xref: /btstack/src/hci.c (revision 2f48d9200b01ddeafe18ceb5faf51c4c6c1c98d4)
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 #include "hci.h"
48 #include "gap.h"
49 
50 #include <stdarg.h>
51 #include <string.h>
52 #include <stdio.h>
53 
54 #ifndef EMBEDDED
55 #ifdef _WIN32
56 #include "Winsock2.h"
57 #else
58 #include <unistd.h> // gethostbyname
59 #endif
60 #include <btstack/version.h>
61 #endif
62 
63 #include "btstack_memory.h"
64 #include "debug.h"
65 #include "hci_dump.h"
66 
67 #include <btstack/linked_list.h>
68 #include <btstack/hci_cmds.h>
69 
70 #define HCI_CONNECTION_TIMEOUT_MS 10000
71 
72 #ifdef USE_BLUETOOL
73 #include "../platforms/ios/src/bt_control_iphone.h"
74 #endif
75 
76 static void hci_update_scan_enable(void);
77 static gap_security_level_t gap_security_level_for_connection(hci_connection_t * connection);
78 static void hci_connection_timeout_handler(timer_source_t *timer);
79 static void hci_connection_timestamp(hci_connection_t *connection);
80 static int  hci_power_control_on(void);
81 static void hci_power_control_off(void);
82 static void hci_state_reset(void);
83 
84 // the STACK is here
85 #ifndef HAVE_MALLOC
86 static hci_stack_t   hci_stack_static;
87 #endif
88 static hci_stack_t * hci_stack = NULL;
89 
90 // test helper
91 static uint8_t disable_l2cap_timeouts = 0;
92 
93 /**
94  * create connection for given address
95  *
96  * @return connection OR NULL, if no memory left
97  */
98 static hci_connection_t * create_connection_for_bd_addr_and_type(bd_addr_t addr, bd_addr_type_t addr_type){
99     log_info("create_connection_for_addr %s, type %x", bd_addr_to_str(addr), addr_type);
100     hci_connection_t * conn = btstack_memory_hci_connection_get();
101     if (!conn) return NULL;
102     memset(conn, 0, sizeof(hci_connection_t));
103     BD_ADDR_COPY(conn->address, addr);
104     conn->address_type = addr_type;
105     conn->con_handle = 0xffff;
106     conn->authentication_flags = AUTH_FLAGS_NONE;
107     conn->bonding_flags = 0;
108     conn->requested_security_level = LEVEL_0;
109     linked_item_set_user(&conn->timeout.item, conn);
110     conn->timeout.process = hci_connection_timeout_handler;
111     hci_connection_timestamp(conn);
112     conn->acl_recombination_length = 0;
113     conn->acl_recombination_pos = 0;
114     conn->num_acl_packets_sent = 0;
115     conn->num_sco_packets_sent = 0;
116     conn->le_con_parameter_update_state = CON_PARAMETER_UPDATE_NONE;
117     linked_list_add(&hci_stack->connections, (linked_item_t *) conn);
118     return conn;
119 }
120 
121 
122 /**
123  * get le connection parameter range
124 *
125  * @return le connection parameter range struct
126  */
127 le_connection_parameter_range_t gap_le_get_connection_parameter_range(){
128     return hci_stack->le_connection_parameter_range;
129 }
130 
131 /**
132  * set le connection parameter range
133  *
134  */
135 
136 void gap_le_set_connection_parameter_range(le_connection_parameter_range_t range){
137     hci_stack->le_connection_parameter_range.le_conn_interval_min = range.le_conn_interval_min;
138     hci_stack->le_connection_parameter_range.le_conn_interval_max = range.le_conn_interval_max;
139     hci_stack->le_connection_parameter_range.le_conn_interval_min = range.le_conn_latency_min;
140     hci_stack->le_connection_parameter_range.le_conn_interval_max = range.le_conn_latency_max;
141     hci_stack->le_connection_parameter_range.le_supervision_timeout_min = range.le_supervision_timeout_min;
142     hci_stack->le_connection_parameter_range.le_supervision_timeout_max = range.le_supervision_timeout_max;
143 }
144 
145 /**
146  * get hci connections iterator
147  *
148  * @return hci connections iterator
149  */
150 
151 void hci_connections_get_iterator(linked_list_iterator_t *it){
152     linked_list_iterator_init(it, &hci_stack->connections);
153 }
154 
155 /**
156  * get connection for a given handle
157  *
158  * @return connection OR NULL, if not found
159  */
160 hci_connection_t * hci_connection_for_handle(hci_con_handle_t con_handle){
161     linked_list_iterator_t it;
162     linked_list_iterator_init(&it, &hci_stack->connections);
163     while (linked_list_iterator_has_next(&it)){
164         hci_connection_t * item = (hci_connection_t *) linked_list_iterator_next(&it);
165         if ( item->con_handle == con_handle ) {
166             return item;
167         }
168     }
169     return NULL;
170 }
171 
172 /**
173  * get connection for given address
174  *
175  * @return connection OR NULL, if not found
176  */
177 hci_connection_t * hci_connection_for_bd_addr_and_type(bd_addr_t  addr, bd_addr_type_t addr_type){
178     linked_list_iterator_t it;
179     linked_list_iterator_init(&it, &hci_stack->connections);
180     while (linked_list_iterator_has_next(&it)){
181         hci_connection_t * connection = (hci_connection_t *) linked_list_iterator_next(&it);
182         if (connection->address_type != addr_type)  continue;
183         if (memcmp(addr, connection->address, 6) != 0) continue;
184         return connection;
185     }
186     return NULL;
187 }
188 
189 static void hci_connection_timeout_handler(timer_source_t *timer){
190     hci_connection_t * connection = (hci_connection_t *) linked_item_get_user(&timer->item);
191 #ifdef HAVE_TIME
192     struct timeval tv;
193     gettimeofday(&tv, NULL);
194     if (tv.tv_sec >= connection->timestamp.tv_sec + HCI_CONNECTION_TIMEOUT_MS/1000) {
195         // connections might be timed out
196         hci_emit_l2cap_check_timeout(connection);
197     }
198 #endif
199 #ifdef HAVE_TICK
200     if (embedded_get_ticks() > connection->timestamp + embedded_ticks_for_ms(HCI_CONNECTION_TIMEOUT_MS)){
201         // connections might be timed out
202         hci_emit_l2cap_check_timeout(connection);
203     }
204 #endif
205     run_loop_set_timer(timer, HCI_CONNECTION_TIMEOUT_MS);
206     run_loop_add_timer(timer);
207 }
208 
209 static void hci_connection_timestamp(hci_connection_t *connection){
210 #ifdef HAVE_TIME
211     gettimeofday(&connection->timestamp, NULL);
212 #endif
213 #ifdef HAVE_TICK
214     connection->timestamp = embedded_get_ticks();
215 #endif
216 }
217 
218 
219 inline static void connectionSetAuthenticationFlags(hci_connection_t * conn, hci_authentication_flags_t flags){
220     conn->authentication_flags = (hci_authentication_flags_t)(conn->authentication_flags | flags);
221 }
222 
223 inline static void connectionClearAuthenticationFlags(hci_connection_t * conn, hci_authentication_flags_t flags){
224     conn->authentication_flags = (hci_authentication_flags_t)(conn->authentication_flags & ~flags);
225 }
226 
227 
228 /**
229  * add authentication flags and reset timer
230  * @note: assumes classic connection
231  * @note: bd_addr is passed in as litle endian uint8_t * as it is called from parsing packets
232  */
233 static void hci_add_connection_flags_for_flipped_bd_addr(uint8_t *bd_addr, hci_authentication_flags_t flags){
234     bd_addr_t addr;
235     bt_flip_addr(addr, bd_addr);
236     hci_connection_t * conn = hci_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_CLASSIC);
237     if (conn) {
238         connectionSetAuthenticationFlags(conn, flags);
239         hci_connection_timestamp(conn);
240     }
241 }
242 
243 int  hci_authentication_active_for_handle(hci_con_handle_t handle){
244     hci_connection_t * conn = hci_connection_for_handle(handle);
245     if (!conn) return 0;
246     if (conn->authentication_flags & LEGACY_PAIRING_ACTIVE) return 1;
247     if (conn->authentication_flags & SSP_PAIRING_ACTIVE) return 1;
248     return 0;
249 }
250 
251 void hci_drop_link_key_for_bd_addr(bd_addr_t addr){
252     if (hci_stack->remote_device_db) {
253         hci_stack->remote_device_db->delete_link_key(addr);
254     }
255 }
256 
257 int hci_is_le_connection(hci_connection_t * connection){
258     return  connection->address_type == BD_ADDR_TYPE_LE_PUBLIC ||
259     connection->address_type == BD_ADDR_TYPE_LE_RANDOM;
260 }
261 
262 
263 /**
264  * count connections
265  */
266 static int nr_hci_connections(void){
267     int count = 0;
268     linked_item_t *it;
269     for (it = (linked_item_t *) hci_stack->connections; it ; it = it->next, count++);
270     return count;
271 }
272 
273 /**
274  * Dummy handler called by HCI
275  */
276 static void dummy_handler(uint8_t packet_type, uint8_t *packet, uint16_t size){
277 }
278 
279 uint8_t hci_number_outgoing_packets(hci_con_handle_t handle){
280     hci_connection_t * connection = hci_connection_for_handle(handle);
281     if (!connection) {
282         log_error("hci_number_outgoing_packets: connection for handle %u does not exist!", handle);
283         return 0;
284     }
285     return connection->num_acl_packets_sent;
286 }
287 
288 uint8_t hci_number_free_acl_slots_for_handle(hci_con_handle_t con_handle){
289 
290     int num_packets_sent_classic = 0;
291     int num_packets_sent_le = 0;
292 
293     bd_addr_type_t address_type = BD_ADDR_TYPE_UNKNOWN;
294 
295     linked_item_t *it;
296     for (it = (linked_item_t *) hci_stack->connections; it ; it = it->next){
297         hci_connection_t * connection = (hci_connection_t *) it;
298         if (connection->address_type == BD_ADDR_TYPE_CLASSIC){
299             num_packets_sent_classic += connection->num_acl_packets_sent;
300         } else {
301             num_packets_sent_le += connection->num_acl_packets_sent;
302         }
303         // ignore connections that are not open, e.g., in state RECEIVED_DISCONNECTION_COMPLETE
304         if (connection->con_handle == con_handle && connection->state == OPEN){
305             address_type = connection->address_type;
306         }
307     }
308 
309     int free_slots_classic = hci_stack->acl_packets_total_num - num_packets_sent_classic;
310     int free_slots_le = 0;
311 
312     if (free_slots_classic < 0){
313         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);
314         return 0;
315     }
316 
317     if (hci_stack->le_acl_packets_total_num){
318         // if we have LE slots, they are used
319         free_slots_le = hci_stack->le_acl_packets_total_num - num_packets_sent_le;
320         if (free_slots_le < 0){
321             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);
322             return 0;
323         }
324     } else {
325         // otherwise, classic slots are used for LE, too
326         free_slots_classic -= num_packets_sent_le;
327         if (free_slots_classic < 0){
328             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);
329             return 0;
330         }
331     }
332 
333     switch (address_type){
334         case BD_ADDR_TYPE_UNKNOWN:
335             log_error("hci_number_free_acl_slots: handle 0x%04x not in connection list", con_handle);
336             return 0;
337 
338         case BD_ADDR_TYPE_CLASSIC:
339             return free_slots_classic;
340 
341         default:
342            if (hci_stack->le_acl_packets_total_num){
343                return free_slots_le;
344            }
345            return free_slots_classic;
346     }
347 }
348 
349 int hci_number_free_sco_slots_for_handle(hci_con_handle_t handle){
350     int num_sco_packets_sent = 0;
351     linked_item_t *it;
352     for (it = (linked_item_t *) hci_stack->connections; it ; it = it->next){
353         hci_connection_t * connection = (hci_connection_t *) it;
354         num_sco_packets_sent += connection->num_sco_packets_sent;
355     }
356     if (num_sco_packets_sent > hci_stack->sco_packets_total_num){
357         log_info("hci_number_free_sco_slots_for_handle: outgoing packets (%u) > total packets ()", num_sco_packets_sent, hci_stack->sco_packets_total_num);
358         return 0;
359     }
360     return hci_stack->sco_packets_total_num - num_sco_packets_sent;
361 }
362 
363 // new functions replacing hci_can_send_packet_now[_using_packet_buffer]
364 int hci_can_send_command_packet_now(void){
365     if (hci_stack->hci_packet_buffer_reserved) return 0;
366 
367     // check for async hci transport implementations
368     if (hci_stack->hci_transport->can_send_packet_now){
369         if (!hci_stack->hci_transport->can_send_packet_now(HCI_COMMAND_DATA_PACKET)){
370             return 0;
371         }
372     }
373 
374     return hci_stack->num_cmd_packets > 0;
375 }
376 
377 int hci_can_send_prepared_acl_packet_now(hci_con_handle_t con_handle) {
378     // check for async hci transport implementations
379     if (hci_stack->hci_transport->can_send_packet_now){
380         if (!hci_stack->hci_transport->can_send_packet_now(HCI_ACL_DATA_PACKET)){
381             return 0;
382         }
383     }
384     return hci_number_free_acl_slots_for_handle(con_handle) > 0;
385 }
386 
387 int hci_can_send_acl_packet_now(hci_con_handle_t con_handle){
388     if (hci_stack->hci_packet_buffer_reserved) return 0;
389     return hci_can_send_prepared_acl_packet_now(con_handle);
390 }
391 
392 int hci_can_send_prepared_sco_packet_now(hci_con_handle_t con_handle){
393     if (hci_stack->hci_transport->can_send_packet_now){
394         if (!hci_stack->hci_transport->can_send_packet_now(HCI_SCO_DATA_PACKET)){
395             return 0;
396         }
397     }
398     return hci_number_free_sco_slots_for_handle(con_handle) > 0;
399 }
400 
401 int hci_can_send_sco_packet_now(hci_con_handle_t con_handle){
402     if (hci_stack->hci_packet_buffer_reserved) return 0;
403     return hci_can_send_prepared_sco_packet_now(con_handle);
404 }
405 
406 // used for internal checks in l2cap[-le].c
407 int hci_is_packet_buffer_reserved(void){
408     return hci_stack->hci_packet_buffer_reserved;
409 }
410 
411 // reserves outgoing packet buffer. @returns 1 if successful
412 int hci_reserve_packet_buffer(void){
413     if (hci_stack->hci_packet_buffer_reserved) {
414         log_error("hci_reserve_packet_buffer called but buffer already reserved");
415         return 0;
416     }
417     hci_stack->hci_packet_buffer_reserved = 1;
418     return 1;
419 }
420 
421 void hci_release_packet_buffer(void){
422     hci_stack->hci_packet_buffer_reserved = 0;
423 }
424 
425 // assumption: synchronous implementations don't provide can_send_packet_now as they don't keep the buffer after the call
426 int hci_transport_synchronous(void){
427     return hci_stack->hci_transport->can_send_packet_now == NULL;
428 }
429 
430 uint16_t hci_max_acl_le_data_packet_length(void){
431     return hci_stack->le_data_packets_length > 0 ? hci_stack->le_data_packets_length : hci_stack->acl_data_packet_length;
432 }
433 
434 static int hci_send_acl_packet_fragments(hci_connection_t *connection){
435 
436     // 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);
437 
438     // max ACL data packet length depends on connection type (LE vs. Classic) and available buffers
439     uint16_t max_acl_data_packet_length = hci_stack->acl_data_packet_length;
440     if (hci_is_le_connection(connection) && hci_stack->le_data_packets_length > 0){
441         max_acl_data_packet_length = hci_stack->le_data_packets_length;
442     }
443 
444     // testing: reduce buffer to minimum
445     // max_acl_data_packet_length = 52;
446 
447     int err;
448     // multiple packets could be send on a synchronous HCI transport
449     while (1){
450 
451         // get current data
452         const uint16_t acl_header_pos = hci_stack->acl_fragmentation_pos - 4;
453         int current_acl_data_packet_length = hci_stack->acl_fragmentation_total_size - hci_stack->acl_fragmentation_pos;
454         int more_fragments = 0;
455 
456         // if ACL packet is larger than Bluetooth packet buffer, only send max_acl_data_packet_length
457         if (current_acl_data_packet_length > max_acl_data_packet_length){
458             more_fragments = 1;
459             current_acl_data_packet_length = max_acl_data_packet_length;
460         }
461 
462         // copy handle_and_flags if not first fragment and update packet boundary flags to be 01 (continuing fragmnent)
463         if (acl_header_pos > 0){
464             uint16_t handle_and_flags = READ_BT_16(hci_stack->hci_packet_buffer, 0);
465             handle_and_flags = (handle_and_flags & 0xcfff) | (1 << 12);
466             bt_store_16(hci_stack->hci_packet_buffer, acl_header_pos, handle_and_flags);
467         }
468 
469         // update header len
470         bt_store_16(hci_stack->hci_packet_buffer, acl_header_pos + 2, current_acl_data_packet_length);
471 
472         // count packet
473         connection->num_acl_packets_sent++;
474 
475         // send packet
476         uint8_t * packet = &hci_stack->hci_packet_buffer[acl_header_pos];
477         const int size = current_acl_data_packet_length + 4;
478         hci_dump_packet(HCI_ACL_DATA_PACKET, 0, packet, size);
479         err = hci_stack->hci_transport->send_packet(HCI_ACL_DATA_PACKET, packet, size);
480 
481         // done yet?
