_DATA_PACKET, 0, packet, size);
511         err = hci_stack->hci_transport->send_packet(HCI_ACL_DATA_PACKET, packet, size);
512 
513         // done yet?
514         if (!more_fragments) break;
515 
516         // update start of next fragment to send
517         hci_stack->acl_fragmentation_pos += current_acl_data_packet_length;
518 
519         // can send more?
520         if (!hci_can_send_prepared_acl_packet_now(connection->con_handle)) return err;
521     }
522 
523     // done
524     hci_stack->acl_fragmentation_pos = 0;
525     hci_stack->acl_fragmentation_total_size = 0;
526 
527     // release buffer now for synchronous transport
528     if (hci_transport_synchronous()){
529         hci_release_packet_buffer();
530         // notify upper stack that it might be possible to send again
531         uint8_t event[] = { HCI_EVENT_TRANSPORT_PACKET_SENT, 0};
532         hci_emit_event(&event[0], sizeof(event), 0);  // don't dump
533     }
534 
535     return err;
536 }
537 
538 // pre: caller has reserved the packet buffer
539 int hci_send_acl_packet_buffer(int size){
540 
541     // log_info("hci_send_acl_packet_buffer size %u", size);
542 
543     if (!hci_stack->hci_packet_buffer_reserved) {
544         log_error("hci_send_acl_packet_buffer called without reserving packet buffer");
545         return 0;
546     }
547 
548     uint8_t * packet = hci_stack->hci_packet_buffer;
549     hci_con_handle_t con_handle = READ_ACL_CONNECTION_HANDLE(packet);
550 
551     // check for free places on Bluetooth module
552     if (!hci_can_send_prepared_acl_packet_now(con_handle)) {
553         log_error("hci_send_acl_packet_buffer called but no free ACL buffers on controller");
554         hci_release_packet_buffer();
555         return BTSTACK_ACL_BUFFERS_FULL;
556     }
557 
558     hci_connection_t *connection = hci_connection_for_handle( con_handle);
559     if (!connection) {
560         log_error("hci_send_acl_packet_buffer called but no connection for handle 0x%04x", con_handle);
561         hci_release_packet_buffer();
562         return 0;
563     }
564     hci_connection_timestamp(connection);
565 
566     // hci_dump_packet( HCI_ACL_DATA_PACKET, 0, packet, size);
567 
568     // setup data
569     hci_stack->acl_fragmentation_total_size = size;
570     hci_stack->acl_fragmentation_pos = 4;   // start of L2CAP packet
571 
572     return hci_send_acl_packet_fragments(connection);
573 }
574 
575 // pre: caller has reserved the packet buffer
576 int hci_send_sco_packet_buffer(int size){
577 
578     // log_info("hci_send_acl_packet_buffer size %u", size);
579 
580     if (!hci_stack->hci_packet_buffer_reserved) {
581         log_error("hci_send_acl_packet_buffer called without reserving packet buffer");
582         return 0;
583     }
584 
585     uint8_t * packet = hci_stack->hci_packet_buffer;
586 
587     // skip checks in loopback mode
588     if (!hci_stack->loopback_mode){
589         hci_con_handle_t con_handle = READ_ACL_CONNECTION_HANDLE(packet);   // same for ACL and SCO
590 
591         // check for free places on Bluetooth module
592         if (!hci_can_send_prepared_sco_packet_now()) {
593             log_error("hci_send_sco_packet_buffer called but no free ACL buffers on controller");
594             hci_release_packet_buffer();
595             return BTSTACK_ACL_BUFFERS_FULL;
596         }
597 
598         // track send packet in connection struct
599         hci_connection_t *connection = hci_connection_for_handle( con_handle);
600         if (!connection) {
601             log_error("hci_send_sco_packet_buffer called but no connection for handle 0x%04x", con_handle);
602             hci_release_packet_buffer();
603             return 0;
604         }
605         connection->num_sco_packets_sent++;
606     }
607 
608     hci_dump_packet( HCI_SCO_DATA_PACKET, 0, packet, size);
609     int err = hci_stack->hci_transport->send_packet(HCI_SCO_DATA_PACKET, packet, size);
610 
611     if (hci_transport_synchronous()){
612         hci_release_packet_buffer();
613         // notify upper stack that it might be possible to send again
614         uint8_t event[] = { HCI_EVENT_TRANSPORT_PACKET_SENT, 0};
615         hci_emit_event(&event[0], sizeof(event), 0);    // don't dump
616     }
617 
618     return err;
619 }
620 
621 static void acl_handler(uint8_t *packet, int size){
622 
623     // log_info("acl_handler: size %u", size);
624 
625     // get info
626     hci_con_handle_t con_handle = READ_ACL_CONNECTION_HANDLE(packet);
627     hci_connection_t *conn      = hci_connection_for_handle(con_handle);
628     uint8_t  acl_flags          = READ_ACL_FLAGS(packet);
629     uint16_t acl_length         = READ_ACL_LENGTH(packet);
630 
631     // ignore non-registered handle
632     if (!conn){
633         log_error( "hci.c: acl_handler called with non-registered handle %u!" , con_handle);
634         return;
635     }
636 
637     // assert packet is complete
638     if (acl_length + 4 != size){
639         log_error("hci.c: acl_handler called with ACL packet of wrong size %u, expected %u => dropping packet", size, acl_length + 4);
640         return;
641     }
642 
643     // update idle timestamp
644     hci_connection_timestamp(conn);
645 
646     // handle different packet types
647     switch (acl_flags & 0x03) {
648 
649         case 0x01: // continuation fragment
650 
651             // sanity checks
652             if (conn->acl_recombination_pos == 0) {
653                 log_error( "ACL Cont Fragment but no first fragment for handle 0x%02x", con_handle);
654                 return;
655             }
656             if (conn->acl_recombination_pos + acl_length > 4 + HCI_ACL_BUFFER_SIZE){
657                 log_error( "ACL Cont Fragment to large: combined packet %u > buffer size %u for handle 0x%02x",
658                     conn->acl_recombination_pos + acl_length, 4 + HCI_ACL_BUFFER_SIZE, con_handle);
659                 conn->acl_recombination_pos = 0;
660                 return;
661             }
662 
663             // append fragment payload (header already stored)
664             memcpy(&conn->acl_recombination_buffer[HCI_INCOMING_PRE_BUFFER_SIZE + conn->acl_recombination_pos], &packet[4], acl_length );
665             conn->acl_recombination_pos += acl_length;
666 
667             // log_error( "ACL Cont Fragment: acl_len %u, combined_len %u, l2cap_len %u", acl_length,
668             //        conn->acl_recombination_pos, conn->acl_recombination_length);
669 
670             // forward complete L2CAP packet if complete.
671             if (conn->acl_recombination_pos >= conn->acl_recombination_length + 4 + 4){ // pos already incl. ACL header
672                 hci_emit_acl_packet(&conn->acl_recombination_buffer[HCI_INCOMING_PRE_BUFFER_SIZE], conn->acl_recombination_pos);
673                 // reset recombination buffer
674                 conn->acl_recombination_length = 0;
675                 conn->acl_recombination_pos = 0;
676             }
677             break;
678 
679         case 0x02: { // first fragment
680 
681             // sanity check
682             if (conn->acl_recombination_pos) {
683                 log_error( "ACL First Fragment but data in buffer for handle 0x%02x, dropping stale fragments", con_handle);
684                 conn->acl_recombination_pos = 0;
685             }
686 
687             // peek into L2CAP packet!
688             uint16_t l2cap_length = READ_L2CAP_LENGTH( packet );
689 
690             // log_info( "ACL First Fragment: acl_len %u, l2cap_len %u", acl_length, l2cap_length);
691 
692             // compare fragment size to L2CAP packet size
693             if (acl_length >= l2cap_length + 4){
694                 // forward fragment as L2CAP packet
695                 hci_emit_acl_packet(packet, acl_length + 4);
696             } else {
697 
698                 if (acl_length > HCI_ACL_BUFFER_SIZE){
699                     log_error( "ACL First Fragment to large: fragment %u > buffer size %u for handle 0x%02x",
700                         4 + acl_length, 4 + HCI_ACL_BUFFER_SIZE, con_handle);
701                     return;
702                 }
703 
704                 // store first fragment and tweak acl length for complete package
705                 memcpy(&conn->acl_recombination_buffer[HCI_INCOMING_PRE_BUFFER_SIZE], packet, acl_length + 4);
706                 conn->acl_recombination_pos    = acl_length + 4;
707                 conn->acl_recombination_length = l2cap_length;
708                 little_endian_store_16(conn->acl_recombination_buffer, HCI_INCOMING_PRE_BUFFER_SIZE + 2, l2cap_length +4);
709             }
710             break;
711 
712         }
713         default:
714             log_error( "hci.c: acl_handler called with invalid packet boundary flags %u", acl_flags & 0x03);
715             return;
716     }
717 
718     // execute main loop
719     hci_run();
720 }
721 
722 static void hci_shutdown_connection(hci_connection_t *conn){
723     log_info("Connection closed: handle 0x%x, %s", conn->con_handle, bd_addr_to_str(conn->address));
724 
725     btstack_run_loop_remove_timer(&conn->timeout);
726 
727     btstack_linked_list_remove(&hci_stack->connections, (btstack_linked_item_t *) conn);
728     btstack_memory_hci_connection_free( conn );
729 
730     // now it's gone
731     hci_emit_nr_connections_changed();
732 }
733 
734 static const uint16_t packet_type_sizes[] = {
735     0, HCI_ACL_2DH1_SIZE, HCI_ACL_3DH1_SIZE, HCI_ACL_DM1_SIZE,
736     HCI_ACL_DH1_SIZE, 0, 0, 0,
737     HCI_ACL_2DH3_SIZE, HCI_ACL_3DH3_SIZE, HCI_ACL_DM3_SIZE, HCI_ACL_DH3_SIZE,
738     HCI_ACL_2DH5_SIZE, HCI_ACL_3DH5_SIZE, HCI_ACL_DM5_SIZE, HCI_ACL_DH5_SIZE
739 };
740 static const uint8_t  packet_type_feature_requirement_bit[] = {
741      0, // 3 slot packets
742      1, // 5 slot packets
743     25, // EDR 2 mpbs
744     26, // EDR 3 mbps
745     39, // 3 slot EDR packts
746     40, // 5 slot EDR packet
747 };
748 static const uint16_t packet_type_feature_packet_mask[] = {
749     0x0f00, // 3 slot packets
750     0xf000, // 5 slot packets
751     0x1102, // EDR 2 mpbs
752     0x2204, // EDR 3 mbps
753     0x0300, // 3 slot EDR packts
754     0x3000, // 5 slot EDR packet
755 };
756 
757 static uint16_t hci_acl_packet_types_for_buffer_size_and_local_features(uint16_t buffer_size, uint8_t * local_supported_features){
758     // enable packet types based on size
759     uint16_t packet_types = 0;
760     unsigned int i;
761     for (i=0;i<16;i++){
762         if (packet_type_sizes[i] == 0) continue;
763         if (packet_type_sizes[i] <= buffer_size){
764             packet_types |= 1 << i;
765         }
766     }
767     // disable packet types due to missing local supported features
768     for (i=0;i<sizeof(packet_type_feature_requirement_bit);i++){
769         int bit_idx = packet_type_feature_requirement_bit[i];
770         int feature_set = (local_supported_features[bit_idx >> 3] & (1<<(bit_idx & 7))) != 0;
771         if (feature_set) continue;
772         log_info("Features bit %02u is not set, removing packet types 0x%04x", bit_idx, packet_type_feature_packet_mask[i]);
773         packet_types &= ~packet_type_feature_packet_mask[i];
774     }
775     // flip bits for "may not be used"
776     packet_types ^= 0x3306;
777     return packet_types;
778 }
779 
780 uint16_t hci_usable_acl_packet_types(void){
781     return hci_stack->packet_types;
782 }
783 
784 uint8_t* hci_get_outgoing_packet_buffer(void){
785     // hci packet buffer is >= acl data packet length
786     return hci_stack->hci_packet_buffer;
787 }
788 
789 uint16_t hci_max_acl_data_packet_length(void){
790     return hci_stack->acl_data_packet_length;
791 }
792 
793 int hci_non_flushable_packet_boundary_flag_supported(void){
794     // No. 54, byte 6, bit 6
795     return (hci_stack->local_supported_features[6] & (1 << 6)) != 0;
796 }
797 
798 static int gap_ssp_supported(void){
799     // No. 51, byte 6, bit 3
800     return (hci_stack->local_supported_features[6] & (1 << 3)) != 0;
801 }
802 
803 static int hci_classic_supported(void){
804     // No. 37, byte 4, bit 5, = No BR/EDR Support
805     return (hci_stack->local_supported_features[4] & (1 << 5)) == 0;
806 }
807 
808 static int hci_le_supported(void){
809 #ifdef ENABLE_BLE
810     // No. 37, byte 4, bit 6 = LE Supported (Controller)
811     return (hci_stack->local_supported_features[4] & (1 << 6)) != 0;
812 #else
813     return 0;
814 #endif
815 }
816 
817 // get addr type and address used in advertisement packets
818 void gap_advertisements_get_address(uint8_t * addr_type, bd_addr_t  addr){
819     *addr_type = hci_stack->adv_addr_type;
820     if (hci_stack->adv_addr_type){
821         memcpy(addr, hci_stack->adv_address, 6);
822     } else {
823         memcpy(addr, hci_stack->local_bd_addr, 6);
824     }
825 }
826 
827 #ifdef ENABLE_BLE
828 void le_handle_advertisement_report(uint8_t *packet, int size){
829     int offset = 3;
830     int num_reports = packet[offset];
831     offset += 1;
832 
833     int i;
834     log_info("HCI: handle adv report with num reports: %d", num_reports);
835     uint8_t event[12 + LE_ADVERTISING_DATA_SIZE]; // use upper bound to avoid var size automatic var
836     for (i=0; i<num_reports;i++){
837         uint8_t data_length = packet[offset + 8];
838         uint8_t event_size = 10 + data_length;
839         int pos = 0;
840         event[pos++] = GAP_LE_EVENT_ADVERTISING_REPORT;
841         event[pos++] = event_size;
842         memcpy(&event[pos], &packet[offset], 1+1+6); // event type + address type + address
843         offset += 8;
844         pos += 8;
845         event[pos++] = packet[offset + 1 + data_length]; // rssi
846         event[pos++] = packet[offset++]; //data_length;
847         memcpy(&event[pos], &packet[offset], data_length);
848         pos += data_length;
849         offset += data_length + 1; // rssi
850         hci_emit_event(event, pos, 1);
851     }
852 }
853 #endif
854 
855 static uint32_t hci_transport_uart_get_main_baud_rate(void){
856     if (!hci_stack->config) return 0;
857     uint32_t baud_rate = ((hci_transport_config_uart_t *)hci_stack->config)->baudrate_main;
858     // Limit baud rate for Broadcom chipsets to 3 mbps
859     if (hci_stack->manufacturer == COMPANY_ID_BROADCOM_CORPORATION && baud_rate > 3000000){
860         baud_rate = 3000000;
861     }
862     return baud_rate;
863 }
864 
865 static void hci_initialization_timeout_handler(btstack_timer_source_t * ds){
866     switch (hci_stack->substate){
867         case HCI_INIT_W4_SEND_RESET:
868             log_info("Resend HCI Reset");
869             hci_stack->substate = HCI_INIT_SEND_RESET;
870             hci_stack->num_cmd_packets = 1;
871             hci_run();
872             break;
873         case HCI_INIT_W4_CUSTOM_INIT_CSR_WARM_BOOT:
874             log_info("Resend HCI Reset - CSR Warm Boot");
875             hci_stack->substate = HCI_INIT_SEND_RESET_CSR_WARM_BOOT;
876             hci_stack->num_cmd_packets = 1;
877             hci_run();
878             break;
879         case HCI_INIT_W4_SEND_BAUD_CHANGE: {
880 			uint32_t baud_rate = hci_transport_uart_get_main_baud_rate();
881             log_info("Local baud rate change to %"PRIu32"(timeout handler)", baud_rate);
882             hci_stack->hci_transport->set_baudrate(baud_rate);
883             // For CSR, HCI Reset is sent on new baud rate
884             if (hci_stack->manufacturer == COMPANY_ID_CAMBRIDGE_SILICON_RADIO){
885                 hci_stack->substate = HCI_INIT_SEND_RESET_CSR_WARM_BOOT;
886                 hci_run();
887             }
888             break;
889         }
890         default:
891             break;
892     }
893 }
894 
895 static void hci_initializing_next_state(void){
896     hci_stack->substate = (hci_substate_t )( ((int) hci_stack->substate) + 1);
897 }
898 
899 // assumption: hci_can_send_command_packet_now() == true
900 static void hci_initializing_run(void){
