Merge branch 'dev' into datetime-module

This commit is contained in:
Aaron Tulino
2025-10-01 09:27:25 -07:00
committed by GitHub
67 changed files with 5642 additions and 185 deletions

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@@ -7,7 +7,7 @@ UID: 29 9F FA 53 AB 75 87 6E
# FeliCa specific data # FeliCa specific data
Data format version: 1 Data format version: 1
Manufacture id: 29 9F FA 53 AB 75 87 6E Manufacture id: 29 9F FA 53 AB 75 87 6E
Manufacture parameter: 57 4E 10 2A 94 16 BC 8E Manufacture parameter: 00 F1 00 00 00 01 43 00
Blocks total: 28 Blocks total: 28
Blocks read: 28 Blocks read: 28
Block 0: 00 00 DE AD BE AF 00 00 00 00 00 00 00 00 DE AD BE AF Block 0: 00 00 DE AD BE AF 00 00 00 00 00 00 00 00 DE AD BE AF

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Version: 1
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Preset: FuriHalSubGhzPresetOok650Async
Protocol: Feron
Bit: 32
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Filetype: Flipper SubGhz RAW File
Version: 1
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Filetype: Flipper SubGhz Key File
Version: 1
Frequency: 433920000
Preset: FuriHalSubGhzPresetOok650Async
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Filetype: Flipper SubGhz Key File
Version: 1
Frequency: 433920000
Preset: FuriHalSubGhzPresetOok650Async
Protocol: Roger
Bit: 28
Key: 00 00 00 00 05 AB A1 01

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View File

@@ -17,7 +17,7 @@
#define NICE_FLOR_S_DIR_NAME EXT_PATH("subghz/assets/nice_flor_s") #define NICE_FLOR_S_DIR_NAME EXT_PATH("subghz/assets/nice_flor_s")
#define ALUTECH_AT_4N_DIR_NAME EXT_PATH("subghz/assets/alutech_at_4n") #define ALUTECH_AT_4N_DIR_NAME EXT_PATH("subghz/assets/alutech_at_4n")
#define TEST_RANDOM_DIR_NAME EXT_PATH("unit_tests/subghz/test_random_raw.sub") #define TEST_RANDOM_DIR_NAME EXT_PATH("unit_tests/subghz/test_random_raw.sub")
#define TEST_RANDOM_COUNT_PARSE 331 #define TEST_RANDOM_COUNT_PARSE 328
#define TEST_TIMEOUT 10000 #define TEST_TIMEOUT 10000
static SubGhzEnvironment* environment_handler; static SubGhzEnvironment* environment_handler;
@@ -672,6 +672,62 @@ MU_TEST(subghz_decoder_dickert_test) {
"Test decoder " SUBGHZ_PROTOCOL_DICKERT_MAHS_NAME " error\r\n"); "Test decoder " SUBGHZ_PROTOCOL_DICKERT_MAHS_NAME " error\r\n");
} }
MU_TEST(subghz_decoder_legrand_test) {
mu_assert(
subghz_decoder_test(
EXT_PATH("unit_tests/subghz/legrand_raw.sub"), SUBGHZ_PROTOCOL_LEGRAND_NAME),
"Test decoder " SUBGHZ_PROTOCOL_LEGRAND_NAME " error\r\n");
}
MU_TEST(subghz_decoder_marantec24_test) {
mu_assert(
subghz_decoder_test(
EXT_PATH("unit_tests/subghz/marantec24_raw.sub"), SUBGHZ_PROTOCOL_MARANTEC24_NAME),
"Test decoder " SUBGHZ_PROTOCOL_MARANTEC24_NAME " error\r\n");
}
MU_TEST(subghz_decoder_roger_test) {
mu_assert(
subghz_decoder_test(
EXT_PATH("unit_tests/subghz/roger_raw.sub"), SUBGHZ_PROTOCOL_ROGER_NAME),
"Test decoder " SUBGHZ_PROTOCOL_ROGER_NAME " error\r\n");
}
MU_TEST(subghz_decoder_feron_test) {
mu_assert(
subghz_decoder_test(
EXT_PATH("unit_tests/subghz/feron_raw.sub"), SUBGHZ_PROTOCOL_FERON_NAME),
"Test decoder " SUBGHZ_PROTOCOL_FERON_NAME " error\r\n");
}
MU_TEST(subghz_decoder_gangqi_test) {
mu_assert(
subghz_decoder_test(
EXT_PATH("unit_tests/subghz/gangqi_raw.sub"), SUBGHZ_PROTOCOL_GANGQI_NAME),
"Test decoder " SUBGHZ_PROTOCOL_GANGQI_NAME " error\r\n");
}
MU_TEST(subghz_decoder_hollarm_test) {
mu_assert(
subghz_decoder_test(
EXT_PATH("unit_tests/subghz/hollarm_raw.sub"), SUBGHZ_PROTOCOL_HOLLARM_NAME),
"Test decoder " SUBGHZ_PROTOCOL_HOLLARM_NAME " error\r\n");
}
MU_TEST(subghz_decoder_reversrb2_test) {
mu_assert(
subghz_decoder_test(
EXT_PATH("unit_tests/subghz/revers_rb2_raw.sub"), SUBGHZ_PROTOCOL_REVERSRB2_NAME),
"Test decoder " SUBGHZ_PROTOCOL_REVERSRB2_NAME " error\r\n");
}
MU_TEST(subghz_decoder_hay21_test) {
mu_assert(
subghz_decoder_test(
EXT_PATH("unit_tests/subghz/hay21_raw.sub"), SUBGHZ_PROTOCOL_HAY21_NAME),
"Test decoder " SUBGHZ_PROTOCOL_HAY21_NAME " error\r\n");
}
//test encoders //test encoders
MU_TEST(subghz_encoder_princeton_test) { MU_TEST(subghz_encoder_princeton_test) {
mu_assert( mu_assert(
@@ -835,6 +891,48 @@ MU_TEST(subghz_encoder_dickert_test) {
"Test encoder " SUBGHZ_PROTOCOL_DICKERT_MAHS_NAME " error\r\n"); "Test encoder " SUBGHZ_PROTOCOL_DICKERT_MAHS_NAME " error\r\n");
} }
MU_TEST(subghz_encoder_legrand_test) {
mu_assert(
subghz_encoder_test(EXT_PATH("unit_tests/subghz/legrand.sub")),
"Test encoder " SUBGHZ_PROTOCOL_LEGRAND_NAME " error\r\n");
}
MU_TEST(subghz_encoder_feron_test) {
mu_assert(
subghz_encoder_test(EXT_PATH("unit_tests/subghz/feron.sub")),
"Test encoder " SUBGHZ_PROTOCOL_FERON_NAME " error\r\n");
}
MU_TEST(subghz_encoder_gangqi_test) {
mu_assert(
subghz_encoder_test(EXT_PATH("unit_tests/subghz/gangqi.sub")),
"Test encoder " SUBGHZ_PROTOCOL_GANGQI_NAME " error\r\n");
}
MU_TEST(subghz_encoder_hollarm_test) {
mu_assert(
subghz_encoder_test(EXT_PATH("unit_tests/subghz/hollarm.sub")),
"Test encoder " SUBGHZ_PROTOCOL_HOLLARM_NAME " error\r\n");
}
MU_TEST(subghz_encoder_reversrb2_test) {
mu_assert(
subghz_encoder_test(EXT_PATH("unit_tests/subghz/revers_rb2.sub")),
"Test encoder " SUBGHZ_PROTOCOL_REVERSRB2_NAME " error\r\n");
}
MU_TEST(subghz_encoder_roger_test) {
mu_assert(
subghz_encoder_test(EXT_PATH("unit_tests/subghz/roger.sub")),
"Test encoder " SUBGHZ_PROTOCOL_ROGER_NAME " error\r\n");
}
MU_TEST(subghz_encoder_marantec24_test) {
mu_assert(
subghz_encoder_test(EXT_PATH("unit_tests/subghz/marantec24.sub")),
"Test encoder " SUBGHZ_PROTOCOL_MARANTEC24_NAME " error\r\n");
}
MU_TEST(subghz_random_test) { MU_TEST(subghz_random_test) {
mu_assert(subghz_decode_random_test(TEST_RANDOM_DIR_NAME), "Random test error\r\n"); mu_assert(subghz_decode_random_test(TEST_RANDOM_DIR_NAME), "Random test error\r\n");
} }
@@ -887,6 +985,14 @@ MU_TEST_SUITE(subghz) {
MU_RUN_TEST(subghz_decoder_kinggates_stylo4k_test); MU_RUN_TEST(subghz_decoder_kinggates_stylo4k_test);
MU_RUN_TEST(subghz_decoder_mastercode_test); MU_RUN_TEST(subghz_decoder_mastercode_test);
MU_RUN_TEST(subghz_decoder_dickert_test); MU_RUN_TEST(subghz_decoder_dickert_test);
MU_RUN_TEST(subghz_decoder_roger_test);
MU_RUN_TEST(subghz_decoder_hollarm_test);
MU_RUN_TEST(subghz_decoder_reversrb2_test);
MU_RUN_TEST(subghz_decoder_gangqi_test);
MU_RUN_TEST(subghz_decoder_hay21_test);
MU_RUN_TEST(subghz_decoder_feron_test);
MU_RUN_TEST(subghz_decoder_legrand_test);
MU_RUN_TEST(subghz_decoder_marantec24_test);
MU_RUN_TEST(subghz_encoder_princeton_test); MU_RUN_TEST(subghz_encoder_princeton_test);
MU_RUN_TEST(subghz_encoder_came_test); MU_RUN_TEST(subghz_encoder_came_test);
@@ -915,6 +1021,13 @@ MU_TEST_SUITE(subghz) {
MU_RUN_TEST(subghz_encoder_dooya_test); MU_RUN_TEST(subghz_encoder_dooya_test);
MU_RUN_TEST(subghz_encoder_mastercode_test); MU_RUN_TEST(subghz_encoder_mastercode_test);
MU_RUN_TEST(subghz_encoder_dickert_test); MU_RUN_TEST(subghz_encoder_dickert_test);
MU_RUN_TEST(subghz_encoder_feron_test);
MU_RUN_TEST(subghz_encoder_roger_test);
MU_RUN_TEST(subghz_encoder_gangqi_test);
MU_RUN_TEST(subghz_encoder_marantec24_test);
MU_RUN_TEST(subghz_encoder_hollarm_test);
MU_RUN_TEST(subghz_encoder_reversrb2_test);
MU_RUN_TEST(subghz_encoder_legrand_test);
MU_RUN_TEST(subghz_random_test); MU_RUN_TEST(subghz_random_test);
subghz_test_deinit(); subghz_test_deinit();

View File

@@ -39,17 +39,8 @@ static bool nfc_scene_info_on_event_felica(NfcApp* instance, SceneManagerEvent e
} }
static void nfc_scene_more_info_on_enter_felica(NfcApp* instance) { static void nfc_scene_more_info_on_enter_felica(NfcApp* instance) {
const NfcDevice* device = instance->nfc_device; // Jump to advanced scene right away
const FelicaData* data = nfc_device_get_data(device, NfcProtocolFelica); scene_manager_next_scene(instance->scene_manager, NfcSceneFelicaMoreInfo);
FuriString* temp_str = furi_string_alloc();
nfc_render_felica_dump(data, temp_str);
widget_add_text_scroll_element(
instance->widget, 0, 0, 128, 64, furi_string_get_cstr(temp_str));
furi_string_free(temp_str);
} }
static NfcCommand nfc_scene_read_poller_callback_felica(NfcGenericEvent event, void* context) { static NfcCommand nfc_scene_read_poller_callback_felica(NfcGenericEvent event, void* context) {

View File

@@ -4,9 +4,16 @@ void nfc_render_felica_blocks_count(
const FelicaData* data, const FelicaData* data,
FuriString* str, FuriString* str,
bool render_auth_notification) { bool render_auth_notification) {
furi_string_cat_printf(str, "\nBlocks Read: %u/%u", data->blocks_read, data->blocks_total); if(data->workflow_type == FelicaLite) {
if(render_auth_notification && data->blocks_read != data->blocks_total) { furi_string_cat_printf(str, "Blocks: %u\n", data->blocks_total);
furi_string_cat_printf(str, "\nAuth-protected blocks!");
furi_string_cat_printf(str, "\nBlocks Read: %u/%u", data->blocks_read, data->blocks_total);
if(render_auth_notification && data->blocks_read != data->blocks_total) {
furi_string_cat_printf(str, "\nAuth-protected blocks!");
}
} else if(data->workflow_type == FelicaStandard) {
furi_string_cat_printf(
str, "Public blocks Read: %lu", simple_array_get_count(data->public_blocks));
} }
} }
@@ -32,6 +39,11 @@ void nfc_render_felica_info(
furi_string_cat_printf(str, "Tech: JIS X 6319-4,\nISO 18092 [NFC-F]\n"); furi_string_cat_printf(str, "Tech: JIS X 6319-4,\nISO 18092 [NFC-F]\n");
} }
FuriString* ic_type_str = furi_string_alloc();
felica_get_ic_name(data, ic_type_str);
furi_string_cat_printf(str, "IC Type:\n%s\n", furi_string_get_cstr(ic_type_str));
furi_string_free(ic_type_str);
nfc_render_felica_idm(data, format_type, str); nfc_render_felica_idm(data, format_type, str);
if(format_type == NfcProtocolFormatTypeFull) { if(format_type == NfcProtocolFormatTypeFull) {
@@ -40,6 +52,14 @@ void nfc_render_felica_info(
furi_string_cat_printf(str, "%02X ", data->pmm.data[i]); furi_string_cat_printf(str, "%02X ", data->pmm.data[i]);
} }
} }
furi_string_cat_printf(str, "\n");
furi_string_cat_printf(
str,
"Services found: %lu \nAreas found: %lu\n",
simple_array_get_count(data->services),
simple_array_get_count(data->areas));
nfc_render_felica_blocks_count(data, str, true); nfc_render_felica_blocks_count(data, str, true);
} }
@@ -59,13 +79,18 @@ static void nfc_render_felica_block_name(
static void nfc_render_felica_block_data(const FelicaBlock* block, FuriString* str) { static void nfc_render_felica_block_data(const FelicaBlock* block, FuriString* str) {
furi_string_cat_printf(str, "\nSF1=%02X; SF2=%02X\n", block->SF1, block->SF2); furi_string_cat_printf(str, "\nSF1=%02X; SF2=%02X\n", block->SF1, block->SF2);
for(size_t j = 0; j < FELICA_DATA_BLOCK_SIZE; j++) { for(size_t i = 0; i < FELICA_DATA_BLOCK_SIZE; i += 2) {
if((j != 0) && (j % 8 == 0)) furi_string_cat_printf(str, "\n"); furi_string_cat_printf(str, "%02X%02X ", block->data[i], block->data[i + 1]);
furi_string_cat_printf(str, "%02X ", block->data[j]);
} }
furi_string_cat_printf(str, "\n"); furi_string_cat_printf(str, "\n");
} }
static void nfc_render_felica_block_data_simple(const FelicaBlock* block, FuriString* str) {
for(size_t i = 0; i < FELICA_DATA_BLOCK_SIZE; i += 2) {
furi_string_cat_printf(str, "%02X%02X ", block->data[i], block->data[i + 1]);
}
}
static void nfc_render_felica_block( static void nfc_render_felica_block(
const FelicaBlock* block, const FelicaBlock* block,
FuriString* str, FuriString* str,
@@ -76,8 +101,13 @@ static void nfc_render_felica_block(
nfc_render_felica_block_data(block, str); nfc_render_felica_block_data(block, str);
} }
void nfc_render_felica_dump(const FelicaData* data, FuriString* str) { void nfc_more_info_render_felica_lite_dump(const FelicaData* data, FuriString* str) {
FuriString* name = furi_string_alloc(); FuriString* name = furi_string_alloc();
furi_string_cat_printf(str, "\e#Blocks read:\n");
furi_string_cat_printf(str, "Blocks: %u\n", data->blocks_total);
for(size_t i = 0; i < 14; i++) { for(size_t i = 0; i < 14; i++) {
furi_string_printf(name, "S_PAD%d", i); furi_string_printf(name, "S_PAD%d", i);
uint8_t suf_cnt = 18; uint8_t suf_cnt = 18;
@@ -105,3 +135,70 @@ void nfc_render_felica_dump(const FelicaData* data, FuriString* str) {
nfc_render_felica_block(&data->data.fs.state, str, "STATE", 20, 21); nfc_render_felica_block(&data->data.fs.state, str, "STATE", 20, 21);
nfc_render_felica_block(&data->data.fs.crc_check, str, "CRC_CHCK", 15, 17); nfc_render_felica_block(&data->data.fs.crc_check, str, "CRC_CHCK", 15, 17);
} }
void nfc_more_info_render_felica_dir(const FelicaData* data, FuriString* str) {
const size_t area_count = simple_array_get_count(data->areas);
const size_t service_count = simple_array_get_count(data->services);
furi_string_cat_printf(str, "\e#Directory Tree:\n");
if(area_count == 0 || service_count == 0) {
furi_string_cat_printf(str, "No services or areas found.\n");
} else {
furi_string_cat_printf(
str, "%zu areas found.\n%zu services found.\n\n", area_count, service_count);
furi_string_cat_printf(
str, "::: ... are readable services\n||| ... are locked services\n");
}
felica_write_directory_tree(data, str);
}
void nfc_more_info_render_felica_blocks(
const FelicaData* data,
FuriString* str,
const uint16_t service_code_key) {
furi_string_cat_printf(str, "\n");
if(data->workflow_type == FelicaLite) {
furi_string_cat_printf(str, "Blocks: %u\n", data->blocks_total);
FuriString* name = furi_string_alloc();
for(size_t i = 0; i < 14; i++) {
furi_string_printf(name, "S_PAD%d", i);
uint8_t suf_cnt = 18;
if(i == 1) {
suf_cnt = 19;
} else if((i == 10) || (i == 12) || (i == 13)) {
suf_cnt = 16;
}
nfc_render_felica_block(
&data->data.fs.spad[i], str, furi_string_get_cstr(name), 20, suf_cnt);
}
furi_string_free(name);
nfc_render_felica_block(&data->data.fs.reg, str, "REG", 23, 23);
nfc_render_felica_block(&data->data.fs.rc, str, "RC", 25, 25);
nfc_render_felica_block(&data->data.fs.mac, str, "MAC", 23, 23);
nfc_render_felica_block(&data->data.fs.id, str, "ID", 25, 25);
nfc_render_felica_block(&data->data.fs.d_id, str, "D_ID", 22, 24);
nfc_render_felica_block(&data->data.fs.ser_c, str, "SER_C", 20, 21);
nfc_render_felica_block(&data->data.fs.sys_c, str, "SYS_C", 20, 21);
nfc_render_felica_block(&data->data.fs.ckv, str, "CKV", 23, 23);
nfc_render_felica_block(&data->data.fs.ck, str, "CK", 25, 25);
nfc_render_felica_block(&data->data.fs.mc, str, "MC", 25, 24);
nfc_render_felica_block(&data->data.fs.wcnt, str, "WCNT", 22, 20);
nfc_render_felica_block(&data->data.fs.mac_a, str, "MAC_A", 20, 20);
nfc_render_felica_block(&data->data.fs.state, str, "STATE", 20, 21);
nfc_render_felica_block(&data->data.fs.crc_check, str, "CRC_CHCK", 15, 17);
} else if(data->workflow_type == FelicaStandard) {
uint32_t public_blocks_count = simple_array_get_count(data->public_blocks);
for(size_t i = 0; i < public_blocks_count; i++) {
FelicaPublicBlock* public_block = simple_array_get(data->public_blocks, i);
if(public_block->service_code != service_code_key) {
continue; // Skip blocks not matching the requested service code
}
furi_string_cat_printf(str, "-----Block 0x%02X-----\n", public_block->block_idx);
nfc_render_felica_block_data_simple(&public_block->block, str);
furi_string_cat_printf(str, "\n");
}
}
}

View File

@@ -14,9 +14,16 @@ void nfc_render_felica_info(
NfcProtocolFormatType format_type, NfcProtocolFormatType format_type,
FuriString* str); FuriString* str);
void nfc_render_felica_dump(const FelicaData* data, FuriString* str); void nfc_more_info_render_felica_lite_dump(const FelicaData* data, FuriString* str);
void nfc_render_felica_idm( void nfc_render_felica_idm(
const FelicaData* data, const FelicaData* data,
NfcProtocolFormatType format_type, NfcProtocolFormatType format_type,
FuriString* str); FuriString* str);
void nfc_more_info_render_felica_dir(const FelicaData* data, FuriString* str);
void nfc_more_info_render_felica_blocks(
const FelicaData* data,
FuriString* str,
const uint16_t service_code_key);

View File

@@ -74,4 +74,6 @@ ADD_SCENE(nfc, slix_key_input, SlixKeyInput)
ADD_SCENE(nfc, slix_unlock, SlixUnlock) ADD_SCENE(nfc, slix_unlock, SlixUnlock)
ADD_SCENE(nfc, slix_unlock_success, SlixUnlockSuccess) ADD_SCENE(nfc, slix_unlock_success, SlixUnlockSuccess)
ADD_SCENE(nfc, felica_more_info, FelicaMoreInfo)
ADD_SCENE(nfc, generate_info, GenerateInfo) ADD_SCENE(nfc, generate_info, GenerateInfo)