482         if (!more_fragments) break;
483 
484         // update start of next fragment to send
485         hci_stack->acl_fragmentation_pos += current_acl_data_packet_length;
486 
487         // can send more?
488         if (!hci_can_send_prepared_acl_packet_now(connection->con_handle)) return err;
489     }
490 
491     // done
492     hci_stack->acl_fragmentation_pos = 0;
493     hci_stack->acl_fragmentation_total_size = 0;
494 
495     // release buffer now for synchronous transport
496     if (hci_transport_synchronous()){
497         hci_release_packet_buffer();
498         // notify upper stack that iit might be possible to send again
499         uint8_t event[] = { DAEMON_EVENT_HCI_PACKET_SENT, 0};
500         hci_stack->packet_handler(HCI_EVENT_PACKET, &event[0], sizeof(event));
501     }
502 
503     return err;
504 }
505 
506 // pre: caller has reserved the packet buffer
507 int hci_send_acl_packet_buffer(int size){
508 
509     // log_info("hci_send_acl_packet_buffer size %u", size);
510 
511     if (!hci_stack->hci_packet_buffer_reserved) {
512         log_error("hci_send_acl_packet_buffer called without reserving packet buffer");
513         return 0;
514     }
515 
516     uint8_t * packet = hci_stack->hci_packet_buffer;
517     hci_con_handle_t con_handle = READ_ACL_CONNECTION_HANDLE(packet);
518 
519     // check for free places on Bluetooth module
520     if (!hci_can_send_prepared_acl_packet_now(con_handle)) {
521         log_error("hci_send_acl_packet_buffer called but no free ACL buffers on controller");
522         hci_release_packet_buffer();
523         return BTSTACK_ACL_BUFFERS_FULL;
524     }
525 
526     hci_connection_t *connection = hci_connection_for_handle( con_handle);
527     if (!connection) {
528         log_error("hci_send_acl_packet_buffer called but no connection for handle 0x%04x", con_handle);
529         hci_release_packet_buffer();
530         return 0;
531     }
532     hci_connection_timestamp(connection);
533 
534     // hci_dump_packet( HCI_ACL_DATA_PACKET, 0, packet, size);
535 
536     // setup data
537     hci_stack->acl_fragmentation_total_size = size;
538     hci_stack->acl_fragmentation_pos = 4;   // start of L2CAP packet
539 
540     return hci_send_acl_packet_fragments(connection);
541 }
542 
543 // pre: caller has reserved the packet buffer
544 int hci_send_sco_packet_buffer(int size){
545 
546     // log_info("hci_send_acl_packet_buffer size %u", size);
547 
548     if (!hci_stack->hci_packet_buffer_reserved) {
549         log_error("hci_send_acl_packet_buffer called without reserving packet buffer");
550         return 0;
551     }
552 
553     uint8_t * packet = hci_stack->hci_packet_buffer;
554     hci_con_handle_t con_handle = READ_ACL_CONNECTION_HANDLE(packet);   // same for ACL and SCO
555 
556     // check for free places on Bluetooth module
557     if (!hci_can_send_prepared_sco_packet_now(con_handle)) {
558         log_error("hci_send_sco_packet_buffer called but no free ACL buffers on controller");
559         hci_release_packet_buffer();
560         return BTSTACK_ACL_BUFFERS_FULL;
561     }
562 
563     // track send packet in connection struct
564     hci_connection_t *connection = hci_connection_for_handle( con_handle);
565     if (!connection) {
566         log_error("hci_send_sco_packet_buffer called but no connection for handle 0x%04x", con_handle);
567         hci_release_packet_buffer();
568         return 0;
569     }
570     connection->num_sco_packets_sent++;
571 
572     hci_dump_packet( HCI_SCO_DATA_PACKET, 0, packet, size);
573     return hci_stack->hci_transport->send_packet(HCI_SCO_DATA_PACKET, packet, size);
574 }
575 
576 static void acl_handler(uint8_t *packet, int size){
577 
578     // log_info("acl_handler: size %u", size);
579 
580     // get info
581     hci_con_handle_t con_handle = READ_ACL_CONNECTION_HANDLE(packet);
582     hci_connection_t *conn      = hci_connection_for_handle(con_handle);
583     uint8_t  acl_flags          = READ_ACL_FLAGS(packet);
584     uint16_t acl_length         = READ_ACL_LENGTH(packet);
585 
586     // ignore non-registered handle
587     if (!conn){
588         log_error( "hci.c: acl_handler called with non-registered handle %u!" , con_handle);
589         return;
590     }
591 
592     // assert packet is complete
593     if (acl_length + 4 != size){
594         log_error("hci.c: acl_handler called with ACL packet of wrong size %u, expected %u => dropping packet", size, acl_length + 4);
595         return;
596     }
597 
598     // update idle timestamp
599     hci_connection_timestamp(conn);
600 
601     // handle different packet types
602     switch (acl_flags & 0x03) {
603 
604         case 0x01: // continuation fragment
605 
606             // sanity checks
607             if (conn->acl_recombination_pos == 0) {
608                 log_error( "ACL Cont Fragment but no first fragment for handle 0x%02x", con_handle);
609                 return;
610             }
611             if (conn->acl_recombination_pos + acl_length > 4 + HCI_ACL_BUFFER_SIZE){
612                 log_error( "ACL Cont Fragment to large: combined packet %u > buffer size %u for handle 0x%02x",
613                     conn->acl_recombination_pos + acl_length, 4 + HCI_ACL_BUFFER_SIZE, con_handle);
614                 conn->acl_recombination_pos = 0;
615                 return;
616             }
617 
618             // append fragment payload (header already stored)
619             memcpy(&conn->acl_recombination_buffer[HCI_INCOMING_PRE_BUFFER_SIZE + conn->acl_recombination_pos], &packet[4], acl_length );
620             conn->acl_recombination_pos += acl_length;
621 
622             // log_error( "ACL Cont Fragment: acl_len %u, combined_len %u, l2cap_len %u", acl_length,
623             //        conn->acl_recombination_pos, conn->acl_recombination_length);
624 
625             // forward complete L2CAP packet if complete.
626             if (conn->acl_recombination_pos >= conn->acl_recombination_length + 4 + 4){ // pos already incl. ACL header
627 
628                 hci_stack->packet_handler(HCI_ACL_DATA_PACKET, &conn->acl_recombination_buffer[HCI_INCOMING_PRE_BUFFER_SIZE], conn->acl_recombination_pos);
629                 // reset recombination buffer
630                 conn->acl_recombination_length = 0;
631                 conn->acl_recombination_pos = 0;
632             }
633             break;
634 
635         case 0x02: { // first fragment
636 
637             // sanity check
638             if (conn->acl_recombination_pos) {
639                 log_error( "ACL First Fragment but data in buffer for handle 0x%02x, dropping stale fragments", con_handle);
640                 conn->acl_recombination_pos = 0;
641             }
642 
643             // peek into L2CAP packet!
644             uint16_t l2cap_length = READ_L2CAP_LENGTH( packet );
645 
646             // log_info( "ACL First Fragment: acl_len %u, l2cap_len %u", acl_length, l2cap_length);
647 
648             // compare fragment size to L2CAP packet size
649             if (acl_length >= l2cap_length + 4){
650 
651                 // forward fragment as L2CAP packet
652                 hci_stack->packet_handler(HCI_ACL_DATA_PACKET, packet, acl_length + 4);
653 
654             } else {
655 
656                 if (acl_length > HCI_ACL_BUFFER_SIZE){
657                     log_error( "ACL First Fragment to large: fragment %u > buffer size %u for handle 0x%02x",
658                         4 + acl_length, 4 + HCI_ACL_BUFFER_SIZE, con_handle);
659                     return;
660                 }
661 
662                 // store first fragment and tweak acl length for complete package
663                 memcpy(&conn->acl_recombination_buffer[HCI_INCOMING_PRE_BUFFER_SIZE], packet, acl_length + 4);
664                 conn->acl_recombination_pos    = acl_length + 4;
665                 conn->acl_recombination_length = l2cap_length;
666                 bt_store_16(conn->acl_recombination_buffer, HCI_INCOMING_PRE_BUFFER_SIZE + 2, l2cap_length +4);
667             }
668             break;
669 
670         }
671         default:
672             log_error( "hci.c: acl_handler called with invalid packet boundary flags %u", acl_flags & 0x03);
673             return;
674     }
675 
676     // execute main loop
677     hci_run();
678 }
679 
680 static void hci_shutdown_connection(hci_connection_t *conn){
681     log_info("Connection closed: handle 0x%x, %s", conn->con_handle, bd_addr_to_str(conn->address));
682 
683     run_loop_remove_timer(&conn->timeout);
684 
685     linked_list_remove(&hci_stack->connections, (linked_item_t *) conn);
686     btstack_memory_hci_connection_free( conn );
687 
688     // now it's gone
689     hci_emit_nr_connections_changed();
690 }
691 
692 static const uint16_t packet_type_sizes[] = {
693     0, HCI_ACL_2DH1_SIZE, HCI_ACL_3DH1_SIZE, HCI_ACL_DM1_SIZE,
694     HCI_ACL_DH1_SIZE, 0, 0, 0,
695     HCI_ACL_2DH3_SIZE, HCI_ACL_3DH3_SIZE, HCI_ACL_DM3_SIZE, HCI_ACL_DH3_SIZE,
696     HCI_ACL_2DH5_SIZE, HCI_ACL_3DH5_SIZE, HCI_ACL_DM5_SIZE, HCI_ACL_DH5_SIZE
697 };
698 static const uint8_t  packet_type_feature_requirement_bit[] = {
699      0, // 3 slot packets
700      1, // 5 slot packets
701     25, // EDR 2 mpbs
702     26, // EDR 3 mbps
703     39, // 3 slot EDR packts
704     40, // 5 slot EDR packet
705 };
706 static const uint16_t packet_type_feature_packet_mask[] = {
707     0x0f00, // 3 slot packets
708     0xf000, // 5 slot packets
709     0x1102, // EDR 2 mpbs
710     0x2204, // EDR 3 mbps
711     0x0300, // 3 slot EDR packts
712     0x3000, // 5 slot EDR packet
713 };
714 
715 static uint16_t hci_acl_packet_types_for_buffer_size_and_local_features(uint16_t buffer_size, uint8_t * local_supported_features){
716     // enable packet types based on size
717     uint16_t packet_types = 0;
718     unsigned int i;
719     for (i=0;i<16;i++){
720         if (packet_type_sizes[i] == 0) continue;
721         if (packet_type_sizes[i] <= buffer_size){
722             packet_types |= 1 << i;
723         }
724     }
725     // disable packet types due to missing local supported features
726     for (i=0;i<sizeof(packet_type_feature_requirement_bit);i++){
727         int bit_idx = packet_type_feature_requirement_bit[i];
728         int feature_set = (local_supported_features[bit_idx >> 3] & (1<<(bit_idx & 7))) != 0;
729         if (feature_set) continue;
730         log_info("Features bit %02u is not set, removing packet types 0x%04x", bit_idx, packet_type_feature_packet_mask[i]);
731         packet_types &= ~packet_type_feature_packet_mask[i];
732     }
733     // flip bits for "may not be used"
734     packet_types ^= 0x3306;
735     return packet_types;
736 }
737 
738 uint16_t hci_usable_acl_packet_types(void){
739     return hci_stack->packet_types;
740 }
741 
742 uint8_t* hci_get_outgoing_packet_buffer(void){
743     // hci packet buffer is >= acl data packet length
744     return hci_stack->hci_packet_buffer;
745 }
746 
747 uint16_t hci_max_acl_data_packet_length(void){
748     return hci_stack->acl_data_packet_length;
749 }
750 
751 int hci_non_flushable_packet_boundary_flag_supported(void){
752     // No. 54, byte 6, bit 6
753     return (hci_stack->local_supported_features[6] & (1 << 6)) != 0;
754 }
755 
756 int hci_ssp_supported(void){
757     // No. 51, byte 6, bit 3
758     return (hci_stack->local_supported_features[6] & (1 << 3)) != 0;
759 }
760 
761 int hci_classic_supported(void){
762     // No. 37, byte 4, bit 5, = No BR/EDR Support
763     return (hci_stack->local_supported_features[4] & (1 << 5)) == 0;
764 }
765 
766 int hci_le_supported(void){
767 #ifdef HAVE_BLE
768     // No. 37, byte 4, bit 6 = LE Supported (Controller)
769     return (hci_stack->local_supported_features[4] & (1 << 6)) != 0;
770 #else
771     return 0;
772 #endif
773 }
774 
775 // get addr type and address used in advertisement packets
776 void hci_le_advertisement_address(uint8_t * addr_type, bd_addr_t  addr){
777     *addr_type = hci_stack->adv_addr_type;
778     if (hci_stack->adv_addr_type){
779         memcpy(addr, hci_stack->adv_address, 6);
780     } else {
781         memcpy(addr, hci_stack->local_bd_addr, 6);
782     }
783 }
784 
785 #ifdef HAVE_BLE
786 void le_handle_advertisement_report(uint8_t *packet, int size){
787     int offset = 3;
788     int num_reports = packet[offset];
789     offset += 1;
790 
791     int i;
792     log_info("HCI: handle adv report with num reports: %d", num_reports);
793     uint8_t event[12 + LE_ADVERTISING_DATA_SIZE]; // use upper bound to avoid var size automatic var
794     for (i=0; i<num_reports;i++){
795         uint8_t data_length = packet[offset + 8];
796         uint8_t event_size = 10 + data_length;
797         int pos = 0;
798         event[pos++] = GAP_LE_ADVERTISING_REPORT;
799         event[pos++] = event_size;
800         memcpy(&event[pos], &packet[offset], 1+1+6); // event type + address type + address
801         offset += 8;
802         pos += 8;
803         event[pos++] = packet[offset + 1 + data_length]; // rssi
804         event[pos++] = packet[offset++]; //data_length;
805         memcpy(&event[pos], &packet[offset], data_length);
806         pos += data_length;