901     log_info("hci_initializing_run: substate %u", hci_stack->substate);
902     switch (hci_stack->substate){
903         case HCI_INIT_SEND_RESET:
904             hci_state_reset();
905 
906 #ifndef HAVE_PLATFORM_IPHONE_OS
907             // prepare reset if command complete not received in 100ms
908             btstack_run_loop_set_timer(&hci_stack->timeout, 100);
909             btstack_run_loop_set_timer_handler(&hci_stack->timeout, hci_initialization_timeout_handler);
910             btstack_run_loop_add_timer(&hci_stack->timeout);
911 #endif
912             // send command
913             hci_stack->substate = HCI_INIT_W4_SEND_RESET;
914             hci_send_cmd(&hci_reset);
915             break;
916         case HCI_INIT_SEND_READ_LOCAL_VERSION_INFORMATION:
917             hci_send_cmd(&hci_read_local_version_information);
918             hci_stack->substate = HCI_INIT_W4_SEND_READ_LOCAL_VERSION_INFORMATION;
919             break;
920         case HCI_INIT_SEND_RESET_CSR_WARM_BOOT:
921             hci_state_reset();
922             // prepare reset if command complete not received in 100ms
923             btstack_run_loop_set_timer(&hci_stack->timeout, 100);
924             btstack_run_loop_set_timer_handler(&hci_stack->timeout, hci_initialization_timeout_handler);
925             btstack_run_loop_add_timer(&hci_stack->timeout);
926             // send command
927             hci_stack->substate = HCI_INIT_W4_CUSTOM_INIT_CSR_WARM_BOOT;
928             hci_send_cmd(&hci_reset);
929             break;
930         case HCI_INIT_SEND_RESET_ST_WARM_BOOT:
931             hci_state_reset();
932             hci_stack->substate = HCI_INIT_W4_SEND_RESET_ST_WARM_BOOT;
933             hci_send_cmd(&hci_reset);
934             break;
935         case HCI_INIT_SEND_BAUD_CHANGE: {
936             uint32_t baud_rate = hci_transport_uart_get_main_baud_rate();
937             hci_stack->chipset->set_baudrate_command(baud_rate, hci_stack->hci_packet_buffer);
938             hci_stack->last_cmd_opcode = little_endian_read_16(hci_stack->hci_packet_buffer, 0);
939             hci_stack->substate = HCI_INIT_W4_SEND_BAUD_CHANGE;
940             hci_send_cmd_packet(hci_stack->hci_packet_buffer, 3 + hci_stack->hci_packet_buffer[2]);
941             // STLC25000D: baudrate change happens within 0.5 s after command was send,
942             // use timer to update baud rate after 100 ms (knowing exactly, when command was sent is non-trivial)
943             if (hci_stack->manufacturer == COMPANY_ID_ST_MICROELECTRONICS){
944                 btstack_run_loop_set_timer(&hci_stack->timeout, 100);
945                 btstack_run_loop_add_timer(&hci_stack->timeout);
946             }
947             break;
948         }
949         case HCI_INIT_SEND_BAUD_CHANGE_BCM: {
950             uint32_t baud_rate = hci_transport_uart_get_main_baud_rate();
951             hci_stack->chipset->set_baudrate_command(baud_rate, hci_stack->hci_packet_buffer);
952             hci_stack->last_cmd_opcode = little_endian_read_16(hci_stack->hci_packet_buffer, 0);
953             hci_stack->substate = HCI_INIT_W4_SEND_BAUD_CHANGE_BCM;
954             hci_send_cmd_packet(hci_stack->hci_packet_buffer, 3 + hci_stack->hci_packet_buffer[2]);
955             break;
956         }
957         case HCI_INIT_CUSTOM_INIT:
958             log_info("Custom init");
959             // Custom initialization
960             if (hci_stack->chipset && hci_stack->chipset->next_command){
961                 int valid_cmd = (*hci_stack->chipset->next_command)(hci_stack->hci_packet_buffer);
962                 if (valid_cmd){
963                     int size = 3 + hci_stack->hci_packet_buffer[2];
964                     hci_stack->last_cmd_opcode = little_endian_read_16(hci_stack->hci_packet_buffer, 0);
965                     hci_dump_packet(HCI_COMMAND_DATA_PACKET, 0, hci_stack->hci_packet_buffer, size);
966                     switch (valid_cmd) {
967                         case 1:
968                         default:
969                             hci_stack->substate = HCI_INIT_W4_CUSTOM_INIT;
970                             break;
971                         case 2: // CSR Warm Boot: Wait a bit, then send HCI Reset until HCI Command Complete
972                             log_info("CSR Warm Boot");
973                             btstack_run_loop_set_timer(&hci_stack->timeout, 100);
974                             btstack_run_loop_set_timer_handler(&hci_stack->timeout, hci_initialization_timeout_handler);
975                             btstack_run_loop_add_timer(&hci_stack->timeout);
976                             if (hci_stack->manufacturer == COMPANY_ID_CAMBRIDGE_SILICON_RADIO
977                                 && hci_stack->config
978                                 && hci_stack->chipset
979                                 // && hci_stack->chipset->set_baudrate_command -- there's no such command
980                                 && hci_stack->hci_transport->set_baudrate
981                                 && hci_transport_uart_get_main_baud_rate()){
982                                 hci_stack->substate = HCI_INIT_W4_SEND_BAUD_CHANGE;
983                             } else {
984                                hci_stack->substate = HCI_INIT_W4_CUSTOM_INIT_CSR_WARM_BOOT;
985                             }
986                             break;
987                     }
988                     hci_stack->hci_transport->send_packet(HCI_COMMAND_DATA_PACKET, hci_stack->hci_packet_buffer, size);
989                     break;
990                 }
991                 log_info("hci_run: init script done");
992 
993                 // Init script download causes baud rate to reset on Broadcom chipsets, restore UART baud rate if needed
994                 if (hci_stack->manufacturer == COMPANY_ID_BROADCOM_CORPORATION){
995                     int need_baud_change = hci_stack->config
996                         && hci_stack->chipset
997                         && hci_stack->chipset->set_baudrate_command
998                         && hci_stack->hci_transport->set_baudrate
999                         && ((hci_transport_config_uart_t *)hci_stack->config)->baudrate_main;
1000                     if (need_baud_change) {
1001                         uint32_t baud_rate = ((hci_transport_config_uart_t *)hci_stack->config)->baudrate_init;
1002                         log_info("Local baud rate change to %"PRIu32" after init script (bcm)", baud_rate);
1003                         hci_stack->hci_transport->set_baudrate(baud_rate);
1004                     }
1005                 }
1006             }
1007             // otherwise continue
1008             hci_stack->substate = HCI_INIT_W4_READ_LOCAL_SUPPORTED_COMMANDS;
1009             hci_send_cmd(&hci_read_local_supported_commands);
1010             break;
1011         case HCI_INIT_SET_BD_ADDR:
1012             log_info("Set Public BD ADDR to %s", bd_addr_to_str(hci_stack->custom_bd_addr));
1013             hci_stack->chipset->set_bd_addr_command(hci_stack->custom_bd_addr, hci_stack->hci_packet_buffer);
1014             hci_stack->last_cmd_opcode = little_endian_read_16(hci_stack->hci_packet_buffer, 0);
1015             hci_stack->substate = HCI_INIT_W4_SET_BD_ADDR;
1016             hci_send_cmd_packet(hci_stack->hci_packet_buffer, 3 + hci_stack->hci_packet_buffer[2]);
1017             break;
1018         case HCI_INIT_READ_BD_ADDR:
1019             hci_stack->substate = HCI_INIT_W4_READ_BD_ADDR;
1020             hci_send_cmd(&hci_read_bd_addr);
1021             break;
1022         case HCI_INIT_READ_BUFFER_SIZE:
1023             hci_stack->substate = HCI_INIT_W4_READ_BUFFER_SIZE;
1024             hci_send_cmd(&hci_read_buffer_size);
1025             break;
1026         case HCI_INIT_READ_LOCAL_SUPPORTED_FEATURES:
1027             hci_stack->substate = HCI_INIT_W4_READ_LOCAL_SUPPORTED_FEATURES;
1028             hci_send_cmd(&hci_read_local_supported_features);
1029             break;
1030         case HCI_INIT_SET_EVENT_MASK:
1031             hci_stack->substate = HCI_INIT_W4_SET_EVENT_MASK;
1032             if (hci_le_supported()){
1033                 hci_send_cmd(&hci_set_event_mask,0xffffffff, 0x3FFFFFFF);
1034             } else {
1035                 // Kensington Bluetooth 2.1 USB Dongle (CSR Chipset) returns an error for 0xffff...
1036                 hci_send_cmd(&hci_set_event_mask,0xffffffff, 0x1FFFFFFF);
1037             }
1038             break;
1039         case HCI_INIT_WRITE_SIMPLE_PAIRING_MODE:
1040             hci_stack->substate = HCI_INIT_W4_WRITE_SIMPLE_PAIRING_MODE;
1041             hci_send_cmd(&hci_write_simple_pairing_mode, hci_stack->ssp_enable);
1042             break;
1043         case HCI_INIT_WRITE_PAGE_TIMEOUT:
1044             hci_stack->substate = HCI_INIT_W4_WRITE_PAGE_TIMEOUT;
1045             hci_send_cmd(&hci_write_page_timeout, 0x6000);  // ca. 15 sec
1046             break;
1047         case HCI_INIT_WRITE_CLASS_OF_DEVICE:
1048             hci_stack->substate = HCI_INIT_W4_WRITE_CLASS_OF_DEVICE;
1049             hci_send_cmd(&hci_write_class_of_device, hci_stack->class_of_device);
1050             break;
1051         case HCI_INIT_WRITE_LOCAL_NAME:
1052             hci_stack->substate = HCI_INIT_W4_WRITE_LOCAL_NAME;
1053             if (hci_stack->local_name){
1054                 hci_send_cmd(&hci_write_local_name, hci_stack->local_name);
1055             } else {
1056                 char local_name[30];
1057                 // BTstack-11:22:33:44:55:66
1058                 strcpy(local_name, "BTstack ");
1059                 strcat(local_name, bd_addr_to_str(hci_stack->local_bd_addr));
1060                 log_info("---> Name %s", local_name);
1061                 hci_send_cmd(&hci_write_local_name, local_name);
1062             }
1063             break;
1064         case HCI_INIT_WRITE_SCAN_ENABLE:
1065             hci_send_cmd(&hci_write_scan_enable, (hci_stack->connectable << 1) | hci_stack->discoverable); // page scan
1066             hci_stack->substate = HCI_INIT_W4_WRITE_SCAN_ENABLE;
1067             break;
1068         case HCI_INIT_WRITE_SYNCHRONOUS_FLOW_CONTROL_ENABLE:
1069             hci_stack->substate = HCI_INIT_W4_WRITE_SYNCHRONOUS_FLOW_CONTROL_ENABLE;
1070             hci_send_cmd(&hci_write_synchronous_flow_control_enable, 1); // SCO tracking enabled
1071             break;
1072 #ifdef ENABLE_BLE
1073         // LE INIT
1074         case HCI_INIT_LE_READ_BUFFER_SIZE:
1075             hci_stack->substate = HCI_INIT_W4_LE_READ_BUFFER_SIZE;
1076             hci_send_cmd(&hci_le_read_buffer_size);
1077             break;
1078         case HCI_INIT_WRITE_LE_HOST_SUPPORTED:
1079             // LE Supported Host = 1, Simultaneous Host = 0
1080             hci_stack->substate = HCI_INIT_W4_WRITE_LE_HOST_SUPPORTED;
1081             hci_send_cmd(&hci_write_le_host_supported, 1, 0);
1082             break;
1083         case HCI_INIT_READ_WHITE_LIST_SIZE:
1084             hci_stack->substate = HCI_INIT_W4_READ_WHITE_LIST_SIZE;
1085             hci_send_cmd(&hci_le_read_white_list_size);
1086             break;
1087         case HCI_INIT_LE_SET_SCAN_PARAMETERS:
1088             // LE Scan Parameters: active scanning, 300 ms interval, 30 ms window, public address, accept all advs
1089             hci_stack->substate = HCI_INIT_W4_LE_SET_SCAN_PARAMETERS;
1090             hci_send_cmd(&hci_le_set_scan_parameters, 1, 0x1e0, 0x30, 0, 0);
1091             break;
1092 #endif
1093         default:
1094             return;
1095     }
1096 }
1097 
1098 static void hci_init_done(void){
1099     // done. tell the app
1100     log_info("hci_init_done -> HCI_STATE_WORKING");
1101     hci_stack->state = HCI_STATE_WORKING;
1102     hci_emit_state();
1103     hci_run();
1104 }
1105 
1106 static void hci_initializing_event_handler(uint8_t * packet, uint16_t size){
1107     uint8_t command_completed = 0;
1108 
1109     if (packet[0] == HCI_EVENT_COMMAND_COMPLETE){
1110         uint16_t opcode = little_endian_read_16(packet,3);
1111         if (opcode == hci_stack->last_cmd_opcode){
1112             command_completed = 1;
1113             log_info("Command complete for expected opcode %04x at substate %u", opcode, hci_stack->substate);
1114         } else {
1115             log_info("Command complete for opcode %04x, expected %04x", opcode, hci_stack->last_cmd_opcode);
1116         }
1117     }
1118 
1119     if (packet[0] == HCI_EVENT_COMMAND_STATUS){
1120         uint8_t  status = packet[2];
1121         uint16_t opcode = little_endian_read_16(packet,4);
1122         if (opcode == hci_stack->last_cmd_opcode){
1123             if (status){
1124                 command_completed = 1;
1125                 log_error("Command status error 0x%02x for expected opcode %04x at substate %u", status, opcode, hci_stack->substate);
1126             } else {
1127                 log_info("Command status OK for expected opcode %04x, waiting for command complete", opcode);
1128             }
1129         } else {
1130             log_info("Command status for opcode %04x, expected %04x", opcode, hci_stack->last_cmd_opcode);
1131         }
1132     }
1133 
1134     // Vendor == CSR
1135     if (hci_stack->substate == HCI_INIT_W4_CUSTOM_INIT && packet[0] == HCI_EVENT_VENDOR_SPECIFIC){
1136         // TODO: track actual command
1137         command_completed = 1;
1138     }
1139 
1140     // Vendor == Toshiba
1141     if (hci_stack->substate == HCI_INIT_W4_SEND_BAUD_CHANGE && packet[0] == HCI_EVENT_VENDOR_SPECIFIC){
1142         // TODO: track actual command
1143         command_completed = 1;
1144     }
1145 
1146     // Late response (> 100 ms) for HCI Reset e.g. on Toshiba TC35661:
1147     // Command complete for HCI Reset arrives after we've resent the HCI Reset command
1148     //
1149     // HCI Reset
1150     // Timeout 100 ms
1151     // HCI Reset
1152     // Command Complete Reset
1153     // HCI Read Local Version Information
1154     // Command Complete Reset - but we expected Command Complete Read Local Version Information
1155     // hang...
1156     //
1157     // Fix: Command Complete for HCI Reset in HCI_INIT_W4_SEND_READ_LOCAL_VERSION_INFORMATION trigger resend
1158     if (!command_completed
1159             && packet[0] == HCI_EVENT_COMMAND_COMPLETE
1160             && hci_stack->substate == HCI_INIT_W4_SEND_READ_LOCAL_VERSION_INFORMATION){
1161 
1162         uint16_t opcode = little_endian_read_16(packet,3);
1163         if (opcode == hci_reset.opcode){
1164             hci_stack->substate = HCI_INIT_SEND_READ_LOCAL_VERSION_INFORMATION;
1165             return;
1166         }
1167     }
1168 
1169 
1170 
1171     if (!command_completed) return;
1172 
1173     int need_baud_change = hci_stack->config
1174                         && hci_stack->chipset
1175                         && hci_stack->chipset->set_baudrate_command
1176                         && hci_stack->hci_transport->set_baudrate
1177                         && ((hci_transport_config_uart_t *)hci_stack->config)->baudrate_main;
1178 
1179     int need_addr_change = hci_stack->custom_bd_addr_set
1180                         && hci_stack->chipset
1181                         && hci_stack->chipset->set_bd_addr_command;
1182 
1183     switch(hci_stack->substate){
1184         case HCI_INIT_W4_SEND_RESET:
1185             btstack_run_loop_remove_timer(&hci_stack->timeout);
1186             break;
1187         case HCI_INIT_W4_SEND_READ_LOCAL_VERSION_INFORMATION:
1188             log_info("Received local version info, need baud change %u", need_baud_change);
1189             if (need_baud_change){
1190                 hci_stack->substate = HCI_INIT_SEND_BAUD_CHANGE;
1191                 return;
1192             }
1193             // skip baud change
1194             hci_stack->substate = HCI_INIT_CUSTOM_INIT;
1195             return;
1196         case HCI_INIT_W4_SEND_BAUD_CHANGE:
1197             // for STLC2500D, baud rate change already happened.