View File

@@ -0,0 +1,151 @@
#include "../nfc_app_i.h"
#include "../helpers/protocol_support/nfc_protocol_support_gui_common.h"
#include "../helpers/protocol_support/felica/felica_render.h"
enum {
FelicaMoreInfoStateMenu,
FelicaMoreInfoStateItem, // MUST be last, states >= this correspond with submenu index
};
enum SubmenuIndex {
SubmenuIndexDirectory,
SubmenuIndexDynamic, // dynamic indices start here
};
void nfc_scene_felica_more_info_on_enter(void* context) {
NfcApp* nfc = context;
Submenu* submenu = nfc->submenu;
const uint32_t state =
scene_manager_get_scene_state(nfc->scene_manager, NfcSceneFelicaMoreInfo);
const FelicaData* data = nfc_device_get_data(nfc->nfc_device, NfcProtocolFelica);
submenu_add_item(
submenu,
"Directory",
SubmenuIndexDirectory,
nfc_protocol_support_common_submenu_callback,
nfc);
FuriString* label = furi_string_alloc();
switch(data->workflow_type) {
case FelicaLite:
furi_string_printf(label, "All blocks");
submenu_add_item(
submenu,
furi_string_get_cstr(label),
SubmenuIndexDynamic,
nfc_protocol_support_common_submenu_callback,
nfc);
break;
case FelicaStandard:
for(uint32_t i = 0; i < simple_array_get_count(data->services); ++i) {
const FelicaService* service = simple_array_cget(data->services, i);
bool is_public = (service->attr & FELICA_SERVICE_ATTRIBUTE_UNAUTH_READ) == 1;
if(!is_public) {
continue;
}
furi_string_printf(label, "Readable serv %04X", service->code);
submenu_add_item(
submenu,
furi_string_get_cstr(label),
i + SubmenuIndexDynamic,
nfc_protocol_support_common_submenu_callback,
nfc);
}
break;
default:
break;
}
furi_string_free(label);
if(state >= FelicaMoreInfoStateItem) {
submenu_set_selected_item(
nfc->submenu, state - FelicaMoreInfoStateItem + SubmenuIndexDynamic);
scene_manager_set_scene_state(
nfc->scene_manager, NfcSceneFelicaMoreInfo, FelicaMoreInfoStateMenu);
}
view_dispatcher_switch_to_view(nfc->view_dispatcher, NfcViewMenu);
}
bool nfc_scene_felica_more_info_on_event(void* context, SceneManagerEvent event) {
NfcApp* nfc = context;
bool consumed = false;
const uint32_t state =
scene_manager_get_scene_state(nfc->scene_manager, NfcSceneFelicaMoreInfo);
const FelicaData* data = nfc_device_get_data(nfc->nfc_device, NfcProtocolFelica);
if(event.type == SceneManagerEventTypeCustom) {
if(event.event == SubmenuIndexDirectory) {
FuriString* temp_str = furi_string_alloc();
nfc_more_info_render_felica_dir(data, temp_str);
widget_add_text_scroll_element(
nfc->widget, 0, 0, 128, 64, furi_string_get_cstr(temp_str));
furi_string_free(temp_str);
view_dispatcher_switch_to_view(nfc->view_dispatcher, NfcViewWidget);
scene_manager_set_scene_state(
nfc->scene_manager,
NfcSceneFelicaMoreInfo,
FelicaMoreInfoStateItem + SubmenuIndexDirectory);
consumed = true;
} else {
const uint16_t service_ind = event.event - 1; // offset the three enums above
text_box_reset(nfc->text_box);
furi_string_reset(nfc->text_box_store);
switch(data->workflow_type) {
case FelicaLite:
nfc_more_info_render_felica_lite_dump(data, nfc->text_box_store);
break;
case FelicaStandard:
const FelicaService* service = simple_array_cget(data->services, service_ind);
furi_string_cat_printf(nfc->text_box_store, "Service 0x%04X\n", service->code);
nfc_more_info_render_felica_blocks(data, nfc->text_box_store, service->code);
break;
default:
furi_string_set_str(nfc->text_box_store, "IC type not implemented yet");
break;
}
text_box_set_font(nfc->text_box, TextBoxFontHex);
text_box_set_text(nfc->text_box, furi_string_get_cstr(nfc->text_box_store));
view_dispatcher_switch_to_view(nfc->view_dispatcher, NfcViewTextBox);
scene_manager_set_scene_state(
nfc->scene_manager, NfcSceneFelicaMoreInfo, FelicaMoreInfoStateItem + event.event);
consumed = true;
}
} else if(event.type == SceneManagerEventTypeBack) {
if(state >= FelicaMoreInfoStateItem) {
widget_reset(nfc->widget);
text_box_reset(nfc->text_box);
view_dispatcher_switch_to_view(nfc->view_dispatcher, NfcViewMenu);
scene_manager_set_scene_state(
nfc->scene_manager, NfcSceneFelicaMoreInfo, FelicaMoreInfoStateMenu);
} else {
widget_reset(nfc->widget);
text_box_reset(nfc->text_box);
// Return directly to the Info scene
scene_manager_search_and_switch_to_previous_scene(nfc->scene_manager, NfcSceneInfo);
}
consumed = true;
}
return consumed;
}
void nfc_scene_felica_more_info_on_exit(void* context) {
NfcApp* nfc = context;
// Clear views
widget_reset(nfc->widget);
text_box_reset(nfc->text_box);
furi_string_reset(nfc->text_box_store);
submenu_reset(nfc->submenu);
}

View File

@@ -1,59 +1,66 @@
Filetype: Flipper SubGhz Keystore File Filetype: Flipper SubGhz Keystore File
Version: 0 Version: 0
Encryption: 1 Encryption: 1
IV: 43 68 65 63 6B 20 70 61 73 73 65 64 20 4F 77 4F IV: 48 69 69 69 2C 20 4D 69 73 68 61 21 21 30 31 21
00A92D8AE07E4998E826AF5C89AD659BD8C2BC6A40DA78B1AC05CF5B066243ED 5914BA15A974B44BBF5886001E9CA8C05FED2B9A46D16F862484BC4760201A72
A3C71FA36145D0EE56D78C05DDDDA97E487BCDCA6BDAC2C6F87402A0B20EE3CB 885AB8E254F1403894740B50C6943A5F0A426C79CD8FA11D16915455E6B9ACE8
B9BDFBD18A63503580C18ABF84101B33D7F720900201510086EB3F0C1F533564 48106C10911CC932FCAB49A793B6777DE845AA0D383E1B8D9FAE04E4F943FC60
EAB736F80371447008CC3BE3CE952CE429E7BF743A70C7CC62FF415B9E38467B C1B81F527CF227F8A8D342BBB86EFBD95C99BFE3E3F55FFF19CF66C03CDB8779
9C50D75C6E4A82F49AF285EC3545E58F8815FF4FCF5C9FFFCF0151FB693413FF13B594C8A28077450C8E561B0272C264 3DAB5A367DC19D412E9D71A89852E246DDEC0E97D7F7CE77DEE4043D9A99A1DEC4BDCA38B728CDC7BCB9E112044DCB8B
A54C7E6DD1CAE0758F7A123B187C6EDA5BF3789969FE1E5F5A167E2DA7719671 8E718417DD703259B6EBBB799EC8ED428C6D65115023C1421C349DDB70359929
1461891D4AB3500B5BC0859166377CE098C04AAF6FD721F9C58A155F23F8E75A DB110804D813EB3D2F04F5723305CFA13778D46DD261D246B05DB257535C9520
BD1FD5645367BA76D8A87C271FF71E71C407B276BB0B165AF8CF6317250B77A6 135BEFEEBEBF17665C27951E43639A82AD5B15EFAD7D1D776ACF1070E5E81F9C
B18718EA6EB53CCDF9C26FC46E36D17234D93EF578376123B1F3F9953302CF62 996528B0D85E81D1AB47FECB2A5C2B63AFF35281EE41E316D26E34BB7E0E5EFE
B633458C1948BC65357904F901F6DD5CD9D795887C176C6AA48E477F0EB693DB BA220B2E219DE8045F6C5C4D8B4CABFB9944252ACB82755907C44E09071A0F90
B1352AC0DE8EBDD838F5DF7E040B062CF8FBB73180F3E712C5B2BDBFE1257A2C18694C51F242BCEA62DF317708771AA1 C4509ACDC858711F42B96AA40B0FEC58566E71D91E1D167835B97D13A9C6B4FD63F62D911E17C15081ED1FFBA00E08D0
842294FA0BACCD5B7710F002E40E4BB6142BC7C3125B2E56D4431FD8D6DD1CCE3397A4EB502B9E4248FA68CE8013E93D 499D1031FDC6B5D6109D4A9046599FEC77F1DB26FCA809235803CE5F670F2BF1622042AB04F768CB4BBB8E93595B229A
5379E56AD483C0F870D9446C9CDE65ACA40C3A699D0653EC2F356A076D72D6C2 43107EA4D34AC00BD05F45CF7AB077742C06A3619B3E258389EFF2D8ED057570
8FD394F533CD2B03AE247B18F4A5214ED0AF64892F497362129FEF5837012BE4 A2ED253FB0CE66CDE2FF3921BE78662A97A23C344A83493D36CE6CC5ACC3A821
FA8BAB9CD11B306F9FCD924B3A66C678A0316F048A30312B5FA69B9E86EDD8C9 963B48D299D6935B228A3BFCB86CF75F11A30850A19E014E31E6559F7A9A7DA8
35D6E447F3B8BA11331805027BCA1D972E9B29E07F1D2993C974DCAF5EE1EB76 35D23E9D1D85AA0273A13B887EFBE9F55DD2E6C85B14F7E1100A66892F2A05BE
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View File