807         offset += data_length + 1; // rssi
808         hci_dump_packet( HCI_EVENT_PACKET, 0, event, pos);
809         hci_stack->packet_handler(HCI_EVENT_PACKET, event, pos);
810     }
811 }
812 #endif
813 
814 static void hci_initialization_timeout_handler(timer_source_t * ds){
815     switch (hci_stack->substate){
816         case HCI_INIT_W4_SEND_RESET:
817             log_info("Resend HCI Reset");
818             hci_stack->substate = HCI_INIT_SEND_RESET;
819             hci_stack->num_cmd_packets = 1;
820             hci_run();
821             break;
822         case HCI_INIT_W4_CUSTOM_INIT_CSR_WARM_BOOT:
823             log_info("Resend HCI Reset - CSR Warm Boot");
824             hci_stack->substate = HCI_INIT_SEND_RESET_CSR_WARM_BOOT;
825             hci_stack->num_cmd_packets = 1;
826             hci_run();
827         case HCI_INIT_W4_SEND_BAUD_CHANGE:
828             log_info("Local baud rate change to %u", ((hci_uart_config_t *)hci_stack->config)->baudrate_main);
829             hci_stack->hci_transport->set_baudrate(((hci_uart_config_t *)hci_stack->config)->baudrate_main);
830             break;
831         default:
832             break;
833     }
834 }
835 
836 static void hci_initializing_next_state(){
837     hci_stack->substate = (hci_substate_t )( ((int) hci_stack->substate) + 1);
838 }
839 
840 // assumption: hci_can_send_command_packet_now() == true
841 static void hci_initializing_run(){
842     log_info("hci_initializing_run: substate %u", hci_stack->substate);
843     switch (hci_stack->substate){
844         case HCI_INIT_SEND_RESET:
845             hci_state_reset();
846             // prepare reset if command complete not received in 100ms
847             run_loop_set_timer(&hci_stack->timeout, 100);
848             run_loop_set_timer_handler(&hci_stack->timeout, hci_initialization_timeout_handler);
849             run_loop_add_timer(&hci_stack->timeout);
850             // send command
851             hci_stack->substate = HCI_INIT_W4_SEND_RESET;
852             hci_send_cmd(&hci_reset);
853             break;
854         case HCI_INIT_SEND_READ_LOCAL_VERSION_INFORMATION:
855             hci_send_cmd(&hci_read_local_version_information);
856             hci_stack->substate = HCI_INIT_W4_SEND_READ_LOCAL_VERSION_INFORMATION;
857             break;
858         case HCI_INIT_SEND_RESET_CSR_WARM_BOOT:
859             hci_state_reset();
860             // prepare reset if command complete not received in 100ms
861             run_loop_set_timer(&hci_stack->timeout, 100);
862             run_loop_set_timer_handler(&hci_stack->timeout, hci_initialization_timeout_handler);
863             run_loop_add_timer(&hci_stack->timeout);
864             // send command
865             hci_stack->substate = HCI_INIT_W4_CUSTOM_INIT_CSR_WARM_BOOT;
866             hci_send_cmd(&hci_reset);
867             break;
868         case HCI_INIT_SEND_BAUD_CHANGE:
869             hci_stack->control->baudrate_cmd(hci_stack->config, ((hci_uart_config_t *)hci_stack->config)->baudrate_main, hci_stack->hci_packet_buffer);
870             hci_stack->last_cmd_opcode = READ_BT_16(hci_stack->hci_packet_buffer, 0);
871             hci_stack->substate = HCI_INIT_W4_SEND_BAUD_CHANGE;
872             hci_send_cmd_packet(hci_stack->hci_packet_buffer, 3 + hci_stack->hci_packet_buffer[2]);
873             // STLC25000D: baudrate change happens within 0.5 s after command was send,
874             // use timer to update baud rate after 100 ms (knowing exactly, when command was sent is non-trivial)
875             if (hci_stack->manufacturer == 0x0030){
876                 run_loop_set_timer(&hci_stack->timeout, 100);
877                 run_loop_add_timer(&hci_stack->timeout);
878             }
879             break;
880         case HCI_INIT_SET_BD_ADDR:
881             log_info("Set Public BD ADDR to %s", bd_addr_to_str(hci_stack->custom_bd_addr));
882             hci_stack->control->set_bd_addr_cmd(hci_stack->config, hci_stack->custom_bd_addr, hci_stack->hci_packet_buffer);
883             hci_stack->last_cmd_opcode = READ_BT_16(hci_stack->hci_packet_buffer, 0);
884             hci_stack->substate = HCI_INIT_W4_SET_BD_ADDR;
885             hci_send_cmd_packet(hci_stack->hci_packet_buffer, 3 + hci_stack->hci_packet_buffer[2]);
886             break;
887         case HCI_INIT_CUSTOM_INIT:
888             log_info("Custom init");
889             // Custom initialization
890             if (hci_stack->control && hci_stack->control->next_cmd){
891                 int valid_cmd = (*hci_stack->control->next_cmd)(hci_stack->config, hci_stack->hci_packet_buffer);
892                 if (valid_cmd){
893                     int size = 3 + hci_stack->hci_packet_buffer[2];
894                     hci_stack->last_cmd_opcode = READ_BT_16(hci_stack->hci_packet_buffer, 0);
895                     hci_dump_packet(HCI_COMMAND_DATA_PACKET, 0, hci_stack->hci_packet_buffer, size);
896                     switch (valid_cmd) {
897                         case 1:
898                         default:
899                             hci_stack->substate = HCI_INIT_W4_CUSTOM_INIT;
900                             break;
901                         case 2: // CSR Warm Boot: Wait a bit, then send HCI Reset until HCI Command Complete
902                             log_info("CSR Warm Boot");
903                             run_loop_set_timer(&hci_stack->timeout, 100);
904                             run_loop_set_timer_handler(&hci_stack->timeout, hci_initialization_timeout_handler);
905                             run_loop_add_timer(&hci_stack->timeout);
906                             hci_stack->substate = HCI_INIT_W4_CUSTOM_INIT_CSR_WARM_BOOT;
907                             break;
908                     }
909                     hci_stack->hci_transport->send_packet(HCI_COMMAND_DATA_PACKET, hci_stack->hci_packet_buffer, size);
910                     break;
911                 }
912                log_info("hci_run: init script done");
913             }
914             // otherwise continue
915             hci_stack->substate = HCI_INIT_W4_READ_BD_ADDR;
916             hci_send_cmd(&hci_read_bd_addr);
917             break;
918         case HCI_INIT_READ_BUFFER_SIZE:
919             hci_stack->substate = HCI_INIT_W4_READ_BUFFER_SIZE;
920             hci_send_cmd(&hci_read_buffer_size);
921             break;
922         case HCI_INIT_READ_LOCAL_SUPPORTED_FEATUES:
923             hci_stack->substate = HCI_INIT_W4_READ_LOCAL_SUPPORTED_FEATUES;
924             hci_send_cmd(&hci_read_local_supported_features);
925             break;
926         case HCI_INIT_SET_EVENT_MASK:
927             hci_stack->substate = HCI_INIT_W4_SET_EVENT_MASK;
928             if (hci_le_supported()){
929                 hci_send_cmd(&hci_set_event_mask,0xffffffff, 0x3FFFFFFF);
930             } else {
931                 // Kensington Bluetooth 2.1 USB Dongle (CSR Chipset) returns an error for 0xffff...
932                 hci_send_cmd(&hci_set_event_mask,0xffffffff, 0x1FFFFFFF);
933             }
934             break;
935         case HCI_INIT_WRITE_SIMPLE_PAIRING_MODE:
936             hci_stack->substate = HCI_INIT_W4_WRITE_SIMPLE_PAIRING_MODE;
937             hci_send_cmd(&hci_write_simple_pairing_mode, hci_stack->ssp_enable);
938             break;
939         case HCI_INIT_WRITE_PAGE_TIMEOUT:
940             hci_stack->substate = HCI_INIT_W4_WRITE_PAGE_TIMEOUT;
941             hci_send_cmd(&hci_write_page_timeout, 0x6000);  // ca. 15 sec
942             break;
943         case HCI_INIT_WRITE_CLASS_OF_DEVICE:
944             hci_stack->substate = HCI_INIT_W4_WRITE_CLASS_OF_DEVICE;
945             hci_send_cmd(&hci_write_class_of_device, hci_stack->class_of_device);
946             break;
947         case HCI_INIT_WRITE_LOCAL_NAME:
948             hci_stack->substate = HCI_INIT_W4_WRITE_LOCAL_NAME;
949             if (hci_stack->local_name){
950                 hci_send_cmd(&hci_write_local_name, hci_stack->local_name);
951             } else {
952                 char hostname[30];
953 #ifdef EMBEDDED
954                 // BTstack-11:22:33:44:55:66
955                 strcpy(hostname, "BTstack ");
956                 strcat(hostname, bd_addr_to_str(hci_stack->local_bd_addr));
957                 log_info("---> Name %s", hostname);
958 #else
959                 // hostname for POSIX systems
960                 gethostname(hostname, 30);
961                 hostname[29] = '\0';
962 #endif
963                 hci_send_cmd(&hci_write_local_name, hostname);
964             }
965             break;
966         case HCI_INIT_WRITE_SCAN_ENABLE:
967             hci_send_cmd(&hci_write_scan_enable, (hci_stack->connectable << 1) | hci_stack->discoverable); // page scan
968             hci_stack->substate = HCI_INIT_W4_WRITE_SCAN_ENABLE;
969             break;
970 #ifdef HAVE_BLE
971         // LE INIT
972         case HCI_INIT_LE_READ_BUFFER_SIZE:
973             hci_stack->substate = HCI_INIT_W4_LE_READ_BUFFER_SIZE;
974             hci_send_cmd(&hci_le_read_buffer_size);
975             break;
976         case HCI_INIT_WRITE_LE_HOST_SUPPORTED:
977             // LE Supported Host = 1, Simultaneous Host = 0
978             hci_stack->substate = HCI_INIT_W4_WRITE_LE_HOST_SUPPORTED;
979             hci_send_cmd(&hci_write_le_host_supported, 1, 0);
980             break;
981         case HCI_INIT_LE_SET_SCAN_PARAMETERS:
982             // LE Scan Parameters: active scanning, 300 ms interval, 30 ms window, public address, accept all advs
983             hci_stack->substate = HCI_INIT_W4_LE_SET_SCAN_PARAMETERS;
984             hci_send_cmd(&hci_le_set_scan_parameters, 1, 0x1e0, 0x30, 0, 0);
985             break;
986 #endif
987         // DONE
988         case HCI_INIT_DONE:
989             // done.
990             hci_stack->state = HCI_STATE_WORKING;
991             hci_emit_state();
992             return;
993         default:
994             return;
995     }
996 }
997 
998 static void hci_initializing_event_handler(uint8_t * packet, uint16_t size){
999     uint8_t command_completed = 0;
1000 
1001     if (packet[0] == HCI_EVENT_COMMAND_COMPLETE){
1002         uint16_t opcode = READ_BT_16(packet,3);
1003         if (opcode == hci_stack->last_cmd_opcode){
1004             command_completed = 1;
1005             log_info("Command complete for expected opcode %04x at substate %u", opcode, hci_stack->substate);
1006         } else {
1007             log_info("Command complete for opcode %04x, expected %04x", opcode, hci_stack->last_cmd_opcode);
1008         }
1009     }
1010     if (packet[0] == HCI_EVENT_COMMAND_STATUS){
1011         uint8_t  status = packet[2];
1012         uint16_t opcode = READ_BT_16(packet,4);
1013         if (opcode == hci_stack->last_cmd_opcode){
1014             if (status){
1015                 command_completed = 1;
1016                 log_error("Command status error 0x%02x for expected opcode %04x at substate %u", status, opcode, hci_stack->substate);
1017             } else {
1018                 log_info("Command status OK for expected opcode %04x, waiting for command complete", opcode);
1019             }
1020         } else {
1021             log_info("Command status for opcode %04x, expected %04x", opcode, hci_stack->last_cmd_opcode);
1022         }
1023     }
1024     // Vendor == CSR
1025     if (hci_stack->substate == HCI_INIT_W4_CUSTOM_INIT && packet[0] == HCI_EVENT_VENDOR_SPECIFIC){
1026         // TODO: track actual command
1027         command_completed = 1;
1028     }
1029 
1030     if (!command_completed) return;
1031 
1032     int need_baud_change = hci_stack->config
1033                         && hci_stack->control
1034                         && hci_stack->control->baudrate_cmd
1035                         && hci_stack->hci_transport->set_baudrate
1036                         && ((hci_uart_config_t *)hci_stack->config)->baudrate_main;
1037 
1038     int need_addr_change = hci_stack->custom_bd_addr_set
1039                         && hci_stack->control
1040                         && hci_stack->control->set_bd_addr_cmd;
1041 
1042     switch(hci_stack->substate){
1043         case HCI_INIT_W4_SEND_RESET:
1044             run_loop_remove_timer(&hci_stack->timeout);
1045             break;
1046         case HCI_INIT_W4_SEND_READ_LOCAL_VERSION_INFORMATION:
1047             if (need_addr_change){
1048                 hci_stack->substate = HCI_INIT_SET_BD_ADDR;
1049                 return;
1050             }
1051             // skipping addr change
1052             if (need_baud_change){
1053                 hci_stack->substate = HCI_INIT_SEND_BAUD_CHANGE;
1054                 return;
1055             }
1056             // also skip baud change
1057             hci_stack->substate = HCI_INIT_CUSTOM_INIT;
1058             return;
1059         case HCI_INIT_W4_SET_BD_ADDR:
1060             if (need_baud_change){
1061                 hci_stack->substate = HCI_INIT_SEND_BAUD_CHANGE;
1062                 return;
1063             }
1064             // skipping baud change
1065             hci_stack->substate = HCI_INIT_CUSTOM_INIT;
1066             return;
1067         case HCI_INIT_W4_SEND_BAUD_CHANGE:
1068             // for STLC2500D, baud rate change already happened.