1198             // for others, baud rate gets changed now
1199             if (hci_stack->manufacturer != COMPANY_ID_ST_MICROELECTRONICS){
1200                 uint32_t baud_rate = hci_transport_uart_get_main_baud_rate();
1201                 log_info("Local baud rate change to %"PRIu32"(w4_send_baud_change)", baud_rate);
1202                 hci_stack->hci_transport->set_baudrate(baud_rate);
1203             }
1204             hci_stack->substate = HCI_INIT_CUSTOM_INIT;
1205             return;
1206         case HCI_INIT_W4_CUSTOM_INIT_CSR_WARM_BOOT:
1207             btstack_run_loop_remove_timer(&hci_stack->timeout);
1208             hci_stack->substate = HCI_INIT_CUSTOM_INIT;
1209             return;
1210         case HCI_INIT_W4_CUSTOM_INIT:
1211             // repeat custom init
1212             hci_stack->substate = HCI_INIT_CUSTOM_INIT;
1213             return;
1214         case HCI_INIT_W4_READ_LOCAL_SUPPORTED_COMMANDS:
1215             if (need_baud_change && hci_stack->manufacturer == COMPANY_ID_BROADCOM_CORPORATION){
1216                 hci_stack->substate = HCI_INIT_SEND_BAUD_CHANGE_BCM;
1217                 return;
1218             }
1219             if (need_addr_change){
1220                 hci_stack->substate = HCI_INIT_SET_BD_ADDR;
1221                 return;
1222             }
1223             hci_stack->substate = HCI_INIT_READ_BD_ADDR;
1224             return;
1225         case HCI_INIT_W4_SEND_BAUD_CHANGE_BCM: {
1226             uint32_t baud_rate = hci_transport_uart_get_main_baud_rate();
1227             log_info("Local baud rate change to %"PRIu32"(w4_send_baud_change_bcm))", baud_rate);
1228             hci_stack->hci_transport->set_baudrate(baud_rate);
1229             if (need_addr_change){
1230                 hci_stack->substate = HCI_INIT_SET_BD_ADDR;
1231                 return;
1232             }
1233             hci_stack->substate = HCI_INIT_READ_BD_ADDR;
1234             return;
1235         }
1236         case HCI_INIT_W4_SET_BD_ADDR:
1237             // for STLC2500D, bd addr change only gets active after sending reset command
1238             if (hci_stack->manufacturer == COMPANY_ID_ST_MICROELECTRONICS){
1239                 hci_stack->substate = HCI_INIT_SEND_RESET_ST_WARM_BOOT;
1240                 return;
1241             }
1242             // skipping st warm boot
1243             hci_stack->substate = HCI_INIT_READ_BD_ADDR;
1244             return;
1245         case HCI_INIT_W4_SEND_RESET_ST_WARM_BOOT:
1246             hci_stack->substate = HCI_INIT_READ_BD_ADDR;
1247             return;
1248         case HCI_INIT_W4_READ_BD_ADDR:
1249             // only read buffer size if supported
1250             if (hci_stack->local_supported_commands[0] & 0x01) {
1251                 hci_stack->substate = HCI_INIT_READ_BUFFER_SIZE;
1252                 return;
1253             }
1254             // skipping read buffer size
1255             hci_stack->substate = HCI_INIT_READ_LOCAL_SUPPORTED_FEATURES;
1256             return;
1257         case HCI_INIT_W4_SET_EVENT_MASK:
1258             // skip Classic init commands for LE only chipsets
1259             if (!hci_classic_supported()){
1260                 if (hci_le_supported()){
1261                     hci_stack->substate = HCI_INIT_LE_READ_BUFFER_SIZE; // skip all classic command
1262                     return;
1263                 } else {
1264                     log_error("Neither BR/EDR nor LE supported");
1265                     hci_init_done();
1266                     return;
1267                 }
1268             }
1269             if (!gap_ssp_supported()){
1270                 hci_stack->substate = HCI_INIT_WRITE_PAGE_TIMEOUT;
1271                 return;
1272             }
1273             break;
1274         case HCI_INIT_W4_WRITE_PAGE_TIMEOUT:
1275             break;
1276         case HCI_INIT_W4_LE_READ_BUFFER_SIZE:
1277             // skip write le host if not supported (e.g. on LE only EM9301)
1278             if (hci_stack->local_supported_commands[0] & 0x02) break;
1279             hci_stack->substate = HCI_INIT_LE_SET_SCAN_PARAMETERS;
1280             return;
1281 
1282 #ifdef HAVE_SCO_OVER_HCI
1283         case HCI_INIT_W4_WRITE_SCAN_ENABLE:
1284             // just go to next state
1285             break;
1286         case HCI_INIT_W4_WRITE_SYNCHRONOUS_FLOW_CONTROL_ENABLE:
1287             if (!hci_le_supported()){
1288                 // SKIP LE init for Classic only configuration
1289                 hci_init_done();
1290                 return;
1291             }
1292             break;
1293 #else
1294         case HCI_INIT_W4_WRITE_SCAN_ENABLE:
1295             if (!hci_le_supported()){
1296                 // SKIP LE init for Classic only configuration
1297                 hci_init_done();
1298                 return;
1299             }
1300 #endif
1301             break;
1302         // Response to command before init done state -> init done
1303         case (HCI_INIT_DONE-1):
1304             hci_init_done();
1305             return;
1306 
1307         default:
1308             break;
1309     }
1310     hci_initializing_next_state();
1311 }
1312 
1313 static void event_handler(uint8_t *packet, int size){
1314 
1315     uint16_t event_length = packet[1];
1316 
1317     // assert packet is complete
1318     if (size != event_length + 2){
1319         log_error("hci.c: event_handler called with event packet of wrong size %u, expected %u => dropping packet", size, event_length + 2);
1320         return;
1321     }
1322 
1323     bd_addr_t addr;
1324     bd_addr_type_t addr_type;
1325     uint8_t link_type;
1326     hci_con_handle_t handle;
1327     hci_connection_t * conn;
1328     int i;
1329 
1330     // log_info("HCI:EVENT:%02x", packet[0]);
1331 
1332     switch (packet[0]) {
1333 
1334         case HCI_EVENT_COMMAND_COMPLETE:
1335             // get num cmd packets
1336             // log_info("HCI_EVENT_COMMAND_COMPLETE cmds old %u - new %u", hci_stack->num_cmd_packets, packet[2]);
1337             hci_stack->num_cmd_packets = packet[2];
1338 
1339             if (HCI_EVENT_IS_COMMAND_COMPLETE(packet, hci_read_buffer_size)){
1340                 // from offset 5
1341                 // status
1342                 // "The HC_ACL_Data_Packet_Length return parameter will be used to determine the size of the L2CAP segments contained in ACL Data Packets"
1343                 hci_stack->acl_data_packet_length = little_endian_read_16(packet, 6);
1344                 hci_stack->sco_data_packet_length = packet[8];
1345                 hci_stack->acl_packets_total_num  = little_endian_read_16(packet, 9);
1346                 hci_stack->sco_packets_total_num  = little_endian_read_16(packet, 11);
1347 
1348                 if (hci_stack->state == HCI_STATE_INITIALIZING){
1349                     // determine usable ACL payload size
1350                     if (HCI_ACL_PAYLOAD_SIZE < hci_stack->acl_data_packet_length){
1351                         hci_stack->acl_data_packet_length = HCI_ACL_PAYLOAD_SIZE;
1352                     }
1353                     log_info("hci_read_buffer_size: acl used size %u, count %u / sco size %u, count %u",
1354                              hci_stack->acl_data_packet_length, hci_stack->acl_packets_total_num,
1355                              hci_stack->sco_data_packet_length, hci_stack->sco_packets_total_num);
1356                 }
1357             }
1358 #ifdef ENABLE_BLE
1359             if (HCI_EVENT_IS_COMMAND_COMPLETE(packet, hci_le_read_buffer_size)){
1360                 hci_stack->le_data_packets_length = little_endian_read_16(packet, 6);
1361                 hci_stack->le_acl_packets_total_num  = packet[8];
1362                     // determine usable ACL payload size
1363                     if (HCI_ACL_PAYLOAD_SIZE < hci_stack->le_data_packets_length){
1364                         hci_stack->le_data_packets_length = HCI_ACL_PAYLOAD_SIZE;
1365                     }
1366                 log_info("hci_le_read_buffer_size: size %u, count %u", hci_stack->le_data_packets_length, hci_stack->le_acl_packets_total_num);
1367             }
1368             if (HCI_EVENT_IS_COMMAND_COMPLETE(packet, hci_le_read_white_list_size)){
1369                 hci_stack->le_whitelist_capacity = little_endian_read_16(packet, 6);
1370                 log_info("hci_le_read_white_list_size: size %u", hci_stack->le_whitelist_capacity);
1371             }
1372 #endif
1373             // Dump local address
1374             if (HCI_EVENT_IS_COMMAND_COMPLETE(packet, hci_read_bd_addr)) {
1375                 reverse_bd_addr(&packet[OFFSET_OF_DATA_IN_COMMAND_COMPLETE + 1],
1376 				hci_stack->local_bd_addr);
1377                 log_info("Local Address, Status: 0x%02x: Addr: %s",
1378                     packet[OFFSET_OF_DATA_IN_COMMAND_COMPLETE], bd_addr_to_str(hci_stack->local_bd_addr));
1379             }
1380             if (HCI_EVENT_IS_COMMAND_COMPLETE(packet, hci_write_scan_enable)){
1381                 hci_emit_discoverable_enabled(hci_stack->discoverable);
1382             }
1383             // Note: HCI init checks
1384             if (HCI_EVENT_IS_COMMAND_COMPLETE(packet, hci_read_local_supported_features)){
1385                 memcpy(hci_stack->local_supported_features, &packet[OFFSET_OF_DATA_IN_COMMAND_COMPLETE+1], 8);
1386 
1387                 // determine usable ACL packet types based on host buffer size and supported features
1388                 hci_stack->packet_types = hci_acl_packet_types_for_buffer_size_and_local_features(HCI_ACL_PAYLOAD_SIZE, &hci_stack->local_supported_features[0]);
1389                 log_info("packet types %04x", hci_stack->packet_types);
1390 
1391                 // Classic/LE
1392                 log_info("BR/EDR support %u, LE support %u", hci_classic_supported(), hci_le_supported());
1393             }
1394             if (HCI_EVENT_IS_COMMAND_COMPLETE(packet, hci_read_local_version_information)){
1395                 // hci_stack->hci_version    = little_endian_read_16(packet, 4);
1396                 // hci_stack->hci_revision   = little_endian_read_16(packet, 6);
1397                 // hci_stack->lmp_version    = little_endian_read_16(packet, 8);
1398                 hci_stack->manufacturer   = little_endian_read_16(packet, 10);
1399                 // hci_stack->lmp_subversion = little_endian_read_16(packet, 12);
1400                 log_info("Manufacturer: 0x%04x", hci_stack->manufacturer);
1401             }
1402             if (HCI_EVENT_IS_COMMAND_COMPLETE(packet, hci_read_local_supported_commands)){
1403                 hci_stack->local_supported_commands[0] =
1404                     (packet[OFFSET_OF_DATA_IN_COMMAND_COMPLETE+1+14] & 0X80) >> 7 |  // Octet 14, bit 7
1405                     (packet[OFFSET_OF_DATA_IN_COMMAND_COMPLETE+1+24] & 0x40) >> 5;   // Octet 24, bit 6
1406             }
1407             if (HCI_EVENT_IS_COMMAND_COMPLETE(packet, hci_write_synchronous_flow_control_enable)){
1408                 if (packet[5] == 0){
1409                     hci_stack->synchronous_flow_control_enabled = 1;
1410                 }
1411             }
1412             break;
1413 
1414         case HCI_EVENT_COMMAND_STATUS:
1415             // get num cmd packets
1416             // log_info("HCI_EVENT_COMMAND_STATUS cmds - old %u - new %u", hci_stack->num_cmd_packets, packet[3]);
1417             hci_stack->num_cmd_packets = packet[3];
1418             break;
1419 
1420         case HCI_EVENT_NUMBER_OF_COMPLETED_PACKETS:{
1421             int offset = 3;
1422             for (i=0; i<packet[2];i++){
1423                 handle = little_endian_read_16(packet, offset);
1424                 offset += 2;
1425                 uint16_t num_packets = little_endian_read_16(packet, offset);
1426                 offset += 2;
1427 
1428                 conn = hci_connection_for_handle(handle);
1429                 if (!conn){
1430                     log_error("hci_number_completed_packet lists unused con handle %u", handle);
1431                     continue;
1432                 }
1433 
1434                 if (conn->address_type == BD_ADDR_TYPE_SCO){
1435                     if (conn->num_sco_packets_sent >= num_packets){
1436                         conn->num_sco_packets_sent -= num_packets;
1437                     } else {
1438                         log_error("hci_number_completed_packets, more sco slots freed then sent.");
1439                         conn->num_sco_packets_sent = 0;
1440                     }
1441                     hci_notify_if_sco_can_send_now();
1442                 } else {
1443                     if (conn->num_acl_packets_sent >= num_packets){
1444                         conn->num_acl_packets_sent -= num_packets;
1445                     } else {
1446                         log_error("hci_number_completed_packets, more acl slots freed then sent.");
1447                         conn->num_acl_packets_sent = 0;
1448                     }
1449                 }
1450                 // log_info("hci_number_completed_packet %u processed for handle %u, outstanding %u", num_packets, handle, conn->num_acl_packets_sent);
1451             }
1452             break;
1453         }
1454         case HCI_EVENT_CONNECTION_REQUEST:
1455             reverse_bd_addr(&packet[2], addr);
1456             // TODO: eval COD 8-10
1457             link_type = packet[11];
1458             log_info("Connection_incoming: %s, type %u", bd_addr_to_str(addr), link_type);
1459             addr_type = link_type == 1 ? BD_ADDR_TYPE_CLASSIC : BD_ADDR_TYPE_SCO;
1460             conn = hci_connection_for_bd_addr_and_type(addr, addr_type);
1461             if (!conn) {
1462                 conn = create_connection_for_bd_addr_and_type(addr, addr_type);
1463             }
1464             if (!conn) {
1465                 // CONNECTION REJECTED DUE TO LIMITED RESOURCES (0X0D)
1466                 hci_stack->decline_reason = 0x0d;
1467                 bd_addr_copy(hci_stack->decline_addr, addr);
1468                 break;
1469             }
1470             conn->role  = HCI_ROLE_SLAVE;
1471             conn->state = RECEIVED_CONNECTION_REQUEST;
1472             // store info about eSCO
1473             if (link_type == 0x02){
1474                 conn->remote_supported_feature_eSCO = 1;
1475             }
1476             hci_run();
1477             break;
1478 
1479         case HCI_EVENT_CONNECTION_COMPLETE:
1480             // Connection management
1481             reverse_bd_addr(&packet[5], addr);
1482             log_info("Connection_complete (status=%u) %s", packet[2], bd_addr_to_str(addr));
1483             addr_type = BD_ADDR_TYPE_CLASSIC;
1484             conn = hci_connection_for_bd_addr_and_type(addr, addr_type);
1485             if (conn) {
1486                 if (!packet[2]){
1487                     conn->state = OPEN;
1488                     conn->con_handle = little_endian_read_16(packet, 3);
1489                     conn->bonding_flags |= BONDING_REQUEST_REMOTE_FEATURES;
1490 
1491                     // restart timer
1492                     btstack_run_loop_set_timer(&conn->timeout, HCI_CONNECTION_TIMEOUT_MS);
1493                     btstack_run_loop_add_timer(&conn->timeout);
1494 
1495                     log_info("New connection: handle %u, %s", conn->con_handle, bd_addr_to_str(conn->address));
1496 
1497                     hci_emit_nr_connections_changed();
1498                 } else {
1499                     int notify_dedicated_bonding_failed = conn->bonding_flags & BONDING_DEDICATED;
1500                     uint8_t status = packet[2];
1501                     bd_addr_t bd_address;
1502                     memcpy(&bd_address, conn->address, 6);
1503 
1504                     // connection failed, remove entry
1505                     btstack_linked_list_remove(&hci_stack->connections, (btstack_linked_item_t *) conn);
1506                     btstack_memory_hci_connection_free( conn );
1507 
1508                     // notify client if dedicated bonding
1509                     if (notify_dedicated_bonding_failed){
1510                         log_info("hci notify_dedicated_bonding_failed");
1511                         hci_emit_dedicated_bonding_result(bd_address, status);
1512                     }
1513 
1514                     // if authentication error, also delete link key
1515                     if (packet[2] == 0x05) {
1516                         gap_drop_link_key_for_bd_addr(addr);
1517                     }
1518                 }
1519             }
1520             break;
1521 
1522         case HCI_EVENT_SYNCHRONOUS_CONNECTION_COMPLETE:
1523             reverse_bd_addr(&packet[5], addr);
1524             log_info("Synchronous Connection Complete (status=%u) %s", packet[2], bd_addr_to_str(addr));
1525             if (packet[2]){
1526                 // connection failed
1527                 break;
1528             }
1529             conn = hci_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_SCO);
1530             if (!conn) {
1531                 conn = create_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_SCO);
1532             }
1533             if (!conn) {
1534                 break;
1535             }
1536             conn->state = OPEN;
1537             conn->con_handle = little_endian_read_16(packet, 3);
1538             break;
1539 
1540         case HCI_EVENT_READ_REMOTE_SUPPORTED_FEATURES_COMPLETE:
1541             handle = little_endian_read_16(packet, 3);
1542             conn = hci_connection_for_handle(handle);
1543             if (!conn) break;
1544             if (!packet[2]){
1545                 uint8_t * features = &packet[5];
1546                 if (features[6] & (1 << 3)){
1547                     conn->bonding_flags |= BONDING_REMOTE_SUPPORTS_SSP;
1548                 }
1549                 if (features[3] & (1<<7)){
1550                     conn->remote_supported_feature_eSCO = 1;
1551                 }
1552             }
1553             conn->bonding_flags |= BONDING_RECEIVED_REMOTE_FEATURES;
1554             log_info("HCI_EVENT_READ_REMOTE_SUPPORTED_FEATURES_COMPLETE, bonding flags %x, eSCO %u", conn->bonding_flags, conn->remote_supported_feature_eSCO);
1555             if (conn->bonding_flags & BONDING_DEDICATED){
1556                 conn->bonding_flags |= BONDING_SEND_AUTHENTICATE_REQUEST;
1557             }
1558             break;
1559 
1560         case HCI_EVENT_LINK_KEY_REQUEST:
1561             log_info("HCI_EVENT_LINK_KEY_REQUEST");
1562             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], RECV_LINK_KEY_REQUEST);
1563             // non-bondable mode: link key negative reply will be sent by HANDLE_LINK_KEY_REQUEST
1564             if (hci_stack->bondable && !hci_stack->link_key_db) break;
1565             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], HANDLE_LINK_KEY_REQUEST);
1566             hci_run();
1567             // request handled by hci_run() as HANDLE_LINK_KEY_REQUEST gets set
1568             return;
1569 
1570         case HCI_EVENT_LINK_KEY_NOTIFICATION: {
1571             reverse_bd_addr(&packet[2], addr);
1572             conn = hci_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_CLASSIC);
1573             if (!conn) break;
1574             conn->authentication_flags |= RECV_LINK_KEY_NOTIFICATION;
1575             link_key_type_t link_key_type = (link_key_type_t)packet[24];
1576             // Change Connection Encryption keeps link key type
1577             if (link_key_type != CHANGED_COMBINATION_KEY){
1578                 conn->link_key_type = link_key_type;
1579             }
1580             if (!hci_stack->link_key_db) break;
1581             hci_stack->link_key_db->put_link_key(addr, &packet[8], conn->link_key_type);
1582             // still forward event to allow dismiss of pairing dialog
1583             break;
1584         }
1585 
1586         case HCI_EVENT_PIN_CODE_REQUEST:
1587             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], LEGACY_PAIRING_ACTIVE);
1588             // non-bondable mode: pin code negative reply will be sent
1589             if (!hci_stack->bondable){
1590                 hci_add_connection_flags_for_flipped_bd_addr(&packet[2], DENY_PIN_CODE_REQUEST);
1591                 hci_run();
1592                 return;
1593             }
1594             // PIN CODE REQUEST means the link key request didn't succee -> delete stored link key
1595             if (!hci_stack->link_key_db) break;
1596             reverse_bd_addr(&packet[2], addr);
1597             hci_stack->link_key_db->delete_link_key(addr);
1598             break;
1599 
1600         case HCI_EVENT_IO_CAPABILITY_REQUEST:
1601             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], RECV_IO_CAPABILITIES_REQUEST);
1602             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], SEND_IO_CAPABILITIES_REPLY);
1603             break;
1604 
1605         case HCI_EVENT_USER_CONFIRMATION_REQUEST:
1606             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], SSP_PAIRING_ACTIVE);
1607             if (!hci_stack->ssp_auto_accept) break;
1608             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], SEND_USER_CONFIRM_REPLY);
1609             break;
1610 
1611         case HCI_EVENT_USER_PASSKEY_REQUEST:
1612             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], SSP_PAIRING_ACTIVE);
1613             if (!hci_stack->ssp_auto_accept) break;
1614             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], SEND_USER_PASSKEY_REPLY);
1615             break;
1616 
1617         case HCI_EVENT_ENCRYPTION_CHANGE:
1618             handle = little_endian_read_16(packet, 3);
1619             conn = hci_connection_for_handle(handle);
1620             if (!conn) break;
1621             if (packet[2] == 0) {
1622                 if (packet[5]){
1623                     conn->authentication_flags |= CONNECTION_ENCRYPTED;
1624                 } else {
1625                     conn->authentication_flags &= ~CONNECTION_ENCRYPTED;
1626                 }
1627             }
1628             hci_emit_security_level(handle, gap_security_level_for_connection(conn));
1629             break;
1630 
1631         case HCI_EVENT_AUTHENTICATION_COMPLETE_EVENT:
1632             handle = little_endian_read_16(packet, 3);
1633             conn = hci_connection_for_handle(handle);
1634             if (!conn) break;
1635 
1636             // dedicated bonding: send result and disconnect
1637             if (conn->bonding_flags & BONDING_DEDICATED){
1638                 conn->bonding_flags &= ~BONDING_DEDICATED;
1639                 conn->bonding_flags |= BONDING_DISCONNECT_DEDICATED_DONE;
1640                 conn->bonding_status = packet[2];
1641                 break;
1642             }
1643 
1644             if (packet[2] == 0 && gap_security_level_for_link_key_type(conn->link_key_type) >= conn->requested_security_level){
1645                 // link key sufficient for requested security
1646                 conn->bonding_flags |= BONDING_SEND_ENCRYPTION_REQUEST;
1647                 break;
1648             }
1649             // not enough
1650             hci_emit_security_level(handle, gap_security_level_for_connection(conn));
1651             break;
1652 
1653         // HCI_EVENT_DISCONNECTION_COMPLETE
1654         // has been split, to first notify stack before shutting connection down
1655         // see end of function, too.