@@ -1,4 +1,5 @@
#include "felica.h" #include "felica_i.h"
#include <lib/toolbox/hex.h>
#include <furi.h> #include <furi.h>
@@ -11,7 +12,7 @@
#define FELICA_MANUFACTURE_ID "Manufacture id" #define FELICA_MANUFACTURE_ID "Manufacture id"
#define FELICA_MANUFACTURE_PARAMETER "Manufacture parameter" #define FELICA_MANUFACTURE_PARAMETER "Manufacture parameter"
static const uint32_t felica_data_format_version = 1; static const uint32_t felica_data_format_version = 2;
/** @brief This is used in felica_prepare_first_block to define which /** @brief This is used in felica_prepare_first_block to define which
* type of block needs to be prepared. * type of block needs to be prepared.
@@ -39,24 +40,71 @@ const NfcDeviceBase nfc_device_felica = {
FelicaData* felica_alloc(void) { FelicaData* felica_alloc(void) {
FelicaData* data = malloc(sizeof(FelicaData)); FelicaData* data = malloc(sizeof(FelicaData));
furi_check(data);
data->services = simple_array_alloc(&felica_service_array_cfg);
data->areas = simple_array_alloc(&felica_area_array_cfg);
data->public_blocks = simple_array_alloc(&felica_public_block_array_cfg);
furi_check(data->services);
furi_check(data->areas);
furi_check(data->public_blocks);
return data; return data;
} }
void felica_free(FelicaData* data) { void felica_free(FelicaData* data) {
furi_check(data); furi_check(data);
furi_check(data->services);
simple_array_free(data->services);
furi_check(data->areas);
simple_array_free(data->areas);
furi_check(data->public_blocks);
simple_array_free(data->public_blocks);
free(data); free(data);
} }
void felica_reset(FelicaData* data) { void felica_reset(FelicaData* data) {
furi_check(data); furi_check(data);
memset(data, 0, sizeof(FelicaData));
if(data->services) {
simple_array_reset(data->services);
}
if(data->areas) {
simple_array_reset(data->areas);
}
if(data->public_blocks) {
simple_array_reset(data->public_blocks);
}
data->blocks_read = 0;
data->blocks_total = 0;
data->workflow_type = FelicaUnknown;
memset(&data->idm, 0, sizeof(data->idm));
memset(&data->pmm, 0, sizeof(data->pmm));
memset(&data->data, 0, sizeof(data->data));
} }
void felica_copy(FelicaData* data, const FelicaData* other) { void felica_copy(FelicaData* data, const FelicaData* other) {
furi_check(data); furi_check(data);
furi_check(other); furi_check(other);
*data = *other; felica_reset(data);
data->idm = other->idm;
data->pmm = other->pmm;
data->blocks_total = other->blocks_total;
data->blocks_read = other->blocks_read;
data->data = other->data;
data->workflow_type = other->workflow_type;
simple_array_copy(data->services, other->services);
simple_array_copy(data->areas, other->areas);
simple_array_copy(data->public_blocks, other->public_blocks);
} }
bool felica_verify(FelicaData* data, const FuriString* device_type) { bool felica_verify(FelicaData* data, const FuriString* device_type) {
@@ -70,43 +118,164 @@ bool felica_load(FelicaData* data, FlipperFormat* ff, uint32_t version) {
furi_check(data); furi_check(data);
bool parsed = false; bool parsed = false;
FuriString* str_key_buffer = furi_string_alloc();
FuriString* str_data_buffer = furi_string_alloc();
// Header
do { do {
if(version < NFC_UNIFIED_FORMAT_VERSION) break; if(version < NFC_UNIFIED_FORMAT_VERSION) break;
uint32_t data_format_version = 0; uint32_t data_format_version = 0;
if(!flipper_format_read_uint32(ff, FELICA_DATA_FORMAT_VERSION, &data_format_version, 1)) if(!flipper_format_read_uint32(ff, FELICA_DATA_FORMAT_VERSION, &data_format_version, 1))
break; break;
if(data_format_version != felica_data_format_version) break;
// V1 saving function always treated everything as Felica Lite
// So we load the blocks as if everything is Felica Lite
if(!flipper_format_read_hex(ff, FELICA_MANUFACTURE_ID, data->idm.data, FELICA_IDM_SIZE)) if(!flipper_format_read_hex(ff, FELICA_MANUFACTURE_ID, data->idm.data, FELICA_IDM_SIZE))
break; break;
if(!flipper_format_read_hex( if(!flipper_format_read_hex(
ff, FELICA_MANUFACTURE_PARAMETER, data->pmm.data, FELICA_PMM_SIZE)) ff, FELICA_MANUFACTURE_PARAMETER, data->pmm.data, FELICA_PMM_SIZE))
break; break;
parsed = true; felica_get_workflow_type(data);
uint32_t blocks_total = 0; if(data_format_version == 1) {
uint32_t blocks_read = 0; data->workflow_type = FelicaLite;
if(!flipper_format_read_uint32(ff, "Blocks total", &blocks_total, 1)) break;
if(!flipper_format_read_uint32(ff, "Blocks read", &blocks_read, 1)) break;
data->blocks_total = (uint8_t)blocks_total;
data->blocks_read = (uint8_t)blocks_read;
FuriString* temp_str = furi_string_alloc();
for(uint8_t i = 0; i < data->blocks_total; i++) {
furi_string_printf(temp_str, "Block %d", i);
if(!flipper_format_read_hex(
ff,
furi_string_get_cstr(temp_str),
(&data->data.dump[i * sizeof(FelicaBlock)]),
sizeof(FelicaBlock))) {
parsed = false;
break;
}
} }
furi_string_free(temp_str); parsed = true;
} while(false); } while(false);
if(!parsed) {
furi_string_free(str_key_buffer);
furi_string_free(str_data_buffer);
return false;
}
switch(data->workflow_type) {
case FelicaLite:
// Blocks data
do {
uint32_t blocks_total = 0;
uint32_t blocks_read = 0;
if(!flipper_format_read_uint32(ff, "Blocks total", &blocks_total, 1)) break;
if(!flipper_format_read_uint32(ff, "Blocks read", &blocks_read, 1)) break;
data->blocks_total = (uint8_t)blocks_total;
data->blocks_read = (uint8_t)blocks_read;
for(uint8_t i = 0; i < data->blocks_total; i++) {
furi_string_printf(str_data_buffer, "Block %d", i);
if(!flipper_format_read_hex(
ff,
furi_string_get_cstr(str_data_buffer),
(&data->data.dump[i * sizeof(FelicaBlock)]),
sizeof(FelicaBlock))) {
break;
}
}
} while(false);
break;
case FelicaStandard:
// Areas
do {
uint32_t area_count = 0;
if(!flipper_format_read_uint32(ff, "Area found", &area_count, 1)) break;
simple_array_init(data->areas, area_count);
furi_string_reset(str_key_buffer);
furi_string_reset(str_data_buffer);
for(uint16_t i = 0; i < area_count; i++) {
furi_string_printf(str_key_buffer, "Area %03X", i);
if(!flipper_format_read_string(
ff, furi_string_get_cstr(str_key_buffer), str_data_buffer)) {
break;
}
FelicaArea* area = simple_array_get(data->areas, i);
if(sscanf(
furi_string_get_cstr(str_data_buffer),
"| Code %04hX | Services #%03hX-#%03hX |",
&area->code,
&area->first_idx,
&area->last_idx) != 3) {
break;
}
}
} while(false);
// Services
do {
uint32_t service_count = 0;
if(!flipper_format_read_uint32(ff, "Service found", &service_count, 1)) break;
simple_array_init(data->services, service_count);
furi_string_reset(str_key_buffer);
furi_string_reset(str_data_buffer);
for(uint16_t i = 0; i < service_count; i++) {
furi_string_printf(str_key_buffer, "Service %03X", i);
if(!flipper_format_read_string(
ff, furi_string_get_cstr(str_key_buffer), str_data_buffer)) {
break;
}
FelicaService* service = simple_array_get(data->services, i);
// all unread in the beginning. reserved for future block load
if(!sscanf(
furi_string_get_cstr(str_data_buffer), "| Code %04hX |", &service->code)) {
break;
}
service->attr = service->code & 0x3F;
}
} while(false);
// Public blocks
do {
furi_string_reset(str_data_buffer);
furi_string_reset(str_key_buffer);
uint32_t public_block_count = 0;
if(!flipper_format_read_uint32(ff, "Public blocks read", &public_block_count, 1))
break;
simple_array_init(data->public_blocks, public_block_count);
for(uint16_t i = 0; i < public_block_count; i++) {
furi_string_printf(str_key_buffer, "Block %04X", i);
if(!flipper_format_read_string(
ff, furi_string_get_cstr(str_key_buffer), str_data_buffer)) {
break;
}
FelicaPublicBlock* public_block = simple_array_get(data->public_blocks, i);
if(sscanf(
furi_string_get_cstr(str_data_buffer),
"| Service code %04hX | Block index %02hhX |",
&public_block->service_code,
&public_block->block_idx) != 2) {
break;
}
size_t needle = furi_string_search_str(str_data_buffer, "Data: ");
if(needle == FURI_STRING_FAILURE) {
break;
}
needle += 6; // length of "Data: " = 6
furi_string_mid(str_data_buffer, needle, 3 * FELICA_DATA_BLOCK_SIZE);
furi_string_replace_all(str_data_buffer, " ", "");
if(!hex_chars_to_uint8(
furi_string_get_cstr(str_data_buffer), public_block->block.data)) {
break;
}
furi_string_reset(str_data_buffer);
for(size_t j = 0; j < FELICA_DATA_BLOCK_SIZE; j++) {
furi_string_cat_printf(str_data_buffer, "%02X ", public_block->block.data[j]);
}
}
} while(false);
break;
default:
break;
}
furi_string_free(str_key_buffer);
furi_string_free(str_data_buffer);
return parsed; return parsed;
} }
@@ -114,8 +283,10 @@ bool felica_save(const FelicaData* data, FlipperFormat* ff) {
furi_check(data); furi_check(data);
bool saved = false; bool saved = false;
FuriString* str_data_buffer = furi_string_alloc();
FuriString* str_key_buffer = furi_string_alloc();
do { do {
// Header
if(!flipper_format_write_comment_cstr(ff, FELICA_PROTOCOL_NAME " specific data")) break; if(!flipper_format_write_comment_cstr(ff, FELICA_PROTOCOL_NAME " specific data")) break;
if(!flipper_format_write_uint32( if(!flipper_format_write_uint32(
ff, FELICA_DATA_FORMAT_VERSION, &felica_data_format_version, 1)) ff, FELICA_DATA_FORMAT_VERSION, &felica_data_format_version, 1))
@@ -126,27 +297,134 @@ bool felica_save(const FelicaData* data, FlipperFormat* ff) {
ff, FELICA_MANUFACTURE_PARAMETER, data->pmm.data, FELICA_PMM_SIZE)) ff, FELICA_MANUFACTURE_PARAMETER, data->pmm.data, FELICA_PMM_SIZE))
break; break;
uint32_t blocks_total = data->blocks_total;
uint32_t blocks_read = data->blocks_read;
if(!flipper_format_write_uint32(ff, "Blocks total", &blocks_total, 1)) break;
if(!flipper_format_write_uint32(ff, "Blocks read", &blocks_read, 1)) break;
saved = true; saved = true;
FuriString* temp_str = furi_string_alloc();
for(uint8_t i = 0; i < blocks_total; i++) { felica_get_ic_name(data, str_data_buffer);
furi_string_printf(temp_str, "Block %d", i); furi_string_replace_all(str_data_buffer, "\n", " ");
if(!flipper_format_write_hex( if(!flipper_format_write_string(ff, "IC Type", str_data_buffer)) break;
ff, if(!flipper_format_write_empty_line(ff)) break;
furi_string_get_cstr(temp_str),
(&data->data.dump[i * sizeof(FelicaBlock)]),
sizeof(FelicaBlock))) {
saved = false;
break;
}
}
furi_string_free(temp_str);
} while(false); } while(false);
switch(data->workflow_type) {
case FelicaLite:
if(!flipper_format_write_comment_cstr(ff, "Felica Lite specific data")) break;
// Blocks count
do {
uint32_t blocks_total = data->blocks_total;
uint32_t blocks_read = data->blocks_read;
if(!flipper_format_write_uint32(ff, "Blocks total", &blocks_total, 1)) break;
if(!flipper_format_write_uint32(ff, "Blocks read", &blocks_read, 1)) break;
// Blocks data
furi_string_reset(str_data_buffer);
furi_string_reset(str_key_buffer);
for(uint8_t i = 0; i < blocks_total; i++) {
furi_string_printf(str_key_buffer, "Block %d", i);
if(!flipper_format_write_hex(
ff,
furi_string_get_cstr(str_key_buffer),
(&data->data.dump[i * sizeof(FelicaBlock)]),
sizeof(FelicaBlock))) {
saved = false;
break;
}
}
} while(false);
break;
case FelicaStandard:
if(!flipper_format_write_comment_cstr(ff, "Felica Standard specific data")) break;
do {
uint32_t area_count = simple_array_get_count(data->areas);
uint32_t service_count = simple_array_get_count(data->services);
// Note: The theoretical max area/service count is 2^10
// So uint16_t is already enough for practical usage
// The following key index print will use %03X because 12 bits are enough to cover 0-1023
// Area count
if(!flipper_format_write_uint32(ff, "Area found", &area_count, 1)) break;
// Area data
furi_string_reset(str_data_buffer);
furi_string_reset(str_key_buffer);
for(uint16_t i = 0; i < area_count; i++) {
FelicaArea* area = simple_array_get(data->areas, i);
furi_string_printf(str_key_buffer, "Area %03X", i);
furi_string_printf(
str_data_buffer,
"| Code %04X | Services #%03X-#%03X |",
area->code,
area->first_idx,
area->last_idx);
if(!flipper_format_write_string(
ff, furi_string_get_cstr(str_key_buffer), str_data_buffer))
break;
}
if(!flipper_format_write_empty_line(ff)) break;
// Service count
if(!flipper_format_write_uint32(ff, "Service found", &service_count, 1)) break;
// Service data
furi_string_reset(str_data_buffer);
furi_string_reset(str_key_buffer);
for(uint16_t i = 0; i < service_count; i++) {
FelicaService* service = simple_array_get(data->services, i);
furi_string_printf(str_key_buffer, "Service %03X", i);
furi_string_printf(
str_data_buffer, "| Code %04X | Attrib. %02X ", service->code, service->attr);
felica_service_get_attribute_string(service, str_data_buffer);
if(!flipper_format_write_string(
ff, furi_string_get_cstr(str_key_buffer), str_data_buffer))
break;
}
if(!flipper_format_write_empty_line(ff)) break;
// Directory tree
furi_string_reset(str_data_buffer);
furi_string_reset(str_key_buffer);
furi_string_printf(
str_data_buffer, "\n::: ... are public services\n||| ... are private services");
felica_write_directory_tree(data, str_data_buffer);
furi_string_replace_all(str_data_buffer, ":", "+");
// We use a clearer marker in saved text files
if(!flipper_format_write_string(ff, "Directory Tree", str_data_buffer)) break;
} while(false);
// Public blocks
do {
uint32_t public_block_count = simple_array_get_count(data->public_blocks);
if(!flipper_format_write_uint32(ff, "Public blocks read", &public_block_count, 1))
break;
furi_string_reset(str_data_buffer);
furi_string_reset(str_key_buffer);
for(uint16_t i = 0; i < public_block_count; i++) {
FelicaPublicBlock* public_block = simple_array_get(data->public_blocks, i);
furi_string_printf(str_key_buffer, "Block %04X", i);
furi_string_printf(
str_data_buffer,
"| Service code %04X | Block index %02X | Data: ",
public_block->service_code,
public_block->block_idx);
for(uint8_t j = 0; j < FELICA_DATA_BLOCK_SIZE; j++) {
furi_string_cat_printf(str_data_buffer, "%02X ", public_block->block.data[j]);
}
furi_string_cat_printf(str_data_buffer, "|");
if(!flipper_format_write_string(
ff, furi_string_get_cstr(str_key_buffer), str_data_buffer))
break;
}
} while(false);
break;
default:
break;
}
// Clean up
furi_string_free(str_data_buffer);
furi_string_free(str_key_buffer);
return saved; return saved;
} }
@@ -154,7 +432,13 @@ bool felica_is_equal(const FelicaData* data, const FelicaData* other) {
furi_check(data); furi_check(data);
furi_check(other); furi_check(other);
return memcmp(data, other, sizeof(FelicaData)) == 0; return memcmp(data->idm.data, other->idm.data, sizeof(FelicaIDm)) == 0 &&
memcmp(data->pmm.data, other->pmm.data, sizeof(FelicaPMm)) == 0 &&
data->blocks_total == other->blocks_total && data->blocks_read == other->blocks_read &&
memcmp(&data->data, &other->data, sizeof(data->data)) == 0 &&
simple_array_is_equal(data->services, other->services) &&
simple_array_is_equal(data->areas, other->areas) &&
simple_array_is_equal(data->public_blocks, other->public_blocks);
} }
const char* felica_get_device_name(const FelicaData* data, NfcDeviceNameType name_type) { const char* felica_get_device_name(const FelicaData* data, NfcDeviceNameType name_type) {
@@ -355,3 +639,251 @@ void felica_calculate_mac_write(
memcpy(session_swapped + 8, session_key, 8); memcpy(session_swapped + 8, session_key, 8);
felica_calculate_mac(ctx, session_swapped, rc, first_block, data, FELICA_DATA_BLOCK_SIZE, mac); felica_calculate_mac(ctx, session_swapped, rc, first_block, data, FELICA_DATA_BLOCK_SIZE, mac);
} }
void felica_write_directory_tree(const FelicaData* data, FuriString* str) {
furi_check(data);
furi_check(str);
furi_string_cat_str(str, "\n");
uint16_t area_last_stack[8];
uint8_t depth = 0;
size_t area_iter = 0;
const size_t area_count = simple_array_get_count(data->areas);
const size_t service_count = simple_array_get_count(data->services);
for(size_t svc_idx = 0; svc_idx < service_count; ++svc_idx) {
while(area_iter < area_count) {
const FelicaArea* next_area = simple_array_get(data->areas, area_iter);
if(next_area->first_idx != svc_idx) break;
for(uint8_t i = 0; i < depth - 1; ++i)
furi_string_cat_printf(str, "| ");
furi_string_cat_printf(str, depth ? "|" : "");
furi_string_cat_printf(str, "- AREA_%04X/\n", next_area->code >> 6);
area_last_stack[depth++] = next_area->last_idx;
area_iter++;
}
const FelicaService* service = simple_array_get(data->services, svc_idx);
bool is_public = (service->attr & FELICA_SERVICE_ATTRIBUTE_UNAUTH_READ) != 0;
for(uint8_t i = 0; i < depth - 1; ++i)
furi_string_cat_printf(str, is_public ? ": " : "| ");
furi_string_cat_printf(str, is_public ? ":" : "|");
furi_string_cat_printf(str, "- serv_%04X\n", service->code);
if(depth && svc_idx >= area_last_stack[depth - 1]) depth--;
}
}
void felica_get_workflow_type(FelicaData* data) {
// Reference: Proxmark3 repo
uint8_t rom_type = data->pmm.data[0];
uint8_t workflow_type = data->pmm.data[1];
if(workflow_type <= 0x48) {
// More liberal check because most of these should be treated as FeliCa Standard, regardless of mobile or not.
data->workflow_type = FelicaStandard;
} else {
switch(workflow_type) {
case 0xA2:
data->workflow_type = FelicaStandard;
break;
case 0xF0:
case 0xF1:
case 0xF2: // 0xF2 => FeliCa Link RC-S967 in Lite-S Mode or Lite-S HT Mode
data->workflow_type = FelicaLite;
break;
case 0xE1: // Felica Link
case 0xE0: // Felica Plug
data->workflow_type = FelicaUnknown;
break;
case 0xFF:
if(rom_type == 0xFF) {
data->workflow_type = FelicaUnknown; // Felica Link
}
break;
default:
data->workflow_type = FelicaUnknown;
break;
}
}
}
void felica_get_ic_name(const FelicaData* data, FuriString* ic_name) {
// Reference: Proxmark3 repo
uint8_t rom_type = data->pmm.data[0];
uint8_t ic_type = data->pmm.data[1];
switch(ic_type) {
// FeliCa Standard Products:
// odd findings
case 0x00:
furi_string_set_str(ic_name, "FeliCa Standard RC-S830");
break;
case 0x01:
furi_string_set_str(ic_name, "FeliCa Standard RC-S915");
break;
case 0x02:
furi_string_set_str(ic_name, "FeliCa Standard RC-S919");
break;
case 0x06:
case 0x07:
furi_string_set_str(ic_name, "FeliCa Mobile IC,\nChip V1.0");
break;
case 0x08:
furi_string_set_str(ic_name, "FeliCa Standard RC-S952");
break;
case 0x09:
furi_string_set_str(ic_name, "FeliCa Standard RC-S953");
break;
case 0x0B:
furi_string_set_str(ic_name, "FeliCa Standard RC-S9X4,\nJapan Transit IC");
break;
case 0x0C:
furi_string_set_str(ic_name, "FeliCa Standard RC-S954");
break;
case 0x0D:
furi_string_set_str(ic_name, "FeliCa Standard RC-S960");
break;
case 0x10:
case 0x11:
case 0x12:
case 0x13:
furi_string_set_str(ic_name, "FeliCa Mobile IC,\nChip V2.0");
break;
case 0x14:
case 0x15:
furi_string_set_str(ic_name, "FeliCa Mobile IC,\nChip V3.0");
break;
case 0x16:
furi_string_set_str(ic_name, "FeliCa Mobile IC,\nJapan Transit IC");
break;
case 0x17:
furi_string_set_str(ic_name, "FeliCa Mobile IC,\nChip V4.0");
break;
case 0x18:
case 0x19:
case 0x1A:
case 0x1B:
case 0x1C:
case 0x1D:
case 0x1E:
case 0x1F:
furi_string_set_str(ic_name, "FeliCa Mobile IC,\nChip V4.1");
break;
case 0x20:
furi_string_set_str(ic_name, "FeliCa Standard RC-S962");
// RC-S962 has been extensively found in Japan Transit ICs, despite model number not ending in 4
break;
case 0x31:
furi_string_set_str(ic_name, "FeliCa Standard RC-S104,\nJapan Transit IC");
break;
case 0x32:
furi_string_set_str(ic_name, "FeliCa Standard RC-SA00/1");
break;
case 0x33:
furi_string_set_str(ic_name, "FeliCa Standard RC-SA00/2");
break;
case 0x34:
furi_string_set_str(ic_name, "FeliCa Standard RC-SA01/1");
break;
case 0x35:
furi_string_set_str(ic_name, "FeliCa Standard RC-SA01/2");
break;
case 0x36:
furi_string_set_str(ic_name, "FeliCa Standard RC-SA04/1,\nJapan Transit IC");
break;
case 0x3E:
furi_string_set_str(ic_name, "FeliCa Standard RC-SA08/1");
break;
case 0x43:
furi_string_set_str(ic_name, "FeliCa Standard RC-SA24/1");
break;
case 0x44:
furi_string_set_str(ic_name, "FeliCa Standard RC-SA20/1");
break;
case 0x45:
furi_string_set_str(ic_name, "FeliCa Standard RC-SA20/2");
break;
case 0x46:
furi_string_set_str(ic_name, "FeliCa Standard RC-SA21/2");
break;
case 0x47:
furi_string_set_str(ic_name, "FeliCa Standard RC-SA24/1x1");
break;
case 0x48:
furi_string_set_str(ic_name, "FeliCa Standard RC-SA21/2x1");
break;
case 0xA2:
furi_string_set_str(ic_name, "FeliCa Standard RC-SA14");
break;
// NFC Dynamic Tag (FeliCa Plug) Products:
case 0xE0:
furi_string_set_str(ic_name, "FeliCa Plug RC-S926,\nNFC Dynamic Tag");
break;
case 0xE1:
furi_string_set_str(ic_name, "FeliCa Link RC-S967,\nPlug Mode");
break;
case 0xF0:
furi_string_set_str(ic_name, "FeliCa Lite RC-S965");
break;
case 0xF1:
furi_string_set_str(ic_name, "FeliCa Lite-S RC-S966");
break;
case 0xF2:
furi_string_set_str(ic_name, "FeliCa Link RC-S967,\nLite-S Mode or Lite-S HT Mode");
break;
case 0xFF:
if(rom_type == 0xFF) { // from FeliCa Link User's Manual
furi_string_set_str(ic_name, "FeliCa Link RC-S967,\nNFC-DEP Mode");
}
break;
default:
furi_string_printf(
ic_name,
"Unknown IC %02X ROM %02X:\nPlease submit an issue on\nGitHub and help us identify.",
ic_type,
rom_type);
break;
}
}
void felica_service_get_attribute_string(const FelicaService* service, FuriString* str) {
furi_check(service);
furi_check(str);
bool is_public = (service->attr & FELICA_SERVICE_ATTRIBUTE_UNAUTH_READ) != 0;
furi_string_cat_str(str, is_public ? "| Public " : "| Private ");
bool is_purse = (service->attr & FELICA_SERVICE_ATTRIBUTE_PURSE) != 0;
// Subfield bitwise attributes are applicable depending on is PURSE or not
if(is_purse) {
furi_string_cat_str(str, "| Purse |");
switch((service->attr & FELICA_SERVICE_ATTRIBUTE_PURSE_SUBFIELD) >> 1) {
case 0:
furi_string_cat_str(str, " Direct |");
break;
case 1:
furi_string_cat_str(str, " Cashback |");
break;
case 2:
furi_string_cat_str(str, " Decrement |");
break;
case 3:
furi_string_cat_str(str, " Read Only |");
break;
default:
furi_string_cat_str(str, " Unknown |");
break;
}
} else {
bool is_random = (service->attr & FELICA_SERVICE_ATTRIBUTE_RANDOM_ACCESS) != 0;
furi_string_cat_str(str, is_random ? "| Random |" : "| Cyclic |");
bool is_readonly = (service->attr & FELICA_SERVICE_ATTRIBUTE_READ_ONLY) != 0;
furi_string_cat_str(str, is_readonly ? " Read Only |" : " Read/Write |");
}
}

View File

@@ -3,6 +3,7 @@
#include <toolbox/bit_buffer.h> #include <toolbox/bit_buffer.h>
#include <nfc/protocols/nfc_device_base_i.h> #include <nfc/protocols/nfc_device_base_i.h>
#include <mbedtls/include/mbedtls/des.h> #include <mbedtls/include/mbedtls/des.h>
#include <lib/toolbox/simple_array.h>
#ifdef __cplusplus #ifdef __cplusplus
extern "C" { extern "C" {
@@ -34,6 +35,8 @@ extern "C" {
#define FELICA_BLOCK_INDEX_STATE (0x92U) #define FELICA_BLOCK_INDEX_STATE (0x92U)
#define FELICA_BLOCK_INDEX_CRC_CHECK (0xA0U) #define FELICA_BLOCK_INDEX_CRC_CHECK (0xA0U)
#define FELICA_STANDARD_MAX_BLOCK_COUNT (0xFFU)
#define FELICA_GUARD_TIME_US (20000U) #define FELICA_GUARD_TIME_US (20000U)
#define FELICA_FDT_POLL_FC (10000U) #define FELICA_FDT_POLL_FC (10000U)
#define FELICA_POLL_POLL_MIN_US (1280U) #define FELICA_POLL_POLL_MIN_US (1280U)
@@ -47,6 +50,16 @@ extern "C" {
#define FELICA_TIME_SLOT_8 (0x07U) #define FELICA_TIME_SLOT_8 (0x07U)
#define FELICA_TIME_SLOT_16 (0x0FU) #define FELICA_TIME_SLOT_16 (0x0FU)
#define FELICA_CMD_LIST_SERVICE_CODE 0x0A
#define FELICA_CMD_LIST_SERVICE_CODE_RESP 0x0B
#define FELICA_SERVICE_ATTRIBUTE_UNAUTH_READ (0b000001)
#define FELICA_SERVICE_ATTRIBUTE_READ_ONLY (0b000010)
#define FELICA_SERVICE_ATTRIBUTE_RANDOM_ACCESS (0b001000)
#define FELICA_SERVICE_ATTRIBUTE_CYCLIC (0b001100)
#define FELICA_SERVICE_ATTRIBUTE_PURSE (0b010000)
#define FELICA_SERVICE_ATTRIBUTE_PURSE_SUBFIELD (0b000110)
/** @brief Type of possible Felica errors */ /** @brief Type of possible Felica errors */
typedef enum { typedef enum {
FelicaErrorNone, FelicaErrorNone,
@@ -61,6 +74,12 @@ typedef enum {
FelicaErrorFeatureUnsupported, FelicaErrorFeatureUnsupported,
} FelicaError; } FelicaError;
typedef enum {
FelicaUnknown,
FelicaStandard,
FelicaLite,
} FelicaWorkflowType;
typedef struct { typedef struct {
uint8_t data[FELICA_DATA_BLOCK_SIZE]; uint8_t data[FELICA_DATA_BLOCK_SIZE];
} FelicaBlockData; } FelicaBlockData;
@@ -146,6 +165,23 @@ typedef union {
uint8_t dump[sizeof(FelicaFileSystem)]; uint8_t dump[sizeof(FelicaFileSystem)];
} FelicaFSUnion; } FelicaFSUnion;
typedef struct {
uint16_t code;
uint8_t attr;
} FelicaService;
typedef struct {
uint16_t code;
uint16_t first_idx;
uint16_t last_idx;
} FelicaArea;
typedef struct {
FelicaBlock block;
uint16_t service_code;
uint8_t block_idx;
} FelicaPublicBlock;
/** @brief Structure used to store Felica data and additional values about reading */ /** @brief Structure used to store Felica data and additional values about reading */
typedef struct { typedef struct {
FelicaIDm idm; FelicaIDm idm;
@@ -153,6 +189,11 @@ typedef struct {
uint8_t blocks_total; uint8_t blocks_total;
uint8_t blocks_read; uint8_t blocks_read;
FelicaFSUnion data; FelicaFSUnion data;
SimpleArray* services;
SimpleArray* areas;
SimpleArray* public_blocks;
FelicaWorkflowType workflow_type;
} FelicaData; } FelicaData;
typedef struct FURI_PACKED { typedef struct FURI_PACKED {
@@ -171,6 +212,14 @@ typedef struct {
uint8_t SF2; uint8_t SF2;
} FelicaCommandResponseHeader; } FelicaCommandResponseHeader;
#pragma pack(push, 1)
typedef struct {
uint8_t length;
uint8_t command;
FelicaIDm idm;
} FelicaCommandHeaderRaw;
#pragma pack(pop)
typedef struct { typedef struct {
uint8_t service_code : 4; uint8_t service_code : 4;
uint8_t access_mode : 3; uint8_t access_mode : 3;
@@ -194,6 +243,11 @@ typedef struct {
uint8_t data[]; uint8_t data[];
} FelicaListenerReadCommandResponse; } FelicaListenerReadCommandResponse;
typedef struct {
FelicaCommandHeaderRaw header;
uint8_t data[];
} FelicaListServiceCommandResponse;
typedef FelicaCommandResponseHeader FelicaListenerWriteCommandResponse; typedef FelicaCommandResponseHeader FelicaListenerWriteCommandResponse;
typedef FelicaCommandResponseHeader FelicaPollerWriteCommandResponse; typedef FelicaCommandResponseHeader FelicaPollerWriteCommandResponse;
@@ -254,6 +308,15 @@ void felica_calculate_mac_write(
const uint8_t* wcnt, const uint8_t* wcnt,
const uint8_t* data, const uint8_t* data,
uint8_t* mac); uint8_t* mac);
void felica_write_directory_tree(const FelicaData* data, FuriString* str);
void felica_get_workflow_type(FelicaData* data);
void felica_get_ic_name(const FelicaData* data, FuriString* ic_name);
void felica_service_get_attribute_string(const FelicaService* service, FuriString* str);
#ifdef __cplusplus #ifdef __cplusplus
} }
#endif #endif

View File

@@ -0,0 +1,22 @@
#include "felica_i.h"
const SimpleArrayConfig felica_service_array_cfg = {
.init = NULL,
.copy = NULL,
.reset = NULL,
.type_size = sizeof(FelicaService),
};
const SimpleArrayConfig felica_area_array_cfg = {
.init = NULL,
.copy = NULL,
.reset = NULL,
.type_size = sizeof(FelicaArea),
};
const SimpleArrayConfig felica_public_block_array_cfg = {
.init = NULL,
.copy = NULL,
.reset = NULL,
.type_size = sizeof(FelicaPublicBlock),
};

View File

@@ -0,0 +1,10 @@
#pragma once
#include <stdint.h>
#include <stddef.h>
#include "felica.h"
#include <lib/toolbox/simple_array.h>
extern const SimpleArrayConfig felica_service_array_cfg;
extern const SimpleArrayConfig felica_area_array_cfg;
extern const SimpleArrayConfig felica_public_block_array_cfg;