1069             // for CC256x, baud rate gets changed now
1070             if (hci_stack->manufacturer != 0x0030){
1071                 uint32_t new_baud = ((hci_uart_config_t *)hci_stack->config)->baudrate_main;
1072                 log_info("Local baud rate change to %u", new_baud);
1073                 hci_stack->hci_transport->set_baudrate(new_baud);
1074             }
1075             hci_stack->substate = HCI_INIT_CUSTOM_INIT;
1076             return;
1077         case HCI_INIT_W4_CUSTOM_INIT_CSR_WARM_BOOT:
1078             run_loop_remove_timer(&hci_stack->timeout);
1079             hci_stack->substate = HCI_INIT_CUSTOM_INIT;
1080             return;
1081         case HCI_INIT_W4_CUSTOM_INIT:
1082             // repeat custom init
1083             hci_stack->substate = HCI_INIT_CUSTOM_INIT;
1084             return;
1085         case HCI_INIT_W4_SET_EVENT_MASK:
1086             // skip Classic init commands for LE only chipsets
1087             if (!hci_classic_supported()){
1088                 if (hci_le_supported()){
1089                     hci_stack->substate = HCI_INIT_LE_READ_BUFFER_SIZE; // skip all classic command
1090                     return;
1091                 } else {
1092                     log_error("Neither BR/EDR nor LE supported");
1093                     hci_stack->substate = HCI_INIT_DONE; // skip all
1094                     return;
1095                 }
1096             }
1097             if (!hci_ssp_supported()){
1098                 hci_stack->substate = HCI_INIT_WRITE_PAGE_TIMEOUT;
1099                 return;
1100             }
1101             break;
1102         case HCI_INIT_W4_WRITE_SCAN_ENABLE:
1103             if (!hci_le_supported()){
1104                 // SKIP LE init for Classic only configuration
1105                 hci_stack->substate = HCI_INIT_DONE;
1106                 return;
1107             }
1108         default:
1109             break;
1110     }
1111     hci_initializing_next_state();
1112 }
1113 
1114 
1115 // avoid huge local variables
1116 #ifndef EMBEDDED
1117 static device_name_t device_name;
1118 #endif
1119 static void event_handler(uint8_t *packet, int size){
1120 
1121     uint16_t event_length = packet[1];
1122 
1123     // assert packet is complete
1124     if (size != event_length + 2){
1125         log_error("hci.c: event_handler called with event packet of wrong size %u, expected %u => dropping packet", size, event_length + 2);
1126         return;
1127     }
1128 
1129     bd_addr_t addr;
1130     bd_addr_type_t addr_type;
1131     uint8_t link_type;
1132     hci_con_handle_t handle;
1133     hci_connection_t * conn;
1134     int i;
1135 
1136     // log_info("HCI:EVENT:%02x", packet[0]);
1137 
1138     switch (packet[0]) {
1139 
1140         case HCI_EVENT_COMMAND_COMPLETE:
1141             // get num cmd packets
1142             // log_info("HCI_EVENT_COMMAND_COMPLETE cmds old %u - new %u", hci_stack->num_cmd_packets, packet[2]);
1143             hci_stack->num_cmd_packets = packet[2];
1144 
1145             if (COMMAND_COMPLETE_EVENT(packet, hci_read_buffer_size)){
1146                 // from offset 5
1147                 // status
1148                 // "The HC_ACL_Data_Packet_Length return parameter will be used to determine the size of the L2CAP segments contained in ACL Data Packets"
1149                 hci_stack->acl_data_packet_length = READ_BT_16(packet, 6);
1150                 hci_stack->sco_data_packet_length = packet[8];
1151                 hci_stack->acl_packets_total_num  = READ_BT_16(packet, 9);
1152                 hci_stack->sco_packets_total_num  = READ_BT_16(packet, 11);
1153 
1154                 if (hci_stack->state == HCI_STATE_INITIALIZING){
1155                     // determine usable ACL payload size
1156                     if (HCI_ACL_PAYLOAD_SIZE < hci_stack->acl_data_packet_length){
1157                         hci_stack->acl_data_packet_length = HCI_ACL_PAYLOAD_SIZE;
1158                     }
1159                     log_info("hci_read_buffer_size: acl used size %u, count %u / sco size %u, count %u",
1160                              hci_stack->acl_data_packet_length, hci_stack->acl_packets_total_num,
1161                              hci_stack->sco_data_packet_length, hci_stack->sco_packets_total_num);
1162                 }
1163             }
1164 #ifdef HAVE_BLE
1165             if (COMMAND_COMPLETE_EVENT(packet, hci_le_read_buffer_size)){
1166                 hci_stack->le_data_packets_length = READ_BT_16(packet, 6);
1167                 hci_stack->le_acl_packets_total_num  = packet[8];
1168                     // determine usable ACL payload size
1169                     if (HCI_ACL_PAYLOAD_SIZE < hci_stack->le_data_packets_length){
1170                         hci_stack->le_data_packets_length = HCI_ACL_PAYLOAD_SIZE;
1171                     }
1172                 log_info("hci_le_read_buffer_size: size %u, count %u", hci_stack->le_data_packets_length, hci_stack->le_acl_packets_total_num);
1173             }
1174 #endif
1175             // Dump local address
1176             if (COMMAND_COMPLETE_EVENT(packet, hci_read_bd_addr)) {
1177                 bt_flip_addr(hci_stack->local_bd_addr, &packet[OFFSET_OF_DATA_IN_COMMAND_COMPLETE + 1]);
1178                 log_info("Local Address, Status: 0x%02x: Addr: %s",
1179                     packet[OFFSET_OF_DATA_IN_COMMAND_COMPLETE], bd_addr_to_str(hci_stack->local_bd_addr));
1180             }
1181             if (COMMAND_COMPLETE_EVENT(packet, hci_write_scan_enable)){
1182                 hci_emit_discoverable_enabled(hci_stack->discoverable);
1183             }
1184             // Note: HCI init checks
1185             if (COMMAND_COMPLETE_EVENT(packet, hci_read_local_supported_features)){
1186                 memcpy(hci_stack->local_supported_features, &packet[OFFSET_OF_DATA_IN_COMMAND_COMPLETE+1], 8);
1187                 log_info("Local Supported Features: 0x%02x%02x%02x%02x%02x%02x%02x%02x",
1188                     hci_stack->local_supported_features[0], hci_stack->local_supported_features[1],
1189                     hci_stack->local_supported_features[2], hci_stack->local_supported_features[3],
1190                     hci_stack->local_supported_features[4], hci_stack->local_supported_features[5],
1191                     hci_stack->local_supported_features[6], hci_stack->local_supported_features[7]);
1192 
1193                 // determine usable ACL packet types based on host buffer size and supported features
1194                 hci_stack->packet_types = hci_acl_packet_types_for_buffer_size_and_local_features(HCI_ACL_PAYLOAD_SIZE, &hci_stack->local_supported_features[0]);
1195                 log_info("packet types %04x", hci_stack->packet_types);
1196 
1197                 // Classic/LE
1198                 log_info("BR/EDR support %u, LE support %u", hci_classic_supported(), hci_le_supported());
1199             }
1200             if (COMMAND_COMPLETE_EVENT(packet, hci_read_local_version_information)){
1201                 // hci_stack->hci_version    = READ_BT_16(packet, 4);
1202                 // hci_stack->hci_revision   = READ_BT_16(packet, 6);
1203                 // hci_stack->lmp_version    = READ_BT_16(packet, 8);
1204                 hci_stack->manufacturer   = READ_BT_16(packet, 10);
1205                 // hci_stack->lmp_subversion = READ_BT_16(packet, 12);
1206                 log_info("Manufacturer: 0x%04x", hci_stack->manufacturer);
1207             }
1208             break;
1209 
1210         case HCI_EVENT_COMMAND_STATUS:
1211             // get num cmd packets
1212             // log_info("HCI_EVENT_COMMAND_STATUS cmds - old %u - new %u", hci_stack->num_cmd_packets, packet[3]);
1213             hci_stack->num_cmd_packets = packet[3];
1214             break;
1215 
1216         case HCI_EVENT_NUMBER_OF_COMPLETED_PACKETS:{
1217             int offset = 3;
1218             for (i=0; i<packet[2];i++){
1219                 handle = READ_BT_16(packet, offset);
1220                 offset += 2;
1221                 uint16_t num_packets = READ_BT_16(packet, offset);
1222                 offset += 2;
1223 
1224                 conn = hci_connection_for_handle(handle);
1225                 if (!conn){
1226                     log_error("hci_number_completed_packet lists unused con handle %u", handle);
1227                     continue;
1228                 }
1229 
1230                 if (conn->address_type == BD_ADDR_TYPE_SCO){
1231                     if (conn->num_sco_packets_sent >= num_packets){
1232                         conn->num_sco_packets_sent -= num_packets;
1233                     } else {
1234                         log_error("hci_number_completed_packets, more sco slots freed then sent.");
1235                         conn->num_sco_packets_sent = 0;
1236                     }
1237 
1238                 } else {
1239                     if (conn->num_acl_packets_sent >= num_packets){
1240                         conn->num_acl_packets_sent -= num_packets;
1241                     } else {
1242                         log_error("hci_number_completed_packets, more acl slots freed then sent.");
1243                         conn->num_acl_packets_sent = 0;
1244                     }
1245                 }
1246                 // log_info("hci_number_completed_packet %u processed for handle %u, outstanding %u", num_packets, handle, conn->num_acl_packets_sent);
1247             }
1248             break;
1249         }
1250         case HCI_EVENT_CONNECTION_REQUEST:
1251             bt_flip_addr(addr, &packet[2]);
1252             // TODO: eval COD 8-10
1253             link_type = packet[11];
1254             log_info("Connection_incoming: %s, type %u", bd_addr_to_str(addr), link_type);
1255             addr_type = link_type == 1 ? BD_ADDR_TYPE_CLASSIC : BD_ADDR_TYPE_SCO;
1256             conn = hci_connection_for_bd_addr_and_type(addr, addr_type);
1257             if (!conn) {
1258                 conn = create_connection_for_bd_addr_and_type(addr, addr_type);
1259             }
1260             if (!conn) {
1261                 // CONNECTION REJECTED DUE TO LIMITED RESOURCES (0X0D)
1262                 hci_stack->decline_reason = 0x0d;
1263                 BD_ADDR_COPY(hci_stack->decline_addr, addr);
1264                 break;
1265             }
1266             conn->state = RECEIVED_CONNECTION_REQUEST;
1267             hci_run();
1268             break;
1269 
1270         case HCI_EVENT_CONNECTION_COMPLETE:
1271             // Connection management
1272             bt_flip_addr(addr, &packet[5]);
1273             log_info("Connection_complete (status=%u) %s", packet[2], bd_addr_to_str(addr));
1274             addr_type = BD_ADDR_TYPE_CLASSIC;
1275             conn = hci_connection_for_bd_addr_and_type(addr, addr_type);
1276             if (conn) {
1277                 if (!packet[2]){
1278                     conn->state = OPEN;
1279                     conn->con_handle = READ_BT_16(packet, 3);
1280                     conn->bonding_flags |= BONDING_REQUEST_REMOTE_FEATURES;
1281 
1282                     // restart timer
1283                     run_loop_set_timer(&conn->timeout, HCI_CONNECTION_TIMEOUT_MS);
1284                     run_loop_add_timer(&conn->timeout);
1285 
1286                     log_info("New connection: handle %u, %s", conn->con_handle, bd_addr_to_str(conn->address));
1287 
1288                     hci_emit_nr_connections_changed();
1289                 } else {
1290                     int notify_dedicated_bonding_failed = conn->bonding_flags & BONDING_DEDICATED;
1291                     uint8_t status = packet[2];
1292                     bd_addr_t bd_address;
1293                     memcpy(&bd_address, conn->address, 6);
1294 
1295                     // connection failed, remove entry
1296                     linked_list_remove(&hci_stack->connections, (linked_item_t *) conn);
1297                     btstack_memory_hci_connection_free( conn );
1298 
1299                     // notify client if dedicated bonding
1300                     if (notify_dedicated_bonding_failed){
1301                         log_info("hci notify_dedicated_bonding_failed");
1302                         hci_emit_dedicated_bonding_result(bd_address, status);
1303                     }
1304 
1305                     // if authentication error, also delete link key
1306                     if (packet[2] == 0x05) {
1307                         hci_drop_link_key_for_bd_addr(addr);
1308                     }
1309                 }
1310             }
1311             break;
1312 
1313         case HCI_EVENT_SYNCHRONOUS_CONNECTION_COMPLETE:
1314             bt_flip_addr(addr, &packet[5]);
1315             log_info("Synchronous Connection Complete (status=%u) %s", packet[2], bd_addr_to_str(addr));
1316             if (packet[2]){
1317                 // connection failed
1318                 break;
1319             }
1320             conn = hci_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_SCO);
1321             if (!conn) {
1322                 conn = create_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_SCO);
1323             }
1324             if (!conn) {
1325                 break;
1326             }
1327             conn->state = OPEN;
1328             conn->con_handle = READ_BT_16(packet, 3);
1329             break;
1330 
1331         case HCI_EVENT_READ_REMOTE_SUPPORTED_FEATURES_COMPLETE:
1332             handle = READ_BT_16(packet, 3);
1333             conn = hci_connection_for_handle(handle);
1334             if (!conn) break;
1335             if (!packet[2]){
1336                 uint8_t * features = &packet[5];
1337                 if (features[6] & (1 << 3)){
1338                     conn->bonding_flags |= BONDING_REMOTE_SUPPORTS_SSP;
1339                 }
1340             }
1341             conn->bonding_flags |= BONDING_RECEIVED_REMOTE_FEATURES;
1342             log_info("HCI_EVENT_READ_REMOTE_SUPPORTED_FEATURES_COMPLETE, bonding flags %x", conn->bonding_flags);
1343             if (conn->bonding_flags & BONDING_DEDICATED){
1344                 conn->bonding_flags |= BONDING_SEND_AUTHENTICATE_REQUEST;
1345             }
1346             break;
1347 
1348         case HCI_EVENT_LINK_KEY_REQUEST:
1349             log_info("HCI_EVENT_LINK_KEY_REQUEST");
1350             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], RECV_LINK_KEY_REQUEST);
1351             // non-bondable mode: link key negative reply will be sent by HANDLE_LINK_KEY_REQUEST
1352             if (hci_stack->bondable && !hci_stack->remote_device_db) break;
1353             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], HANDLE_LINK_KEY_REQUEST);
1354             hci_run();
1355             // request handled by hci_run() as HANDLE_LINK_KEY_REQUEST gets set
1356             return;
1357 
1358         case HCI_EVENT_LINK_KEY_NOTIFICATION: {
1359             bt_flip_addr(addr, &packet[2]);
1360             conn = hci_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_CLASSIC);
1361             if (!conn) break;
1362             conn->authentication_flags |= RECV_LINK_KEY_NOTIFICATION;
1363             link_key_type_t link_key_type = (link_key_type_t)packet[24];
1364             // Change Connection Encryption keeps link key type
1365             if (link_key_type != CHANGED_COMBINATION_KEY){
1366                 conn->link_key_type = link_key_type;
1367             }
1368             if (!hci_stack->remote_device_db) break;
1369             hci_stack->remote_device_db->put_link_key(addr, &packet[8], conn->link_key_type);
1370             // still forward event to allow dismiss of pairing dialog
1371             break;
1372         }
1373 
1374         case HCI_EVENT_PIN_CODE_REQUEST:
1375             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], LEGACY_PAIRING_ACTIVE);
1376             // non-bondable mode: pin code negative reply will be sent
1377             if (!hci_stack->bondable){
1378                 hci_add_connection_flags_for_flipped_bd_addr(&packet[2], DENY_PIN_CODE_REQUEST);
1379                 hci_run();
1380                 return;
1381             }
1382             // PIN CODE REQUEST means the link key request didn't succee -> delete stored link key
1383             if (!hci_stack->remote_device_db) break;
1384             bt_flip_addr(addr, &packet[2]);
1385             hci_stack->remote_device_db->delete_link_key(addr);
1386             break;
1387 
1388         case HCI_EVENT_IO_CAPABILITY_REQUEST:
1389             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], RECV_IO_CAPABILITIES_REQUEST);
1390             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], SEND_IO_CAPABILITIES_REPLY);
1391             break;
1392 
1393         case HCI_EVENT_USER_CONFIRMATION_REQUEST:
1394             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], SSP_PAIRING_ACTIVE);
1395             if (!hci_stack->ssp_auto_accept) break;
1396             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], SEND_USER_CONFIRM_REPLY);
1397             break;
1398 
1399         case HCI_EVENT_USER_PASSKEY_REQUEST:
1400             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], SSP_PAIRING_ACTIVE);
1401             if (!hci_stack->ssp_auto_accept) break;
1402             hci_add_connection_flags_for_flipped_bd_addr(&packet[2], SEND_USER_PASSKEY_REPLY);
1403             break;
1404 
1405         case HCI_EVENT_ENCRYPTION_CHANGE:
1406             handle = READ_BT_16(packet, 3);
1407             conn = hci_connection_for_handle(handle);
1408             if (!conn) break;
1409             if (packet[2] == 0) {
1410                 if (packet[5]){
1411                     conn->authentication_flags |= CONNECTION_ENCRYPTED;
1412                 } else {
1413                     conn->authentication_flags &= ~CONNECTION_ENCRYPTED;
1414                 }
1415             }
1416             hci_emit_security_level(handle, gap_security_level_for_connection(conn));
1417             break;
1418 
1419         case HCI_EVENT_AUTHENTICATION_COMPLETE_EVENT:
1420             handle = READ_BT_16(packet, 3);
1421             conn = hci_connection_for_handle(handle);
1422             if (!conn) break;
1423 
1424             // dedicated bonding: send result and disconnect
1425             if (conn->bonding_flags & BONDING_DEDICATED){
1426                 conn->bonding_flags &= ~BONDING_DEDICATED;
1427                 conn->bonding_flags |= BONDING_DISCONNECT_DEDICATED_DONE;
1428                 conn->bonding_status = packet[2];
1429                 break;
1430             }
1431 
1432             if (packet[2] == 0 && gap_security_level_for_link_key_type(conn->link_key_type) >= conn->requested_security_level){
1433                 // link key sufficient for requested security
1434                 conn->bonding_flags |= BONDING_SEND_ENCRYPTION_REQUEST;
1435                 break;
1436             }
1437             // not enough
1438             hci_emit_security_level(handle, gap_security_level_for_connection(conn));
1439             break;
1440 
1441 #ifndef EMBEDDED
1442         case HCI_EVENT_REMOTE_NAME_REQUEST_COMPLETE:
1443             if (!hci_stack->remote_device_db) break;
1444             if (packet[2]) break; // status not ok
1445             bt_flip_addr(addr, &packet[3]);
1446             // fix for invalid remote names - terminate on 0xff
1447             for (i=0; i<248;i++){
1448                 if (packet[9+i] == 0xff){
1449                     packet[9+i] = 0;
1450                     break;
1451                 }
1452             }
1453             memset(&device_name, 0, sizeof(device_name_t));
1454             strncpy((char*) device_name, (char*) &packet[9], 248);
1455             hci_stack->remote_device_db->put_name(addr, &device_name);
1456             break;
1457 
1458         case HCI_EVENT_INQUIRY_RESULT:
1459         case HCI_EVENT_INQUIRY_RESULT_WITH_RSSI:{
1460             if (!hci_stack->remote_device_db) break;
1461             // first send inq result packet
1462             hci_stack->packet_handler(HCI_EVENT_PACKET, packet, size);
1463             // then send cached remote names
1464             int offset = 3;
1465             for (i=0; i<packet[2];i++){
1466                 bt_flip_addr(addr, &packet[offset]);
1467                 offset += 14; // 6 + 1 + 1 + 1 + 3 + 2;
1468                 if (hci_stack->remote_device_db->get_name(addr, &device_name)){
1469                     hci_emit_remote_name_cached(addr, &device_name);
1470                 }
1471             }
1472             return;
1473         }
1474 #endif
1475 
1476         // HCI_EVENT_DISCONNECTION_COMPLETE
1477         // has been split, to first notify stack before shutting connection down
1478         // see end of function, too.