1656         case HCI_EVENT_DISCONNECTION_COMPLETE:
1657             if (packet[2]) break;   // status != 0
1658             handle = little_endian_read_16(packet, 3);
1659             conn = hci_connection_for_handle(handle);
1660             if (!conn) break;       // no conn struct anymore
1661             // re-enable advertisements for le connections if active
1662             if (hci_is_le_connection(conn) && hci_stack->le_advertisements_enabled){
1663                 hci_stack->le_advertisements_todo |= LE_ADVERTISEMENT_TASKS_ENABLE;
1664             }
1665             conn->state = RECEIVED_DISCONNECTION_COMPLETE;
1666             break;
1667 
1668         case HCI_EVENT_HARDWARE_ERROR:
1669             if (hci_stack->hardware_error_callback){
1670                 (*hci_stack->hardware_error_callback)();
1671             } else {
1672                 // if no special requests, just reboot stack
1673                 hci_power_control_off();
1674                 hci_power_control_on();
1675             }
1676             break;
1677 
1678         case HCI_EVENT_ROLE_CHANGE:
1679             if (packet[2]) break;   // status != 0
1680             handle = little_endian_read_16(packet, 3);
1681             conn = hci_connection_for_handle(handle);
1682             if (!conn) break;       // no conn
1683             conn->role = packet[9];
1684             break;
1685 
1686         case HCI_EVENT_TRANSPORT_PACKET_SENT:
1687             // release packet buffer only for asynchronous transport and if there are not further fragements
1688             if (hci_transport_synchronous()) {
1689                 log_error("Synchronous HCI Transport shouldn't send HCI_EVENT_TRANSPORT_PACKET_SENT");
1690                 return; // instead of break: to avoid re-entering hci_run()
1691             }
1692             if (hci_stack->acl_fragmentation_total_size) break;
1693             hci_release_packet_buffer();
1694 
1695             // L2CAP receives this event via the hci_emit_event below
1696 
1697             // For SCO, we do the can_send_now_check here
1698             hci_notify_if_sco_can_send_now();
1699             break;
1700 
1701         case HCI_EVENT_SCO_CAN_SEND_NOW:
1702             // For SCO, we do the can_send_now_check here
1703             hci_notify_if_sco_can_send_now();
1704             return;
1705 
1706 #ifdef ENABLE_BLE
1707         case HCI_EVENT_LE_META:
1708             switch (packet[2]){
1709                 case HCI_SUBEVENT_LE_ADVERTISING_REPORT:
1710                     log_info("advertising report received");
1711                     if (hci_stack->le_scanning_state != LE_SCANNING) break;
1712                     le_handle_advertisement_report(packet, size);
1713                     break;
1714                 case HCI_SUBEVENT_LE_CONNECTION_COMPLETE:
1715                     // Connection management
1716                     reverse_bd_addr(&packet[8], addr);
1717                     addr_type = (bd_addr_type_t)packet[7];
1718                     log_info("LE Connection_complete (status=%u) type %u, %s", packet[3], addr_type, bd_addr_to_str(addr));
1719                     conn = hci_connection_for_bd_addr_and_type(addr, addr_type);
1720                     // if auto-connect, remove from whitelist in both roles
1721                     if (hci_stack->le_connecting_state == LE_CONNECTING_WHITELIST){
1722                         hci_remove_from_whitelist(addr_type, addr);
1723                     }
1724                     // handle error: error is reported only to the initiator -> outgoing connection
1725                     if (packet[3]){
1726                         // outgoing connection establishment is done
1727                         hci_stack->le_connecting_state = LE_CONNECTING_IDLE;
1728                         // remove entry
1729                         if (conn){
1730                             btstack_linked_list_remove(&hci_stack->connections, (btstack_linked_item_t *) conn);
1731                             btstack_memory_hci_connection_free( conn );
1732                         }
1733                         break;
1734                     }
1735                     // on success, both hosts receive connection complete event
1736                     if (packet[6] == HCI_ROLE_MASTER){
1737                         // if we're master, it was an outgoing connection and we're done with it
1738                         hci_stack->le_connecting_state = LE_CONNECTING_IDLE;
1739                     } else {
1740                         // if we're slave, it was an incoming connection, advertisements have stopped
1741                         hci_stack->le_advertisements_active = 0;
1742                     }
1743                     // LE connections are auto-accepted, so just create a connection if there isn't one already
1744                     if (!conn){
1745                         conn = create_connection_for_bd_addr_and_type(addr, addr_type);
1746                     }
1747                     // no memory, sorry.
1748                     if (!conn){
1749                         break;
1750                     }
1751 
1752                     conn->state = OPEN;
1753                     conn->role  = packet[6];
1754                     conn->con_handle = little_endian_read_16(packet, 4);
1755 
1756                     // TODO: store - role, peer address type, conn_interval, conn_latency, supervision timeout, master clock
1757 
1758                     // restart timer
1759                     // btstack_run_loop_set_timer(&conn->timeout, HCI_CONNECTION_TIMEOUT_MS);
1760                     // btstack_run_loop_add_timer(&conn->timeout);
1761 
1762                     log_info("New connection: handle %u, %s", conn->con_handle, bd_addr_to_str(conn->address));
1763 
1764                     hci_emit_nr_connections_changed();
1765                     break;
1766 
1767             // log_info("LE buffer size: %u, count %u", little_endian_read_16(packet,6), packet[8]);
1768 
1769                 default:
1770                     break;
1771             }
1772             break;
1773 #endif
1774         default:
1775             break;
1776     }
1777 
1778     // handle BT initialization
1779     if (hci_stack->state == HCI_STATE_INITIALIZING){
1780         hci_initializing_event_handler(packet, size);
1781     }
1782 
1783     // help with BT sleep
1784     if (hci_stack->state == HCI_STATE_FALLING_ASLEEP
1785         && hci_stack->substate == HCI_FALLING_ASLEEP_W4_WRITE_SCAN_ENABLE
1786         && HCI_EVENT_IS_COMMAND_COMPLETE(packet, hci_write_scan_enable)){
1787         hci_initializing_next_state();
1788     }
1789 
1790     // notify upper stack
1791 	hci_emit_event(packet, size, 0);   // don't dump, already happened in packet handler
1792 
1793     // moved here to give upper stack a chance to close down everything with hci_connection_t intact
1794     if (packet[0] == HCI_EVENT_DISCONNECTION_COMPLETE){
1795         if (!packet[2]){
1796             handle = little_endian_read_16(packet, 3);
1797             hci_connection_t * aConn = hci_connection_for_handle(handle);
1798             if (aConn) {
1799                 uint8_t status = aConn->bonding_status;
1800                 uint16_t flags = aConn->bonding_flags;
1801                 bd_addr_t bd_address;
1802                 memcpy(&bd_address, aConn->address, 6);
1803                 hci_shutdown_connection(aConn);
1804                 // connection struct is gone, don't access anymore
1805                 if (flags & BONDING_EMIT_COMPLETE_ON_DISCONNECT){
1806                     hci_emit_dedicated_bonding_result(bd_address, status);
1807                 }
1808             }
1809         }
1810     }
1811 
1812 	// execute main loop
1813 	hci_run();
1814 }
1815 
1816 static void sco_handler(uint8_t * packet, uint16_t size){
1817     if (!hci_stack->sco_packet_handler) return;
1818     hci_stack->sco_packet_handler(HCI_SCO_DATA_PACKET, packet, size);
1819 }
1820 
1821 static void packet_handler(uint8_t packet_type, uint8_t *packet, uint16_t size){
1822     hci_dump_packet(packet_type, 1, packet, size);
1823     switch (packet_type) {
1824         case HCI_EVENT_PACKET:
1825             event_handler(packet, size);
1826             break;
1827         case HCI_ACL_DATA_PACKET:
1828             acl_handler(packet, size);
1829             break;
1830         case HCI_SCO_DATA_PACKET:
1831             sco_handler(packet, size);
1832         default:
1833             break;
1834     }
1835 }
1836 
1837 /**
1838  * @brief Add event packet handler.
1839  */
1840 void hci_add_event_handler(btstack_packet_callback_registration_t * callback_handler){
1841     btstack_linked_list_add_tail(&hci_stack->event_handlers, (btstack_linked_item_t*) callback_handler);
1842 }
1843 
1844 
1845 /** Register HCI packet handlers */
1846 void hci_register_acl_packet_handler(void (*handler)(uint8_t packet_type, uint8_t *packet, uint16_t size)){
1847     hci_stack->acl_packet_handler = handler;
1848 }
1849 
1850 /**
1851  * @brief Registers a packet handler for SCO data. Used for HSP and HFP profiles.
1852  */
1853 void hci_register_sco_packet_handler(void (*handler)(uint8_t packet_type, uint8_t *packet, uint16_t size)){
1854     hci_stack->sco_packet_handler = handler;
1855 }
1856 
1857 static void hci_state_reset(void){
1858     // no connections yet
1859     hci_stack->connections = NULL;
1860 
1861     // keep discoverable/connectable as this has been requested by the client(s)
1862     // hci_stack->discoverable = 0;
1863     // hci_stack->connectable = 0;
1864     // hci_stack->bondable = 1;
1865 
1866     // buffer is free
1867     hci_stack->hci_packet_buffer_reserved = 0;
1868 
1869     // no pending cmds
1870     hci_stack->decline_reason = 0;
1871     hci_stack->new_scan_enable_value = 0xff;
1872 
1873     // LE
1874     hci_stack->adv_addr_type = 0;
1875     memset(hci_stack->adv_address, 0, 6);
1876     hci_stack->le_scanning_state = LE_SCAN_IDLE;
1877     hci_stack->le_scan_type = 0xff;
1878     hci_stack->le_connecting_state = LE_CONNECTING_IDLE;
1879     hci_stack->le_whitelist = 0;
1880     hci_stack->le_whitelist_capacity = 0;
1881     hci_stack->le_connection_parameter_range.le_conn_interval_min =          6;
1882     hci_stack->le_connection_parameter_range.le_conn_interval_max =       3200;
1883     hci_stack->le_connection_parameter_range.le_conn_latency_min =           0;
1884     hci_stack->le_connection_parameter_range.le_conn_latency_max =         500;
1885     hci_stack->le_connection_parameter_range.le_supervision_timeout_min =   10;
1886     hci_stack->le_connection_parameter_range.le_supervision_timeout_max = 3200;
1887 }
1888 
1889 /**
1890  * @brief Configure Bluetooth hardware control. Has to be called before power on.
1891  */
1892 void hci_set_link_key_db(btstack_link_key_db_t const * link_key_db){
1893     // store and open remote device db
1894     hci_stack->link_key_db = link_key_db;
1895     if (hci_stack->link_key_db) {
1896         hci_stack->link_key_db->open();
1897     }
1898 }
1899 
1900 void hci_init(const hci_transport_t *transport, const void *config){
1901 
1902 #ifdef HAVE_MALLOC
1903     if (!hci_stack) {
1904         hci_stack = (hci_stack_t*) malloc(sizeof(hci_stack_t));
1905     }
1906 #else
1907     hci_stack = &hci_stack_static;
1908 #endif
1909     memset(hci_stack, 0, sizeof(hci_stack_t));
1910 
1911     // reference to use transport layer implementation
1912     hci_stack->hci_transport = transport;
1913 
1914     // reference to used config
1915     hci_stack->config = config;
1916 
1917     // max acl payload size defined in config.h
1918     hci_stack->acl_data_packet_length = HCI_ACL_PAYLOAD_SIZE;
1919 
1920     // register packet handlers with transport
1921     transport->register_packet_handler(&packet_handler);
1922 
1923     hci_stack->state = HCI_STATE_OFF;
1924 
1925     // class of device
1926     hci_stack->class_of_device = 0x007a020c; // Smartphone
1927 
1928     // bondable by default
1929     hci_stack->bondable = 1;
1930 
1931     // Secure Simple Pairing default: enable, no I/O capabilities, general bonding, mitm not required, auto accept
1932     hci_stack->ssp_enable = 1;
1933     hci_stack->ssp_io_capability = SSP_IO_CAPABILITY_NO_INPUT_NO_OUTPUT;
1934     hci_stack->ssp_authentication_requirement = SSP_IO_AUTHREQ_MITM_PROTECTION_NOT_REQUIRED_GENERAL_BONDING;
1935     hci_stack->ssp_auto_accept = 1;
1936 
1937     // voice setting - signed 8 bit pcm data with CVSD over the air
1938     hci_stack->sco_voice_setting = 0x40;
1939 
1940     hci_state_reset();
1941 }
1942 
1943 /**
1944  * @brief Configure Bluetooth chipset driver. Has to be called before power on, or right after receiving the local version information
1945  */
1946 void hci_set_chipset(const btstack_chipset_t *chipset_driver){
1947     hci_stack->chipset = chipset_driver;
1948 
1949     // reset chipset driver - init is also called on power_up
1950     if (hci_stack->chipset && hci_stack->chipset->init){
1951         hci_stack->chipset->init(hci_stack->config);
1952     }
1953 }
1954 
1955 /**
1956  * @brief Configure Bluetooth hardware control. Has to be called after hci_init() but before power on.