View File

@@ -1,4 +1,6 @@
#include "felica_poller_i.h" #include "felica_poller_i.h"
#include <mlib/m-array.h>
#include <mlib/m-core.h>
#include <nfc/protocols/nfc_poller_base.h> #include <nfc/protocols/nfc_poller_base.h>
@@ -7,6 +9,10 @@
#define TAG "FelicaPoller" #define TAG "FelicaPoller"
ARRAY_DEF(felica_service_array, FelicaService, M_POD_OPLIST); // -V658
ARRAY_DEF(felica_area_array, FelicaArea, M_POD_OPLIST); // -V658
ARRAY_DEF(felica_public_block_array, FelicaPublicBlock, M_POD_OPLIST); // -V658
typedef NfcCommand (*FelicaPollerReadHandler)(FelicaPoller* instance); typedef NfcCommand (*FelicaPollerReadHandler)(FelicaPoller* instance);
const FelicaData* felica_poller_get_data(FelicaPoller* instance) { const FelicaData* felica_poller_get_data(FelicaPoller* instance) {
@@ -79,15 +85,30 @@ NfcCommand felica_poller_state_handler_activate(FelicaPoller* instance) {
FelicaError error = felica_poller_activate(instance, instance->data); FelicaError error = felica_poller_activate(instance, instance->data);
if(error == FelicaErrorNone) { if(error == FelicaErrorNone) {
furi_hal_random_fill_buf(instance->data->data.fs.rc.data, FELICA_DATA_BLOCK_SIZE); furi_hal_random_fill_buf(instance->data->data.fs.rc.data, FELICA_DATA_BLOCK_SIZE);
felica_get_workflow_type(instance->data);
instance->felica_event.type = FelicaPollerEventTypeRequestAuthContext; instance->felica_event.type = FelicaPollerEventTypeRequestAuthContext;
instance->felica_event_data.auth_context = &instance->auth.context; instance->felica_event_data.auth_context = &instance->auth.context;
instance->callback(instance->general_event, instance->context); instance->callback(instance->general_event, instance->context);
switch(instance->data->workflow_type) {
case FelicaStandard:
instance->state = FelicaPollerStateTraverseStandardSystem;
break;
case FelicaLite:
instance->state = FelicaPollerStateReadLiteBlocks;
break;
default:
// Unimplemented
instance->state = FelicaPollerStateReadSuccess;
break;
}
bool skip_auth = instance->auth.context.skip_auth; bool skip_auth = instance->auth.context.skip_auth;
instance->state = skip_auth ? FelicaPollerStateReadBlocks : if(!skip_auth) {
FelicaPollerStateAuthenticateInternal; instance->state = FelicaPollerStateAuthenticateInternal;
}
} else if(error != FelicaErrorTimeout) { } else if(error != FelicaErrorTimeout) {
instance->felica_event.type = FelicaPollerEventTypeError; instance->felica_event.type = FelicaPollerEventTypeError;
instance->felica_event_data.error = error; instance->felica_event_data.error = error;
@@ -105,7 +126,18 @@ NfcCommand felica_poller_state_handler_auth_internal(FelicaPoller* instance) {
instance->data->data.fs.rc.data, instance->data->data.fs.rc.data,
instance->auth.session_key.data); instance->auth.session_key.data);
instance->state = FelicaPollerStateReadBlocks; switch(instance->data->workflow_type) {
case FelicaStandard:
instance->state = FelicaPollerStateTraverseStandardSystem;
break;
case FelicaLite:
instance->state = FelicaPollerStateReadLiteBlocks;
break;
default:
// Unimplemented
instance->state = FelicaPollerStateReadSuccess;
break;
}
uint8_t blocks[3] = {FELICA_BLOCK_INDEX_RC, 0, 0}; uint8_t blocks[3] = {FELICA_BLOCK_INDEX_RC, 0, 0};
FelicaPollerWriteCommandResponse* tx_resp; FelicaPollerWriteCommandResponse* tx_resp;
@@ -145,7 +177,6 @@ NfcCommand felica_poller_state_handler_auth_internal(FelicaPoller* instance) {
NfcCommand felica_poller_state_handler_auth_external(FelicaPoller* instance) { NfcCommand felica_poller_state_handler_auth_external(FelicaPoller* instance) {
FURI_LOG_D(TAG, "Auth External"); FURI_LOG_D(TAG, "Auth External");
instance->state = FelicaPollerStateReadBlocks;
uint8_t blocks[2]; uint8_t blocks[2];
instance->data->data.fs.state.data[0] = 1; instance->data->data.fs.state.data[0] = 1;
@@ -183,12 +214,177 @@ NfcCommand felica_poller_state_handler_auth_external(FelicaPoller* instance) {
memcpy(instance->data->data.fs.state.data, rx_resp->data, FELICA_DATA_BLOCK_SIZE); memcpy(instance->data->data.fs.state.data, rx_resp->data, FELICA_DATA_BLOCK_SIZE);
instance->auth.context.auth_status.external = instance->data->data.fs.state.data[0]; instance->auth.context.auth_status.external = instance->data->data.fs.state.data[0];
} while(false); } while(false);
instance->state = FelicaPollerStateReadBlocks;
switch(instance->data->workflow_type) {
case FelicaStandard:
instance->state = FelicaPollerStateTraverseStandardSystem;
break;
case FelicaLite:
instance->state = FelicaPollerStateReadLiteBlocks;
break;
default:
// Unimplemented
instance->state = FelicaPollerStateReadSuccess;
break;
}
return NfcCommandContinue; return NfcCommandContinue;
} }
NfcCommand felica_poller_state_handler_read_blocks(FelicaPoller* instance) { NfcCommand felica_poller_state_handler_traverse_standard_system(FelicaPoller* instance) {
FURI_LOG_D(TAG, "Read Blocks"); FURI_LOG_D(TAG, "Traverse Standard System");
FelicaListServiceCommandResponse* response;
felica_service_array_t service_buffer;
felica_service_array_init(service_buffer);
felica_area_array_t area_buffer;
felica_area_array_init(area_buffer);
for(uint16_t cursor = 0; cursor < 0xFFFF; cursor++) {
FelicaError error = felica_poller_list_service_by_cursor(instance, cursor, &response);
if(error != FelicaErrorNone) {
FURI_LOG_E(TAG, "Error %d at cursor %04X", error, cursor);
break;
}
uint8_t len = response->header.length;
const uint8_t* list_service_payload = response->data;
uint16_t code_begin = (uint16_t)(list_service_payload[0] | (list_service_payload[1] << 8));
if(len != 0x0C && len != 0x0E) {
FURI_LOG_E(TAG, "Bad command resp length 0x%02X at cursor 0x%04X", len, cursor);
break;
}
if(code_begin == 0xFFFF) {
FURI_LOG_D(TAG, "Traverse complete");
break;
}
if(len == 0x0E) {
FelicaArea* area = felica_area_array_push_raw(area_buffer);
memset(area, 0, sizeof *area);
area->code = code_begin;
area->first_idx = (uint16_t)felica_service_array_size(service_buffer);
area->last_idx = 0;
} else {
FelicaService* service = felica_service_array_push_raw(service_buffer);
memset(service, 0, sizeof *service);
service->code = code_begin;
service->attr = (uint8_t)(code_begin & 0x3F);
if(felica_area_array_size(area_buffer)) {
FelicaArea* current_area = felica_area_array_back(area_buffer);
current_area->last_idx = (uint16_t)(felica_service_array_size(service_buffer) - 1);
}
}
}
const size_t service_num = felica_service_array_size(service_buffer);
const size_t area_num = felica_area_array_size(area_buffer);
if(service_num) {
simple_array_init(instance->data->services, (uint32_t)service_num);
memcpy(
simple_array_get(instance->data->services, 0),
service_buffer->ptr,
service_num * sizeof(FelicaService));
} else {
simple_array_reset(instance->data->services);
}
if(area_num) {
simple_array_init(instance->data->areas, (uint32_t)area_num);
memcpy(
simple_array_get(instance->data->areas, 0),
area_buffer->ptr,
area_num * sizeof(FelicaArea));
} else {
simple_array_reset(instance->data->areas);
}
FURI_LOG_I(
TAG,
"Services found: %lu, Areas found: %lu",
simple_array_get_count(instance->data->services),
simple_array_get_count(instance->data->areas));
felica_service_array_clear(service_buffer);
felica_area_array_clear(area_buffer);
instance->state = FelicaPollerStateReadStandardBlocks;
return NfcCommandContinue;
}
NfcCommand felica_poller_state_handler_read_standard_blocks(FelicaPoller* instance) {
FURI_LOG_D(TAG, "Read Standard Blocks");
const uint32_t service_count = simple_array_get_count(instance->data->services);
felica_public_block_array_t public_block_buffer;
felica_public_block_array_init(public_block_buffer);
instance->state = FelicaPollerStateReadSuccess;
bool have_read_anything = false;
for(uint32_t i = 0; i < service_count; i++) {
const FelicaService* service = simple_array_get(instance->data->services, i);
if((service->attr & FELICA_SERVICE_ATTRIBUTE_UNAUTH_READ) == 0) continue;
uint8_t block_count = 1;
uint8_t block_list[1] = {0};
FelicaError error = FelicaErrorNone;
FelicaPollerReadCommandResponse* response;
do {
error = felica_poller_read_blocks(
instance, block_count, block_list, service->code, &response);
if(error != FelicaErrorNone) {
break;
}
if(response->SF1 == 0 && response->SF2 == 0) {
FelicaPublicBlock* public_block =
felica_public_block_array_push_raw(public_block_buffer);
memset(public_block, 0, sizeof *public_block);
memcpy(public_block->block.data, response->data, FELICA_DATA_BLOCK_SIZE);
public_block->service_code = service->code;
public_block->block_idx = block_list[0];
have_read_anything = true;
block_list[0]++;
} else {
break; // No more blocks to read in this service, ok to continue for loop
}
} while(block_list[0] < FELICA_STANDARD_MAX_BLOCK_COUNT);
if(error != FelicaErrorNone) {
instance->felica_event.type = FelicaPollerEventTypeError;
instance->felica_event_data.error = error;
instance->state = FelicaPollerStateReadFailed;
break;
}
}
if(have_read_anything) {
const size_t n = felica_public_block_array_size(public_block_buffer);
simple_array_init(instance->data->public_blocks, (uint32_t)n);
memcpy(
simple_array_get(instance->data->public_blocks, 0),
public_block_buffer->ptr,
n * sizeof(FelicaPublicBlock));
}
felica_public_block_array_clear(public_block_buffer);
return NfcCommandContinue;
}
NfcCommand felica_poller_state_handler_read_lite_blocks(FelicaPoller* instance) {
FURI_LOG_D(TAG, "Read Lite Blocks");
uint8_t block_count = 1; uint8_t block_count = 1;
uint8_t block_list[4] = {0, 0, 0, 0}; uint8_t block_list[4] = {0, 0, 0, 0};
@@ -266,7 +462,10 @@ static const FelicaPollerReadHandler felica_poller_handler[FelicaPollerStateNum]
[FelicaPollerStateActivated] = felica_poller_state_handler_activate, [FelicaPollerStateActivated] = felica_poller_state_handler_activate,
[FelicaPollerStateAuthenticateInternal] = felica_poller_state_handler_auth_internal, [FelicaPollerStateAuthenticateInternal] = felica_poller_state_handler_auth_internal,
[FelicaPollerStateAuthenticateExternal] = felica_poller_state_handler_auth_external, [FelicaPollerStateAuthenticateExternal] = felica_poller_state_handler_auth_external,
[FelicaPollerStateReadBlocks] = felica_poller_state_handler_read_blocks, [FelicaPollerStateTraverseStandardSystem] =
felica_poller_state_handler_traverse_standard_system,
[FelicaPollerStateReadStandardBlocks] = felica_poller_state_handler_read_standard_blocks,
[FelicaPollerStateReadLiteBlocks] = felica_poller_state_handler_read_lite_blocks,
[FelicaPollerStateReadSuccess] = felica_poller_state_handler_read_success, [FelicaPollerStateReadSuccess] = felica_poller_state_handler_read_success,
[FelicaPollerStateReadFailed] = felica_poller_state_handler_read_failed, [FelicaPollerStateReadFailed] = felica_poller_state_handler_read_failed,
}; };

View File

@@ -93,6 +93,7 @@ FelicaError felica_poller_polling(
return error; return error;
} }
// This is in fact a buffer preparer for a specified service. It should be have the _ex suffix. The prepare_tx_buffer_raw should have this name.
static void felica_poller_prepare_tx_buffer( static void felica_poller_prepare_tx_buffer(
const FelicaPoller* instance, const FelicaPoller* instance,
const uint8_t command, const uint8_t command,
@@ -221,3 +222,45 @@ FelicaError felica_poller_activate(FelicaPoller* instance, FelicaData* data) {
return ret; return ret;
} }
static void felica_poller_prepare_tx_buffer_raw(
const FelicaPoller* instance,
const uint8_t command,
const uint8_t* data,
const uint8_t data_length) {
FelicaCommandHeaderRaw cmd = {.length = 0x00, .command = command, .idm = instance->data->idm};
cmd.length = sizeof(FelicaCommandHeaderRaw) + data_length;
bit_buffer_reset(instance->tx_buffer);
bit_buffer_append_bytes(instance->tx_buffer, (uint8_t*)&cmd, sizeof(FelicaCommandHeaderRaw));
bit_buffer_append_bytes(instance->tx_buffer, data, data_length);
}
FelicaError felica_poller_list_service_by_cursor(
FelicaPoller* instance,
uint16_t cursor,
FelicaListServiceCommandResponse** const response_ptr) {
furi_assert(instance);
furi_assert(response_ptr);
const uint8_t data[2] = {(uint8_t)(cursor & 0xFF), (uint8_t)((cursor >> 8) & 0xFF)};
felica_poller_prepare_tx_buffer_raw(
instance, FELICA_CMD_LIST_SERVICE_CODE, data, sizeof(data));
bit_buffer_reset(instance->rx_buffer);
FelicaError error = felica_poller_frame_exchange(
instance, instance->tx_buffer, instance->rx_buffer, FELICA_POLLER_POLLING_FWT);
if(error != FelicaErrorNone) {
FURI_LOG_E(TAG, "List service by cursor failed with error: %d", error);
return error;
}
size_t rx_len = bit_buffer_get_size_bytes(instance->rx_buffer);
if(rx_len < sizeof(FelicaCommandHeaderRaw) + 2) return FelicaErrorProtocol;
// error is known to be FelicaErrorNone here
*response_ptr = (FelicaListServiceCommandResponse*)bit_buffer_get_data(instance->rx_buffer);
return error;
}

View File

@@ -19,7 +19,9 @@ typedef enum {
FelicaPollerStateActivated, FelicaPollerStateActivated,
FelicaPollerStateAuthenticateInternal, FelicaPollerStateAuthenticateInternal,
FelicaPollerStateAuthenticateExternal, FelicaPollerStateAuthenticateExternal,
FelicaPollerStateReadBlocks, FelicaPollerStateTraverseStandardSystem,
FelicaPollerStateReadStandardBlocks,
FelicaPollerStateReadLiteBlocks,
FelicaPollerStateReadSuccess, FelicaPollerStateReadSuccess,
FelicaPollerStateReadFailed, FelicaPollerStateReadFailed,
@@ -55,6 +57,10 @@ typedef struct {
uint8_t request_data[2]; uint8_t request_data[2];
} FelicaPollerPollingResponse; } FelicaPollerPollingResponse;
typedef union {
FelicaData* data;
} FelicaPollerContextData;
const FelicaData* felica_poller_get_data(FelicaPoller* instance); const FelicaData* felica_poller_get_data(FelicaPoller* instance);
/** /**
@@ -105,6 +111,11 @@ FelicaError felica_poller_frame_exchange(
BitBuffer* rx_buffer, BitBuffer* rx_buffer,
uint32_t fwt); uint32_t fwt);
FelicaError felica_poller_list_service_by_cursor(
FelicaPoller* instance,
uint16_t cursor,
FelicaListServiceCommandResponse** response_ptr);
#ifdef __cplusplus #ifdef __cplusplus
} }
#endif #endif

View File

@@ -11,8 +11,8 @@ typedef struct {
FelicaAuthenticationContext auth_ctx; FelicaAuthenticationContext auth_ctx;
FuriThreadId thread_id; FuriThreadId thread_id;
FelicaError error; FelicaError error;
FelicaData data; FelicaPollerContextData data;
} Felica_PollerContext; } FelicaPollerContext;
NfcCommand felica_poller_read_callback(NfcGenericEvent event, void* context) { NfcCommand felica_poller_read_callback(NfcGenericEvent event, void* context) {
furi_assert(context); furi_assert(context);
@@ -20,14 +20,14 @@ NfcCommand felica_poller_read_callback(NfcGenericEvent event, void* context) {
furi_assert(event.instance); furi_assert(event.instance);
furi_assert(event.protocol == NfcProtocolFelica); furi_assert(event.protocol == NfcProtocolFelica);
Felica_PollerContext* poller_context = context; FelicaPollerContext* poller_context = context;
FelicaPoller* felica_poller = event.instance; FelicaPoller* felica_poller = event.instance;
FelicaPollerEvent* felica_event = event.event_data; FelicaPollerEvent* felica_event = event.event_data;
if(felica_event->type == FelicaPollerEventTypeReady || if(felica_event->type == FelicaPollerEventTypeReady ||
felica_event->type == FelicaPollerEventTypeIncomplete) { felica_event->type == FelicaPollerEventTypeIncomplete) {
felica_copy(&poller_context->data, felica_poller->data); felica_copy(poller_context->data.data, felica_poller->data);
} else if(felica_event->type == FelicaPollerEventTypeRequestAuthContext) { } else if(felica_event->type == FelicaPollerEventTypeRequestAuthContext) {
felica_event->data->auth_context->skip_auth = poller_context->auth_ctx.skip_auth; felica_event->data->auth_context->skip_auth = poller_context->auth_ctx.skip_auth;
memcpy( memcpy(
@@ -45,7 +45,7 @@ FelicaError felica_poller_sync_read(Nfc* nfc, FelicaData* data, const FelicaCard
furi_check(nfc); furi_check(nfc);
furi_check(data); furi_check(data);
Felica_PollerContext poller_context = {}; FelicaPollerContext poller_context = {};
if(card_key == NULL) { if(card_key == NULL) {
poller_context.auth_ctx.skip_auth = true; poller_context.auth_ctx.skip_auth = true;
} else { } else {
@@ -54,6 +54,7 @@ FelicaError felica_poller_sync_read(Nfc* nfc, FelicaData* data, const FelicaCard
} }
poller_context.thread_id = furi_thread_get_current_id(); poller_context.thread_id = furi_thread_get_current_id();
poller_context.data.data = felica_alloc();
NfcPoller* poller = nfc_poller_alloc(nfc, NfcProtocolFelica); NfcPoller* poller = nfc_poller_alloc(nfc, NfcProtocolFelica);
nfc_poller_start(poller, felica_poller_read_callback, &poller_context); nfc_poller_start(poller, felica_poller_read_callback, &poller_context);
furi_thread_flags_wait(FELICA_POLLER_FLAG_COMMAND_COMPLETE, FuriFlagWaitAny, FuriWaitForever); furi_thread_flags_wait(FELICA_POLLER_FLAG_COMMAND_COMPLETE, FuriFlagWaitAny, FuriWaitForever);
@@ -63,8 +64,10 @@ FelicaError felica_poller_sync_read(Nfc* nfc, FelicaData* data, const FelicaCard
nfc_poller_free(poller); nfc_poller_free(poller);
if(poller_context.error == FelicaErrorNone) { if(poller_context.error == FelicaErrorNone) {
*data = poller_context.data; felica_copy(data, poller_context.data.data);
} }
felica_free(poller_context.data.data);
return poller_context.error; return poller_context.error;
} }

View File

@@ -1,7 +1,7 @@
#pragma once #pragma once
#include "base.h" #include "base.h"
#define SUBGHZ_PROTOCOL_ALUTECH_AT_4N_NAME "Alutech at-4n" #define SUBGHZ_PROTOCOL_ALUTECH_AT_4N_NAME "Alutech AT-4N"
typedef struct SubGhzProtocolDecoderAlutech_at_4n SubGhzProtocolDecoderAlutech_at_4n; typedef struct SubGhzProtocolDecoderAlutech_at_4n SubGhzProtocolDecoderAlutech_at_4n;
typedef struct SubGhzProtocolEncoderAlutech_at_4n SubGhzProtocolEncoderAlutech_at_4n; typedef struct SubGhzProtocolEncoderAlutech_at_4n SubGhzProtocolEncoderAlutech_at_4n;

View File

@@ -244,8 +244,11 @@ void subghz_protocol_decoder_came_feed(void* context, bool level, uint32_t durat
switch(instance->decoder.parser_step) { switch(instance->decoder.parser_step) {
case CameDecoderStepReset: case CameDecoderStepReset:
if((!level) && (DURATION_DIFF(duration, subghz_protocol_came_const.te_short * 56) < if((!level) && (DURATION_DIFF(duration, subghz_protocol_came_const.te_short * 56) <
subghz_protocol_came_const.te_delta * 47)) { subghz_protocol_came_const.te_delta * 63)) {
// 17920 us + 7050 us = 24970 us max possible value old one
// delta = 150 us x 63 = 9450 us + 17920 us = 27370 us max possible value
//Found header CAME //Found header CAME
// 26700 us or 24000 us max possible values
instance->decoder.parser_step = CameDecoderStepFoundStartBit; instance->decoder.parser_step = CameDecoderStepFoundStartBit;
} }
break; break;

View File

@@ -260,6 +260,7 @@ SubGhzProtocolStatus
subghz_protocol_came_twee_remote_controller(&instance->generic); subghz_protocol_came_twee_remote_controller(&instance->generic);
subghz_protocol_encoder_came_twee_get_upload(instance); subghz_protocol_encoder_came_twee_get_upload(instance);
instance->encoder.front = 0; // reset position before start
instance->encoder.is_running = true; instance->encoder.is_running = true;
} while(false); } while(false);
@@ -269,6 +270,7 @@ SubGhzProtocolStatus
void subghz_protocol_encoder_came_twee_stop(void* context) { void subghz_protocol_encoder_came_twee_stop(void* context) {
SubGhzProtocolEncoderCameTwee* instance = context; SubGhzProtocolEncoderCameTwee* instance = context;
instance->encoder.is_running = false; instance->encoder.is_running = false;
instance->encoder.front = 0; // reset position
} }
LevelDuration subghz_protocol_encoder_came_twee_yield(void* context) { LevelDuration subghz_protocol_encoder_came_twee_yield(void* context) {