1479         case HCI_EVENT_DISCONNECTION_COMPLETE:
1480             if (packet[2]) break;   // status != 0
1481             handle = READ_BT_16(packet, 3);
1482             conn = hci_connection_for_handle(handle);
1483             if (!conn) break;       // no conn struct anymore
1484             conn->state = RECEIVED_DISCONNECTION_COMPLETE;
1485             break;
1486 
1487         case HCI_EVENT_HARDWARE_ERROR:
1488             if(hci_stack->control && hci_stack->control->hw_error){
1489                 (*hci_stack->control->hw_error)();
1490             } else {
1491                 // if no special requests, just reboot stack
1492                 hci_power_control_off();
1493                 hci_power_control_on();
1494             }
1495             break;
1496 
1497         case DAEMON_EVENT_HCI_PACKET_SENT:
1498             // release packet buffer only for asynchronous transport and if there are not further fragements
1499             if (hci_transport_synchronous()) {
1500                 log_error("Synchronous HCI Transport shouldn't send DAEMON_EVENT_HCI_PACKET_SENT");
1501                 return; // instead of break: to avoid re-entering hci_run()
1502             }
1503             if (hci_stack->acl_fragmentation_total_size) break;
1504             hci_release_packet_buffer();
1505             break;
1506 
1507 #ifdef HAVE_BLE
1508         case HCI_EVENT_LE_META:
1509             switch (packet[2]){
1510                 case HCI_SUBEVENT_LE_ADVERTISING_REPORT:
1511                     log_info("advertising report received");
1512                     if (hci_stack->le_scanning_state != LE_SCANNING) break;
1513                     le_handle_advertisement_report(packet, size);
1514                     break;
1515                 case HCI_SUBEVENT_LE_CONNECTION_COMPLETE:
1516                     // Connection management
1517                     bt_flip_addr(addr, &packet[8]);
1518                     addr_type = (bd_addr_type_t)packet[7];
1519                     log_info("LE Connection_complete (status=%u) type %u, %s", packet[3], addr_type, bd_addr_to_str(addr));
1520                     // LE connections are auto-accepted, so just create a connection if there isn't one already
1521                     conn = hci_connection_for_bd_addr_and_type(addr, addr_type);
1522                     if (packet[3]){
1523                         if (conn){
1524                             // outgoing connection failed, remove entry
1525                             linked_list_remove(&hci_stack->connections, (linked_item_t *) conn);
1526                             btstack_memory_hci_connection_free( conn );
1527                         }
1528                         // if authentication error, also delete link key
1529                         if (packet[3] == 0x05) {
1530                             hci_drop_link_key_for_bd_addr(addr);
1531                         }
1532                         break;
1533                     }
1534                     if (!conn){
1535                         conn = create_connection_for_bd_addr_and_type(addr, addr_type);
1536                     }
1537                     if (!conn){
1538                         // no memory
1539                         break;
1540                     }
1541 
1542                     conn->state = OPEN;
1543                     conn->con_handle = READ_BT_16(packet, 4);
1544 
1545                     // TODO: store - role, peer address type, conn_interval, conn_latency, supervision timeout, master clock
1546 
1547                     // restart timer
1548                     // run_loop_set_timer(&conn->timeout, HCI_CONNECTION_TIMEOUT_MS);
1549                     // run_loop_add_timer(&conn->timeout);
1550 
1551                     log_info("New connection: handle %u, %s", conn->con_handle, bd_addr_to_str(conn->address));
1552 
1553                     hci_emit_nr_connections_changed();
1554                     break;
1555 
1556             // log_info("LE buffer size: %u, count %u", READ_BT_16(packet,6), packet[8]);
1557 
1558                 default:
1559                     break;
1560             }
1561             break;
1562 #endif
1563         default:
1564             break;
1565     }
1566 
1567     // handle BT initialization
1568     if (hci_stack->state == HCI_STATE_INITIALIZING){
1569         hci_initializing_event_handler(packet, size);
1570     }
1571 
1572     // help with BT sleep
1573     if (hci_stack->state == HCI_STATE_FALLING_ASLEEP
1574         && hci_stack->substate == HCI_FALLING_ASLEEP_W4_WRITE_SCAN_ENABLE
1575         && COMMAND_COMPLETE_EVENT(packet, hci_write_scan_enable)){
1576         hci_initializing_next_state();
1577     }
1578 
1579     // notify upper stack
1580     hci_stack->packet_handler(HCI_EVENT_PACKET, packet, size);
1581 
1582     // moved here to give upper stack a chance to close down everything with hci_connection_t intact
1583     if (packet[0] == HCI_EVENT_DISCONNECTION_COMPLETE){
1584         if (!packet[2]){
1585             handle = READ_BT_16(packet, 3);
1586             hci_connection_t * conn = hci_connection_for_handle(handle);
1587             if (conn) {
1588                 uint8_t status = conn->bonding_status;
1589                 uint16_t flags = conn->bonding_flags;
1590                 bd_addr_t bd_address;
1591                 memcpy(&bd_address, conn->address, 6);
1592                 hci_shutdown_connection(conn);
1593                 // connection struct is gone, don't access anymore
1594                 if (flags & BONDING_EMIT_COMPLETE_ON_DISCONNECT){
1595                     hci_emit_dedicated_bonding_result(bd_address, status);
1596                 }
1597             }
1598         }
1599     }
1600 
1601 	// execute main loop
1602 	hci_run();
1603 }
1604 
1605 static void sco_handler(uint8_t * packet, uint16_t size){
1606     // not handled yet
1607 }
1608 
1609 static void packet_handler(uint8_t packet_type, uint8_t *packet, uint16_t size){
1610     hci_dump_packet(packet_type, 1, packet, size);
1611     switch (packet_type) {
1612         case HCI_EVENT_PACKET:
1613             event_handler(packet, size);
1614             break;
1615         case HCI_ACL_DATA_PACKET:
1616             acl_handler(packet, size);
1617             break;
1618         case HCI_SCO_DATA_PACKET:
1619             sco_handler(packet, size);
1620         default:
1621             break;
1622     }
1623 }
1624 
1625 /** Register HCI packet handlers */
1626 void hci_register_packet_handler(void (*handler)(uint8_t packet_type, uint8_t *packet, uint16_t size)){
1627     hci_stack->packet_handler = handler;
1628 }
1629 
1630 static void hci_state_reset(){
1631     // no connections yet
1632     hci_stack->connections = NULL;
1633 
1634     // keep discoverable/connectable as this has been requested by the client(s)
1635     // hci_stack->discoverable = 0;
1636     // hci_stack->connectable = 0;
1637     // hci_stack->bondable = 1;
1638 
1639     // buffer is free
1640     hci_stack->hci_packet_buffer_reserved = 0;
1641 
1642     // no pending cmds
1643     hci_stack->decline_reason = 0;
1644     hci_stack->new_scan_enable_value = 0xff;
1645 
1646     // LE
1647     hci_stack->adv_addr_type = 0;
1648     memset(hci_stack->adv_address, 0, 6);
1649     hci_stack->le_scanning_state = LE_SCAN_IDLE;
1650     hci_stack->le_scan_type = 0xff;
1651     hci_stack->le_connection_parameter_range.le_conn_interval_min = 0x0006;
1652     hci_stack->le_connection_parameter_range.le_conn_interval_max = 0x0C80;
1653     hci_stack->le_connection_parameter_range.le_conn_latency_min = 0x0000;
1654     hci_stack->le_connection_parameter_range.le_conn_latency_max = 0x03E8;
1655     hci_stack->le_connection_parameter_range.le_supervision_timeout_min = 0x000A;
1656     hci_stack->le_connection_parameter_range.le_supervision_timeout_max = 0x0C80;
1657 }
1658 
1659 void hci_init(hci_transport_t *transport, void *config, bt_control_t *control, remote_device_db_t const* remote_device_db){
1660 
1661 #ifdef HAVE_MALLOC
1662     if (!hci_stack) {
1663         hci_stack = (hci_stack_t*) malloc(sizeof(hci_stack_t));
1664     }
1665 #else
1666     hci_stack = &hci_stack_static;
1667 #endif
1668     memset(hci_stack, 0, sizeof(hci_stack_t));
1669 
1670     // reference to use transport layer implementation
1671     hci_stack->hci_transport = transport;
1672 
1673     // references to used control implementation
1674     hci_stack->control = control;
1675 
1676     // reference to used config
1677     hci_stack->config = config;
1678 
1679     // higher level handler
1680     hci_stack->packet_handler = dummy_handler;
1681 
1682     // store and open remote device db
1683     hci_stack->remote_device_db = remote_device_db;
1684     if (hci_stack->remote_device_db) {
1685         hci_stack->remote_device_db->open();
1686     }
1687 
1688     // max acl payload size defined in config.h
1689     hci_stack->acl_data_packet_length = HCI_ACL_PAYLOAD_SIZE;
1690 
1691     // register packet handlers with transport
1692     transport->register_packet_handler(&packet_handler);
1693 
1694     hci_stack->state = HCI_STATE_OFF;
1695 
1696     // class of device
1697     hci_stack->class_of_device = 0x007a020c; // Smartphone
1698 
1699     // bondable by default
1700     hci_stack->bondable = 1;
1701 
1702     // Secure Simple Pairing default: enable, no I/O capabilities, general bonding, mitm not required, auto accept
1703     hci_stack->ssp_enable = 1;
1704     hci_stack->ssp_io_capability = SSP_IO_CAPABILITY_NO_INPUT_NO_OUTPUT;
1705     hci_stack->ssp_authentication_requirement = SSP_IO_AUTHREQ_MITM_PROTECTION_NOT_REQUIRED_GENERAL_BONDING;
1706     hci_stack->ssp_auto_accept = 1;
1707 
1708     hci_state_reset();
1709 }
1710 
1711 void hci_close(){
1712     // close remote device db
1713     if (hci_stack->remote_device_db) {
1714         hci_stack->remote_device_db->close();
1715     }
1716     while (hci_stack->connections) {
1717         // cancel all l2cap connections
1718         hci_emit_disconnection_complete(((hci_connection_t *) hci_stack->connections)->con_handle, 0x16); // terminated by local host
1719         hci_shutdown_connection((hci_connection_t *) hci_stack->connections);
1720     }
1721     hci_power_control(HCI_POWER_OFF);
1722 
1723 #ifdef HAVE_MALLOC
1724     free(hci_stack);
1725 #endif
1726     hci_stack = NULL;
1727 }
1728 
1729 void hci_set_class_of_device(uint32_t class_of_device){
1730     hci_stack->class_of_device = class_of_device;
1731 }
1732 
1733 // Set Public BD ADDR - passed on to Bluetooth chipset if supported in bt_control_h
1734 void hci_set_bd_addr(bd_addr_t addr){
1735     memcpy(hci_stack->custom_bd_addr, addr, 6);
1736     hci_stack->custom_bd_addr_set = 1;
1737 }
1738 
1739 void hci_disable_l2cap_timeout_check(){
1740     disable_l2cap_timeouts = 1;
1741 }
1742 // State-Module-Driver overview
1743 // state                    module  low-level
1744 // HCI_STATE_OFF             off      close
1745 // HCI_STATE_INITIALIZING,   on       open
1746 // HCI_STATE_WORKING,        on       open
1747 // HCI_STATE_HALTING,        on       open
1748 // HCI_STATE_SLEEPING,    off/sleep   close
1749 // HCI_STATE_FALLING_ASLEEP  on       open
1750 
1751 static int hci_power_control_on(void){
1752 
1753     // power on
1754     int err = 0;
1755     if (hci_stack->control && hci_stack->control->on){
1756         err = (*hci_stack->control->on)(hci_stack->config);
1757     }
1758     if (err){
1759         log_error( "POWER_ON failed");
1760         hci_emit_hci_open_failed();
1761         return err;
1762     }
1763 
1764     // open low-level device
1765     err = hci_stack->hci_transport->open(hci_stack->config);
1766     if (err){
1767         log_error( "HCI_INIT failed, turning Bluetooth off again");
1768         if (hci_stack->control && hci_stack->control->off){
1769             (*hci_stack->control->off)(hci_stack->config);
1770         }
1771         hci_emit_hci_open_failed();
1772         return err;
1773     }
1774     return 0;
1775 }
1776 
1777 static void hci_power_control_off(void){
1778 
1779     log_info("hci_power_control_off");
1780 
1781     // close low-level device
1782     hci_stack->hci_transport->close(hci_stack->config);
1783 
1784     log_info("hci_power_control_off - hci_transport closed");
1785 
1786     // power off
1787     if (hci_stack->control && hci_stack->control->off){
1788         (*hci_stack->control->off)(hci_stack->config);
1789     }
1790 
1791     log_info("hci_power_control_off - control closed");
1792 
1793     hci_stack->state = HCI_STATE_OFF;
1794 }
1795 
1796 static void hci_power_control_sleep(void){
1797 
1798     log_info("hci_power_control_sleep");
1799 
1800 #if 0
1801     // don't close serial port during sleep
1802 
1803     // close low-level device
1804     hci_stack->hci_transport->close(hci_stack->config);
1805 #endif
1806 
1807     // sleep mode
1808     if (hci_stack->control && hci_stack->control->sleep){
1809         (*hci_stack->control->sleep)(hci_stack->config);
1810     }
1811 
1812     hci_stack->state = HCI_STATE_SLEEPING;
1813 }
1814 
1815 static int hci_power_control_wake(void){
1816 
1817     log_info("hci_power_control_wake");
1818 
1819     // wake on
1820     if (hci_stack->control && hci_stack->control->wake){
1821         (*hci_stack->control->wake)(hci_stack->config);
1822     }
1823 
1824 #if 0
1825     // open low-level device
1826     int err = hci_stack->hci_transport->open(hci_stack->config);
1827     if (err){
1828         log_error( "HCI_INIT failed, turning Bluetooth off again");
1829         if (hci_stack->control && hci_stack->control->off){
1830             (*hci_stack->control->off)(hci_stack->config);
1831         }
1832         hci_emit_hci_open_failed();
1833         return err;
1834     }
1835 #endif
1836 
1837     return 0;
1838 }
1839 
1840 static void hci_power_transition_to_initializing(void){
1841     // set up state machine
1842     hci_stack->num_cmd_packets = 1; // assume that one cmd can be sent
1843     hci_stack->hci_packet_buffer_reserved = 0;
1844     hci_stack->state = HCI_STATE_INITIALIZING;
1845     hci_stack->substate = HCI_INIT_SEND_RESET;
1846 }
1847 
1848 int hci_power_control(HCI_POWER_MODE power_mode){
1849 
1850     log_info("hci_power_control: %u, current mode %u", power_mode, hci_stack->state);
1851 
1852     int err = 0;
1853     switch (hci_stack->state){
1854 
1855         case HCI_STATE_OFF:
1856             switch (power_mode){
1857                 case HCI_POWER_ON:
1858                     err = hci_power_control_on();
1859                     if (err) {
1860                         log_error("hci_power_control_on() error %u", err);
1861                         return err;
1862                     }
1863                     hci_power_transition_to_initializing();
1864                     break;
1865                 case HCI_POWER_OFF:
1866                     // do nothing
1867                     break;
1868                 case HCI_POWER_SLEEP:
1869                     // do nothing (with SLEEP == OFF)
1870                     break;
1871             }
1872             break;
1873 
1874         case HCI_STATE_INITIALIZING:
1875             switch (power_mode){
1876                 case HCI_POWER_ON:
1877                     // do nothing
1878                     break;
1879                 case HCI_POWER_OFF:
1880                     // no connections yet, just turn it off
1881                     hci_power_control_off();
1882                     break;
1883                 case HCI_POWER_SLEEP:
1884                     // no connections yet, just turn it off
1885                     hci_power_control_sleep();
1886                     break;
1887             }
1888             break;
1889 
1890         case HCI_STATE_WORKING:
1891             switch (power_mode){
1892                 case HCI_POWER_ON:
1893                     // do nothing
1894                     break;
1895                 case HCI_POWER_OFF:
1896                     // see hci_run
1897                     hci_stack->state = HCI_STATE_HALTING;
1898                     break;
1899                 case HCI_POWER_SLEEP:
1900                     // see hci_run
1901                     hci_stack->state = HCI_STATE_FALLING_ASLEEP;