1957  */
1958 void hci_set_control(const btstack_control_t *hardware_control){
1959     // references to used control implementation
1960     hci_stack->control = hardware_control;
1961     // init with transport config
1962     hardware_control->init(hci_stack->config);
1963 }
1964 
1965 void hci_close(void){
1966     // close remote device db
1967     if (hci_stack->link_key_db) {
1968         hci_stack->link_key_db->close();
1969     }
1970     while (hci_stack->connections) {
1971         // cancel all l2cap connections
1972         hci_emit_disconnection_complete(((hci_connection_t *) hci_stack->connections)->con_handle, 0x16); // terminated by local host
1973         hci_shutdown_connection((hci_connection_t *) hci_stack->connections);
1974     }
1975     hci_power_control(HCI_POWER_OFF);
1976 
1977 #ifdef HAVE_MALLOC
1978     free(hci_stack);
1979 #endif
1980     hci_stack = NULL;
1981 }
1982 
1983 void hci_set_class_of_device(uint32_t class_of_device){
1984     hci_stack->class_of_device = class_of_device;
1985 }
1986 
1987 // Set Public BD ADDR - passed on to Bluetooth chipset if supported in bt_control_h
1988 void hci_set_bd_addr(bd_addr_t addr){
1989     memcpy(hci_stack->custom_bd_addr, addr, 6);
1990     hci_stack->custom_bd_addr_set = 1;
1991 }
1992 
1993 void hci_disable_l2cap_timeout_check(void){
1994     disable_l2cap_timeouts = 1;
1995 }
1996 // State-Module-Driver overview
1997 // state                    module  low-level
1998 // HCI_STATE_OFF             off      close
1999 // HCI_STATE_INITIALIZING,   on       open
2000 // HCI_STATE_WORKING,        on       open
2001 // HCI_STATE_HALTING,        on       open
2002 // HCI_STATE_SLEEPING,    off/sleep   close
2003 // HCI_STATE_FALLING_ASLEEP  on       open
2004 
2005 static int hci_power_control_on(void){
2006 
2007     // power on
2008     int err = 0;
2009     if (hci_stack->control && hci_stack->control->on){
2010         err = (*hci_stack->control->on)();
2011     }
2012     if (err){
2013         log_error( "POWER_ON failed");
2014         hci_emit_hci_open_failed();
2015         return err;
2016     }
2017 
2018     // int chipset driver
2019     if (hci_stack->chipset && hci_stack->chipset->init){
2020         hci_stack->chipset->init(hci_stack->config);
2021     }
2022 
2023     // init transport
2024     if (hci_stack->hci_transport->init){
2025         hci_stack->hci_transport->init(hci_stack->config);
2026     }
2027 
2028     // open transport
2029     err = hci_stack->hci_transport->open();
2030     if (err){
2031         log_error( "HCI_INIT failed, turning Bluetooth off again");
2032         if (hci_stack->control && hci_stack->control->off){
2033             (*hci_stack->control->off)();
2034         }
2035         hci_emit_hci_open_failed();
2036         return err;
2037     }
2038     return 0;
2039 }
2040 
2041 static void hci_power_control_off(void){
2042 
2043     log_info("hci_power_control_off");
2044 
2045     // close low-level device
2046     hci_stack->hci_transport->close();
2047 
2048     log_info("hci_power_control_off - hci_transport closed");
2049 
2050     // power off
2051     if (hci_stack->control && hci_stack->control->off){
2052         (*hci_stack->control->off)();
2053     }
2054 
2055     log_info("hci_power_control_off - control closed");
2056 
2057     hci_stack->state = HCI_STATE_OFF;
2058 }
2059 
2060 static void hci_power_control_sleep(void){
2061 
2062     log_info("hci_power_control_sleep");
2063 
2064 #if 0
2065     // don't close serial port during sleep
2066 
2067     // close low-level device
2068     hci_stack->hci_transport->close(hci_stack->config);
2069 #endif
2070 
2071     // sleep mode
2072     if (hci_stack->control && hci_stack->control->sleep){
2073         (*hci_stack->control->sleep)();
2074     }
2075 
2076     hci_stack->state = HCI_STATE_SLEEPING;
2077 }
2078 
2079 static int hci_power_control_wake(void){
2080 
2081     log_info("hci_power_control_wake");
2082 
2083     // wake on
2084     if (hci_stack->control && hci_stack->control->wake){
2085         (*hci_stack->control->wake)();
2086     }
2087 
2088 #if 0
2089     // open low-level device
2090     int err = hci_stack->hci_transport->open(hci_stack->config);
2091     if (err){
2092         log_error( "HCI_INIT failed, turning Bluetooth off again");
2093         if (hci_stack->control && hci_stack->control->off){
2094             (*hci_stack->control->off)();
2095         }
2096         hci_emit_hci_open_failed();
2097         return err;
2098     }
2099 #endif
2100 
2101     return 0;
2102 }
2103 
2104 static void hci_power_transition_to_initializing(void){
2105     // set up state machine
2106     hci_stack->num_cmd_packets = 1; // assume that one cmd can be sent
2107     hci_stack->hci_packet_buffer_reserved = 0;
2108     hci_stack->state = HCI_STATE_INITIALIZING;
2109     hci_stack->substate = HCI_INIT_SEND_RESET;
2110 }
2111 
2112 int hci_power_control(HCI_POWER_MODE power_mode){
2113 
2114     log_info("hci_power_control: %u, current mode %u", power_mode, hci_stack->state);
2115 
2116     int err = 0;
2117     switch (hci_stack->state){
2118 
2119         case HCI_STATE_OFF:
2120             switch (power_mode){
2121                 case HCI_POWER_ON:
2122                     err = hci_power_control_on();
2123                     if (err) {
2124                         log_error("hci_power_control_on() error %u", err);
2125                         return err;
2126                     }
2127                     hci_power_transition_to_initializing();
2128                     break;
2129                 case HCI_POWER_OFF:
2130                     // do nothing
2131                     break;
2132                 case HCI_POWER_SLEEP:
2133                     // do nothing (with SLEEP == OFF)
2134                     break;
2135             }
2136             break;
2137 
2138         case HCI_STATE_INITIALIZING:
2139             switch (power_mode){
2140                 case HCI_POWER_ON:
2141                     // do nothing
2142                     break;
2143                 case HCI_POWER_OFF:
2144                     // no connections yet, just turn it off
2145                     hci_power_control_off();
2146                     break;
2147                 case HCI_POWER_SLEEP:
2148                     // no connections yet, just turn it off
2149                     hci_power_control_sleep();
2150                     break;
2151             }
2152             break;
2153 
2154         case HCI_STATE_WORKING:
2155             switch (power_mode){
2156                 case HCI_POWER_ON:
2157                     // do nothing
2158                     break;
2159                 case HCI_POWER_OFF:
2160                     // see hci_run
2161                     hci_stack->state = HCI_STATE_HALTING;
2162                     break;
2163                 case HCI_POWER_SLEEP:
2164                     // see hci_run
2165                     hci_stack->state = HCI_STATE_FALLING_ASLEEP;
2166                     hci_stack->substate = HCI_FALLING_ASLEEP_DISCONNECT;
2167                     break;
2168             }
2169             break;
2170 
2171         case HCI_STATE_HALTING:
2172             switch (power_mode){
2173                 case HCI_POWER_ON:
2174                     hci_power_transition_to_initializing();
2175                     break;
2176                 case HCI_POWER_OFF:
2177                     // do nothing
2178                     break;
2179                 case HCI_POWER_SLEEP:
2180                     // see hci_run
2181                     hci_stack->state = HCI_STATE_FALLING_ASLEEP;
2182                     hci_stack->substate = HCI_FALLING_ASLEEP_DISCONNECT;
2183                     break;
2184             }
2185             break;
2186 
2187         case HCI_STATE_FALLING_ASLEEP:
2188             switch (power_mode){
2189                 case HCI_POWER_ON:
2190 
2191 #ifdef HAVE_PLATFORM_IPHONE_OS
2192                     // nothing to do, if H4 supports power management
2193                     if (btstack_control_iphone_power_management_enabled()){
2194                         hci_stack->state = HCI_STATE_INITIALIZING;
2195                         hci_stack->substate = HCI_INIT_WRITE_SCAN_ENABLE;   // init after sleep
2196                         break;
2197                     }
2198 #endif
2199                     hci_power_transition_to_initializing();
2200                     break;
2201                 case HCI_POWER_OFF:
2202                     // see hci_run
2203                     hci_stack->state = HCI_STATE_HALTING;
2204                     break;
2205                 case HCI_POWER_SLEEP:
2206                     // do nothing
2207                     break;
2208             }
2209             break;
2210 
2211         case HCI_STATE_SLEEPING:
2212             switch (power_mode){
2213                 case HCI_POWER_ON:
2214 
2215 #ifdef HAVE_PLATFORM_IPHONE_OS
2216                     // nothing to do, if H4 supports power management
2217                     if (btstack_control_iphone_power_management_enabled()){
2218                         hci_stack->state = HCI_STATE_INITIALIZING;
2219                         hci_stack->substate = HCI_INIT_AFTER_SLEEP;
2220                         hci_update_scan_enable();
2221                         break;
2222                     }
2223 #endif
2224                     err = hci_power_control_wake();
2225                     if (err) return err;
2226                     hci_power_transition_to_initializing();
2227                     break;
2228                 case HCI_POWER_OFF:
2229                     hci_stack->state = HCI_STATE_HALTING;
2230                     break;
2231                 case HCI_POWER_SLEEP:
2232                     // do nothing
2233                     break;
2234             }
2235             break;
2236     }
2237 
2238     // create internal event
2239 	hci_emit_state();
2240 
2241 	// trigger next/first action
2242 	hci_run();
2243 
2244     return 0;
2245 }
2246 
2247 static void hci_update_scan_enable(void){
2248     // 2 = page scan, 1 = inq scan
2249     hci_stack->new_scan_enable_value  = hci_stack->connectable << 1 | hci_stack->discoverable;
2250     hci_run();
2251 }
2252 
2253 void gap_discoverable_control(uint8_t enable){
2254     if (enable) enable = 1; // normalize argument
2255 
2256     if (hci_stack->discoverable == enable){
2257         hci_emit_discoverable_enabled(hci_stack->discoverable);
2258         return;
2259     }
2260 
2261     hci_stack->discoverable = enable;
2262     hci_update_scan_enable();
2263 }
2264 
2265 void gap_connectable_control(uint8_t enable){
2266     if (enable) enable = 1; // normalize argument
2267 
2268     // don't emit event
2269     if (hci_stack->connectable == enable) return;
2270 
2271     hci_stack->connectable = enable;
2272     hci_update_scan_enable();
2273 }
2274 
2275 void gap_local_bd_addr(bd_addr_t address_buffer){
2276     memcpy(address_buffer, hci_stack->local_bd_addr, 6);
2277 }
2278 
2279 static void hci_run(void){
2280 
2281     // log_info("hci_run: entered");
2282     btstack_linked_item_t * it;
2283 
2284     // send continuation fragments first, as they block the prepared packet buffer
2285     if (hci_stack->acl_fragmentation_total_size > 0) {
2286         hci_con_handle_t con_handle = READ_ACL_CONNECTION_HANDLE(hci_stack->hci_packet_buffer);
2287         if (hci_can_send_prepared_acl_packet_now(con_handle)){
2288             hci_connection_t *connection = hci_connection_for_handle(con_handle);
2289             if (connection) {
2290                 hci_send_acl_packet_fragments(connection);
2291                 return;
2292             }
2293             // connection gone -> discard further fragments
2294             hci_stack->acl_fragmentation_total_size = 0;
2295             hci_stack->acl_fragmentation_pos = 0;
2296         }
2297     }
2298 
2299     if (!hci_can_send_command_packet_now()) return;
2300 
2301     // global/non-connection oriented commands
2302 
2303     // decline incoming connections
2304     if (hci_stack->decline_reason){
2305         uint8_t reason = hci_stack->decline_reason;
2306         hci_stack->decline_reason = 0;
2307         hci_send_cmd(&hci_reject_connection_request, hci_stack->decline_addr, reason);
2308         return;
2309     }
2310 
2311     // send scan enable
2312     if (hci_stack->state == HCI_STATE_WORKING && hci_stack->new_scan_enable_value != 0xff && hci_classic_supported()){
2313         hci_send_cmd(&hci_write_scan_enable, hci_stack->new_scan_enable_value);
2314         hci_stack->new_scan_enable_value = 0xff;
2315         return;
2316     }
2317 
2318 #ifdef ENABLE_BLE
2319     if (hci_stack->state == HCI_STATE_WORKING){
2320         // handle le scan
2321         switch(hci_stack->le_scanning_state){
2322             case LE_START_SCAN:
2323                 hci_stack->le_scanning_state = LE_SCANNING;
2324                 hci_send_cmd(&hci_le_set_scan_enable, 1, 0);
2325                 return;
2326 
2327             case LE_STOP_SCAN:
2328                 hci_stack->le_scanning_state = LE_SCAN_IDLE;
2329                 hci_send_cmd(&hci_le_set_scan_enable, 0, 0);
2330                 return;
2331             default:
2332                 break;
2333         }
2334         if (hci_stack->le_scan_type != 0xff){
2335             // defaults: active scanning, accept all advertisement packets
2336             int scan_type = hci_stack->le_scan_type;
2337             hci_stack->le_scan_type = 0xff;
2338             hci_send_cmd(&hci_le_set_scan_parameters, scan_type, hci_stack->le_scan_interval, hci_stack->le_scan_window, hci_stack->adv_addr_type, 0);
2339             return;
2340         }
2341         // le advertisement control
2342         if (hci_stack->le_advertisements_todo){
2343             log_info("hci_run: gap_le: adv todo: %x", hci_stack->le_advertisements_todo );
2344         }
2345         if (hci_stack->le_advertisements_todo & LE_ADVERTISEMENT_TASKS_DISABLE){
2346             hci_stack->le_advertisements_todo &= ~LE_ADVERTISEMENT_TASKS_DISABLE;
2347             hci_send_cmd(&hci_le_set_advertise_enable, 0);
2348             return;
2349         }
2350         if (hci_stack->le_advertisements_todo & LE_ADVERTISEMENT_TASKS_SET_PARAMS){
2351             hci_stack->le_advertisements_todo &= ~LE_ADVERTISEMENT_TASKS_SET_PARAMS;
2352             hci_send_cmd(&hci_le_set_advertising_parameters,
2353                  hci_stack->le_advertisements_interval_min,
2354                  hci_stack->le_advertisements_interval_max,
2355                  hci_stack->le_advertisements_type,
2356                  hci_stack->le_advertisements_own_address_type,
2357                  hci_stack->le_advertisements_direct_address_type,
2358                  hci_stack->le_advertisements_direct_address,
2359                  hci_stack->le_advertisements_channel_map,
2360                  hci_stack->le_advertisements_filter_policy);
2361             return;
2362         }
2363         if (hci_stack->le_advertisements_todo & LE_ADVERTISEMENT_TASKS_SET_DATA){
2364             hci_stack->le_advertisements_todo &= ~LE_ADVERTISEMENT_TASKS_SET_DATA;
2365             hci_send_cmd(&hci_le_set_advertising_data, hci_stack->le_advertisements_data_len,
2366                 hci_stack->le_advertisements_data);
2367             return;
2368         }
2369         if (hci_stack->le_advertisements_todo & LE_ADVERTISEMENT_TASKS_ENABLE){
2370             hci_stack->le_advertisements_todo &= ~LE_ADVERTISEMENT_TASKS_ENABLE;
2371             hci_send_cmd(&hci_le_set_advertise_enable, 1);
2372             return;
2373         }
2374 
2375         //
2376         // LE Whitelist Management
2377         //
2378 
2379         // check if whitelist needs modification
2380         btstack_linked_list_iterator_t lit;
2381         int modification_pending = 0;
2382         btstack_linked_list_iterator_init(&lit, &hci_stack->le_whitelist);
2383         while (btstack_linked_list_iterator_has_next(&lit)){
2384             whitelist_entry_t * entry = (whitelist_entry_t*) btstack_linked_list_iterator_next(&lit);
2385             if (entry->state & (LE_WHITELIST_REMOVE_FROM_CONTROLLER | LE_WHITELIST_ADD_TO_CONTROLLER)){
2386                 modification_pending = 1;
2387                 break;
2388             }
2389         }
2390 
2391         if (modification_pending){
2392             // stop connnecting if modification pending
2393             if (hci_stack->le_connecting_state != LE_CONNECTING_IDLE){
2394                 hci_send_cmd(&hci_le_create_connection_cancel);
2395                 return;
2396             }
2397 
2398             // add/remove entries
2399             btstack_linked_list_iterator_init(&lit, &hci_stack->le_whitelist);
2400             while (btstack_linked_list_iterator_has_next(&lit)){
2401                 whitelist_entry_t * entry = (whitelist_entry_t*) btstack_linked_list_iterator_next(&lit);
2402                 if (entry->state & LE_WHITELIST_ADD_TO_CONTROLLER){