View File

@@ -308,7 +308,7 @@ void subghz_protocol_decoder_dooya_feed(void* context, bool level, uint32_t dura
* Analysis of received data * Analysis of received data
* @param instance Pointer to a SubGhzBlockGeneric* instance * @param instance Pointer to a SubGhzBlockGeneric* instance
*/ */
static void subghz_protocol_somfy_telis_check_remote_controller(SubGhzBlockGeneric* instance) { static void subghz_protocol_dooya_check_remote_controller(SubGhzBlockGeneric* instance) {
/* /*
* serial s/m ch key * serial s/m ch key
* long press down X * E1DC030533, 40b 111000011101110000000011 0000 0101 0011 0011 * long press down X * E1DC030533, 40b 111000011101110000000011 0000 0101 0011 0011
@@ -416,7 +416,7 @@ void subghz_protocol_decoder_dooya_get_string(void* context, FuriString* output)
furi_assert(context); furi_assert(context);
SubGhzProtocolDecoderDooya* instance = context; SubGhzProtocolDecoderDooya* instance = context;
subghz_protocol_somfy_telis_check_remote_controller(&instance->generic); subghz_protocol_dooya_check_remote_controller(&instance->generic);
furi_string_cat_printf( furi_string_cat_printf(
output, output,

View File

@@ -0,0 +1,352 @@
#include "feron.h"
#include "../blocks/const.h"
#include "../blocks/decoder.h"
#include "../blocks/encoder.h"
#include "../blocks/generic.h"
#include "../blocks/math.h"
#define TAG "SubGhzProtocolFeron"
static const SubGhzBlockConst subghz_protocol_feron_const = {
.te_short = 350,
.te_long = 750,
.te_delta = 150,
.min_count_bit_for_found = 32,
};
struct SubGhzProtocolDecoderFeron {
SubGhzProtocolDecoderBase base;
SubGhzBlockDecoder decoder;
SubGhzBlockGeneric generic;
};
struct SubGhzProtocolEncoderFeron {
SubGhzProtocolEncoderBase base;
SubGhzProtocolBlockEncoder encoder;
SubGhzBlockGeneric generic;
};
typedef enum {
FeronDecoderStepReset = 0,
FeronDecoderStepSaveDuration,
FeronDecoderStepCheckDuration,
} FeronDecoderStep;
const SubGhzProtocolDecoder subghz_protocol_feron_decoder = {
.alloc = subghz_protocol_decoder_feron_alloc,
.free = subghz_protocol_decoder_feron_free,
.feed = subghz_protocol_decoder_feron_feed,
.reset = subghz_protocol_decoder_feron_reset,
.get_hash_data = subghz_protocol_decoder_feron_get_hash_data,
.serialize = subghz_protocol_decoder_feron_serialize,
.deserialize = subghz_protocol_decoder_feron_deserialize,
.get_string = subghz_protocol_decoder_feron_get_string,
};
const SubGhzProtocolEncoder subghz_protocol_feron_encoder = {
.alloc = subghz_protocol_encoder_feron_alloc,
.free = subghz_protocol_encoder_feron_free,
.deserialize = subghz_protocol_encoder_feron_deserialize,
.stop = subghz_protocol_encoder_feron_stop,
.yield = subghz_protocol_encoder_feron_yield,
};
const SubGhzProtocol subghz_protocol_feron = {
.name = SUBGHZ_PROTOCOL_FERON_NAME,
.type = SubGhzProtocolTypeStatic,
.flag = SubGhzProtocolFlag_433 | SubGhzProtocolFlag_AM | SubGhzProtocolFlag_Decodable |
SubGhzProtocolFlag_Load | SubGhzProtocolFlag_Save | SubGhzProtocolFlag_Send,
.decoder = &subghz_protocol_feron_decoder,
.encoder = &subghz_protocol_feron_encoder,
};
void* subghz_protocol_encoder_feron_alloc(SubGhzEnvironment* environment) {
UNUSED(environment);
SubGhzProtocolEncoderFeron* instance = malloc(sizeof(SubGhzProtocolEncoderFeron));
instance->base.protocol = &subghz_protocol_feron;
instance->generic.protocol_name = instance->base.protocol->name;
instance->encoder.repeat = 10;
instance->encoder.size_upload = 256;
instance->encoder.upload = malloc(instance->encoder.size_upload * sizeof(LevelDuration));
instance->encoder.is_running = false;
return instance;
}
void subghz_protocol_encoder_feron_free(void* context) {
furi_assert(context);
SubGhzProtocolEncoderFeron* instance = context;
free(instance->encoder.upload);
free(instance);
}
/**
* Generating an upload from data.
* @param instance Pointer to a SubGhzProtocolEncoderFeron instance
*/
static void subghz_protocol_encoder_feron_get_upload(SubGhzProtocolEncoderFeron* instance) {
furi_assert(instance);
size_t index = 0;
// Send key and GAP
for(uint8_t i = instance->generic.data_count_bit; i > 0; i--) {
if(bit_read(instance->generic.data, i - 1)) {
// Send bit 1
instance->encoder.upload[index++] =
level_duration_make(true, (uint32_t)subghz_protocol_feron_const.te_long);
if(i == 1) {
//Send 500/500 and gap if bit was last
instance->encoder.upload[index++] = level_duration_make(
false, (uint32_t)subghz_protocol_feron_const.te_short + 150);
instance->encoder.upload[index++] = level_duration_make(
true, (uint32_t)subghz_protocol_feron_const.te_short + 150);
// Gap
instance->encoder.upload[index++] =
level_duration_make(false, (uint32_t)subghz_protocol_feron_const.te_long * 6);
} else {
instance->encoder.upload[index++] =
level_duration_make(false, (uint32_t)subghz_protocol_feron_const.te_short);
}
} else {
// Send bit 0
instance->encoder.upload[index++] =
level_duration_make(true, (uint32_t)subghz_protocol_feron_const.te_short);
if(i == 1) {
//Send 500/500 and gap if bit was last
instance->encoder.upload[index++] = level_duration_make(
false, (uint32_t)subghz_protocol_feron_const.te_short + 150);
instance->encoder.upload[index++] = level_duration_make(
true, (uint32_t)subghz_protocol_feron_const.te_short + 150);
// Gap
instance->encoder.upload[index++] =
level_duration_make(false, (uint32_t)subghz_protocol_feron_const.te_long * 6);
} else {
instance->encoder.upload[index++] =
level_duration_make(false, (uint32_t)subghz_protocol_feron_const.te_long);
}
}
}
instance->encoder.size_upload = index;
return;
}
/**
* Analysis of received data
* @param instance Pointer to a SubGhzBlockGeneric* instance
*/
static void subghz_protocol_feron_check_remote_controller(SubGhzBlockGeneric* instance) {
instance->serial = instance->data >> 16;
}
SubGhzProtocolStatus
subghz_protocol_encoder_feron_deserialize(void* context, FlipperFormat* flipper_format) {
furi_assert(context);
SubGhzProtocolEncoderFeron* instance = context;
SubGhzProtocolStatus ret = SubGhzProtocolStatusError;
do {
ret = subghz_block_generic_deserialize_check_count_bit(
&instance->generic,
flipper_format,
subghz_protocol_feron_const.min_count_bit_for_found);
if(ret != SubGhzProtocolStatusOk) {
break;
}
//optional parameter parameter
flipper_format_read_uint32(
flipper_format, "Repeat", (uint32_t*)&instance->encoder.repeat, 1);
subghz_protocol_feron_check_remote_controller(&instance->generic);
subghz_protocol_encoder_feron_get_upload(instance);
instance->encoder.front = 0;
instance->encoder.is_running = true;
} while(false);
return ret;
}
void subghz_protocol_encoder_feron_stop(void* context) {
SubGhzProtocolEncoderFeron* instance = context;
instance->encoder.is_running = false;
instance->encoder.front = 0;
}
LevelDuration subghz_protocol_encoder_feron_yield(void* context) {
SubGhzProtocolEncoderFeron* instance = context;
if(instance->encoder.repeat == 0 || !instance->encoder.is_running) {
instance->encoder.is_running = false;
return level_duration_reset();
}
LevelDuration ret = instance->encoder.upload[instance->encoder.front];
if(++instance->encoder.front == instance->encoder.size_upload) {
instance->encoder.repeat--;
instance->encoder.front = 0;
}
return ret;
}
void* subghz_protocol_decoder_feron_alloc(SubGhzEnvironment* environment) {
UNUSED(environment);
SubGhzProtocolDecoderFeron* instance = malloc(sizeof(SubGhzProtocolDecoderFeron));
instance->base.protocol = &subghz_protocol_feron;
instance->generic.protocol_name = instance->base.protocol->name;
return instance;
}
void subghz_protocol_decoder_feron_free(void* context) {
furi_assert(context);
SubGhzProtocolDecoderFeron* instance = context;
free(instance);
}
void subghz_protocol_decoder_feron_reset(void* context) {
furi_assert(context);
SubGhzProtocolDecoderFeron* instance = context;
instance->decoder.parser_step = FeronDecoderStepReset;
}
void subghz_protocol_decoder_feron_feed(void* context, bool level, volatile uint32_t duration) {
furi_assert(context);
SubGhzProtocolDecoderFeron* instance = context;
// Feron Decoder
// 2025.04 - @xMasterX (MMX)
// Key samples
/*
0110001100111000 1000010101111010 - ON
0110001100111000 1000010001111011 - OFF
0110001100111000 1000011001111001 - brightness up
0110001100111000 1000011101111000 - brightness down
0110001100111000 1000001001111101 - scroll mode command
------------------------------------------
0110001100111000 0111000010001111 - R
0110001100111000 0001101011100101 - B
0110001100111000 0100000010111111 - G
*/
switch(instance->decoder.parser_step) {
case FeronDecoderStepReset:
if((!level) && (DURATION_DIFF(duration, subghz_protocol_feron_const.te_long * 6) <
subghz_protocol_feron_const.te_delta * 4)) {
//Found GAP
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
instance->decoder.parser_step = FeronDecoderStepSaveDuration;
}
break;
case FeronDecoderStepSaveDuration:
if(level) {
instance->decoder.te_last = duration;
instance->decoder.parser_step = FeronDecoderStepCheckDuration;
} else {
instance->decoder.parser_step = FeronDecoderStepReset;
}
break;
case FeronDecoderStepCheckDuration:
if(!level) {
// Bit 0 is short and long timing = 350us HIGH (te_last) and 750us LOW
if((DURATION_DIFF(instance->decoder.te_last, subghz_protocol_feron_const.te_short) <
subghz_protocol_feron_const.te_delta) &&
(DURATION_DIFF(duration, subghz_protocol_feron_const.te_long) <
subghz_protocol_feron_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 0);
instance->decoder.parser_step = FeronDecoderStepSaveDuration;
// Bit 1 is long and short timing = 750us HIGH (te_last) and 350us LOW
} else if(
(DURATION_DIFF(instance->decoder.te_last, subghz_protocol_feron_const.te_long) <
subghz_protocol_feron_const.te_delta) &&
(DURATION_DIFF(duration, subghz_protocol_feron_const.te_short) <
subghz_protocol_feron_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 1);
instance->decoder.parser_step = FeronDecoderStepSaveDuration;
} else if(
// End of the key 500Low(we are here)/500High us
DURATION_DIFF(
duration, (uint16_t)(subghz_protocol_feron_const.te_short + (uint16_t)150)) <
subghz_protocol_feron_const.te_delta) {
if((DURATION_DIFF(instance->decoder.te_last, subghz_protocol_feron_const.te_short) <
subghz_protocol_feron_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 0);
}
if((DURATION_DIFF(instance->decoder.te_last, subghz_protocol_feron_const.te_long) <
subghz_protocol_feron_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 1);
}
// If got 32 bits key reading is finished
if(instance->decoder.decode_count_bit ==
subghz_protocol_feron_const.min_count_bit_for_found) {
instance->generic.data = instance->decoder.decode_data;
instance->generic.data_count_bit = instance->decoder.decode_count_bit;
if(instance->base.callback)
instance->base.callback(&instance->base, instance->base.context);
}
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
instance->decoder.parser_step = FeronDecoderStepReset;
} else {
instance->decoder.parser_step = FeronDecoderStepReset;
}
} else {
instance->decoder.parser_step = FeronDecoderStepReset;
}
break;
}
}
uint8_t subghz_protocol_decoder_feron_get_hash_data(void* context) {
furi_assert(context);
SubGhzProtocolDecoderFeron* instance = context;
return subghz_protocol_blocks_get_hash_data(
&instance->decoder, (instance->decoder.decode_count_bit / 8) + 1);
}
SubGhzProtocolStatus subghz_protocol_decoder_feron_serialize(
void* context,
FlipperFormat* flipper_format,
SubGhzRadioPreset* preset) {
furi_assert(context);
SubGhzProtocolDecoderFeron* instance = context;
return subghz_block_generic_serialize(&instance->generic, flipper_format, preset);
}
SubGhzProtocolStatus
subghz_protocol_decoder_feron_deserialize(void* context, FlipperFormat* flipper_format) {
furi_assert(context);
SubGhzProtocolDecoderFeron* instance = context;
return subghz_block_generic_deserialize_check_count_bit(
&instance->generic, flipper_format, subghz_protocol_feron_const.min_count_bit_for_found);
}
void subghz_protocol_decoder_feron_get_string(void* context, FuriString* output) {
furi_assert(context);
SubGhzProtocolDecoderFeron* instance = context;
subghz_protocol_feron_check_remote_controller(&instance->generic);
furi_string_cat_printf(
output,
"%s %db\r\n"
"Key: 0x%08lX\r\n"
"Serial: 0x%04lX\r\n"
"Command: 0x%04lX\r\n",
instance->generic.protocol_name,
instance->generic.data_count_bit,
(uint32_t)(instance->generic.data & 0xFFFFFFFF),
instance->generic.serial,
(uint32_t)(instance->generic.data & 0xFFFF));
}

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@@ -0,0 +1,109 @@
#pragma once
#include "base.h"
#define SUBGHZ_PROTOCOL_FERON_NAME "Feron"
typedef struct SubGhzProtocolDecoderFeron SubGhzProtocolDecoderFeron;
typedef struct SubGhzProtocolEncoderFeron SubGhzProtocolEncoderFeron;
extern const SubGhzProtocolDecoder subghz_protocol_feron_decoder;
extern const SubGhzProtocolEncoder subghz_protocol_feron_encoder;
extern const SubGhzProtocol subghz_protocol_feron;
/**
* Allocate SubGhzProtocolEncoderFeron.
* @param environment Pointer to a SubGhzEnvironment instance
* @return SubGhzProtocolEncoderFeron* pointer to a SubGhzProtocolEncoderFeron instance
*/
void* subghz_protocol_encoder_feron_alloc(SubGhzEnvironment* environment);
/**
* Free SubGhzProtocolEncoderFeron.
* @param context Pointer to a SubGhzProtocolEncoderFeron instance
*/
void subghz_protocol_encoder_feron_free(void* context);
/**
* Deserialize and generating an upload to send.
* @param context Pointer to a SubGhzProtocolEncoderFeron instance
* @param flipper_format Pointer to a FlipperFormat instance
* @return status
*/
SubGhzProtocolStatus
subghz_protocol_encoder_feron_deserialize(void* context, FlipperFormat* flipper_format);
/**
* Forced transmission stop.
* @param context Pointer to a SubGhzProtocolEncoderFeron instance
*/
void subghz_protocol_encoder_feron_stop(void* context);
/**
* Getting the level and duration of the upload to be loaded into DMA.
* @param context Pointer to a SubGhzProtocolEncoderFeron instance
* @return LevelDuration
*/
LevelDuration subghz_protocol_encoder_feron_yield(void* context);
/**
* Allocate SubGhzProtocolDecoderFeron.
* @param environment Pointer to a SubGhzEnvironment instance
* @return SubGhzProtocolDecoderFeron* pointer to a SubGhzProtocolDecoderFeron instance
*/
void* subghz_protocol_decoder_feron_alloc(SubGhzEnvironment* environment);
/**
* Free SubGhzProtocolDecoderFeron.
* @param context Pointer to a SubGhzProtocolDecoderFeron instance
*/
void subghz_protocol_decoder_feron_free(void* context);
/**
* Reset decoder SubGhzProtocolDecoderFeron.
* @param context Pointer to a SubGhzProtocolDecoderFeron instance
*/
void subghz_protocol_decoder_feron_reset(void* context);
/**
* Parse a raw sequence of levels and durations received from the air.
* @param context Pointer to a SubGhzProtocolDecoderFeron instance
* @param level Signal level true-high false-low
* @param duration Duration of this level in, us
*/
void subghz_protocol_decoder_feron_feed(void* context, bool level, uint32_t duration);
/**
* Getting the hash sum of the last randomly received parcel.
* @param context Pointer to a SubGhzProtocolDecoderFeron instance
* @return hash Hash sum
*/
uint8_t subghz_protocol_decoder_feron_get_hash_data(void* context);
/**
* Serialize data SubGhzProtocolDecoderFeron.
* @param context Pointer to a SubGhzProtocolDecoderFeron instance
* @param flipper_format Pointer to a FlipperFormat instance
* @param preset The modulation on which the signal was received, SubGhzRadioPreset
* @return status
*/
SubGhzProtocolStatus subghz_protocol_decoder_feron_serialize(
void* context,
FlipperFormat* flipper_format,
SubGhzRadioPreset* preset);
/**
* Deserialize data SubGhzProtocolDecoderFeron.
* @param context Pointer to a SubGhzProtocolDecoderFeron instance
* @param flipper_format Pointer to a FlipperFormat instance
* @return status
*/
SubGhzProtocolStatus
subghz_protocol_decoder_feron_deserialize(void* context, FlipperFormat* flipper_format);
/**
* Getting a textual representation of the received data.
* @param context Pointer to a SubGhzProtocolDecoderFeron instance
* @param output Resulting text
*/
void subghz_protocol_decoder_feron_get_string(void* context, FuriString* output);