1902                     hci_stack->substate = HCI_FALLING_ASLEEP_DISCONNECT;
1903                     break;
1904             }
1905             break;
1906 
1907         case HCI_STATE_HALTING:
1908             switch (power_mode){
1909                 case HCI_POWER_ON:
1910                     hci_power_transition_to_initializing();
1911                     break;
1912                 case HCI_POWER_OFF:
1913                     // do nothing
1914                     break;
1915                 case HCI_POWER_SLEEP:
1916                     // see hci_run
1917                     hci_stack->state = HCI_STATE_FALLING_ASLEEP;
1918                     hci_stack->substate = HCI_FALLING_ASLEEP_DISCONNECT;
1919                     break;
1920             }
1921             break;
1922 
1923         case HCI_STATE_FALLING_ASLEEP:
1924             switch (power_mode){
1925                 case HCI_POWER_ON:
1926 
1927 #if defined(USE_POWERMANAGEMENT) && defined(USE_BLUETOOL)
1928                     // nothing to do, if H4 supports power management
1929                     if (bt_control_iphone_power_management_enabled()){
1930                         hci_stack->state = HCI_STATE_INITIALIZING;
1931                         hci_stack->substate = HCI_INIT_WRITE_SCAN_ENABLE;   // init after sleep
1932                         break;
1933                     }
1934 #endif
1935                     hci_power_transition_to_initializing();
1936                     break;
1937                 case HCI_POWER_OFF:
1938                     // see hci_run
1939                     hci_stack->state = HCI_STATE_HALTING;
1940                     break;
1941                 case HCI_POWER_SLEEP:
1942                     // do nothing
1943                     break;
1944             }
1945             break;
1946 
1947         case HCI_STATE_SLEEPING:
1948             switch (power_mode){
1949                 case HCI_POWER_ON:
1950 
1951 #if defined(USE_POWERMANAGEMENT) && defined(USE_BLUETOOL)
1952                     // nothing to do, if H4 supports power management
1953                     if (bt_control_iphone_power_management_enabled()){
1954                         hci_stack->state = HCI_STATE_INITIALIZING;
1955                         hci_stack->substate = HCI_INIT_AFTER_SLEEP;
1956                         hci_update_scan_enable();
1957                         break;
1958                     }
1959 #endif
1960                     err = hci_power_control_wake();
1961                     if (err) return err;
1962                     hci_power_transition_to_initializing();
1963                     break;
1964                 case HCI_POWER_OFF:
1965                     hci_stack->state = HCI_STATE_HALTING;
1966                     break;
1967                 case HCI_POWER_SLEEP:
1968                     // do nothing
1969                     break;
1970             }
1971             break;
1972     }
1973 
1974     // create internal event
1975 	hci_emit_state();
1976 
1977 	// trigger next/first action
1978 	hci_run();
1979 
1980     return 0;
1981 }
1982 
1983 static void hci_update_scan_enable(void){
1984     // 2 = page scan, 1 = inq scan
1985     hci_stack->new_scan_enable_value  = hci_stack->connectable << 1 | hci_stack->discoverable;
1986     hci_run();
1987 }
1988 
1989 void hci_discoverable_control(uint8_t enable){
1990     if (enable) enable = 1; // normalize argument
1991 
1992     if (hci_stack->discoverable == enable){
1993         hci_emit_discoverable_enabled(hci_stack->discoverable);
1994         return;
1995     }
1996 
1997     hci_stack->discoverable = enable;
1998     hci_update_scan_enable();
1999 }
2000 
2001 void hci_connectable_control(uint8_t enable){
2002     if (enable) enable = 1; // normalize argument
2003 
2004     // don't emit event
2005     if (hci_stack->connectable == enable) return;
2006 
2007     hci_stack->connectable = enable;
2008     hci_update_scan_enable();
2009 }
2010 
2011 void hci_local_bd_addr(bd_addr_t address_buffer){
2012     memcpy(address_buffer, hci_stack->local_bd_addr, 6);
2013 }
2014 
2015 void hci_run(){
2016 
2017     // log_info("hci_run: entered");
2018     hci_connection_t * connection;
2019     linked_item_t * it;
2020 
2021     // send continuation fragments first, as they block the prepared packet buffer
2022     if (hci_stack->acl_fragmentation_total_size > 0) {
2023         hci_con_handle_t con_handle = READ_ACL_CONNECTION_HANDLE(hci_stack->hci_packet_buffer);
2024         if (hci_can_send_prepared_acl_packet_now(con_handle)){
2025             hci_connection_t *connection = hci_connection_for_handle(con_handle);
2026             if (connection) {
2027                 hci_send_acl_packet_fragments(connection);
2028                 return;
2029             }
2030             // connection gone -> discard further fragments
2031             hci_stack->acl_fragmentation_total_size = 0;
2032             hci_stack->acl_fragmentation_pos = 0;
2033         }
2034     }
2035 
2036     if (!hci_can_send_command_packet_now()) return;
2037 
2038     // global/non-connection oriented commands
2039 
2040     // decline incoming connections
2041     if (hci_stack->decline_reason){
2042         uint8_t reason = hci_stack->decline_reason;
2043         hci_stack->decline_reason = 0;
2044         hci_send_cmd(&hci_reject_connection_request, hci_stack->decline_addr, reason);
2045         return;
2046     }
2047 
2048     // send scan enable
2049     if (hci_stack->state == HCI_STATE_WORKING && hci_stack->new_scan_enable_value != 0xff && hci_classic_supported()){
2050         hci_send_cmd(&hci_write_scan_enable, hci_stack->new_scan_enable_value);
2051         hci_stack->new_scan_enable_value = 0xff;
2052         return;
2053     }
2054 
2055 #ifdef HAVE_BLE
2056     // handle le scan
2057     if (hci_stack->state == HCI_STATE_WORKING){
2058         switch(hci_stack->le_scanning_state){
2059             case LE_START_SCAN:
2060                 hci_stack->le_scanning_state = LE_SCANNING;
2061                 hci_send_cmd(&hci_le_set_scan_enable, 1, 0);
2062                 return;
2063 
2064             case LE_STOP_SCAN:
2065                 hci_stack->le_scanning_state = LE_SCAN_IDLE;
2066                 hci_send_cmd(&hci_le_set_scan_enable, 0, 0);
2067                 return;
2068             default:
2069                 break;
2070         }
2071         if (hci_stack->le_scan_type != 0xff){
2072             // defaults: active scanning, accept all advertisement packets
2073             int scan_type = hci_stack->le_scan_type;
2074             hci_stack->le_scan_type = 0xff;
2075             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);
2076             return;
2077         }
2078     }
2079 #endif
2080 
2081     // send pending HCI commands
2082     for (it = (linked_item_t *) hci_stack->connections; it ; it = it->next){
2083         connection = (hci_connection_t *) it;
2084 
2085         switch(connection->state){
2086             case SEND_CREATE_CONNECTION:
2087                 switch(connection->address_type){
2088                     case BD_ADDR_TYPE_CLASSIC:
2089                         log_info("sending hci_create_connection");
2090                         hci_send_cmd(&hci_create_connection, connection->address, hci_usable_acl_packet_types(), 0, 0, 0, 1);
2091                         break;
2092                     default:
2093 #ifdef HAVE_BLE
2094                         log_info("sending hci_le_create_connection");
2095                         hci_send_cmd(&hci_le_create_connection,
2096                                      0x0060,    // scan interval: 60 ms
2097                                      0x0030,    // scan interval: 30 ms
2098                                      0,         // don't use whitelist
2099                                      connection->address_type, // peer address type
2100                                      connection->address,      // peer bd addr
2101                                      hci_stack->adv_addr_type, // our addr type:
2102                                      0x0008,    // conn interval min
2103                                      0x0018,    // conn interval max
2104                                      0,         // conn latency
2105                                      0x0048,    // supervision timeout
2106                                      0x0001,    // min ce length
2107                                      0x0001     // max ce length
2108                                      );
2109 
2110                         connection->state = SENT_CREATE_CONNECTION;
2111 #endif
2112                         break;
2113                 }
2114                 return;
2115 
2116             case RECEIVED_CONNECTION_REQUEST:
2117                 log_info("sending hci_accept_connection_request");
2118                 connection->state = ACCEPTED_CONNECTION_REQUEST;
2119                 if (connection->address_type == BD_ADDR_TYPE_CLASSIC){
2120                     hci_send_cmd(&hci_accept_connection_request, connection->address, 1);
2121                 } else {
2122                     // TODO: allows to customize synchronous connection parameters
2123                     hci_send_cmd(&hci_accept_synchronous_connection_command, connection->address, 8000, 8000, 0xFFFF, 0x0060, 0xFF, 0x003F);
2124                 }
2125                 return;
2126 
2127 #ifdef HAVE_BLE
2128             case SEND_CANCEL_CONNECTION:
2129                 connection->state = SENT_CANCEL_CONNECTION;
2130                 hci_send_cmd(&hci_le_create_connection_cancel);
2131                 return;
2132 #endif
2133             case SEND_DISCONNECT:
2134                 connection->state = SENT_DISCONNECT;
2135                 hci_send_cmd(&hci_disconnect, connection->con_handle, 0x13); // remote closed connection
2136                 return;
2137 
2138             default:
2139                 break;
2140         }
2141 
2142         if (connection->authentication_flags & HANDLE_LINK_KEY_REQUEST){
2143             log_info("responding to link key request");
2144             connectionClearAuthenticationFlags(connection, HANDLE_LINK_KEY_REQUEST);
2145             link_key_t link_key;
2146             link_key_type_t link_key_type;
2147             if ( hci_stack->remote_device_db
2148               && hci_stack->remote_device_db->get_link_key(connection->address, link_key, &link_key_type)
2149               && gap_security_level_for_link_key_type(link_key_type) >= connection->requested_security_level){
2150                connection->link_key_type = link_key_type;
2151                hci_send_cmd(&hci_link_key_request_reply, connection->address, &link_key);
2152             } else {
2153                hci_send_cmd(&hci_link_key_request_negative_reply, connection->address);
2154             }
2155             return;
2156         }
2157 
2158         if (connection->authentication_flags & DENY_PIN_CODE_REQUEST){
2159             log_info("denying to pin request");
2160             connectionClearAuthenticationFlags(connection, DENY_PIN_CODE_REQUEST);
2161             hci_send_cmd(&hci_pin_code_request_negative_reply, connection->address);
2162             return;
2163         }
2164 
2165         if (connection->authentication_flags & SEND_IO_CAPABILITIES_REPLY){
2166             connectionClearAuthenticationFlags(connection, SEND_IO_CAPABILITIES_REPLY);
2167             log_info("IO Capability Request received, stack bondable %u, io cap %u", hci_stack->bondable, hci_stack->ssp_io_capability);
2168             if (hci_stack->bondable && (hci_stack->ssp_io_capability != SSP_IO_CAPABILITY_UNKNOWN)){
2169                 // tweak authentication requirements
2170                 uint8_t authreq = hci_stack->ssp_authentication_requirement;
2171                 if (connection->bonding_flags & BONDING_DEDICATED){
2172                     authreq = SSP_IO_AUTHREQ_MITM_PROTECTION_NOT_REQUIRED_DEDICATED_BONDING;
2173                 }
2174                 if (gap_mitm_protection_required_for_security_level(connection->requested_security_level)){
2175                     authreq |= 1;
2176                 }
2177                 hci_send_cmd(&hci_io_capability_request_reply, &connection->address, hci_stack->ssp_io_capability, NULL, authreq);
2178             } else {
2179                 hci_send_cmd(&hci_io_capability_request_negative_reply, &connection->address, ERROR_CODE_PAIRING_NOT_ALLOWED);
2180             }
2181             return;
2182         }
2183 
2184         if (connection->authentication_flags & SEND_USER_CONFIRM_REPLY){
2185             connectionClearAuthenticationFlags(connection, SEND_USER_CONFIRM_REPLY);
2186             hci_send_cmd(&hci_user_confirmation_request_reply, &connection->address);
2187             return;
2188         }
2189 
2190         if (connection->authentication_flags & SEND_USER_PASSKEY_REPLY){
2191             connectionClearAuthenticationFlags(connection, SEND_USER_PASSKEY_REPLY);
2192             hci_send_cmd(&hci_user_passkey_request_reply, &connection->address, 000000);
2193             return;
2194         }
2195 
2196         if (connection->bonding_flags & BONDING_REQUEST_REMOTE_FEATURES){
2197             connection->bonding_flags &= ~BONDING_REQUEST_REMOTE_FEATURES;
2198             hci_send_cmd(&hci_read_remote_supported_features_command, connection->con_handle);
2199             return;
2200         }
2201 
2202         if (connection->bonding_flags & BONDING_DISCONNECT_SECURITY_BLOCK){
2203             connection->bonding_flags &= ~BONDING_DISCONNECT_SECURITY_BLOCK;
2204             hci_send_cmd(&hci_disconnect, connection->con_handle, 0x0005);  // authentication failure
2205             return;
2206         }
2207         if (connection->bonding_flags & BONDING_DISCONNECT_DEDICATED_DONE){
2208             connection->bonding_flags &= ~BONDING_DISCONNECT_DEDICATED_DONE;
2209             connection->bonding_flags |= BONDING_EMIT_COMPLETE_ON_DISCONNECT;
2210             hci_send_cmd(&hci_disconnect, connection->con_handle, 0x13);  // authentication done
2211             return;
2212         }
2213         if (connection->bonding_flags & BONDING_SEND_AUTHENTICATE_REQUEST){
2214             connection->bonding_flags &= ~BONDING_SEND_AUTHENTICATE_REQUEST;
2215             hci_send_cmd(&hci_authentication_requested, connection->con_handle);
2216             return;
2217         }
2218         if (connection->bonding_flags & BONDING_SEND_ENCRYPTION_REQUEST){
2219             connection->bonding_flags &= ~BONDING_SEND_ENCRYPTION_REQUEST;
2220             hci_send_cmd(&hci_set_connection_encryption, connection->con_handle, 1);
2221             return;
2222         }
2223 
2224 #ifdef HAVE_BLE
2225         if (connection->le_con_parameter_update_state == CON_PARAMETER_UPDATE_CHANGE_HCI_CON_PARAMETERS){
2226             connection->le_con_parameter_update_state = CON_PARAMETER_UPDATE_NONE;
2227 
2228             uint16_t connection_interval_min = connection->le_conn_interval_min;
2229             connection->le_conn_interval_min = 0;
2230             hci_send_cmd(&hci_le_connection_update, connection->con_handle, connection_interval_min,
2231                 connection->le_conn_interval_max, connection->le_conn_latency, connection->le_supervision_timeout,
2232                 0x0000, 0xffff);
2233         }
2234 #endif
2235     }
2236 
2237     switch (hci_stack->state){
2238         case HCI_STATE_INITIALIZING:
2239             hci_initializing_run();
2240             break;
2241 
2242         case HCI_STATE_HALTING:
2243 
2244             log_info("HCI_STATE_HALTING");
2245             // close all open connections
2246             connection =  (hci_connection_t *) hci_stack->connections;
2247             if (connection){
2248 
2249                 // send disconnect
2250                 if (!hci_can_send_command_packet_now()) return;
2251 
2252                 log_info("HCI_STATE_HALTING, connection %p, handle %u", connection, (uint16_t)connection->con_handle);
2253                 hci_send_cmd(&hci_disconnect, connection->con_handle, 0x13);  // remote closed connection
2254 
2255                 // send disconnected event right away - causes higher layer connections to get closed, too.