2403                     entry->state = LE_WHITELIST_ON_CONTROLLER;
2404                     hci_send_cmd(&hci_le_add_device_to_white_list, entry->address_type, entry->address);
2405                     return;
2406 
2407                 }
2408                 if (entry->state & LE_WHITELIST_REMOVE_FROM_CONTROLLER){
2409                     bd_addr_t address;
2410                     bd_addr_type_t address_type = entry->address_type;
2411                     memcpy(address, entry->address, 6);
2412                     btstack_linked_list_remove(&hci_stack->le_whitelist, (btstack_linked_item_t *) entry);
2413                     btstack_memory_whitelist_entry_free(entry);
2414                     hci_send_cmd(&hci_le_remove_device_from_white_list, address_type, address);
2415                     return;
2416                 }
2417             }
2418         }
2419 
2420         // start connecting
2421         if ( hci_stack->le_connecting_state == LE_CONNECTING_IDLE &&
2422             !btstack_linked_list_empty(&hci_stack->le_whitelist)){
2423             bd_addr_t null_addr;
2424             memset(null_addr, 0, 6);
2425             hci_send_cmd(&hci_le_create_connection,
2426                  0x0060,    // scan interval: 60 ms
2427                  0x0030,    // scan interval: 30 ms
2428                  1,         // use whitelist
2429                  0,         // peer address type
2430                  null_addr,      // peer bd addr
2431                  hci_stack->adv_addr_type, // our addr type:
2432                  0x0008,    // conn interval min
2433                  0x0018,    // conn interval max
2434                  0,         // conn latency
2435                  0x0048,    // supervision timeout
2436                  0x0001,    // min ce length
2437                  0x0001     // max ce length
2438                  );
2439             return;
2440         }
2441     }
2442 #endif
2443 
2444     // send pending HCI commands
2445     for (it = (btstack_linked_item_t *) hci_stack->connections; it ; it = it->next){
2446         hci_connection_t * connection = (hci_connection_t *) it;
2447 
2448         switch(connection->state){
2449             case SEND_CREATE_CONNECTION:
2450                 switch(connection->address_type){
2451                     case BD_ADDR_TYPE_CLASSIC:
2452                         log_info("sending hci_create_connection");
2453                         hci_send_cmd(&hci_create_connection, connection->address, hci_usable_acl_packet_types(), 0, 0, 0, 1);
2454                         break;
2455                     default:
2456 #ifdef ENABLE_BLE
2457                         log_info("sending hci_le_create_connection");
2458                         hci_send_cmd(&hci_le_create_connection,
2459                                      0x0060,    // scan interval: 60 ms
2460                                      0x0030,    // scan interval: 30 ms
2461                                      0,         // don't use whitelist
2462                                      connection->address_type, // peer address type
2463                                      connection->address,      // peer bd addr
2464                                      hci_stack->adv_addr_type, // our addr type:
2465                                      0x0008,    // conn interval min
2466                                      0x0018,    // conn interval max
2467                                      0,         // conn latency
2468                                      0x0048,    // supervision timeout
2469                                      0x0001,    // min ce length
2470                                      0x0001     // max ce length
2471                                      );
2472 
2473                         connection->state = SENT_CREATE_CONNECTION;
2474 #endif
2475                         break;
2476                 }
2477                 return;
2478 
2479             case RECEIVED_CONNECTION_REQUEST:
2480                 log_info("sending hci_accept_connection_request, remote eSCO %u", connection->remote_supported_feature_eSCO);
2481                 connection->state = ACCEPTED_CONNECTION_REQUEST;
2482                 connection->role  = HCI_ROLE_SLAVE;
2483                 if (connection->address_type == BD_ADDR_TYPE_CLASSIC){
2484                     hci_send_cmd(&hci_accept_connection_request, connection->address, 1);
2485                 } else {
2486                     // remote supported feature eSCO is set if link type is eSCO
2487                     uint16_t max_latency;
2488                     uint8_t  retransmission_effort;
2489                     uint16_t packet_types;
2490                     // remote supported feature eSCO is set if link type is eSCO
2491                     if (connection->remote_supported_feature_eSCO){
2492                         // eSCO: S4 - max latency == transmission interval = 0x000c == 12 ms,
2493                         max_latency = 0x000c;
2494                         retransmission_effort = 0x02;
2495                         packet_types = 0x388;
2496                     } else {
2497                         // SCO: max latency, retransmission interval: N/A. any packet type
2498                         max_latency = 0xffff;
2499                         retransmission_effort = 0xff;
2500                         packet_types = 0x003f;
2501                     }
2502                     hci_send_cmd(&hci_accept_synchronous_connection, connection->address, 8000, 8000, max_latency, hci_stack->sco_voice_setting, retransmission_effort, packet_types);
2503                 }
2504                 return;
2505 
2506 #ifdef ENABLE_BLE
2507             case SEND_CANCEL_CONNECTION:
2508                 connection->state = SENT_CANCEL_CONNECTION;
2509                 hci_send_cmd(&hci_le_create_connection_cancel);
2510                 return;
2511 #endif
2512             case SEND_DISCONNECT:
2513                 connection->state = SENT_DISCONNECT;
2514                 hci_send_cmd(&hci_disconnect, connection->con_handle, 0x13); // remote closed connection
2515                 return;
2516 
2517             default:
2518                 break;
2519         }
2520 
2521         if (connection->authentication_flags & HANDLE_LINK_KEY_REQUEST){
2522             log_info("responding to link key request");
2523             connectionClearAuthenticationFlags(connection, HANDLE_LINK_KEY_REQUEST);
2524             link_key_t link_key;
2525             link_key_type_t link_key_type;
2526             if ( hci_stack->link_key_db
2527               && hci_stack->link_key_db->get_link_key(connection->address, link_key, &link_key_type)
2528               && gap_security_level_for_link_key_type(link_key_type) >= connection->requested_security_level){
2529                connection->link_key_type = link_key_type;
2530                hci_send_cmd(&hci_link_key_request_reply, connection->address, &link_key);
2531             } else {
2532                hci_send_cmd(&hci_link_key_request_negative_reply, connection->address);
2533             }
2534             return;
2535         }
2536 
2537         if (connection->authentication_flags & DENY_PIN_CODE_REQUEST){
2538             log_info("denying to pin request");
2539             connectionClearAuthenticationFlags(connection, DENY_PIN_CODE_REQUEST);
2540             hci_send_cmd(&hci_pin_code_request_negative_reply, connection->address);
2541             return;
2542         }
2543 
2544         if (connection->authentication_flags & SEND_IO_CAPABILITIES_REPLY){
2545             connectionClearAuthenticationFlags(connection, SEND_IO_CAPABILITIES_REPLY);
2546             log_info("IO Capability Request received, stack bondable %u, io cap %u", hci_stack->bondable, hci_stack->ssp_io_capability);
2547             if (hci_stack->bondable && (hci_stack->ssp_io_capability != SSP_IO_CAPABILITY_UNKNOWN)){
2548                 // tweak authentication requirements
2549                 uint8_t authreq = hci_stack->ssp_authentication_requirement;
2550                 if (connection->bonding_flags & BONDING_DEDICATED){
2551                     authreq = SSP_IO_AUTHREQ_MITM_PROTECTION_NOT_REQUIRED_DEDICATED_BONDING;
2552                 }
2553                 if (gap_mitm_protection_required_for_security_level(connection->requested_security_level)){
2554                     authreq |= 1;
2555                 }
2556                 hci_send_cmd(&hci_io_capability_request_reply, &connection->address, hci_stack->ssp_io_capability, NULL, authreq);
2557             } else {
2558                 hci_send_cmd(&hci_io_capability_request_negative_reply, &connection->address, ERROR_CODE_PAIRING_NOT_ALLOWED);
2559             }
2560             return;
2561         }
2562 
2563         if (connection->authentication_flags & SEND_USER_CONFIRM_REPLY){
2564             connectionClearAuthenticationFlags(connection, SEND_USER_CONFIRM_REPLY);
2565             hci_send_cmd(&hci_user_confirmation_request_reply, &connection->address);
2566             return;
2567         }
2568 
2569         if (connection->authentication_flags & SEND_USER_PASSKEY_REPLY){
2570             connectionClearAuthenticationFlags(connection, SEND_USER_PASSKEY_REPLY);
2571             hci_send_cmd(&hci_user_passkey_request_reply, &connection->address, 000000);
2572             return;
2573         }
2574 
2575         if (connection->bonding_flags & BONDING_REQUEST_REMOTE_FEATURES){
2576             connection->bonding_flags &= ~BONDING_REQUEST_REMOTE_FEATURES;
2577             hci_send_cmd(&hci_read_remote_supported_features_command, connection->con_handle);
2578             return;
2579         }
2580 
2581         if (connection->bonding_flags & BONDING_DISCONNECT_SECURITY_BLOCK){
2582             connection->bonding_flags &= ~BONDING_DISCONNECT_SECURITY_BLOCK;
2583             hci_send_cmd(&hci_disconnect, connection->con_handle, 0x0005);  // authentication failure
2584             return;
2585         }
2586         if (connection->bonding_flags & BONDING_DISCONNECT_DEDICATED_DONE){
2587             connection->bonding_flags &= ~BONDING_DISCONNECT_DEDICATED_DONE;
2588             connection->bonding_flags |= BONDING_EMIT_COMPLETE_ON_DISCONNECT;
2589             hci_send_cmd(&hci_disconnect, connection->con_handle, 0x13);  // authentication done
2590             return;
2591         }
2592         if (connection->bonding_flags & BONDING_SEND_AUTHENTICATE_REQUEST){
2593             connection->bonding_flags &= ~BONDING_SEND_AUTHENTICATE_REQUEST;
2594             hci_send_cmd(&hci_authentication_requested, connection->con_handle);
2595             return;
2596         }
2597         if (connection->bonding_flags & BONDING_SEND_ENCRYPTION_REQUEST){
2598             connection->bonding_flags &= ~BONDING_SEND_ENCRYPTION_REQUEST;
2599             hci_send_cmd(&hci_set_connection_encryption, connection->con_handle, 1);
2600             return;
2601         }
2602 
2603 #ifdef ENABLE_BLE
2604         if (connection->le_con_parameter_update_state == CON_PARAMETER_UPDATE_CHANGE_HCI_CON_PARAMETERS){
2605             connection->le_con_parameter_update_state = CON_PARAMETER_UPDATE_NONE;
2606 
2607             uint16_t connection_interval_min = connection->le_conn_interval_min;
2608             connection->le_conn_interval_min = 0;
2609             hci_send_cmd(&hci_le_connection_update, connection->con_handle, connection_interval_min,
2610                 connection->le_conn_interval_max, connection->le_conn_latency, connection->le_supervision_timeout,
2611                 0x0000, 0xffff);
2612         }
2613 #endif
2614     }
2615 
2616     hci_connection_t * connection;
2617     switch (hci_stack->state){
2618         case HCI_STATE_INITIALIZING:
2619             hci_initializing_run();
2620             break;
2621 
2622         case HCI_STATE_HALTING:
2623 
2624             log_info("HCI_STATE_HALTING");
2625 
2626             // free whitelist entries
2627 #ifdef ENABLE_BLE
2628             {
2629                 btstack_linked_list_iterator_t lit;
2630                 btstack_linked_list_iterator_init(&lit, &hci_stack->le_whitelist);
2631                 while (btstack_linked_list_iterator_has_next(&lit)){
2632                     whitelist_entry_t * entry = (whitelist_entry_t*) btstack_linked_list_iterator_next(&lit);
2633                     btstack_linked_list_remove(&hci_stack->le_whitelist, (btstack_linked_item_t *) entry);
2634                     btstack_memory_whitelist_entry_free(entry);
2635                 }
2636             }
2637 #endif
2638             // close all open connections
2639             connection =  (hci_connection_t *) hci_stack->connections;
2640             if (connection){
2641                 hci_con_handle_t con_handle = (uint16_t) connection->con_handle;
2642                 if (!hci_can_send_command_packet_now()) return;
2643 
2644                 log_info("HCI_STATE_HALTING, connection %p, handle %u", connection, con_handle);
2645 
2646                 // cancel all l2cap connections right away instead of waiting for disconnection complete event ...
2647                 hci_emit_disconnection_complete(con_handle, 0x16); // terminated by local host
2648 
2649                 // ... which would be ignored anyway as we shutdown (free) the connection now
2650                 hci_shutdown_connection(connection);
2651 
2652                 // finally, send the disconnect command
2653                 hci_send_cmd(&hci_disconnect, con_handle, 0x13);  // remote closed connection
2654                 return;
2655             }
2656             log_info("HCI_STATE_HALTING, calling off");
2657 
2658             // switch mode
2659             hci_power_control_off();
2660 
2661             log_info("HCI_STATE_HALTING, emitting state");
2662             hci_emit_state();
2663             log_info("HCI_STATE_HALTING, done");
2664             break;
2665 
2666         case HCI_STATE_FALLING_ASLEEP:
2667             switch(hci_stack->substate) {
2668                 case HCI_FALLING_ASLEEP_DISCONNECT:
2669                     log_info("HCI_STATE_FALLING_ASLEEP");
2670                     // close all open connections
2671                     connection =  (hci_connection_t *) hci_stack->connections;
2672 
2673 #ifdef HAVE_PLATFORM_IPHONE_OS
2674                     // don't close connections, if H4 supports power management
2675                     if (btstack_control_iphone_power_management_enabled()){
2676                         connection = NULL;
2677                     }
2678 #endif
2679                     if (connection){
2680 
2681                         // send disconnect
2682                         if (!hci_can_send_command_packet_now()) return;
2683 
2684                         log_info("HCI_STATE_FALLING_ASLEEP, connection %p, handle %u", connection, (uint16_t)connection->con_handle);
2685                         hci_send_cmd(&hci_disconnect, connection->con_handle, 0x13);  // remote closed connection
2686 
2687                         // send disconnected event right away - causes higher layer connections to get closed, too.
2688                         hci_shutdown_connection(connection);
2689                         return;
2690                     }
2691 
2692                     if (hci_classic_supported()){
2693                         // disable page and inquiry scan
2694                         if (!hci_can_send_command_packet_now()) return;
2695 
2696                         log_info("HCI_STATE_HALTING, disabling inq scans");
2697                         hci_send_cmd(&hci_write_scan_enable, hci_stack->connectable << 1); // drop inquiry scan but keep page scan
2698 
2699                         // continue in next sub state
2700                         hci_stack->substate = HCI_FALLING_ASLEEP_W4_WRITE_SCAN_ENABLE;
2701                         break;
2702                     }
2703                     // fall through for ble-only chips
2704 
2705                 case HCI_FALLING_ASLEEP_COMPLETE:
2706                     log_info("HCI_STATE_HALTING, calling sleep");
2707 #ifdef HAVE_PLATFORM_IPHONE_OS
2708                     // don't actually go to sleep, if H4 supports power management
2709                     if (btstack_control_iphone_power_management_enabled()){
2710                         // SLEEP MODE reached
2711                         hci_stack->state = HCI_STATE_SLEEPING;
2712                         hci_emit_state();
2713                         break;
2714                     }
2715 #endif
2716                     // switch mode
2717                     hci_power_control_sleep();  // changes hci_stack->state to SLEEP
2718                     hci_emit_state();
2719                     break;
2720 
2721                 default:
2722                     break;
2723             }
2724             break;
2725 
2726         default:
2727             break;
2728     }
2729 }
2730 
2731 int hci_send_cmd_packet(uint8_t *packet, int size){
2732     bd_addr_t addr;
2733     hci_connection_t * conn;
2734     // house-keeping
2735 
2736     // create_connection?