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@@ -0,0 +1,407 @@
#include "gangqi.h"
#include "../blocks/const.h"
#include "../blocks/decoder.h"
#include "../blocks/encoder.h"
#include "../blocks/generic.h"
#include "../blocks/math.h"
#define TAG "SubGhzProtocolGangQi"
static const SubGhzBlockConst subghz_protocol_gangqi_const = {
.te_short = 500,
.te_long = 1200,
.te_delta = 200,
.min_count_bit_for_found = 34,
};
struct SubGhzProtocolDecoderGangQi {
SubGhzProtocolDecoderBase base;
SubGhzBlockDecoder decoder;
SubGhzBlockGeneric generic;
};
struct SubGhzProtocolEncoderGangQi {
SubGhzProtocolEncoderBase base;
SubGhzProtocolBlockEncoder encoder;
SubGhzBlockGeneric generic;
};
typedef enum {
GangQiDecoderStepReset = 0,
GangQiDecoderStepSaveDuration,
GangQiDecoderStepCheckDuration,
} GangQiDecoderStep;
const SubGhzProtocolDecoder subghz_protocol_gangqi_decoder = {
.alloc = subghz_protocol_decoder_gangqi_alloc,
.free = subghz_protocol_decoder_gangqi_free,
.feed = subghz_protocol_decoder_gangqi_feed,
.reset = subghz_protocol_decoder_gangqi_reset,
.get_hash_data = subghz_protocol_decoder_gangqi_get_hash_data,
.serialize = subghz_protocol_decoder_gangqi_serialize,
.deserialize = subghz_protocol_decoder_gangqi_deserialize,
.get_string = subghz_protocol_decoder_gangqi_get_string,
};
const SubGhzProtocolEncoder subghz_protocol_gangqi_encoder = {
.alloc = subghz_protocol_encoder_gangqi_alloc,
.free = subghz_protocol_encoder_gangqi_free,
.deserialize = subghz_protocol_encoder_gangqi_deserialize,
.stop = subghz_protocol_encoder_gangqi_stop,
.yield = subghz_protocol_encoder_gangqi_yield,
};
const SubGhzProtocol subghz_protocol_gangqi = {
.name = SUBGHZ_PROTOCOL_GANGQI_NAME,
.type = SubGhzProtocolTypeStatic,
.flag = SubGhzProtocolFlag_433 | SubGhzProtocolFlag_AM | SubGhzProtocolFlag_Decodable |
SubGhzProtocolFlag_Load | SubGhzProtocolFlag_Save | SubGhzProtocolFlag_Send,
.decoder = &subghz_protocol_gangqi_decoder,
.encoder = &subghz_protocol_gangqi_encoder,
};
void* subghz_protocol_encoder_gangqi_alloc(SubGhzEnvironment* environment) {
UNUSED(environment);
SubGhzProtocolEncoderGangQi* instance = malloc(sizeof(SubGhzProtocolEncoderGangQi));
instance->base.protocol = &subghz_protocol_gangqi;
instance->generic.protocol_name = instance->base.protocol->name;
instance->encoder.repeat = 10;
instance->encoder.size_upload = 1024;
instance->encoder.upload = malloc(instance->encoder.size_upload * sizeof(LevelDuration));
instance->encoder.is_running = false;
return instance;
}
void subghz_protocol_encoder_gangqi_free(void* context) {
furi_assert(context);
SubGhzProtocolEncoderGangQi* instance = context;
free(instance->encoder.upload);
free(instance);
}
/**
* Generating an upload from data.
* @param instance Pointer to a SubGhzProtocolEncoderGangQi instance
*/
static void subghz_protocol_encoder_gangqi_get_upload(SubGhzProtocolEncoderGangQi* instance) {
furi_assert(instance);
// Generate new key
uint16_t serial = (uint16_t)((instance->generic.data >> 18) & 0xFFFF);
uint8_t const_and_button = (uint8_t)(0xD0 | instance->generic.btn);
uint8_t serial_high = (uint8_t)(serial >> 8);
uint8_t serial_low = (uint8_t)(serial & 0xFF);
uint8_t bytesum = (uint8_t)(0xC8 - serial_high - serial_low - const_and_button);
instance->generic.data = (instance->generic.data >> 14) << 14 | (instance->generic.btn << 10) |
(bytesum << 2);
size_t index = 0;
instance->encoder.upload[index++] =
level_duration_make(false, (uint32_t)subghz_protocol_gangqi_const.te_long * 2);
for(size_t r = 0; r < 5; r++) {
// Send key and GAP between parcels
for(uint8_t i = instance->generic.data_count_bit; i > 0; i--) {
if(bit_read(instance->generic.data, i - 1)) {
// Send bit 1
instance->encoder.upload[index++] =
level_duration_make(true, (uint32_t)subghz_protocol_gangqi_const.te_long);
if(i == 1) {
//Send gap if bit was last
instance->encoder.upload[index++] = level_duration_make(
false,
(uint32_t)subghz_protocol_gangqi_const.te_short * 4 +
subghz_protocol_gangqi_const.te_delta);
} else {
instance->encoder.upload[index++] = level_duration_make(
false, (uint32_t)subghz_protocol_gangqi_const.te_short);
}
} else {
// Send bit 0
instance->encoder.upload[index++] =
level_duration_make(true, (uint32_t)subghz_protocol_gangqi_const.te_short);
if(i == 1) {
//Send gap if bit was last
instance->encoder.upload[index++] = level_duration_make(
false,
(uint32_t)subghz_protocol_gangqi_const.te_short * 4 +
subghz_protocol_gangqi_const.te_delta);
} else {
instance->encoder.upload[index++] =
level_duration_make(false, (uint32_t)subghz_protocol_gangqi_const.te_long);
}
}
}
}
instance->encoder.size_upload = index;
return;
}
/**
* Analysis of received data and parsing serial number
* @param instance Pointer to a SubGhzBlockGeneric* instance
*/
static void subghz_protocol_gangqi_remote_controller(SubGhzBlockGeneric* instance) {
instance->btn = (instance->data >> 10) & 0xF;
instance->serial = (instance->data & 0xFFFFF0000) >> 16;
// GangQi Decoder
// 09.2024 - @xMasterX (MMX) (last update - bytesum calculation at 02.2025)
// Thanks @Skorpionm for support!
// Thanks @Drone1950 and @mishamyte (who spent 2 weeks on this) for making this work properly
// Example of correct bytesum calculation
// 0xC8 - serial_high - serial_low - constant_and_button
}
SubGhzProtocolStatus
subghz_protocol_encoder_gangqi_deserialize(void* context, FlipperFormat* flipper_format) {
furi_assert(context);
SubGhzProtocolEncoderGangQi* instance = context;
SubGhzProtocolStatus ret = SubGhzProtocolStatusError;
do {
ret = subghz_block_generic_deserialize_check_count_bit(
&instance->generic,
flipper_format,
subghz_protocol_gangqi_const.min_count_bit_for_found);
if(ret != SubGhzProtocolStatusOk) {
break;
}
//optional parameter parameter
flipper_format_read_uint32(
flipper_format, "Repeat", (uint32_t*)&instance->encoder.repeat, 1);
subghz_protocol_gangqi_remote_controller(&instance->generic);
subghz_protocol_encoder_gangqi_get_upload(instance);
instance->encoder.front = 0;
if(!flipper_format_rewind(flipper_format)) {
FURI_LOG_E(TAG, "Rewind error");
break;
}
uint8_t key_data[sizeof(uint64_t)] = {0};
for(size_t i = 0; i < sizeof(uint64_t); i++) {
key_data[sizeof(uint64_t) - i - 1] = (instance->generic.data >> (i * 8)) & 0xFF;
}
if(!flipper_format_update_hex(flipper_format, "Key", key_data, sizeof(uint64_t))) {
FURI_LOG_E(TAG, "Unable to add Key");
break;
}
instance->encoder.is_running = true;
} while(false);
return ret;
}
void subghz_protocol_encoder_gangqi_stop(void* context) {
SubGhzProtocolEncoderGangQi* instance = context;
instance->encoder.is_running = false;
instance->encoder.front = 0;
}
LevelDuration subghz_protocol_encoder_gangqi_yield(void* context) {
SubGhzProtocolEncoderGangQi* instance = context;
if(instance->encoder.repeat == 0 || !instance->encoder.is_running) {
instance->encoder.is_running = false;
return level_duration_reset();
}
LevelDuration ret = instance->encoder.upload[instance->encoder.front];
if(++instance->encoder.front == instance->encoder.size_upload) {
instance->encoder.repeat--;
instance->encoder.front = 0;
}
return ret;
}
void* subghz_protocol_decoder_gangqi_alloc(SubGhzEnvironment* environment) {
UNUSED(environment);
SubGhzProtocolDecoderGangQi* instance = malloc(sizeof(SubGhzProtocolDecoderGangQi));
instance->base.protocol = &subghz_protocol_gangqi;
instance->generic.protocol_name = instance->base.protocol->name;
return instance;
}
void subghz_protocol_decoder_gangqi_free(void* context) {
furi_assert(context);
SubGhzProtocolDecoderGangQi* instance = context;
free(instance);
}
void subghz_protocol_decoder_gangqi_reset(void* context) {
furi_assert(context);
SubGhzProtocolDecoderGangQi* instance = context;
instance->decoder.parser_step = GangQiDecoderStepReset;
}
void subghz_protocol_decoder_gangqi_feed(void* context, bool level, volatile uint32_t duration) {
furi_assert(context);
SubGhzProtocolDecoderGangQi* instance = context;
switch(instance->decoder.parser_step) {
case GangQiDecoderStepReset:
if((!level) && (DURATION_DIFF(duration, subghz_protocol_gangqi_const.te_long * 2) <
subghz_protocol_gangqi_const.te_delta * 5)) {
//Found GAP
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
instance->decoder.parser_step = GangQiDecoderStepSaveDuration;
}
break;
case GangQiDecoderStepSaveDuration:
if(level) {
instance->decoder.te_last = duration;
instance->decoder.parser_step = GangQiDecoderStepCheckDuration;
} else {
instance->decoder.parser_step = GangQiDecoderStepReset;
}
break;
case GangQiDecoderStepCheckDuration:
if(!level) {
// Bit 0 is short and long timing
if((DURATION_DIFF(instance->decoder.te_last, subghz_protocol_gangqi_const.te_short) <
subghz_protocol_gangqi_const.te_delta) &&
(DURATION_DIFF(duration, subghz_protocol_gangqi_const.te_long) <
subghz_protocol_gangqi_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 0);
instance->decoder.parser_step = GangQiDecoderStepSaveDuration;
// Bit 1 is long and short timing
} else if(
(DURATION_DIFF(instance->decoder.te_last, subghz_protocol_gangqi_const.te_long) <
subghz_protocol_gangqi_const.te_delta) &&
(DURATION_DIFF(duration, subghz_protocol_gangqi_const.te_short) <
subghz_protocol_gangqi_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 1);
instance->decoder.parser_step = GangQiDecoderStepSaveDuration;
} else if(
// End of the key
DURATION_DIFF(duration, subghz_protocol_gangqi_const.te_long * 2) <
subghz_protocol_gangqi_const.te_delta * 5) {
//Found next GAP and add bit 0 or 1 (only bit 0 was found on the remotes)
if((DURATION_DIFF(
instance->decoder.te_last, subghz_protocol_gangqi_const.te_short) <
subghz_protocol_gangqi_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 0);
}
if((DURATION_DIFF(instance->decoder.te_last, subghz_protocol_gangqi_const.te_long) <
subghz_protocol_gangqi_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 1);
}
// If got 34 bits key reading is finished
if(instance->decoder.decode_count_bit ==
subghz_protocol_gangqi_const.min_count_bit_for_found) {
instance->generic.data = instance->decoder.decode_data;
instance->generic.data_count_bit = instance->decoder.decode_count_bit;
if(instance->base.callback)
instance->base.callback(&instance->base, instance->base.context);
}
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
instance->decoder.parser_step = GangQiDecoderStepReset;
} else {
instance->decoder.parser_step = GangQiDecoderStepReset;
}
} else {
instance->decoder.parser_step = GangQiDecoderStepReset;
}
break;
}
}
/**
* Get button name.
* @param btn Button number, 4 bit
*/
static const char* subghz_protocol_gangqi_get_button_name(uint8_t btn) {
const char* name_btn[16] = {
"Unknown",
"Exit settings",
"Volume setting",
"0x3",
"Vibro sens. setting",
"Settings mode",
"Ringtone setting",
"Ring", // D
"0x8",
"0x9",
"0xA",
"Alarm", // C
"0xC",
"Arm", // A
"Disarm", // B
"0xF"};
return btn <= 0xf ? name_btn[btn] : name_btn[0];
}
uint8_t subghz_protocol_decoder_gangqi_get_hash_data(void* context) {
furi_assert(context);
SubGhzProtocolDecoderGangQi* instance = context;
return subghz_protocol_blocks_get_hash_data(
&instance->decoder, (instance->decoder.decode_count_bit / 8) + 1);
}
SubGhzProtocolStatus subghz_protocol_decoder_gangqi_serialize(
void* context,
FlipperFormat* flipper_format,
SubGhzRadioPreset* preset) {
furi_assert(context);
SubGhzProtocolDecoderGangQi* instance = context;
return subghz_block_generic_serialize(&instance->generic, flipper_format, preset);
}
SubGhzProtocolStatus
subghz_protocol_decoder_gangqi_deserialize(void* context, FlipperFormat* flipper_format) {
furi_assert(context);
SubGhzProtocolDecoderGangQi* instance = context;
return subghz_block_generic_deserialize_check_count_bit(
&instance->generic, flipper_format, subghz_protocol_gangqi_const.min_count_bit_for_found);
}
void subghz_protocol_decoder_gangqi_get_string(void* context, FuriString* output) {
furi_assert(context);
SubGhzProtocolDecoderGangQi* instance = context;
// Parse serial
subghz_protocol_gangqi_remote_controller(&instance->generic);
// Get byte sum
uint16_t serial = (uint16_t)((instance->generic.data >> 18) & 0xFFFF);
uint8_t const_and_button = (uint8_t)(0xD0 | instance->generic.btn);
uint8_t serial_high = (uint8_t)(serial >> 8);
uint8_t serial_low = (uint8_t)(serial & 0xFF);
// Type 1 is what original remotes use, type 2 is "backdoor" sum that receiver accepts too
uint8_t sum_type1 = (uint8_t)(0xC8 - serial_high - serial_low - const_and_button);
uint8_t sum_type2 = (uint8_t)(0x02 + serial_high + serial_low + const_and_button);
furi_string_cat_printf(
output,
"%s %db\r\n"
"Key: 0x%X%08lX\r\n"
"Serial: 0x%05lX\r\n"
"Sum: 0x%02X Sum2: 0x%02X\r\n"
"Btn: 0x%01X - %s\r\n",
instance->generic.protocol_name,
instance->generic.data_count_bit,
(uint8_t)(instance->generic.data >> 32),
(uint32_t)(instance->generic.data & 0xFFFFFFFF),
instance->generic.serial,
sum_type1,
sum_type2,
instance->generic.btn,
subghz_protocol_gangqi_get_button_name(instance->generic.btn));
}

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#pragma once
#include "base.h"
#define SUBGHZ_PROTOCOL_GANGQI_NAME "GangQi"
typedef struct SubGhzProtocolDecoderGangQi SubGhzProtocolDecoderGangQi;
typedef struct SubGhzProtocolEncoderGangQi SubGhzProtocolEncoderGangQi;
extern const SubGhzProtocolDecoder subghz_protocol_gangqi_decoder;
extern const SubGhzProtocolEncoder subghz_protocol_gangqi_encoder;
extern const SubGhzProtocol subghz_protocol_gangqi;
/**
* Allocate SubGhzProtocolEncoderGangQi.
* @param environment Pointer to a SubGhzEnvironment instance
* @return SubGhzProtocolEncoderGangQi* pointer to a SubGhzProtocolEncoderGangQi instance
*/
void* subghz_protocol_encoder_gangqi_alloc(SubGhzEnvironment* environment);
/**
* Free SubGhzProtocolEncoderGangQi.
* @param context Pointer to a SubGhzProtocolEncoderGangQi instance
*/
void subghz_protocol_encoder_gangqi_free(void* context);
/**
* Deserialize and generating an upload to send.
* @param context Pointer to a SubGhzProtocolEncoderGangQi instance
* @param flipper_format Pointer to a FlipperFormat instance
* @return status
*/
SubGhzProtocolStatus
subghz_protocol_encoder_gangqi_deserialize(void* context, FlipperFormat* flipper_format);
/**
* Forced transmission stop.
* @param context Pointer to a SubGhzProtocolEncoderGangQi instance
*/
void subghz_protocol_encoder_gangqi_stop(void* context);
/**
* Getting the level and duration of the upload to be loaded into DMA.
* @param context Pointer to a SubGhzProtocolEncoderGangQi instance
* @return LevelDuration
*/
LevelDuration subghz_protocol_encoder_gangqi_yield(void* context);
/**
* Allocate SubGhzProtocolDecoderGangQi.
* @param environment Pointer to a SubGhzEnvironment instance
* @return SubGhzProtocolDecoderGangQi* pointer to a SubGhzProtocolDecoderGangQi instance
*/
void* subghz_protocol_decoder_gangqi_alloc(SubGhzEnvironment* environment);
/**
* Free SubGhzProtocolDecoderGangQi.
* @param context Pointer to a SubGhzProtocolDecoderGangQi instance
*/
void subghz_protocol_decoder_gangqi_free(void* context);
/**
* Reset decoder SubGhzProtocolDecoderGangQi.
* @param context Pointer to a SubGhzProtocolDecoderGangQi instance
*/
void subghz_protocol_decoder_gangqi_reset(void* context);
/**
* Parse a raw sequence of levels and durations received from the air.
* @param context Pointer to a SubGhzProtocolDecoderGangQi instance
* @param level Signal level true-high false-low
* @param duration Duration of this level in, us
*/
void subghz_protocol_decoder_gangqi_feed(void* context, bool level, uint32_t duration);
/**
* Getting the hash sum of the last randomly received parcel.
* @param context Pointer to a SubGhzProtocolDecoderGangQi instance
* @return hash Hash sum
*/
uint8_t subghz_protocol_decoder_gangqi_get_hash_data(void* context);
/**
* Serialize data SubGhzProtocolDecoderGangQi.
* @param context Pointer to a SubGhzProtocolDecoderGangQi instance
* @param flipper_format Pointer to a FlipperFormat instance
* @param preset The modulation on which the signal was received, SubGhzRadioPreset
* @return status
*/
SubGhzProtocolStatus subghz_protocol_decoder_gangqi_serialize(
void* context,
FlipperFormat* flipper_format,
SubGhzRadioPreset* preset);
/**
* Deserialize data SubGhzProtocolDecoderGangQi.
* @param context Pointer to a SubGhzProtocolDecoderGangQi instance
* @param flipper_format Pointer to a FlipperFormat instance
* @return status
*/
SubGhzProtocolStatus
subghz_protocol_decoder_gangqi_deserialize(void* context, FlipperFormat* flipper_format);
/**
* Getting a textual representation of the received data.
* @param context Pointer to a SubGhzProtocolDecoderGangQi instance
* @param output Resulting text
*/
void subghz_protocol_decoder_gangqi_get_string(void* context, FuriString* output);

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#include "hay21.h"
#include "../blocks/const.h"
#include "../blocks/decoder.h"
#include "../blocks/encoder.h"
#include "../blocks/generic.h"
#include "../blocks/math.h"
#define TAG "SubGhzProtocolHay21"
static const SubGhzBlockConst subghz_protocol_hay21_const = {
.te_short = 300,
.te_long = 700,
.te_delta = 150,
.min_count_bit_for_found = 21,
};
struct SubGhzProtocolDecoderHay21 {
SubGhzProtocolDecoderBase base;
SubGhzBlockDecoder decoder;
SubGhzBlockGeneric generic;
};
struct SubGhzProtocolEncoderHay21 {
SubGhzProtocolEncoderBase base;
SubGhzProtocolBlockEncoder encoder;
SubGhzBlockGeneric generic;
};
typedef enum {
Hay21DecoderStepReset = 0,
Hay21DecoderStepSaveDuration,
Hay21DecoderStepCheckDuration,
} Hay21DecoderStep;
const SubGhzProtocolDecoder subghz_protocol_hay21_decoder = {
.alloc = subghz_protocol_decoder_hay21_alloc,
.free = subghz_protocol_decoder_hay21_free,
.feed = subghz_protocol_decoder_hay21_feed,
.reset = subghz_protocol_decoder_hay21_reset,
.get_hash_data = subghz_protocol_decoder_hay21_get_hash_data,
.serialize = subghz_protocol_decoder_hay21_serialize,
.deserialize = subghz_protocol_decoder_hay21_deserialize,
.get_string = subghz_protocol_decoder_hay21_get_string,
};
const SubGhzProtocolEncoder subghz_protocol_hay21_encoder = {
.alloc = NULL,
.free = NULL,
.deserialize = NULL,
.stop = NULL,
.yield = NULL,
};
const SubGhzProtocol subghz_protocol_hay21 = {
.name = SUBGHZ_PROTOCOL_HAY21_NAME,
.type = SubGhzProtocolTypeDynamic,
.flag = SubGhzProtocolFlag_433 | SubGhzProtocolFlag_AM | SubGhzProtocolFlag_Decodable,
.decoder = &subghz_protocol_hay21_decoder,
.encoder = &subghz_protocol_hay21_encoder,
};
/**
* Analysis of received data and parsing serial number
* @param instance Pointer to a SubGhzBlockGeneric* instance
*/
static void subghz_protocol_hay21_remote_controller(SubGhzBlockGeneric* instance) {
instance->btn = (instance->data >> 13) & 0xFF;
instance->serial = (instance->data >> 5) & 0xFF;
instance->cnt = (instance->data >> 1) & 0xF;
// Hay21 Decoder
// 09.2024 - @xMasterX (MMX)
// Key samples (inverted)
// button serial CNT (goes lower since 0/1 are inverted)
//14A84A = 000 10100101 01000010 0101 0 (cnt 5)
//14A848 = 000 10100101 01000010 0100 0 (cnt 4)
//14A846 = 000 10100101 01000010 0011 0 (cnt 3)
//14A844 = 000 10100101 01000010 0010 0 (cnt 2)
//14A842 = 000 10100101 01000010 0001 0 (cnt 1)
//14A840 = 000 10100101 01000010 0000 0 (cnt 0)
//14A85E = 000 10100101 01000010 1111 0 (cnt F)
//14A85C = 000 10100101 01000010 1110 0 (cnt E)
//14A85A = 000 10100101 01000010 1101 0 (cnt D)
//14A858 = 000 10100101 01000010 1100 0 (cnt C)
//14A856 = 000 10100101 01000010 1011 0 (cnt B)
// 0xA5 (Labeled as On/Off on the remote board)
// 0x3C (Labeled as Mode on the remote board)
// 0x42 (Serial)
// BTN Serial CNT
//078854 = 000 00111100 01000010 1010 0 (cnt A)
//078852 = 000 00111100 01000010 1001 0 (cnt 9)
//078850 = 000 00111100 01000010 1000 0 (cnt 8)
//07884E = 000 00111100 01000010 0111 0 (cnt 7)
// Inverted back
//1877B9 = 000 11000011 10111101 1100 1
//1877BB = 000 11000011 10111101 1101 1
//1877BD = 000 11000011 10111101 1110 1
//0B57BF = 000 01011010 10111101 1111 1
}
void* subghz_protocol_decoder_hay21_alloc(SubGhzEnvironment* environment) {
UNUSED(environment);
SubGhzProtocolDecoderHay21* instance = malloc(sizeof(SubGhzProtocolDecoderHay21));
instance->base.protocol = &subghz_protocol_hay21;
instance->generic.protocol_name = instance->base.protocol->name;
return instance;
}
void subghz_protocol_decoder_hay21_free(void* context) {
furi_assert(context);
SubGhzProtocolDecoderHay21* instance = context;
free(instance);
}
void subghz_protocol_decoder_hay21_reset(void* context) {
furi_assert(context);
SubGhzProtocolDecoderHay21* instance = context;
instance->decoder.parser_step = Hay21DecoderStepReset;
}
void subghz_protocol_decoder_hay21_feed(void* context, bool level, volatile uint32_t duration) {
furi_assert(context);
SubGhzProtocolDecoderHay21* instance = context;
switch(instance->decoder.parser_step) {
case Hay21DecoderStepReset:
if((!level) && (DURATION_DIFF(duration, subghz_protocol_hay21_const.te_long * 6) <
subghz_protocol_hay21_const.te_delta * 3)) {
//Found GAP
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
instance->decoder.parser_step = Hay21DecoderStepSaveDuration;
}
break;
case Hay21DecoderStepSaveDuration:
if(level) {
instance->decoder.te_last = duration;
instance->decoder.parser_step = Hay21DecoderStepCheckDuration;
} else {
instance->decoder.parser_step = Hay21DecoderStepReset;
}
break;
case Hay21DecoderStepCheckDuration:
if(!level) {
// Bit 1 is long + short timing
if((DURATION_DIFF(instance->decoder.te_last, subghz_protocol_hay21_const.te_long) <
subghz_protocol_hay21_const.te_delta) &&
(DURATION_DIFF(duration, subghz_protocol_hay21_const.te_short) <
subghz_protocol_hay21_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 1);
instance->decoder.parser_step = Hay21DecoderStepSaveDuration;
// Bit 0 is short + long timing
} else if(
(DURATION_DIFF(instance->decoder.te_last, subghz_protocol_hay21_const.te_short) <
subghz_protocol_hay21_const.te_delta) &&
(DURATION_DIFF(duration, subghz_protocol_hay21_const.te_long) <
subghz_protocol_hay21_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 0);
instance->decoder.parser_step = Hay21DecoderStepSaveDuration;
} else if(
// End of the key
DURATION_DIFF(duration, subghz_protocol_hay21_const.te_long * 6) <
subghz_protocol_hay21_const.te_delta * 2) {
//Found next GAP and add bit 0 or 1
if((DURATION_DIFF(instance->decoder.te_last, subghz_protocol_hay21_const.te_long) <
subghz_protocol_hay21_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 1);
}
if((DURATION_DIFF(instance->decoder.te_last, subghz_protocol_hay21_const.te_short) <
subghz_protocol_hay21_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 0);
}
// If got 21 bits key reading is finished
if(instance->decoder.decode_count_bit ==
subghz_protocol_hay21_const.min_count_bit_for_found) {
instance->generic.data = instance->decoder.decode_data;
instance->generic.data_count_bit = instance->decoder.decode_count_bit;
if(instance->base.callback)
instance->base.callback(&instance->base, instance->base.context);
}
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
instance->decoder.parser_step = Hay21DecoderStepReset;
} else {
instance->decoder.parser_step = Hay21DecoderStepReset;
}
} else {
instance->decoder.parser_step = Hay21DecoderStepReset;
}
break;
}
}
/**
* Get button name.
* @param btn Button number, 4 bit
*/
static const char* subghz_protocol_hay21_get_button_name(uint8_t btn) {
const char* btn_name;
switch(btn) {
case 0x5A:
btn_name = "On/Off";
break;
case 0xC3:
btn_name = "Mode";
break;
case 0x88:
btn_name = "Hold";
break;
default:
btn_name = "Unknown";
break;
}
return btn_name;
}
uint8_t subghz_protocol_decoder_hay21_get_hash_data(void* context) {
furi_assert(context);
SubGhzProtocolDecoderHay21* instance = context;
return subghz_protocol_blocks_get_hash_data(
&instance->decoder, (instance->decoder.decode_count_bit / 8) + 1);
}
SubGhzProtocolStatus subghz_protocol_decoder_hay21_serialize(
void* context,
FlipperFormat* flipper_format,
SubGhzRadioPreset* preset) {
furi_assert(context);
SubGhzProtocolDecoderHay21* instance = context;
return subghz_block_generic_serialize(&instance->generic, flipper_format, preset);
}
SubGhzProtocolStatus
subghz_protocol_decoder_hay21_deserialize(void* context, FlipperFormat* flipper_format) {
furi_assert(context);
SubGhzProtocolDecoderHay21* instance = context;
return subghz_block_generic_deserialize_check_count_bit(
&instance->generic, flipper_format, subghz_protocol_hay21_const.min_count_bit_for_found);
}
void subghz_protocol_decoder_hay21_get_string(void* context, FuriString* output) {
furi_assert(context);
SubGhzProtocolDecoderHay21* instance = context;
// Parse serial, button, counter
subghz_protocol_hay21_remote_controller(&instance->generic);
furi_string_cat_printf(
output,
"%s - %dbit\r\n"
"Key: 0x%06lX\r\n"
"Serial: 0x%02X\r\n"
"Btn: 0x%01X - %s\r\n"
"Cnt: 0x%01X\r\n",
instance->generic.protocol_name,
instance->generic.data_count_bit,
(uint32_t)(instance->generic.data & 0xFFFFFFFF),
(uint8_t)(instance->generic.serial & 0xFF),
instance->generic.btn,
subghz_protocol_hay21_get_button_name(instance->generic.btn),
(uint8_t)(instance->generic.cnt & 0xF));
}