2256                 hci_shutdown_connection(connection);
2257                 return;
2258             }
2259             log_info("HCI_STATE_HALTING, calling off");
2260 
2261             // switch mode
2262             hci_power_control_off();
2263 
2264             log_info("HCI_STATE_HALTING, emitting state");
2265             hci_emit_state();
2266             log_info("HCI_STATE_HALTING, done");
2267             break;
2268 
2269         case HCI_STATE_FALLING_ASLEEP:
2270             switch(hci_stack->substate) {
2271                 case HCI_FALLING_ASLEEP_DISCONNECT:
2272                     log_info("HCI_STATE_FALLING_ASLEEP");
2273                     // close all open connections
2274                     connection =  (hci_connection_t *) hci_stack->connections;
2275 
2276 #if defined(USE_POWERMANAGEMENT) && defined(USE_BLUETOOL)
2277                     // don't close connections, if H4 supports power management
2278                     if (bt_control_iphone_power_management_enabled()){
2279                         connection = NULL;
2280                     }
2281 #endif
2282                     if (connection){
2283 
2284                         // send disconnect
2285                         if (!hci_can_send_command_packet_now()) return;
2286 
2287                         log_info("HCI_STATE_FALLING_ASLEEP, connection %p, handle %u", connection, (uint16_t)connection->con_handle);
2288                         hci_send_cmd(&hci_disconnect, connection->con_handle, 0x13);  // remote closed connection
2289 
2290                         // send disconnected event right away - causes higher layer connections to get closed, too.
2291                         hci_shutdown_connection(connection);
2292                         return;
2293                     }
2294 
2295                     if (hci_classic_supported()){
2296                         // disable page and inquiry scan
2297                         if (!hci_can_send_command_packet_now()) return;
2298 
2299                         log_info("HCI_STATE_HALTING, disabling inq scans");
2300                         hci_send_cmd(&hci_write_scan_enable, hci_stack->connectable << 1); // drop inquiry scan but keep page scan
2301 
2302                         // continue in next sub state
2303                         hci_stack->substate = HCI_FALLING_ASLEEP_W4_WRITE_SCAN_ENABLE;
2304                         break;
2305                     }
2306                     // fall through for ble-only chips
2307 
2308                 case HCI_FALLING_ASLEEP_COMPLETE:
2309                     log_info("HCI_STATE_HALTING, calling sleep");
2310 #if defined(USE_POWERMANAGEMENT) && defined(USE_BLUETOOL)
2311                     // don't actually go to sleep, if H4 supports power management
2312                     if (bt_control_iphone_power_management_enabled()){
2313                         // SLEEP MODE reached
2314                         hci_stack->state = HCI_STATE_SLEEPING;
2315                         hci_emit_state();
2316                         break;
2317                     }
2318 #endif
2319                     // switch mode
2320                     hci_power_control_sleep();  // changes hci_stack->state to SLEEP
2321                     hci_emit_state();
2322                     break;
2323 
2324                 default:
2325                     break;
2326             }
2327             break;
2328 
2329         default:
2330             break;
2331     }
2332 }
2333 
2334 int hci_send_cmd_packet(uint8_t *packet, int size){
2335     bd_addr_t addr;
2336     hci_connection_t * conn;
2337     // house-keeping
2338 
2339     // create_connection?
2340     if (IS_COMMAND(packet, hci_create_connection)){
2341         bt_flip_addr(addr, &packet[3]);
2342         log_info("Create_connection to %s", bd_addr_to_str(addr));
2343 
2344         conn = hci_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_CLASSIC);
2345         if (!conn){
2346             conn = create_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_CLASSIC);
2347             if (!conn){
2348                 // notify client that alloc failed
2349                 hci_emit_connection_complete(conn, BTSTACK_MEMORY_ALLOC_FAILED);
2350                 return 0; // don't sent packet to controller
2351             }
2352             conn->state = SEND_CREATE_CONNECTION;
2353         }
2354         log_info("conn state %u", conn->state);
2355         switch (conn->state){
2356             // if connection active exists
2357             case OPEN:
2358                 // and OPEN, emit connection complete command, don't send to controller
2359                 hci_emit_connection_complete(conn, 0);
2360                 return 0;
2361             case SEND_CREATE_CONNECTION:
2362                 // connection created by hci, e.g. dedicated bonding
2363                 break;
2364             default:
2365                 // otherwise, just ignore as it is already in the open process
2366                 return 0;
2367         }
2368         conn->state = SENT_CREATE_CONNECTION;
2369     }
2370     if (IS_COMMAND(packet, hci_link_key_request_reply)){
2371         hci_add_connection_flags_for_flipped_bd_addr(&packet[3], SENT_LINK_KEY_REPLY);
2372     }
2373     if (IS_COMMAND(packet, hci_link_key_request_negative_reply)){
2374         hci_add_connection_flags_for_flipped_bd_addr(&packet[3], SENT_LINK_KEY_NEGATIVE_REQUEST);
2375     }
2376 
2377     if (IS_COMMAND(packet, hci_delete_stored_link_key)){
2378         if (hci_stack->remote_device_db){
2379             bt_flip_addr(addr, &packet[3]);
2380             hci_stack->remote_device_db->delete_link_key(addr);
2381         }
2382     }
2383 
2384     if (IS_COMMAND(packet, hci_pin_code_request_negative_reply)
2385     ||  IS_COMMAND(packet, hci_pin_code_request_reply)){
2386         bt_flip_addr(addr, &packet[3]);
2387         conn = hci_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_CLASSIC);
2388         if (conn){
2389             connectionClearAuthenticationFlags(conn, LEGACY_PAIRING_ACTIVE);
2390         }
2391     }
2392 
2393     if (IS_COMMAND(packet, hci_user_confirmation_request_negative_reply)
2394     ||  IS_COMMAND(packet, hci_user_confirmation_request_reply)
2395     ||  IS_COMMAND(packet, hci_user_passkey_request_negative_reply)
2396     ||  IS_COMMAND(packet, hci_user_passkey_request_reply)) {
2397         bt_flip_addr(addr, &packet[3]);
2398         conn = hci_connection_for_bd_addr_and_type(addr, BD_ADDR_TYPE_CLASSIC);
2399         if (conn){
2400             connectionClearAuthenticationFlags(conn, SSP_PAIRING_ACTIVE);
2401         }
2402     }
2403 
2404 #ifdef HAVE_BLE
2405     if (IS_COMMAND(packet, hci_le_set_advertising_parameters)){
2406         hci_stack->adv_addr_type = packet[8];
2407     }
2408     if (IS_COMMAND(packet, hci_le_set_random_address)){
2409         bt_flip_addr(hci_stack->adv_address, &packet[3]);
2410     }
2411 #endif
2412 
2413     hci_stack->num_cmd_packets--;
2414 
2415     hci_dump_packet(HCI_COMMAND_DATA_PACKET, 0, packet, size);
2416     int err = hci_stack->hci_transport->send_packet(HCI_COMMAND_DATA_PACKET, packet, size);
2417 
2418     // release packet buffer for synchronous transport implementations
2419     if (hci_transport_synchronous() && (packet == hci_stack->hci_packet_buffer)){
2420         hci_stack->hci_packet_buffer_reserved = 0;
2421     }
2422 
2423     return err;
2424 }
2425 
2426 // disconnect because of security block
2427 void hci_disconnect_security_block(hci_con_handle_t con_handle){
2428     hci_connection_t * connection = hci_connection_for_handle(con_handle);
2429     if (!connection) return;
2430     connection->bonding_flags |= BONDING_DISCONNECT_SECURITY_BLOCK;
2431 }
2432 
2433 
2434 // Configure Secure Simple Pairing
2435 
2436 // enable will enable SSP during init
2437 void hci_ssp_set_enable(int enable){
2438     hci_stack->ssp_enable = enable;
2439 }
2440 
2441 int hci_local_ssp_activated(){
2442     return hci_ssp_supported() && hci_stack->ssp_enable;
2443 }
2444 
2445 // if set, BTstack will respond to io capability request using authentication requirement
2446 void hci_ssp_set_io_capability(int io_capability){
2447     hci_stack->ssp_io_capability = io_capability;
2448 }
2449 void hci_ssp_set_authentication_requirement(int authentication_requirement){
2450     hci_stack->ssp_authentication_requirement = authentication_requirement;
2451 }
2452 
2453 // if set, BTstack will confirm a numberic comparion and enter '000000' if requested
2454 void hci_ssp_set_auto_accept(int auto_accept){
2455     hci_stack->ssp_auto_accept = auto_accept;
2456 }
2457 
2458 /**
2459  * pre: numcmds >= 0 - it's allowed to send a command to the controller
2460  */
2461 int hci_send_cmd(const hci_cmd_t *cmd, ...){
2462 
2463     if (!hci_can_send_command_packet_now()){
2464         log_error("hci_send_cmd called but cannot send packet now");
2465         return 0;
2466     }
2467 
2468     // for HCI INITIALIZATION
2469     // log_info("hci_send_cmd: opcode %04x", cmd->opcode);
2470     hci_stack->last_cmd_opcode = cmd->opcode;
2471 
2472     hci_reserve_packet_buffer();
2473     uint8_t * packet = hci_stack->hci_packet_buffer;
2474 
2475     va_list argptr;
2476     va_start(argptr, cmd);
2477     uint16_t size = hci_create_cmd_internal(packet, cmd, argptr);
2478     va_end(argptr);
2479 
2480     return hci_send_cmd_packet(packet, size);
2481 }
2482 
2483 // Create various non-HCI events.