2737     if (IS_COMMAND(packet, hci_create_connection)){
2738         reverse_bd_addr(&packet[3], addr);
2739         log_info("Create_connection to %s", bd_addr_to_str(addr));
2740 
2741         conn = hci_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_CLASSIC);
2742         if (!conn){
2743             conn = create_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_CLASSIC);
2744             if (!conn){
2745                 // notify client that alloc failed
2746                 hci_emit_connection_complete(conn, BTSTACK_MEMORY_ALLOC_FAILED);
2747                 return 0; // don't sent packet to controller
2748             }
2749             conn->state = SEND_CREATE_CONNECTION;
2750         }
2751         log_info("conn state %u", conn->state);
2752         switch (conn->state){
2753             // if connection active exists
2754             case OPEN:
2755                 // and OPEN, emit connection complete command, don't send to controller
2756                 hci_emit_connection_complete(conn, 0);
2757                 return 0;
2758             case SEND_CREATE_CONNECTION:
2759                 // connection created by hci, e.g. dedicated bonding
2760                 break;
2761             default:
2762                 // otherwise, just ignore as it is already in the open process
2763                 return 0;
2764         }
2765         conn->state = SENT_CREATE_CONNECTION;
2766     }
2767     if (IS_COMMAND(packet, hci_link_key_request_reply)){
2768         hci_add_connection_flags_for_flipped_bd_addr(&packet[3], SENT_LINK_KEY_REPLY);
2769     }
2770     if (IS_COMMAND(packet, hci_link_key_request_negative_reply)){
2771         hci_add_connection_flags_for_flipped_bd_addr(&packet[3], SENT_LINK_KEY_NEGATIVE_REQUEST);
2772     }
2773 
2774     if (IS_COMMAND(packet, hci_delete_stored_link_key)){
2775         if (hci_stack->link_key_db){
2776             reverse_bd_addr(&packet[3], addr);
2777             hci_stack->link_key_db->delete_link_key(addr);
2778         }
2779     }
2780 
2781     if (IS_COMMAND(packet, hci_pin_code_request_negative_reply)
2782     ||  IS_COMMAND(packet, hci_pin_code_request_reply)){
2783         reverse_bd_addr(&packet[3], addr);
2784         conn = hci_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_CLASSIC);
2785         if (conn){
2786             connectionClearAuthenticationFlags(conn, LEGACY_PAIRING_ACTIVE);
2787         }
2788     }
2789 
2790     if (IS_COMMAND(packet, hci_user_confirmation_request_negative_reply)
2791     ||  IS_COMMAND(packet, hci_user_confirmation_request_reply)
2792     ||  IS_COMMAND(packet, hci_user_passkey_request_negative_reply)
2793     ||  IS_COMMAND(packet, hci_user_passkey_request_reply)) {
2794         reverse_bd_addr(&packet[3], addr);
2795         conn = hci_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_CLASSIC);
2796         if (conn){
2797             connectionClearAuthenticationFlags(conn, SSP_PAIRING_ACTIVE);
2798         }
2799     }
2800 
2801     if (IS_COMMAND(packet, hci_write_loopback_mode)){
2802         hci_stack->loopback_mode = packet[3];
2803     }
2804 
2805 #ifdef ENABLE_BLE
2806     if (IS_COMMAND(packet, hci_le_set_advertising_parameters)){
2807         hci_stack->adv_addr_type = packet[8];
2808     }
2809     if (IS_COMMAND(packet, hci_le_set_random_address)){
2810         reverse_bd_addr(&packet[3], hci_stack->adv_address);
2811     }
2812     if (IS_COMMAND(packet, hci_le_set_advertise_enable)){
2813         hci_stack->le_advertisements_active = packet[3];
2814     }
2815     if (IS_COMMAND(packet, hci_le_create_connection)){
2816         // white list used?
2817         uint8_t initiator_filter_policy = packet[7];
2818         switch (initiator_filter_policy){
2819             case 0:
2820                 // whitelist not used
2821                 hci_stack->le_connecting_state = LE_CONNECTING_DIRECT;
2822                 break;
2823             case 1:
2824                 hci_stack->le_connecting_state = LE_CONNECTING_WHITELIST;
2825                 break;
2826             default:
2827                 log_error("Invalid initiator_filter_policy in LE Create Connection %u", initiator_filter_policy);
2828                 break;
2829         }
2830     }
2831     if (IS_COMMAND(packet, hci_le_create_connection_cancel)){
2832         hci_stack->le_connecting_state = LE_CONNECTING_IDLE;
2833     }
2834 #endif
2835 
2836     hci_stack->num_cmd_packets--;
2837 
2838     hci_dump_packet(HCI_COMMAND_DATA_PACKET, 0, packet, size);
2839     int err = hci_stack->hci_transport->send_packet(HCI_COMMAND_DATA_PACKET, packet, size);
2840 
2841     // release packet buffer for synchronous transport implementations
2842     if (hci_transport_synchronous() && (packet == hci_stack->hci_packet_buffer)){
2843         hci_stack->hci_packet_buffer_reserved = 0;
2844     }
2845 
2846     return err;
2847 }
2848 
2849 // disconnect because of security block
2850 void hci_disconnect_security_block(hci_con_handle_t con_handle){
2851     hci_connection_t * connection = hci_connection_for_handle(con_handle);
2852     if (!connection) return;
2853     connection->bonding_flags |= BONDING_DISCONNECT_SECURITY_BLOCK;
2854 }
2855 
2856 
2857 // Configure Secure Simple Pairing
2858 
2859 // enable will enable SSP during init
2860 void gap_ssp_set_enable(int enable){
2861     hci_stack->ssp_enable = enable;
2862 }
2863 
2864 static int hci_local_ssp_activated(void){
2865     return gap_ssp_supported() && hci_stack->ssp_enable;
2866 }
2867 
2868 // if set, BTstack will respond to io capability request using authentication requirement
2869 void gap_ssp_set_io_capability(int io_capability){
2870     hci_stack->ssp_io_capability = io_capability;
2871 }
2872 void gap_ssp_set_authentication_requirement(int authentication_requirement){
2873     hci_stack->ssp_authentication_requirement = authentication_requirement;
2874 }
2875 
2876 // if set, BTstack will confirm a numberic comparion and enter '000000' if requested
2877 void gap_ssp_set_auto_accept(int auto_accept){
2878     hci_stack->ssp_auto_accept = auto_accept;
2879 }
2880 
2881 /**
2882  * pre: numcmds >= 0 - it's allowed to send a command to the controller
2883  */
2884 int hci_send_cmd(const hci_cmd_t *cmd, ...){
2885 
2886     if (!hci_can_send_command_packet_now()){
2887         log_error("hci_send_cmd called but cannot send packet now");
2888         return 0;
2889     }
2890 
2891     // for HCI INITIALIZATION
2892     // log_info("hci_send_cmd: opcode %04x", cmd->opcode);
2893     hci_stack->last_cmd_opcode = cmd->opcode;
2894 
2895     hci_reserve_packet_buffer();
2896     uint8_t * packet = hci_stack->hci_packet_buffer;
2897 
2898     va_list argptr;
2899     va_start(argptr, cmd);
2900     uint16_t size = hci_cmd_create_from_template(packet, cmd, argptr);
2901     va_end(argptr);
2902 
2903     return hci_send_cmd_packet(packet, size);
2904 }
2905 
2906 // Create various non-HCI events.
2907 // TODO: generalize, use table similar to hci_create_command
2908 
2909 static void hci_emit_event(uint8_t * event, uint16_t size, int dump){
2910     // dump packet
2911     if (dump) {
2912         hci_dump_packet( HCI_EVENT_PACKET, 0, event, size);
2913     }
2914 
2915     // dispatch to all event handlers
2916     btstack_linked_list_iterator_t it;
2917     btstack_linked_list_iterator_init(&it, &hci_stack->event_handlers);
2918     while (btstack_linked_list_iterator_has_next(&it)){
2919         btstack_packet_callback_registration_t * entry = (btstack_packet_callback_registration_t*) btstack_linked_list_iterator_next(&it);
2920         entry->callback(HCI_EVENT_PACKET, 0, event, size);
2921     }
2922 }
2923 
2924 static void hci_emit_acl_packet(uint8_t * packet, uint16_t size){
2925     if (!hci_stack->acl_packet_handler) return;
2926     hci_stack->acl_packet_handler(HCI_ACL_DATA_PACKET, packet, size);
2927 }
2928 
2929 static void hci_notify_if_sco_can_send_now(void){
2930     // notify SCO sender if waiting
2931     if (!hci_stack->sco_waiting_for_can_send_now) return;
2932     if (hci_can_send_sco_packet_now()){
2933         hci_stack->sco_waiting_for_can_send_now = 0;
2934         uint8_t event[2] = { HCI_EVENT_SCO_CAN_SEND_NOW, 0 };
2935         hci_dump_packet(HCI_EVENT_PACKET, 1, event, sizeof(event));
2936         hci_stack->sco_packet_handler(HCI_EVENT_PACKET, event, sizeof(event));
2937     }
2938 }
2939 
2940 void hci_emit_state(void){
2941     log_info("BTSTACK_EVENT_STATE %u", hci_stack->state);
2942     uint8_t event[3];
2943     event[0] = BTSTACK_EVENT_STATE;
2944     event[1] = sizeof(event) - 2;
2945     event[2] = hci_stack->state;
2946     hci_emit_event(event, sizeof(event), 1);
2947 }
2948 
2949 static void hci_emit_connection_complete(hci_connection_t *conn, uint8_t status){
2950     uint8_t event[13];
2951     event[0] = HCI_EVENT_CONNECTION_COMPLETE;
2952     event[1] = sizeof(event) - 2;
2953     event[2] = status;
2954     little_endian_store_16(event, 3, conn->con_handle);
2955     reverse_bd_addr(conn->address, &event[5]);
2956     event[11] = 1; // ACL connection
2957     event[12] = 0; // encryption disabled
2958     hci_emit_event(event, sizeof(event), 1);
2959 }
2960 
2961 static void hci_emit_le_connection_complete(uint8_t address_type, bd_addr_t address, hci_con_handle_t con_handle, uint8_t status){
2962     uint8_t event[21];
2963     event[0] = HCI_EVENT_LE_META;
2964     event[1] = sizeof(event) - 2;
2965     event[2] = HCI_SUBEVENT_LE_CONNECTION_COMPLETE;
2966     event[3] = status;
2967     little_endian_store_16(event, 4, con_handle);
2968     event[6] = 0; // TODO: role
2969     event[7] = address_type;
2970     reverse_bd_addr(address, &event[8]);
2971     little_endian_store_16(event, 14, 0); // interval
2972     little_endian_store_16(event, 16, 0); // latency
2973     little_endian_store_16(event, 18, 0); // supervision timeout
2974     event[20] = 0; // master clock accuracy
2975     hci_emit_event(event, sizeof(event), 1);
2976 }
2977 
2978 static void hci_emit_disconnection_complete(hci_con_handle_t con_handle, uint8_t reason){
2979     uint8_t event[6];
2980     event[0] = HCI_EVENT_DISCONNECTION_COMPLETE;
2981     event[1] = sizeof(event) - 2;
2982     event[2] = 0; // status = OK
2983     little_endian_store_16(event, 3, con_handle);
2984     event[5] = reason;
2985     hci_emit_event(event, sizeof(event), 1);
2986 }
2987 
2988 static void hci_emit_l2cap_check_timeout(hci_connection_t *conn){
2989     if (disable_l2cap_timeouts) return;
2990     log_info("L2CAP_EVENT_TIMEOUT_CHECK");
2991     uint8_t event[4];
2992     event[0] = L2CAP_EVENT_TIMEOUT_CHECK;
2993     event[1] = sizeof(event) - 2;
2994     little_endian_store_16(event, 2, conn->con_handle);
2995     hci_emit_event(event, sizeof(event), 1);
2996 }
2997 
2998 static void hci_emit_nr_connections_changed(void){
2999     log_info("BTSTACK_EVENT_NR_CONNECTIONS_CHANGED %u", nr_hci_connections());
3000     uint8_t event[3];
3001     event[0] = BTSTACK_EVENT_NR_CONNECTIONS_CHANGED;
3002     event[1] = sizeof(event) - 2;
3003     event[2] = nr_hci_connections();
3004     hci_emit_event(event, sizeof(event), 1);
3005 }
3006 
3007 static void hci_emit_hci_open_failed(void){
3008     log_info("BTSTACK_EVENT_POWERON_FAILED");
3009     uint8_t event[2];
3010     event[0] = BTSTACK_EVENT_POWERON_FAILED;
3011     event[1] = sizeof(event) - 2;
3012     hci_emit_event(event, sizeof(event), 1);
3013 }
3014 
3015 static void hci_emit_discoverable_enabled(uint8_t enabled){
3016     log_info("BTSTACK_EVENT_DISCOVERABLE_ENABLED %u", enabled);
3017     uint8_t event[3];
3018     event[0] = BTSTACK_EVENT_DISCOVERABLE_ENABLED;
3019     event[1] = sizeof(event) - 2;
3020     event[2] = enabled;
3021     hci_emit_event(event, sizeof(event), 1);
3022 }
3023 
3024 static void hci_emit_security_level(hci_con_handle_t con_handle, gap_security_level_t level){
3025     log_info("hci_emit_security_level %u for handle %x", level, con_handle);
3026     uint8_t event[5];
3027     int pos = 0;
3028     event[pos++] = GAP_EVENT_SECURITY_LEVEL;
3029     event[pos++] = sizeof(event) - 2;
3030     little_endian_store_16(event, 2, con_handle);
3031     pos += 2;
3032     event[pos++] = level;
3033     hci_emit_event(event, sizeof(event), 1);
3034 }
3035 
3036 static void hci_emit_dedicated_bonding_result(bd_addr_t address, uint8_t status){
3037     log_info("hci_emit_dedicated_bonding_result %u ", status);
3038     uint8_t event[9];
3039     int pos = 0;
3040     event[pos++] = GAP_EVENT_DEDICATED_BONDING_COMPLETED;
3041     event[pos++] = sizeof(event) - 2;
3042     event[pos++] = status;
3043     reverse_bd_addr(address, &event[pos]);
3044     pos += 6;
3045     hci_emit_event(event, sizeof(event), 1);
3046 }
3047 
3048 // query if remote side supports eSCO
3049 int hci_remote_esco_supported(hci_con_handle_t con_handle){
3050     hci_connection_t * connection = hci_connection_for_handle(con_handle);
3051     if (!connection) return 0;
3052     return connection->remote_supported_feature_eSCO;
3053 }
3054 
3055 // query if remote side supports SSP
3056 int hci_remote_ssp_supported(hci_con_handle_t con_handle){
3057     hci_connection_t * connection = hci_connection_for_handle(con_handle);
3058     if (!connection) return 0;
3059     return (connection->bonding_flags & BONDING_REMOTE_SUPPORTS_SSP) ? 1 : 0;
3060 }
3061 
3062 int gap_ssp_supported_on_both_sides(hci_con_handle_t handle){
3063     return hci_local_ssp_activated() && hci_remote_ssp_supported(handle);
3064 }
3065 
3066 // GAP API
3067 /**
3068  * @bbrief enable/disable bonding. default is enabled
3069  * @praram enabled
3070  */
3071 void gap_set_bondable_mode(int enable){
3072     hci_stack->bondable = enable ? 1 : 0;
3073 }
3074 /**
3075  * @brief Get bondable mode.
3076  * @return 1 if bondable
3077  */
3078 int gap_get_bondable_mode(void){
3079     return hci_stack->bondable;
3080 }
3081 
3082 /**
3083  * @brief map link keys to security levels
3084  */
3085 gap_security_level_t gap_security_level_for_link_key_type(link_key_type_t link_key_type){
3086     switch (link_key_type){
3087         case AUTHENTICATED_COMBINATION_KEY_GENERATED_FROM_P256:
3088             return LEVEL_4;
3089         case COMBINATION_KEY:
3090         case AUTHENTICATED_COMBINATION_KEY_GENERATED_FROM_P192:
3091             return LEVEL_3;
3092         default:
3093             return LEVEL_2;
3094     }
3095 }
3096 
3097 static gap_security_level_t gap_security_level_for_connection(hci_connection_t * connection){
3098     if (!connection) return LEVEL_0;
3099     if ((connection->authentication_flags & CONNECTION_ENCRYPTED) == 0) return LEVEL_0;
3100     return gap_security_level_for_link_key_type(connection->link_key_type);
3101 }
3102 
3103 
3104 int gap_mitm_protection_required_for_security_level(gap_security_level_t level){
3105     log_info("gap_mitm_protection_required_for_security_level %u", level);
3106     return level > LEVEL_2;
3107 }
3108 
3109 /**
3110  * @brief get current security level
3111  */
3112 gap_security_level_t gap_security_level(hci_con_handle_t con_handle){
3113     hci_connection_t * connection = hci_connection_for_handle(con_handle);
3114     if (!connection) return LEVEL_0;
3115     return gap_security_level_for_connection(connection);
3116 }
3117 
3118 /**
3119  * @brief request connection to device to
3120  * @result GAP_AUTHENTICATION_RESULT
3121  */
3122 void gap_request_security_level(hci_con_handle_t con_handle, gap_security_level_t requested_level){
3123     hci_connection_t * connection = hci_connection_for_handle(con_handle);
3124     if (!connection){
3125         hci_emit_security_level(con_handle, LEVEL_0);
3126         return;
3127     }
3128     gap_security_level_t current_level = gap_security_level(con_handle);
3129     log_info("gap_request_security_level %u, current level %u", requested_level, current_level);
3130     if (current_level >= requested_level){
3131         hci_emit_security_level(con_handle, current_level);
3132         return;
3133     }
3134 
3135     connection->requested_security_level = requested_level;
3136 
3137 #if 0
3138     // sending encryption request without a link key results in an error.
3139     // TODO: figure out how to use it properly
3140 
3141     // would enabling ecnryption suffice (>= LEVEL_2)?