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#pragma once
#include "base.h"
#define SUBGHZ_PROTOCOL_HAY21_NAME "Hay21"
typedef struct SubGhzProtocolDecoderHay21 SubGhzProtocolDecoderHay21;
typedef struct SubGhzProtocolEncoderHay21 SubGhzProtocolEncoderHay21;
extern const SubGhzProtocolDecoder subghz_protocol_hay21_decoder;
extern const SubGhzProtocolEncoder subghz_protocol_hay21_encoder;
extern const SubGhzProtocol subghz_protocol_hay21;
/**
* Allocate SubGhzProtocolDecoderHay21.
* @param environment Pointer to a SubGhzEnvironment instance
* @return SubGhzProtocolDecoderHay21* pointer to a SubGhzProtocolDecoderHay21 instance
*/
void* subghz_protocol_decoder_hay21_alloc(SubGhzEnvironment* environment);
/**
* Free SubGhzProtocolDecoderHay21.
* @param context Pointer to a SubGhzProtocolDecoderHay21 instance
*/
void subghz_protocol_decoder_hay21_free(void* context);
/**
* Reset decoder SubGhzProtocolDecoderHay21.
* @param context Pointer to a SubGhzProtocolDecoderHay21 instance
*/
void subghz_protocol_decoder_hay21_reset(void* context);
/**
* Parse a raw sequence of levels and durations received from the air.
* @param context Pointer to a SubGhzProtocolDecoderHay21 instance
* @param level Signal level true-high false-low
* @param duration Duration of this level in, us
*/
void subghz_protocol_decoder_hay21_feed(void* context, bool level, uint32_t duration);
/**
* Getting the hash sum of the last randomly received parcel.
* @param context Pointer to a SubGhzProtocolDecoderHay21 instance
* @return hash Hash sum
*/
uint8_t subghz_protocol_decoder_hay21_get_hash_data(void* context);
/**
* Serialize data SubGhzProtocolDecoderHay21.
* @param context Pointer to a SubGhzProtocolDecoderHay21 instance
* @param flipper_format Pointer to a FlipperFormat instance
* @param preset The modulation on which the signal was received, SubGhzRadioPreset
* @return status
*/
SubGhzProtocolStatus subghz_protocol_decoder_hay21_serialize(
void* context,
FlipperFormat* flipper_format,
SubGhzRadioPreset* preset);
/**
* Deserialize data SubGhzProtocolDecoderHay21.
* @param context Pointer to a SubGhzProtocolDecoderHay21 instance
* @param flipper_format Pointer to a FlipperFormat instance
* @return status
*/
SubGhzProtocolStatus
subghz_protocol_decoder_hay21_deserialize(void* context, FlipperFormat* flipper_format);
/**
* Getting a textual representation of the received data.
* @param context Pointer to a SubGhzProtocolDecoderHay21 instance
* @param output Resulting text
*/
void subghz_protocol_decoder_hay21_get_string(void* context, FuriString* output);

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#include "hollarm.h"
#include "../blocks/const.h"
#include "../blocks/decoder.h"
#include "../blocks/encoder.h"
#include "../blocks/generic.h"
#include "../blocks/math.h"
#define TAG "SubGhzProtocolHollarm"
static const SubGhzBlockConst subghz_protocol_hollarm_const = {
.te_short = 200,
.te_long = 1000,
.te_delta = 200,
.min_count_bit_for_found = 42,
};
struct SubGhzProtocolDecoderHollarm {
SubGhzProtocolDecoderBase base;
SubGhzBlockDecoder decoder;
SubGhzBlockGeneric generic;
};
struct SubGhzProtocolEncoderHollarm {
SubGhzProtocolEncoderBase base;
SubGhzProtocolBlockEncoder encoder;
SubGhzBlockGeneric generic;
};
typedef enum {
HollarmDecoderStepReset = 0,
HollarmDecoderStepSaveDuration,
HollarmDecoderStepCheckDuration,
} HollarmDecoderStep;
const SubGhzProtocolDecoder subghz_protocol_hollarm_decoder = {
.alloc = subghz_protocol_decoder_hollarm_alloc,
.free = subghz_protocol_decoder_hollarm_free,
.feed = subghz_protocol_decoder_hollarm_feed,
.reset = subghz_protocol_decoder_hollarm_reset,
.get_hash_data = subghz_protocol_decoder_hollarm_get_hash_data,
.serialize = subghz_protocol_decoder_hollarm_serialize,
.deserialize = subghz_protocol_decoder_hollarm_deserialize,
.get_string = subghz_protocol_decoder_hollarm_get_string,
};
const SubGhzProtocolEncoder subghz_protocol_hollarm_encoder = {
.alloc = subghz_protocol_encoder_hollarm_alloc,
.free = subghz_protocol_encoder_hollarm_free,
.deserialize = subghz_protocol_encoder_hollarm_deserialize,
.stop = subghz_protocol_encoder_hollarm_stop,
.yield = subghz_protocol_encoder_hollarm_yield,
};
const SubGhzProtocol subghz_protocol_hollarm = {
.name = SUBGHZ_PROTOCOL_HOLLARM_NAME,
.type = SubGhzProtocolTypeStatic,
.flag = SubGhzProtocolFlag_433 | SubGhzProtocolFlag_AM | SubGhzProtocolFlag_Decodable |
SubGhzProtocolFlag_Load | SubGhzProtocolFlag_Save | SubGhzProtocolFlag_Send,
.decoder = &subghz_protocol_hollarm_decoder,
.encoder = &subghz_protocol_hollarm_encoder,
};
void* subghz_protocol_encoder_hollarm_alloc(SubGhzEnvironment* environment) {
UNUSED(environment);
SubGhzProtocolEncoderHollarm* instance = malloc(sizeof(SubGhzProtocolEncoderHollarm));
instance->base.protocol = &subghz_protocol_hollarm;
instance->generic.protocol_name = instance->base.protocol->name;
instance->encoder.repeat = 10;
instance->encoder.size_upload = 256;
instance->encoder.upload = malloc(instance->encoder.size_upload * sizeof(LevelDuration));
instance->encoder.is_running = false;
return instance;
}
void subghz_protocol_encoder_hollarm_free(void* context) {
furi_assert(context);
SubGhzProtocolEncoderHollarm* instance = context;
free(instance->encoder.upload);
free(instance);
}
/**
* Generating an upload from data.
* @param instance Pointer to a SubGhzProtocolEncoderHollarm instance
*/
static void subghz_protocol_encoder_hollarm_get_upload(SubGhzProtocolEncoderHollarm* instance) {
furi_assert(instance);
// Generate new key
uint64_t new_key = (instance->generic.data >> 12) << 12 | (instance->generic.btn << 8);
uint8_t bytesum = ((new_key >> 32) & 0xFF) + ((new_key >> 24) & 0xFF) +
((new_key >> 16) & 0xFF) + ((new_key >> 8) & 0xFF);
instance->generic.data = (new_key | bytesum);
size_t index = 0;
// Send key and GAP between parcels
for(uint8_t i = instance->generic.data_count_bit; i > 0; i--) {
// Read and prepare levels with 2 bit (was saved for better parsing) to the left offset to fit with the original remote transmission
if(bit_read((instance->generic.data << 2), i - 1)) {
// Send bit 1
instance->encoder.upload[index++] =
level_duration_make(true, (uint32_t)subghz_protocol_hollarm_const.te_short);
if(i == 1) {
//Send gap if bit was last
instance->encoder.upload[index++] = level_duration_make(
false, (uint32_t)subghz_protocol_hollarm_const.te_short * 12);
} else {
instance->encoder.upload[index++] = level_duration_make(
false, (uint32_t)subghz_protocol_hollarm_const.te_short * 8);
}
} else {
// Send bit 0
instance->encoder.upload[index++] =
level_duration_make(true, (uint32_t)subghz_protocol_hollarm_const.te_short);
if(i == 1) {
//Send gap if bit was last
instance->encoder.upload[index++] = level_duration_make(
false, (uint32_t)subghz_protocol_hollarm_const.te_short * 12);
} else {
instance->encoder.upload[index++] =
level_duration_make(false, (uint32_t)subghz_protocol_hollarm_const.te_long);
}
}
}
instance->encoder.size_upload = index;
return;
}
/**
* Analysis of received data and parsing serial number
* @param instance Pointer to a SubGhzBlockGeneric* instance
*/
static void subghz_protocol_hollarm_remote_controller(SubGhzBlockGeneric* instance) {
instance->btn = (instance->data >> 8) & 0xF;
instance->serial = (instance->data & 0xFFFFFFF0000) >> 16;
// Hollarm Decoder
// 09.2024 - @xMasterX (MMX)
// Thanks @Skorpionm for support!
// F0B93422FF = FF 8bit Sum
// F0B93421FE = FE 8bit Sum
// F0B9342401 = 01 8bit Sum
// F0B9342805 = 05 8bit Sum
// Serial (moved 2bit to right) | Btn | 8b previous 4 bytes sum
// 00001111000010111001001101000010 0010 11111111 btn = (0x2)
// 00001111000010111001001101000010 0001 11111110 btn = (0x1)
// 00001111000010111001001101000010 0100 00000001 btn = (0x4)
// 00001111000010111001001101000010 1000 00000101 btn = (0x8)
}
SubGhzProtocolStatus
subghz_protocol_encoder_hollarm_deserialize(void* context, FlipperFormat* flipper_format) {
furi_assert(context);
SubGhzProtocolEncoderHollarm* instance = context;
SubGhzProtocolStatus ret = SubGhzProtocolStatusError;
do {
ret = subghz_block_generic_deserialize_check_count_bit(
&instance->generic,
flipper_format,
subghz_protocol_hollarm_const.min_count_bit_for_found);
if(ret != SubGhzProtocolStatusOk) {
break;
}
//optional parameter parameter
flipper_format_read_uint32(
flipper_format, "Repeat", (uint32_t*)&instance->encoder.repeat, 1);
subghz_protocol_hollarm_remote_controller(&instance->generic);
subghz_protocol_encoder_hollarm_get_upload(instance);
instance->encoder.front = 0;
if(!flipper_format_rewind(flipper_format)) {
FURI_LOG_E(TAG, "Rewind error");
break;
}
uint8_t key_data[sizeof(uint64_t)] = {0};
for(size_t i = 0; i < sizeof(uint64_t); i++) {
key_data[sizeof(uint64_t) - i - 1] = (instance->generic.data >> (i * 8)) & 0xFF;
}
if(!flipper_format_update_hex(flipper_format, "Key", key_data, sizeof(uint64_t))) {
FURI_LOG_E(TAG, "Unable to add Key");
break;
}
instance->encoder.is_running = true;
} while(false);
return ret;
}
void subghz_protocol_encoder_hollarm_stop(void* context) {
SubGhzProtocolEncoderHollarm* instance = context;
instance->encoder.is_running = false;
instance->encoder.front = 0;
}
LevelDuration subghz_protocol_encoder_hollarm_yield(void* context) {
SubGhzProtocolEncoderHollarm* instance = context;
if(instance->encoder.repeat == 0 || !instance->encoder.is_running) {
instance->encoder.is_running = false;
return level_duration_reset();
}
LevelDuration ret = instance->encoder.upload[instance->encoder.front];
if(++instance->encoder.front == instance->encoder.size_upload) {
instance->encoder.repeat--;
instance->encoder.front = 0;
}
return ret;
}
void* subghz_protocol_decoder_hollarm_alloc(SubGhzEnvironment* environment) {
UNUSED(environment);
SubGhzProtocolDecoderHollarm* instance = malloc(sizeof(SubGhzProtocolDecoderHollarm));
instance->base.protocol = &subghz_protocol_hollarm;
instance->generic.protocol_name = instance->base.protocol->name;
return instance;
}
void subghz_protocol_decoder_hollarm_free(void* context) {
furi_assert(context);
SubGhzProtocolDecoderHollarm* instance = context;
free(instance);
}
void subghz_protocol_decoder_hollarm_reset(void* context) {
furi_assert(context);
SubGhzProtocolDecoderHollarm* instance = context;
instance->decoder.parser_step = HollarmDecoderStepReset;
}
void subghz_protocol_decoder_hollarm_feed(void* context, bool level, volatile uint32_t duration) {
furi_assert(context);
SubGhzProtocolDecoderHollarm* instance = context;
switch(instance->decoder.parser_step) {
case HollarmDecoderStepReset:
if((!level) && (DURATION_DIFF(duration, subghz_protocol_hollarm_const.te_short * 12) <
subghz_protocol_hollarm_const.te_delta * 2)) {
//Found GAP between parcels
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
instance->decoder.parser_step = HollarmDecoderStepSaveDuration;
}
break;
case HollarmDecoderStepSaveDuration:
// Save HIGH level timing for next step
if(level) {
instance->decoder.te_last = duration;
instance->decoder.parser_step = HollarmDecoderStepCheckDuration;
} else {
instance->decoder.parser_step = HollarmDecoderStepReset;
}
break;
case HollarmDecoderStepCheckDuration:
if(!level) {
// Bit 0 is short 200us HIGH + long 1000us LOW timing
if((DURATION_DIFF(instance->decoder.te_last, subghz_protocol_hollarm_const.te_short) <
subghz_protocol_hollarm_const.te_delta) &&
(DURATION_DIFF(duration, subghz_protocol_hollarm_const.te_long) <
subghz_protocol_hollarm_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 0);
instance->decoder.parser_step = HollarmDecoderStepSaveDuration;
// Bit 1 is short 200us HIGH + short x8 = 1600us LOW timing
} else if(
(DURATION_DIFF(instance->decoder.te_last, subghz_protocol_hollarm_const.te_short) <
subghz_protocol_hollarm_const.te_delta) &&
(DURATION_DIFF(duration, subghz_protocol_hollarm_const.te_short * 8) <
subghz_protocol_hollarm_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 1);
instance->decoder.parser_step = HollarmDecoderStepSaveDuration;
} else if(
// End of the key
DURATION_DIFF(duration, subghz_protocol_hollarm_const.te_short * 12) <
subghz_protocol_hollarm_const.te_delta) {
// When next GAP is found add bit 0 and do check for read finish
// (we have 42 high level pulses, last or first one may be a stop/start bit but we will parse it as zero)
subghz_protocol_blocks_add_bit(&instance->decoder, 0);
// If got 42 bits key reading is finished
if(instance->decoder.decode_count_bit ==
subghz_protocol_hollarm_const.min_count_bit_for_found) {
// Saving with 2bit to the right offset for proper parsing
instance->generic.data = (instance->decoder.decode_data >> 2);
instance->generic.data_count_bit = instance->decoder.decode_count_bit;
uint8_t bytesum = ((instance->generic.data >> 32) & 0xFF) +
((instance->generic.data >> 24) & 0xFF) +
((instance->generic.data >> 16) & 0xFF) +
((instance->generic.data >> 8) & 0xFF);
if(bytesum != (instance->generic.data & 0xFF)) {
// Check if the key is valid by verifying the sum
instance->generic.data = 0;
instance->generic.data_count_bit = 0;
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
instance->decoder.parser_step = HollarmDecoderStepReset;
break;
}
if(instance->base.callback)
instance->base.callback(&instance->base, instance->base.context);
}
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
instance->decoder.parser_step = HollarmDecoderStepReset;
} else {
instance->decoder.parser_step = HollarmDecoderStepReset;
}
} else {
instance->decoder.parser_step = HollarmDecoderStepReset;
}
break;
}
}
/**
* Get button name.
* @param btn Button number, 4 bit
*/
static const char* subghz_protocol_hollarm_get_button_name(uint8_t btn) {
const char* name_btn[16] = {
"Unknown",
"Disarm", // B (2)
"Arm", // A (1)
"0x3",
"Ringtone/Alarm", // C (3)
"0x5",
"0x6",
"0x7",
"Ring", // D (4)
"Settings mode",
"Exit settings",
"Vibro sens. setting",
"Not used\n(in settings)",
"Volume setting",
"0xE",
"0xF"};
return btn <= 0xf ? name_btn[btn] : name_btn[0];
}
uint8_t subghz_protocol_decoder_hollarm_get_hash_data(void* context) {
furi_assert(context);
SubGhzProtocolDecoderHollarm* instance = context;
return subghz_protocol_blocks_get_hash_data(
&instance->decoder, (instance->decoder.decode_count_bit / 8) + 1);
}
SubGhzProtocolStatus subghz_protocol_decoder_hollarm_serialize(
void* context,
FlipperFormat* flipper_format,
SubGhzRadioPreset* preset) {
furi_assert(context);
SubGhzProtocolDecoderHollarm* instance = context;
return subghz_block_generic_serialize(&instance->generic, flipper_format, preset);
}
SubGhzProtocolStatus
subghz_protocol_decoder_hollarm_deserialize(void* context, FlipperFormat* flipper_format) {
furi_assert(context);
SubGhzProtocolDecoderHollarm* instance = context;
return subghz_block_generic_deserialize_check_count_bit(
&instance->generic, flipper_format, subghz_protocol_hollarm_const.min_count_bit_for_found);
}
void subghz_protocol_decoder_hollarm_get_string(void* context, FuriString* output) {
furi_assert(context);
SubGhzProtocolDecoderHollarm* instance = context;
// Parse serial
subghz_protocol_hollarm_remote_controller(&instance->generic);
// Get byte sum
uint8_t bytesum =
((instance->generic.data >> 32) & 0xFF) + ((instance->generic.data >> 24) & 0xFF) +
((instance->generic.data >> 16) & 0xFF) + ((instance->generic.data >> 8) & 0xFF);
furi_string_cat_printf(
output,
"%s %db\r\n"
"Key: 0x%02lX%08lX\r\n"
"Serial: 0x%06lX Sum: %02X\r\n"
"Btn: 0x%01X - %s\r\n",
instance->generic.protocol_name,
instance->generic.data_count_bit,
(uint32_t)(instance->generic.data >> 32),
(uint32_t)instance->generic.data,
instance->generic.serial,
bytesum,
instance->generic.btn,
subghz_protocol_hollarm_get_button_name(instance->generic.btn));
}