2484 // TODO: generalize, use table similar to hci_create_command
2485 
2486 void hci_emit_state(){
2487     log_info("BTSTACK_EVENT_STATE %u", hci_stack->state);
2488     uint8_t event[3];
2489     event[0] = BTSTACK_EVENT_STATE;
2490     event[1] = sizeof(event) - 2;
2491     event[2] = hci_stack->state;
2492     hci_dump_packet( HCI_EVENT_PACKET, 0, event, sizeof(event));
2493     hci_stack->packet_handler(HCI_EVENT_PACKET, event, sizeof(event));
2494 }
2495 
2496 void hci_emit_connection_complete(hci_connection_t *conn, uint8_t status){
2497     uint8_t event[13];
2498     event[0] = HCI_EVENT_CONNECTION_COMPLETE;
2499     event[1] = sizeof(event) - 2;
2500     event[2] = status;
2501     bt_store_16(event, 3, conn->con_handle);
2502     bt_flip_addr(&event[5], conn->address);
2503     event[11] = 1; // ACL connection
2504     event[12] = 0; // encryption disabled
2505     hci_dump_packet(HCI_EVENT_PACKET, 0, event, sizeof(event));
2506     hci_stack->packet_handler(HCI_EVENT_PACKET, event, sizeof(event));
2507 }
2508 
2509 void hci_emit_le_connection_complete(uint8_t address_type, bd_addr_t address, uint16_t conn_handle, uint8_t status){
2510     uint8_t event[21];
2511     event[0] = HCI_EVENT_LE_META;
2512     event[1] = sizeof(event) - 2;
2513     event[2] = HCI_SUBEVENT_LE_CONNECTION_COMPLETE;
2514     event[3] = status;
2515     bt_store_16(event, 4, conn_handle);
2516     event[6] = 0; // TODO: role
2517     event[7] = address_type;
2518     bt_flip_addr(&event[8], address);
2519     bt_store_16(event, 14, 0); // interval
2520     bt_store_16(event, 16, 0); // latency
2521     bt_store_16(event, 18, 0); // supervision timeout
2522     event[20] = 0; // master clock accuracy
2523     hci_dump_packet(HCI_EVENT_PACKET, 0, event, sizeof(event));
2524     hci_stack->packet_handler(HCI_EVENT_PACKET, event, sizeof(event));
2525 }
2526 
2527 void hci_emit_disconnection_complete(uint16_t handle, uint8_t reason){
2528     uint8_t event[6];
2529     event[0] = HCI_EVENT_DISCONNECTION_COMPLETE;
2530     event[1] = sizeof(event) - 2;
2531     event[2] = 0; // status = OK
2532     bt_store_16(event, 3, handle);
2533     event[5] = reason;
2534     hci_dump_packet(HCI_EVENT_PACKET, 0, event, sizeof(event));
2535     hci_stack->packet_handler(HCI_EVENT_PACKET, event, sizeof(event));
2536 }
2537 
2538 void hci_emit_l2cap_check_timeout(hci_connection_t *conn){
2539     if (disable_l2cap_timeouts) return;
2540     log_info("L2CAP_EVENT_TIMEOUT_CHECK");
2541     uint8_t event[4];
2542     event[0] = L2CAP_EVENT_TIMEOUT_CHECK;
2543     event[1] = sizeof(event) - 2;
2544     bt_store_16(event, 2, conn->con_handle);
2545     hci_dump_packet(HCI_EVENT_PACKET, 0, event, sizeof(event));
2546     hci_stack->packet_handler(HCI_EVENT_PACKET, event, sizeof(event));
2547 }
2548 
2549 void hci_emit_nr_connections_changed(){
2550     log_info("BTSTACK_EVENT_NR_CONNECTIONS_CHANGED %u", nr_hci_connections());
2551     uint8_t event[3];
2552     event[0] = BTSTACK_EVENT_NR_CONNECTIONS_CHANGED;
2553     event[1] = sizeof(event) - 2;
2554     event[2] = nr_hci_connections();
2555     hci_dump_packet( HCI_EVENT_PACKET, 0, event, sizeof(event));
2556     hci_stack->packet_handler(HCI_EVENT_PACKET, event, sizeof(event));
2557 }
2558 
2559 void hci_emit_hci_open_failed(){
2560     log_info("BTSTACK_EVENT_POWERON_FAILED");
2561     uint8_t event[2];
2562     event[0] = BTSTACK_EVENT_POWERON_FAILED;
2563     event[1] = sizeof(event) - 2;
2564     hci_dump_packet( HCI_EVENT_PACKET, 0, event, sizeof(event));
2565     hci_stack->packet_handler(HCI_EVENT_PACKET, event, sizeof(event));
2566 }
2567 
2568 #ifndef EMBEDDED
2569 void hci_emit_btstack_version() {
2570     log_info("BTSTACK_EVENT_VERSION %u.%u", BTSTACK_MAJOR, BTSTACK_MINOR);
2571     uint8_t event[6];
2572     event[0] = BTSTACK_EVENT_VERSION;
2573     event[1] = sizeof(event) - 2;
2574     event[2] = BTSTACK_MAJOR;
2575     event[3] = BTSTACK_MINOR;
2576     bt_store_16(event, 4, 3257);    // last SVN commit on Google Code + 1
2577     hci_dump_packet( HCI_EVENT_PACKET, 0, event, sizeof(event));
2578     hci_stack->packet_handler(HCI_EVENT_PACKET, event, sizeof(event));
2579 }
2580 #endif
2581 
2582 void hci_emit_system_bluetooth_enabled(uint8_t enabled){
2583     log_info("BTSTACK_EVENT_SYSTEM_BLUETOOTH_ENABLED %u", enabled);
2584     uint8_t event[3];
2585     event[0] = BTSTACK_EVENT_SYSTEM_BLUETOOTH_ENABLED;
2586     event[1] = sizeof(event) - 2;
2587     event[2] = enabled;
2588     hci_dump_packet( HCI_EVENT_PACKET, 0, event, sizeof(event));
2589     hci_stack->packet_handler(HCI_EVENT_PACKET, event, sizeof(event));
2590 }
2591 
2592 void hci_emit_remote_name_cached(bd_addr_t addr, device_name_t *name){
2593     uint8_t event[2+1+6+248+1]; // +1 for \0 in log_info
2594     event[0] = BTSTACK_EVENT_REMOTE_NAME_CACHED;
2595     event[1] = sizeof(event) - 2 - 1;
2596     event[2] = 0;   // just to be compatible with HCI_EVENT_REMOTE_NAME_REQUEST_COMPLETE
2597     bt_flip_addr(&event[3], addr);
2598     memcpy(&event[9], name, 248);
2599 
2600     event[9+248] = 0;   // assert \0 for log_info
2601     log_info("BTSTACK_EVENT_REMOTE_NAME_CACHED %s = '%s'", bd_addr_to_str(addr), &event[9]);
2602 
2603     hci_dump_packet(HCI_EVENT_PACKET, 0, event, sizeof(event)-1);
2604     hci_stack->packet_handler(HCI_EVENT_PACKET, event, sizeof(event)-1);
2605 }
2606 
2607 void hci_emit_discoverable_enabled(uint8_t enabled){
2608     log_info("BTSTACK_EVENT_DISCOVERABLE_ENABLED %u", enabled);
2609     uint8_t event[3];
2610     event[0] = BTSTACK_EVENT_DISCOVERABLE_ENABLED;
2611     event[1] = sizeof(event) - 2;
2612     event[2] = enabled;
2613     hci_dump_packet( HCI_EVENT_PACKET, 0, event, sizeof(event));
2614     hci_stack->packet_handler(HCI_EVENT_PACKET, event, sizeof(event));
2615 }
2616 
2617 void hci_emit_security_level(hci_con_handle_t con_handle, gap_security_level_t level){
2618     log_info("hci_emit_security_level %u for handle %x", level, con_handle);
2619     uint8_t event[5];
2620     int pos = 0;
2621     event[pos++] = GAP_SECURITY_LEVEL;
2622     event[pos++] = sizeof(event) - 2;
2623     bt_store_16(event, 2, con_handle);
2624     pos += 2;
2625     event[pos++] = level;
2626     hci_dump_packet( HCI_EVENT_PACKET, 0, event, sizeof(event));
2627     hci_stack->packet_handler(HCI_EVENT_PACKET, event, sizeof(event));
2628 }
2629 
2630 void hci_emit_dedicated_bonding_result(bd_addr_t address, uint8_t status){
2631     log_info("hci_emit_dedicated_bonding_result %u ", status);
2632     uint8_t event[9];
2633     int pos = 0;
2634     event[pos++] = GAP_DEDICATED_BONDING_COMPLETED;
2635     event[pos++] = sizeof(event) - 2;
2636     event[pos++] = status;
2637     bt_flip_addr( &event[pos], address);
2638     pos += 6;
2639     hci_dump_packet( HCI_EVENT_PACKET, 0, event, sizeof(event));
2640     hci_stack->packet_handler(HCI_EVENT_PACKET, event, sizeof(event));
2641 }
2642 
2643 // query if remote side supports SSP
2644 int hci_remote_ssp_supported(hci_con_handle_t con_handle){
2645     hci_connection_t * connection = hci_connection_for_handle(con_handle);
2646     if (!connection) return 0;
2647     return (connection->bonding_flags & BONDING_REMOTE_SUPPORTS_SSP) ? 1 : 0;
2648 }
2649 
2650 int hci_ssp_supported_on_both_sides(hci_con_handle_t handle){
2651     return hci_local_ssp_activated() && hci_remote_ssp_supported(handle);
2652 }
2653 
2654 // GAP API
2655 /**
2656  * @bbrief enable/disable bonding. default is enabled
2657  * @praram enabled
2658  */
2659 void gap_set_bondable_mode(int enable){
2660     hci_stack->bondable = enable ? 1 : 0;
2661 }
2662 
2663 /**
2664  * @brief map link keys to security levels
2665  */
2666 gap_security_level_t gap_security_level_for_link_key_type(link_key_type_t link_key_type){
2667     switch (link_key_type){
2668         case AUTHENTICATED_COMBINATION_KEY_GENERATED_FROM_P256:
2669             return LEVEL_4;
2670         case COMBINATION_KEY:
2671         case AUTHENTICATED_COMBINATION_KEY_GENERATED_FROM_P192:
2672             return LEVEL_3;
2673         default:
2674             return LEVEL_2;
2675     }
2676 }
2677 
2678 static gap_security_level_t gap_security_level_for_connection(hci_connection_t * connection){
2679     if (!connection) return LEVEL_0;
2680     if ((connection->authentication_flags & CONNECTION_ENCRYPTED) == 0) return LEVEL_0;
2681     return gap_security_level_for_link_key_type(connection->link_key_type);
2682 }
2683 
2684 
2685 int gap_mitm_protection_required_for_security_level(gap_security_level_t level){
2686     log_info("gap_mitm_protection_required_for_security_level %u", level);
2687     return level > LEVEL_2;
2688 }
2689 
2690 /**
2691  * @brief get current security level
2692  */
2693 gap_security_level_t gap_security_level(hci_con_handle_t con_handle){
2694     hci_connection_t * connection = hci_connection_for_handle(con_handle);
2695     if (!connection) return LEVEL_0;
2696     return gap_security_level_for_connection(connection);
2697 }
2698 
2699 /**
2700  * @brief request connection to device to
2701  * @result GAP_AUTHENTICATION_RESULT
2702  */
2703 void gap_request_security_level(hci_con_handle_t con_handle, gap_security_level_t requested_level){
2704     hci_connection_t * connection = hci_connection_for_handle(con_handle);
2705     if (!connection){
2706         hci_emit_security_level(con_handle, LEVEL_0);
2707         return;
2708     }
2709     gap_security_level_t current_level = gap_security_level(con_handle);
2710     log_info("gap_request_security_level %u, current level %u", requested_level, current_level);
2711     if (current_level >= requested_level){
2712         hci_emit_security_level(con_handle, current_level);
2713         return;
2714     }
2715 
2716     connection->requested_security_level = requested_level;
2717 
2718 #if 0
2719     // sending encryption request without a link key results in an error.
2720     // TODO: figure out how to use it properly
2721 
2722     // would enabling ecnryption suffice (>= LEVEL_2)?
2723     if (hci_stack->remote_device_db){
2724         link_key_type_t link_key_type;
2725         link_key_t      link_key;
2726         if (hci_stack->remote_device_db->get_link_key( &connection->address, &link_key, &link_key_type)){
2727             if (gap_security_level_for_link_key_type(link_key_type) >= requested_level){
2728                 connection->bonding_flags |= BONDING_SEND_ENCRYPTION_REQUEST;
2729                 return;
2730             }
2731         }
2732     }
2733 #endif
2734 
2735     // try to authenticate connection
2736     connection->bonding_flags |= BONDING_SEND_AUTHENTICATE_REQUEST;
2737     hci_run();
2738 }
2739 
2740 /**
2741  * @brief start dedicated bonding with device. disconnect after bonding
2742  * @param device
2743  * @param request MITM protection
2744  * @result GAP_DEDICATED_BONDING_COMPLETE
2745  */
2746 int gap_dedicated_bonding(bd_addr_t device, int mitm_protection_required){
2747 
2748     // create connection state machine
2749     hci_connection_t * connection = create_connection_for_bd_addr_and_type(device, BD_ADDR_TYPE_CLASSIC);
2750 
2751     if (!connection){
2752         return BTSTACK_MEMORY_ALLOC_FAILED;
2753     }
2754 
2755     // delete linkn key
2756     hci_drop_link_key_for_bd_addr(device);
2757 
2758     // configure LEVEL_2/3, dedicated bonding
2759     connection->state = SEND_CREATE_CONNECTION;
2760     connection->requested_security_level = mitm_protection_required ? LEVEL_3 : LEVEL_2;
2761     log_info("gap_dedicated_bonding, mitm %u -> level %u", mitm_protection_required, connection->requested_security_level);
2762     connection->bonding_flags = BONDING_DEDICATED;
2763 
2764     // wait for GAP Security Result and send GAP Dedicated Bonding complete
2765 
2766     // handle: connnection failure (connection complete != ok)
2767     // handle: authentication failure
2768     // handle: disconnect on done
2769 
2770     hci_run();
2771 
2772     return 0;
2773 }
2774 
2775 void gap_set_local_name(const char * local_name){
2776     hci_stack->local_name = local_name;
2777 }
2778 
2779 le_command_status_t le_central_start_scan(){
2780     if (hci_stack->le_scanning_state == LE_SCANNING) return BLE_PERIPHERAL_OK;
2781     hci_stack->le_scanning_state = LE_START_SCAN;
2782     hci_run();
2783     return BLE_PERIPHERAL_OK;
2784 }
2785 
2786 le_command_status_t le_central_stop_scan(){
2787     if ( hci_stack->le_scanning_state == LE_SCAN_IDLE) return BLE_PERIPHERAL_OK;
2788     hci_stack->le_scanning_state = LE_STOP_SCAN;
2789     hci_run();
2790     return BLE_PERIPHERAL_OK;
2791 }
2792 
2793 void le_central_set_scan_parameters(uint8_t scan_type, uint16_t scan_interval, uint16_t scan_window){
2794     hci_stack->le_scan_type     = scan_type;
2795     hci_stack->le_scan_interval = scan_interval;
2796     hci_stack->le_scan_window   = scan_window;
2797     hci_run();
2798 }
2799 
2800 le_command_status_t le_central_connect(bd_addr_t  addr, bd_addr_type_t addr_type){
2801     hci_connection_t * conn = hci_connection_for_bd_addr_and_type(addr, addr_type);
2802     if (!conn){
2803         log_info("le_central_connect: no connection exists yet, creating context");
2804         conn = create_connection_for_bd_addr_and_type(addr, addr_type);
2805         if (!conn){
2806             // notify client that alloc failed
2807             hci_emit_le_connection_complete(addr_type, addr, 0, BTSTACK_MEMORY_ALLOC_FAILED);
2808             log_info("le_central_connect: failed to alloc hci_connection_t");
2809             return BLE_PERIPHERAL_NOT_CONNECTED; // don't sent packet to controller
2810         }
2811         conn->state = SEND_CREATE_CONNECTION;
2812         log_info("le_central_connect: send create connection next");
2813         hci_run();
2814         return BLE_PERIPHERAL_OK;
2815     }
2816 
2817     if (!hci_is_le_connection(conn) ||
2818         conn->state == SEND_CREATE_CONNECTION ||
2819         conn->state == SENT_CREATE_CONNECTION) {
2820         hci_emit_le_connection_complete(conn->address_type, conn->address, 0, ERROR_CODE_COMMAND_DISALLOWED);
2821         log_error("le_central_connect: classic connection or connect is already being created");
2822         return BLE_PERIPHERAL_IN_WRONG_STATE;
2823     }
2824 
2825     log_info("le_central_connect: context exists with state %u", conn->state);
2826     hci_emit_le_connection_complete(conn->address_type, conn->address, conn->con_handle, 0);
2827     hci_run();
2828     return BLE_PERIPHERAL_OK;
2829 }
2830 
2831 // @assumption: only a single outgoing LE Connection exists
2832 static hci_connection_t * le_central_get_outgoing_connection(){
2833     linked_item_t *it;
2834     for (it = (linked_item_t *) hci_stack->connections; it ; it = it->next){
2835         hci_connection_t * conn = (hci_connection_t *) it;
2836         if (!hci_is_le_connection(conn)) continue;
2837         switch (conn->state){
2838             case SEND_CREATE_CONNECTION:
2839             case SENT_CREATE_CONNECTION:
2840                 return conn;
2841             default:
2842                 break;
2843         };
2844     }
2845     return NULL;
2846 }
2847 
2848 le_command_status_t le_central_connect_cancel(){
2849     hci_connection_t * conn = le_central_get_outgoing_connection();
2850     switch (conn->state){
2851         case SEND_CREATE_CONNECTION:
2852             // skip sending create connection and emit event instead
2853             hci_emit_le_connection_complete(conn->address_type, conn->address, 0, ERROR_CODE_UNKNOWN_CONNECTION_IDENTIFIER);
2854             linked_list_remove(&hci_stack->connections, (linked_item_t *) conn);
2855             btstack_memory_hci_connection_free( conn );
2856             break;
2857         case SENT_CREATE_CONNECTION:
2858             // request to send cancel connection
2859             conn->state = SEND_CANCEL_CONNECTION;
2860             hci_run();
2861             break;
2862         default:
2863             break;
2864     }
2865     return BLE_PERIPHERAL_OK;
2866 }
2867 
2868 /**
2869  * @brief Updates the connection parameters for a given LE connection
2870  * @param handle
2871  * @param conn_interval_min (unit: 1.25ms)
2872  * @param conn_interval_max (unit: 1.25ms)
2873  * @param conn_latency
2874  * @param supervision_timeout (unit: 10ms)
2875  * @returns 0 if ok
2876  */
2877 int gap_update_connection_parameters(hci_con_handle_t con_handle, uint16_t conn_interval_min,
2878     uint16_t conn_interval_max, uint16_t conn_latency, uint16_t supervision_timeout){
2879     hci_connection_t * connection = hci_connection_for_handle(con_handle);
2880     if (!connection) return ERROR_CODE_UNKNOWN_CONNECTION_IDENTIFIER;
2881     connection->le_conn_interval_min = conn_interval_min;
2882     connection->le_conn_interval_max = conn_interval_max;
2883     connection->le_conn_latency = conn_latency;
2884     connection->le_supervision_timeout = supervision_timeout;
2885     return 0;
2886 }
2887 
2888 le_command_status_t gap_disconnect(hci_con_handle_t handle){
2889     hci_connection_t * conn = hci_connection_for_handle(handle);
2890     if (!conn){
2891         hci_emit_disconnection_complete(handle, 0);
2892         return BLE_PERIPHERAL_OK;
2893     }
2894     conn->state = SEND_DISCONNECT;
2895     hci_run();
2896     return BLE_PERIPHERAL_OK;
2897 }
2898 
2899 void hci_disconnect_all(){
2900     linked_list_iterator_t it;
2901     linked_list_iterator_init(&it, &hci_stack->connections);
2902     while (linked_list_iterator_has_next(&it)){
2903         hci_connection_t * con = (hci_connection_t*) linked_list_iterator_next(&it);
2904         if (con->state == SENT_DISCONNECT) continue;
2905         con->state = SEND_DISCONNECT;
2906     }
2907     hci_run();
2908 }
2909