3142     if (hci_stack->link_key_db){
3143         link_key_type_t link_key_type;
3144         link_key_t      link_key;
3145         if (hci_stack->link_key_db->get_link_key( &connection->address, &link_key, &link_key_type)){
3146             if (gap_security_level_for_link_key_type(link_key_type) >= requested_level){
3147                 connection->bonding_flags |= BONDING_SEND_ENCRYPTION_REQUEST;
3148                 return;
3149             }
3150         }
3151     }
3152 #endif
3153 
3154     // try to authenticate connection
3155     connection->bonding_flags |= BONDING_SEND_AUTHENTICATE_REQUEST;
3156     hci_run();
3157 }
3158 
3159 /**
3160  * @brief start dedicated bonding with device. disconnect after bonding
3161  * @param device
3162  * @param request MITM protection
3163  * @result GAP_DEDICATED_BONDING_COMPLETE
3164  */
3165 int gap_dedicated_bonding(bd_addr_t device, int mitm_protection_required){
3166 
3167     // create connection state machine
3168     hci_connection_t * connection = create_connection_for_bd_addr_and_type(device, BD_ADDR_TYPE_CLASSIC);
3169 
3170     if (!connection){
3171         return BTSTACK_MEMORY_ALLOC_FAILED;
3172     }
3173 
3174     // delete linkn key
3175     gap_drop_link_key_for_bd_addr(device);
3176 
3177     // configure LEVEL_2/3, dedicated bonding
3178     connection->state = SEND_CREATE_CONNECTION;
3179     connection->requested_security_level = mitm_protection_required ? LEVEL_3 : LEVEL_2;
3180     log_info("gap_dedicated_bonding, mitm %u -> level %u", mitm_protection_required, connection->requested_security_level);
3181     connection->bonding_flags = BONDING_DEDICATED;
3182 
3183     // wait for GAP Security Result and send GAP Dedicated Bonding complete
3184 
3185     // handle: connnection failure (connection complete != ok)
3186     // handle: authentication failure
3187     // handle: disconnect on done
3188 
3189     hci_run();
3190 
3191     return 0;
3192 }
3193 
3194 void gap_set_local_name(const char * local_name){
3195     hci_stack->local_name = local_name;
3196 }
3197 
3198 void gap_start_scan(void){
3199     if (hci_stack->le_scanning_state == LE_SCANNING) return;
3200     hci_stack->le_scanning_state = LE_START_SCAN;
3201     hci_run();
3202 }
3203 
3204 void gap_stop_scan(void){
3205     if ( hci_stack->le_scanning_state == LE_SCAN_IDLE) return;
3206     hci_stack->le_scanning_state = LE_STOP_SCAN;
3207     hci_run();
3208 }
3209 
3210 void gap_set_scan_parameters(uint8_t scan_type, uint16_t scan_interval, uint16_t scan_window){
3211     hci_stack->le_scan_type     = scan_type;
3212     hci_stack->le_scan_interval = scan_interval;
3213     hci_stack->le_scan_window   = scan_window;
3214     hci_run();
3215 }
3216 
3217 uint8_t gap_connect(bd_addr_t addr, bd_addr_type_t addr_type){
3218     hci_connection_t * conn = hci_connection_for_bd_addr_and_type(addr, addr_type);
3219     if (!conn){
3220         log_info("gap_connect: no connection exists yet, creating context");
3221         conn = create_connection_for_bd_addr_and_type(addr, addr_type);
3222         if (!conn){
3223             // notify client that alloc failed
3224             hci_emit_le_connection_complete(addr_type, addr, 0, BTSTACK_MEMORY_ALLOC_FAILED);
3225             log_info("gap_connect: failed to alloc hci_connection_t");
3226             return GATT_CLIENT_NOT_CONNECTED; // don't sent packet to controller
3227         }
3228         conn->state = SEND_CREATE_CONNECTION;
3229         log_info("gap_connect: send create connection next");
3230         hci_run();
3231         return 0;
3232     }
3233 
3234     if (!hci_is_le_connection(conn) ||
3235         conn->state == SEND_CREATE_CONNECTION ||
3236         conn->state == SENT_CREATE_CONNECTION) {
3237         hci_emit_le_connection_complete(conn->address_type, conn->address, 0, ERROR_CODE_COMMAND_DISALLOWED);
3238         log_error("gap_connect: classic connection or connect is already being created");
3239         return GATT_CLIENT_IN_WRONG_STATE;
3240     }
3241 
3242     log_info("gap_connect: context exists with state %u", conn->state);
3243     hci_emit_le_connection_complete(conn->address_type, conn->address, conn->con_handle, 0);
3244     hci_run();
3245     return 0;
3246 }
3247 
3248 // @assumption: only a single outgoing LE Connection exists
3249 static hci_connection_t * gap_get_outgoing_connection(void){
3250     btstack_linked_item_t *it;
3251     for (it = (btstack_linked_item_t *) hci_stack->connections; it ; it = it->next){
3252         hci_connection_t * conn = (hci_connection_t *) it;
3253         if (!hci_is_le_connection(conn)) continue;
3254         switch (conn->state){
3255             case SEND_CREATE_CONNECTION:
3256             case SENT_CREATE_CONNECTION:
3257                 return conn;
3258             default:
3259                 break;
3260         };
3261     }
3262     return NULL;
3263 }
3264 
3265 uint8_t gap_connect_cancel(void){
3266     hci_connection_t * conn = gap_get_outgoing_connection();
3267     if (!conn) return 0;
3268     switch (conn->state){
3269         case SEND_CREATE_CONNECTION:
3270             // skip sending create connection and emit event instead
3271             hci_emit_le_connection_complete(conn->address_type, conn->address, 0, ERROR_CODE_UNKNOWN_CONNECTION_IDENTIFIER);
3272             btstack_linked_list_remove(&hci_stack->connections, (btstack_linked_item_t *) conn);
3273             btstack_memory_hci_connection_free( conn );
3274             break;
3275         case SENT_CREATE_CONNECTION:
3276             // request to send cancel connection
3277             conn->state = SEND_CANCEL_CONNECTION;
3278             hci_run();
3279             break;
3280         default:
3281             break;
3282     }
3283     return 0;
3284 }
3285 
3286 /**
3287  * @brief Updates the connection parameters for a given LE connection
3288  * @param handle
3289  * @param conn_interval_min (unit: 1.25ms)
3290  * @param conn_interval_max (unit: 1.25ms)
3291  * @param conn_latency
3292  * @param supervision_timeout (unit: 10ms)
3293  * @returns 0 if ok
3294  */
3295 int gap_update_connection_parameters(hci_con_handle_t con_handle, uint16_t conn_interval_min,
3296     uint16_t conn_interval_max, uint16_t conn_latency, uint16_t supervision_timeout){
3297     hci_connection_t * connection = hci_connection_for_handle(con_handle);
3298     if (!connection) return ERROR_CODE_UNKNOWN_CONNECTION_IDENTIFIER;
3299     connection->le_conn_interval_min = conn_interval_min;
3300     connection->le_conn_interval_max = conn_interval_max;
3301     connection->le_conn_latency = conn_latency;
3302     connection->le_supervision_timeout = supervision_timeout;
3303     connection->le_con_parameter_update_state = CON_PARAMETER_UPDATE_CHANGE_HCI_CON_PARAMETERS;
3304     hci_run();
3305     return 0;
3306 }
3307 
3308 /**
3309  * @brief Request an update of the connection parameter for a given LE connection
3310  * @param handle
3311  * @param conn_interval_min (unit: 1.25ms)
3312  * @param conn_interval_max (unit: 1.25ms)
3313  * @param conn_latency
3314  * @param supervision_timeout (unit: 10ms)
3315  * @returns 0 if ok
3316  */
3317 int gap_request_connection_parameter_update(hci_con_handle_t con_handle, uint16_t conn_interval_min,
3318     uint16_t conn_interval_max, uint16_t conn_latency, uint16_t supervision_timeout){
3319     hci_connection_t * connection = hci_connection_for_handle(con_handle);
3320     if (!connection) return ERROR_CODE_UNKNOWN_CONNECTION_IDENTIFIER;
3321     connection->le_conn_interval_min = conn_interval_min;
3322     connection->le_conn_interval_max = conn_interval_max;
3323     connection->le_conn_latency = conn_latency;
3324     connection->le_supervision_timeout = supervision_timeout;
3325     connection->le_con_parameter_update_state = CON_PARAMETER_UPDATE_SEND_REQUEST;
3326     hci_run();
3327     return 0;
3328 }
3329 
3330 /**
3331  * @brief Set Advertisement Data
3332  * @param advertising_data_length
3333  * @param advertising_data (max 31 octets)
3334  * @note data is not copied, pointer has to stay valid
3335  */
3336 void gap_advertisements_set_data(uint8_t advertising_data_length, uint8_t * advertising_data){
3337     hci_stack->le_advertisements_data_len = advertising_data_length;
3338     hci_stack->le_advertisements_data = advertising_data;
3339     hci_stack->le_advertisements_todo |= LE_ADVERTISEMENT_TASKS_SET_DATA;
3340     // disable advertisements before setting data
3341     if (hci_stack->le_advertisements_active){
3342         hci_stack->le_advertisements_todo |= LE_ADVERTISEMENT_TASKS_DISABLE | LE_ADVERTISEMENT_TASKS_ENABLE;
3343     }
3344     hci_run();
3345 }
3346 
3347 /**
3348  * @brief Set Advertisement Parameters
3349  * @param adv_int_min
3350  * @param adv_int_max
3351  * @param adv_type
3352  * @param own_address_type
3353  * @param direct_address_type
3354  * @param direct_address
3355  * @param channel_map
3356  * @param filter_policy
3357  *
3358  * @note internal use. use gap_advertisements_set_params from gap_le.h instead.
3359  */
3360  void hci_le_advertisements_set_params(uint16_t adv_int_min, uint16_t adv_int_max, uint8_t adv_type,
3361     uint8_t own_address_type, uint8_t direct_address_typ, bd_addr_t direct_address,
3362     uint8_t channel_map, uint8_t filter_policy) {
3363 
3364     hci_stack->le_advertisements_interval_min = adv_int_min;
3365     hci_stack->le_advertisements_interval_max = adv_int_max;
3366     hci_stack->le_advertisements_type = adv_type;
3367     hci_stack->le_advertisements_own_address_type = own_address_type;
3368     hci_stack->le_advertisements_direct_address_type = direct_address_typ;
3369     hci_stack->le_advertisements_channel_map = channel_map;
3370     hci_stack->le_advertisements_filter_policy = filter_policy;
3371     memcpy(hci_stack->le_advertisements_direct_address, direct_address, 6);
3372 
3373     hci_stack->le_advertisements_todo |= LE_ADVERTISEMENT_TASKS_SET_PARAMS;
3374     // disable advertisements before changing params
3375     if (hci_stack->le_advertisements_active){
3376         hci_stack->le_advertisements_todo |= LE_ADVERTISEMENT_TASKS_DISABLE | LE_ADVERTISEMENT_TASKS_ENABLE;
3377     }
3378     hci_run();
3379  }
3380 
3381 /**
3382  * @brief Enable/Disable Advertisements
3383  * @param enabled
3384  */
3385 void gap_advertisements_enable(int enabled){
3386     hci_stack->le_advertisements_enabled = enabled;
3387     if (enabled && !hci_stack->le_advertisements_active){
3388         hci_stack->le_advertisements_todo |= LE_ADVERTISEMENT_TASKS_ENABLE;
3389     }
3390     if (!enabled && hci_stack->le_advertisements_active){
3391         hci_stack->le_advertisements_todo |= LE_ADVERTISEMENT_TASKS_DISABLE;
3392     }
3393     hci_run();
3394 }
3395 
3396 
3397 uint8_t gap_disconnect(hci_con_handle_t handle){
3398     hci_connection_t * conn = hci_connection_for_handle(handle);
3399     if (!conn){
3400         hci_emit_disconnection_complete(handle, 0);
3401         return 0;
3402     }
3403     conn->state = SEND_DISCONNECT;
3404     hci_run();
3405     return 0;
3406 }
3407 
3408 /**
3409  * @brief Get connection type
3410  * @param con_handle
3411  * @result connection_type
3412  */
3413 gap_connection_type_t gap_get_connection_type(hci_con_handle_t connection_handle){
3414     hci_connection_t * conn = hci_connection_for_handle(connection_handle);
3415     if (!conn) return GAP_CONNECTION_INVALID;
3416     switch (conn->address_type){
3417         case BD_ADDR_TYPE_LE_PUBLIC:
3418         case BD_ADDR_TYPE_LE_RANDOM:
3419             return GAP_CONNECTION_LE;
3420         case BD_ADDR_TYPE_SCO:
3421             return GAP_CONNECTION_SCO;
3422         case BD_ADDR_TYPE_CLASSIC:
3423             return GAP_CONNECTION_ACL;
3424         default:
3425             return GAP_CONNECTION_INVALID;
3426     }
3427 }
3428 
3429 #ifdef ENABLE_BLE
3430 
3431 /**
3432  * @brief Auto Connection Establishment - Start Connecting to device
3433  * @param address_typ
3434  * @param address
3435  * @returns 0 if ok
3436  */
3437 int gap_auto_connection_start(bd_addr_type_t address_type, bd_addr_t address){
3438     // check capacity
3439     int num_entries = btstack_linked_list_count(&hci_stack->le_whitelist);
3440     if (num_entries >= hci_stack->le_whitelist_capacity) return ERROR_CODE_MEMORY_CAPACITY_EXCEEDED;
3441     whitelist_entry_t * entry = btstack_memory_whitelist_entry_get();
3442     if (!entry) return BTSTACK_MEMORY_ALLOC_FAILED;
3443     entry->address_type = address_type;
3444     memcpy(entry->address, address, 6);
3445     entry->state = LE_WHITELIST_ADD_TO_CONTROLLER;
3446     btstack_linked_list_add(&hci_stack->le_whitelist, (btstack_linked_item_t*) entry);
3447     hci_run();
3448     return 0;
3449 }
3450 
3451 static void hci_remove_from_whitelist(bd_addr_type_t address_type, bd_addr_t address){
3452     btstack_linked_list_iterator_t it;
3453     btstack_linked_list_iterator_init(&it, &hci_stack->le_whitelist);
3454     while (btstack_linked_list_iterator_has_next(&it)){
3455         whitelist_entry_t * entry = (whitelist_entry_t*) btstack_linked_list_iterator_next(&it);
3456         if (entry->address_type != address_type) continue;
3457         if (memcmp(entry->address, address, 6) != 0) continue;
3458         if (entry->state & LE_WHITELIST_ON_CONTROLLER){
3459             // remove from controller if already present
3460             entry->state |= LE_WHITELIST_REMOVE_FROM_CONTROLLER;
3461             continue;
3462         }
3463         // direclty remove entry from whitelist
3464         btstack_linked_list_iterator_remove(&it);
3465         btstack_memory_whitelist_entry_free(entry);
3466     }
3467 }
3468 
3469 /**
3470  * @brief Auto Connection Establishment - Stop Connecting to device
3471  * @param address_typ
3472  * @param address
3473  * @returns 0 if ok
3474  */
3475 int gap_auto_connection_stop(bd_addr_type_t address_type, bd_addr_t address){
3476     hci_remove_from_whitelist(address_type, address);
3477     hci_run();
3478     return 0;
3479 }
3480 
3481 /**
3482  * @brief Auto Connection Establishment - Stop everything
3483  * @note  Convenience function to stop all active auto connection attempts
3484  */
3485 void gap_auto_connection_stop_all(void){
3486     btstack_linked_list_iterator_t it;
3487     btstack_linked_list_iterator_init(&it, &hci_stack->le_whitelist);
3488     while (btstack_linked_list_iterator_has_next(&it)){
3489         whitelist_entry_t * entry = (whitelist_entry_t*) btstack_linked_list_iterator_next(&it);
3490         if (entry->state & LE_WHITELIST_ON_CONTROLLER){
3491             // remove from controller if already present
3492             entry->state |= LE_WHITELIST_REMOVE_FROM_CONTROLLER;
3493             continue;
3494         }
3495         // directly remove entry from whitelist
3496         btstack_linked_list_iterator_remove(&it);
3497         btstack_memory_whitelist_entry_free(entry);
3498     }
3499     hci_run();
3500 }
3501 
3502 #endif
3503 
3504 /**
3505  * @brief Configure Voice Setting for use with SCO data in HSP/HFP
3506  */
3507 void hci_set_sco_voice_setting(uint16_t voice_setting){
3508     hci_stack->sco_voice_setting = voice_setting;
3509 }
3510 
3511 /**
3512  * @brief Get SCO Voice Setting
3513  * @return current voice setting
3514  */
3515 uint16_t hci_get_sco_voice_setting(){
3516     return hci_stack->sco_voice_setting;
3517 }
3518 
3519 /** @brief Get SCO packet length for current SCO Voice setting
3520  *  @note  Using SCO packets of the exact length is required for USB transfer
3521  *  @return Length of SCO packets in bytes (not audio frames)
3522  */
3523 int hci_get_sco_packet_length(void){
3524     // see Core Spec for H2 USB Transfer.
3525     if (hci_stack->sco_voice_setting & 0x0020) return 51;
3526     return 27;
3527 }
3528 
3529 /**
3530  * @brief Set callback for Bluetooth Hardware Error
3531  */
3532 void hci_set_hardware_error_callback(void (*fn)(void)){
3533     hci_stack->hardware_error_callback = fn;
3534 }
3535 
3536 void hci_disconnect_all(void){
3537     btstack_linked_list_iterator_t it;
3538     btstack_linked_list_iterator_init(&it, &hci_stack->connections);
3539     while (btstack_linked_list_iterator_has_next(&it)){
3540         hci_connection_t * con = (hci_connection_t*) btstack_linked_list_iterator_next(&it);
3541         if (con->state == SENT_DISCONNECT) continue;
3542         con->state = SEND_DISCONNECT;
3543     }
3544     hci_run();
3545 }
3546