View File

@@ -0,0 +1,109 @@
#pragma once
#include "base.h"
#define SUBGHZ_PROTOCOL_HOLLARM_NAME "Hollarm"
typedef struct SubGhzProtocolDecoderHollarm SubGhzProtocolDecoderHollarm;
typedef struct SubGhzProtocolEncoderHollarm SubGhzProtocolEncoderHollarm;
extern const SubGhzProtocolDecoder subghz_protocol_hollarm_decoder;
extern const SubGhzProtocolEncoder subghz_protocol_hollarm_encoder;
extern const SubGhzProtocol subghz_protocol_hollarm;
/**
* Allocate SubGhzProtocolEncoderHollarm.
* @param environment Pointer to a SubGhzEnvironment instance
* @return SubGhzProtocolEncoderHollarm* pointer to a SubGhzProtocolEncoderHollarm instance
*/
void* subghz_protocol_encoder_hollarm_alloc(SubGhzEnvironment* environment);
/**
* Free SubGhzProtocolEncoderHollarm.
* @param context Pointer to a SubGhzProtocolEncoderHollarm instance
*/
void subghz_protocol_encoder_hollarm_free(void* context);
/**
* Deserialize and generating an upload to send.
* @param context Pointer to a SubGhzProtocolEncoderHollarm instance
* @param flipper_format Pointer to a FlipperFormat instance
* @return status
*/
SubGhzProtocolStatus
subghz_protocol_encoder_hollarm_deserialize(void* context, FlipperFormat* flipper_format);
/**
* Forced transmission stop.
* @param context Pointer to a SubGhzProtocolEncoderHollarm instance
*/
void subghz_protocol_encoder_hollarm_stop(void* context);
/**
* Getting the level and duration of the upload to be loaded into DMA.
* @param context Pointer to a SubGhzProtocolEncoderHollarm instance
* @return LevelDuration
*/
LevelDuration subghz_protocol_encoder_hollarm_yield(void* context);
/**
* Allocate SubGhzProtocolDecoderHollarm.
* @param environment Pointer to a SubGhzEnvironment instance
* @return SubGhzProtocolDecoderHollarm* pointer to a SubGhzProtocolDecoderHollarm instance
*/
void* subghz_protocol_decoder_hollarm_alloc(SubGhzEnvironment* environment);
/**
* Free SubGhzProtocolDecoderHollarm.
* @param context Pointer to a SubGhzProtocolDecoderHollarm instance
*/
void subghz_protocol_decoder_hollarm_free(void* context);
/**
* Reset decoder SubGhzProtocolDecoderHollarm.
* @param context Pointer to a SubGhzProtocolDecoderHollarm instance
*/
void subghz_protocol_decoder_hollarm_reset(void* context);
/**
* Parse a raw sequence of levels and durations received from the air.
* @param context Pointer to a SubGhzProtocolDecoderHollarm instance
* @param level Signal level true-high false-low
* @param duration Duration of this level in, us
*/
void subghz_protocol_decoder_hollarm_feed(void* context, bool level, uint32_t duration);
/**
* Getting the hash sum of the last randomly received parcel.
* @param context Pointer to a SubGhzProtocolDecoderHollarm instance
* @return hash Hash sum
*/
uint8_t subghz_protocol_decoder_hollarm_get_hash_data(void* context);
/**
* Serialize data SubGhzProtocolDecoderHollarm.
* @param context Pointer to a SubGhzProtocolDecoderHollarm instance
* @param flipper_format Pointer to a FlipperFormat instance
* @param preset The modulation on which the signal was received, SubGhzRadioPreset
* @return status
*/
SubGhzProtocolStatus subghz_protocol_decoder_hollarm_serialize(
void* context,
FlipperFormat* flipper_format,
SubGhzRadioPreset* preset);
/**
* Deserialize data SubGhzProtocolDecoderHollarm.
* @param context Pointer to a SubGhzProtocolDecoderHollarm instance
* @param flipper_format Pointer to a FlipperFormat instance
* @return status
*/
SubGhzProtocolStatus
subghz_protocol_decoder_hollarm_deserialize(void* context, FlipperFormat* flipper_format);
/**
* Getting a textual representation of the received data.
* @param context Pointer to a SubGhzProtocolDecoderHollarm instance
* @param output Resulting text
*/
void subghz_protocol_decoder_hollarm_get_string(void* context, FuriString* output);

View File

@@ -234,8 +234,10 @@ void subghz_protocol_decoder_holtek_th12x_feed(void* context, bool level, uint32
switch(instance->decoder.parser_step) { switch(instance->decoder.parser_step) {
case Holtek_HT12XDecoderStepReset: case Holtek_HT12XDecoderStepReset:
if((!level) && (DURATION_DIFF(duration, subghz_protocol_holtek_th12x_const.te_short * 36) < if((!level) && (DURATION_DIFF(duration, subghz_protocol_holtek_th12x_const.te_short * 28) <
subghz_protocol_holtek_th12x_const.te_delta * 36)) { subghz_protocol_holtek_th12x_const.te_delta * 20)) {
// 18720 us old max value
// 12960 us corrected max value
//Found Preambula //Found Preambula
instance->decoder.parser_step = Holtek_HT12XDecoderStepFoundStartBit; instance->decoder.parser_step = Holtek_HT12XDecoderStepFoundStartBit;
} }

View File

@@ -158,6 +158,7 @@ SubGhzProtocolStatus
flipper_format, "Repeat", (uint32_t*)&instance->encoder.repeat, 1); flipper_format, "Repeat", (uint32_t*)&instance->encoder.repeat, 1);
if(!subghz_protocol_encoder_hormann_get_upload(instance)) { if(!subghz_protocol_encoder_hormann_get_upload(instance)) {
instance->encoder.front = 0; // reset position before start
ret = SubGhzProtocolStatusErrorEncoderGetUpload; ret = SubGhzProtocolStatusErrorEncoderGetUpload;
break; break;
} }
@@ -170,6 +171,7 @@ SubGhzProtocolStatus
void subghz_protocol_encoder_hormann_stop(void* context) { void subghz_protocol_encoder_hormann_stop(void* context) {
SubGhzProtocolEncoderHormann* instance = context; SubGhzProtocolEncoderHormann* instance = context;
instance->encoder.is_running = false; instance->encoder.is_running = false;
instance->encoder.front = 0; // reset position
} }
LevelDuration subghz_protocol_encoder_hormann_yield(void* context) { LevelDuration subghz_protocol_encoder_hormann_yield(void* context) {

View File

@@ -193,6 +193,7 @@ SubGhzProtocolStatus subghz_protocol_encoder_intertechno_v3_deserialize(
void subghz_protocol_encoder_intertechno_v3_stop(void* context) { void subghz_protocol_encoder_intertechno_v3_stop(void* context) {
SubGhzProtocolEncoderIntertechno_V3* instance = context; SubGhzProtocolEncoderIntertechno_V3* instance = context;
instance->encoder.is_running = false; instance->encoder.is_running = false;
instance->encoder.front = 0; // reset position
} }
LevelDuration subghz_protocol_encoder_intertechno_v3_yield(void* context) { LevelDuration subghz_protocol_encoder_intertechno_v3_yield(void* context) {

View File

@@ -299,7 +299,7 @@ SubGhzProtocolStatus
ret = SubGhzProtocolStatusErrorParserKey; ret = SubGhzProtocolStatusErrorParserKey;
break; break;
} }
instance->encoder.front = 0; // reset before start
instance->encoder.is_running = true; instance->encoder.is_running = true;
} while(false); } while(false);
@@ -309,6 +309,7 @@ SubGhzProtocolStatus
void subghz_protocol_encoder_keeloq_stop(void* context) { void subghz_protocol_encoder_keeloq_stop(void* context) {
SubGhzProtocolEncoderKeeloq* instance = context; SubGhzProtocolEncoderKeeloq* instance = context;
instance->encoder.is_running = false; instance->encoder.is_running = false;
instance->encoder.front = 0; // reset position
} }
LevelDuration subghz_protocol_encoder_keeloq_yield(void* context) { LevelDuration subghz_protocol_encoder_keeloq_yield(void* context) {

View File

@@ -0,0 +1,398 @@
#include "legrand.h"
#include "../blocks/const.h"
#include "../blocks/decoder.h"
#include "../blocks/encoder.h"
#include "../blocks/generic.h"
#include "../blocks/math.h"
#define TAG "SubGhzProtocolLegrand"
static const SubGhzBlockConst subghz_protocol_legrand_const = {
.te_short = 375,
.te_long = 1125,
.te_delta = 150,
.min_count_bit_for_found = 18,
};
struct SubGhzProtocolDecoderLegrand {
SubGhzProtocolDecoderBase base;
SubGhzBlockDecoder decoder;
SubGhzBlockGeneric generic;
uint32_t te;
uint32_t last_data;
};
struct SubGhzProtocolEncoderLegrand {
SubGhzProtocolEncoderBase base;
SubGhzProtocolBlockEncoder encoder;
SubGhzBlockGeneric generic;
uint32_t te;
};
typedef enum {
LegrandDecoderStepReset = 0,
LegrandDecoderStepFirstBit,
LegrandDecoderStepSaveDuration,
LegrandDecoderStepCheckDuration,
} LegrandDecoderStep;
const SubGhzProtocolDecoder subghz_protocol_legrand_decoder = {
.alloc = subghz_protocol_decoder_legrand_alloc,
.free = subghz_protocol_decoder_legrand_free,
.feed = subghz_protocol_decoder_legrand_feed,
.reset = subghz_protocol_decoder_legrand_reset,
.get_hash_data = subghz_protocol_decoder_legrand_get_hash_data,
.serialize = subghz_protocol_decoder_legrand_serialize,
.deserialize = subghz_protocol_decoder_legrand_deserialize,
.get_string = subghz_protocol_decoder_legrand_get_string,
};
const SubGhzProtocolEncoder subghz_protocol_legrand_encoder = {
.alloc = subghz_protocol_encoder_legrand_alloc,
.free = subghz_protocol_encoder_legrand_free,
.deserialize = subghz_protocol_encoder_legrand_deserialize,
.stop = subghz_protocol_encoder_legrand_stop,
.yield = subghz_protocol_encoder_legrand_yield,
};
const SubGhzProtocol subghz_protocol_legrand = {
.name = SUBGHZ_PROTOCOL_LEGRAND_NAME,
.type = SubGhzProtocolTypeStatic,
.flag = SubGhzProtocolFlag_433 | SubGhzProtocolFlag_AM | SubGhzProtocolFlag_Decodable |
SubGhzProtocolFlag_Load | SubGhzProtocolFlag_Save | SubGhzProtocolFlag_Send,
.decoder = &subghz_protocol_legrand_decoder,
.encoder = &subghz_protocol_legrand_encoder,
};
void* subghz_protocol_encoder_legrand_alloc(SubGhzEnvironment* environment) {
UNUSED(environment);
SubGhzProtocolEncoderLegrand* instance = malloc(sizeof(SubGhzProtocolEncoderLegrand));
instance->base.protocol = &subghz_protocol_legrand;
instance->generic.protocol_name = instance->base.protocol->name;
instance->encoder.repeat = 10;
instance->encoder.size_upload =
(subghz_protocol_legrand_const.min_count_bit_for_found * 6) * 2 + 2;
instance->encoder.upload = malloc(instance->encoder.size_upload * sizeof(LevelDuration));
instance->encoder.is_running = false;
return instance;
}
void subghz_protocol_encoder_legrand_free(void* context) {
furi_assert(context);
SubGhzProtocolEncoderLegrand* instance = context;
free(instance->encoder.upload);
free(instance);
}
/**
* Generating an upload from data.
* @param instance Pointer to a SubGhzProtocolEncoderLegrand instance
* @return true On success
*/
static bool subghz_protocol_encoder_legrand_get_upload(SubGhzProtocolEncoderLegrand* instance) {
furi_assert(instance);
//size_t size_upload = (instance->generic.data_count_bit * 2) + 1;
//if(size_upload != instance->encoder.size_upload) {
// FURI_LOG_E(TAG, "Invalid data bit count");
// return false;
//}
size_t index = 0;
for(size_t r = 0; r < 5; r++) {
// Send sync
instance->encoder.upload[index++] =
level_duration_make(false, (uint32_t)instance->te * 16); // 5728
// Send key data
for(uint8_t i = instance->generic.data_count_bit; i > 0; i--) {
if(bit_read(instance->generic.data, i - 1)) {
// send bit 1
if(i == instance->generic.data_count_bit) {
//Send first bit
instance->encoder.upload[index++] =
level_duration_make(true, (uint32_t)instance->te * 3);
} else {
// send bit 1 regular
instance->encoder.upload[index++] =
level_duration_make(false, (uint32_t)instance->te);
instance->encoder.upload[index++] =
level_duration_make(true, (uint32_t)instance->te * 3);
}
} else {
// send bit 0
if(i == instance->generic.data_count_bit) {
//Send first bit
instance->encoder.upload[index++] =
level_duration_make(true, (uint32_t)instance->te);
} else {
// send bit 0 regular
instance->encoder.upload[index++] =
level_duration_make(false, (uint32_t)instance->te * 3);
instance->encoder.upload[index++] =
level_duration_make(true, (uint32_t)instance->te);
}
}
}
}
instance->encoder.size_upload = index;
return true;
}
SubGhzProtocolStatus
subghz_protocol_encoder_legrand_deserialize(void* context, FlipperFormat* flipper_format) {
furi_assert(context);
SubGhzProtocolEncoderLegrand* instance = context;
SubGhzProtocolStatus ret = SubGhzProtocolStatusError;
do {
ret = subghz_block_generic_deserialize_check_count_bit(
&instance->generic,
flipper_format,
subghz_protocol_legrand_const.min_count_bit_for_found);
if(ret != SubGhzProtocolStatusOk) {
break;
}
if(!flipper_format_rewind(flipper_format)) {
FURI_LOG_E(TAG, "Rewind error");
ret = SubGhzProtocolStatusErrorParserOthers;
break;
}
if(!flipper_format_read_uint32(flipper_format, "TE", (uint32_t*)&instance->te, 1)) {
FURI_LOG_E(TAG, "Missing TE");
ret = SubGhzProtocolStatusErrorParserTe;
break;
}
// optional parameter
flipper_format_read_uint32(
flipper_format, "Repeat", (uint32_t*)&instance->encoder.repeat, 1);
if(!subghz_protocol_encoder_legrand_get_upload(instance)) {
ret = SubGhzProtocolStatusErrorEncoderGetUpload;
break;
}
instance->encoder.is_running = true;
} while(false);
return ret;
}
void subghz_protocol_encoder_legrand_stop(void* context) {
SubGhzProtocolEncoderLegrand* instance = context;
instance->encoder.is_running = false;
}
LevelDuration subghz_protocol_encoder_legrand_yield(void* context) {
SubGhzProtocolEncoderLegrand* instance = context;
if(instance->encoder.repeat == 0 || !instance->encoder.is_running) {
instance->encoder.is_running = false;
return level_duration_reset();
}
LevelDuration ret = instance->encoder.upload[instance->encoder.front];
if(++instance->encoder.front == instance->encoder.size_upload) {
instance->encoder.repeat--;
instance->encoder.front = 0;
}
return ret;
}
void* subghz_protocol_decoder_legrand_alloc(SubGhzEnvironment* environment) {
UNUSED(environment);
SubGhzProtocolDecoderLegrand* instance = malloc(sizeof(SubGhzProtocolDecoderLegrand));
instance->base.protocol = &subghz_protocol_legrand;
instance->generic.protocol_name = instance->base.protocol->name;
return instance;
}
void subghz_protocol_decoder_legrand_free(void* context) {
furi_assert(context);
SubGhzProtocolDecoderLegrand* instance = context;
free(instance);
}
void subghz_protocol_decoder_legrand_reset(void* context) {
furi_assert(context);
SubGhzProtocolDecoderLegrand* instance = context;
instance->decoder.parser_step = LegrandDecoderStepReset;
instance->last_data = 0;
}
void subghz_protocol_decoder_legrand_feed(void* context, bool level, uint32_t duration) {
furi_assert(context);
SubGhzProtocolDecoderLegrand* instance = context;
switch(instance->decoder.parser_step) {
case LegrandDecoderStepReset:
if(!level && DURATION_DIFF(duration, subghz_protocol_legrand_const.te_short * 16) <
subghz_protocol_legrand_const.te_delta * 8) { // 6000 +- 1200
instance->decoder.parser_step = LegrandDecoderStepFirstBit;
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
instance->te = 0;
}
break;
case LegrandDecoderStepFirstBit:
if(level) {
if(DURATION_DIFF(duration, subghz_protocol_legrand_const.te_short) <
subghz_protocol_legrand_const.te_delta) {
subghz_protocol_blocks_add_bit(&instance->decoder, 0);
instance->te += duration * 4; // long low that is part of sync, then short high
}
if(DURATION_DIFF(duration, subghz_protocol_legrand_const.te_long) <
subghz_protocol_legrand_const.te_delta * 3) {
subghz_protocol_blocks_add_bit(&instance->decoder, 1);
instance->te += duration / 3 * 4; // short low that is part of sync, then long high
}
if(instance->decoder.decode_count_bit > 0) {
// advance to the next step if either short or long is found
instance->decoder.parser_step = LegrandDecoderStepSaveDuration;
break;
}
}
instance->decoder.parser_step = LegrandDecoderStepReset;
break;
case LegrandDecoderStepSaveDuration:
if(!level) {
instance->decoder.te_last = duration;
instance->te += duration;
instance->decoder.parser_step = LegrandDecoderStepCheckDuration;
break;
}
instance->decoder.parser_step = LegrandDecoderStepReset;
break;
case LegrandDecoderStepCheckDuration:
if(level) {
uint8_t found = 0;
if(DURATION_DIFF(instance->decoder.te_last, subghz_protocol_legrand_const.te_long) <
subghz_protocol_legrand_const.te_delta * 3 &&
DURATION_DIFF(duration, subghz_protocol_legrand_const.te_short) <
subghz_protocol_legrand_const.te_delta) {
found = 1;
subghz_protocol_blocks_add_bit(&instance->decoder, 0);
}
if(DURATION_DIFF(instance->decoder.te_last, subghz_protocol_legrand_const.te_short) <
subghz_protocol_legrand_const.te_delta &&
DURATION_DIFF(duration, subghz_protocol_legrand_const.te_long) <
subghz_protocol_legrand_const.te_delta * 3) {
found = 1;
subghz_protocol_blocks_add_bit(&instance->decoder, 1);
}
if(found) {
instance->te += duration;
if(instance->decoder.decode_count_bit <
subghz_protocol_legrand_const.min_count_bit_for_found) {
instance->decoder.parser_step = LegrandDecoderStepSaveDuration;
break;
}
// enough bits for a packet found, save it only if there was a previous packet
// with the same data
if(instance->last_data && (instance->last_data == instance->decoder.decode_data)) {
instance->te /= instance->decoder.decode_count_bit * 4;
instance->generic.data = instance->decoder.decode_data;
instance->generic.data_count_bit = instance->decoder.decode_count_bit;
if(instance->base.callback) {
instance->base.callback(&instance->base, instance->base.context);
}
}
instance->last_data = instance->decoder.decode_data;
// fallthrough to reset, the next bit is expected to be a sync
// it also takes care of resetting the decoder state
}
}
instance->decoder.parser_step = LegrandDecoderStepReset;
break;
}
}
uint8_t subghz_protocol_decoder_legrand_get_hash_data(void* context) {
furi_assert(context);
SubGhzProtocolDecoderLegrand* instance = context;
return subghz_protocol_blocks_get_hash_data(
&instance->decoder, (instance->decoder.decode_count_bit / 8) + 1);
}
SubGhzProtocolStatus subghz_protocol_decoder_legrand_serialize(
void* context,
FlipperFormat* flipper_format,
SubGhzRadioPreset* preset) {
furi_assert(context);
SubGhzProtocolDecoderLegrand* instance = context;
SubGhzProtocolStatus ret =
subghz_block_generic_serialize(&instance->generic, flipper_format, preset);
if((ret == SubGhzProtocolStatusOk) &&
!flipper_format_write_uint32(flipper_format, "TE", &instance->te, 1)) {
FURI_LOG_E(TAG, "Unable to add TE");
ret = SubGhzProtocolStatusErrorParserTe;
}
return ret;
}
SubGhzProtocolStatus
subghz_protocol_decoder_legrand_deserialize(void* context, FlipperFormat* flipper_format) {
furi_assert(context);
SubGhzProtocolDecoderLegrand* instance = context;
SubGhzProtocolStatus ret = SubGhzProtocolStatusError;
do {
ret = subghz_block_generic_deserialize_check_count_bit(
&instance->generic,
flipper_format,
subghz_protocol_legrand_const.min_count_bit_for_found);
if(ret != SubGhzProtocolStatusOk) {
break;
}
if(!flipper_format_rewind(flipper_format)) {
FURI_LOG_E(TAG, "Rewind error");
ret = SubGhzProtocolStatusErrorParserOthers;
break;
}
if(!flipper_format_read_uint32(flipper_format, "TE", (uint32_t*)&instance->te, 1)) {
FURI_LOG_E(TAG, "Missing TE");
ret = SubGhzProtocolStatusErrorParserTe;
break;
}
} while(false);
return ret;
}
void subghz_protocol_decoder_legrand_get_string(void* context, FuriString* output) {
furi_assert(context);
SubGhzProtocolDecoderLegrand* instance = context;
furi_string_cat_printf(
output,
"%s %dbit\r\n"
"Key:0x%05lX\r\n"
"Te:%luus\r\n",
instance->generic.protocol_name,
instance->generic.data_count_bit,
(uint32_t)(instance->generic.data & 0xFFFFFF),
instance->te);
}

View File

@@ -0,0 +1,117 @@
#pragma once
#include "base.h"
#define SUBGHZ_PROTOCOL_LEGRAND_NAME "Legrand"
#ifdef __cplusplus
extern "C" {
#endif
typedef struct SubGhzProtocolDecoderLegrand SubGhzProtocolDecoderLegrand;
typedef struct SubGhzProtocolEncoderLegrand SubGhzProtocolEncoderLegrand;
extern const SubGhzProtocolDecoder subghz_protocol_legrand_decoder;
extern const SubGhzProtocolEncoder subghz_protocol_legrand_encoder;
extern const SubGhzProtocol subghz_protocol_legrand;
/**
* Allocate SubGhzProtocolEncoderLegrand.
* @param environment Pointer to a SubGhzEnvironment instance
* @return SubGhzProtocolEncoderLegrand* pointer to a SubGhzProtocolEncoderLegrand instance
*/
void* subghz_protocol_encoder_legrand_alloc(SubGhzEnvironment* environment);
/**
* Free SubGhzProtocolEncoderLegrand.
* @param context Pointer to a SubGhzProtocolEncoderLegrand instance
*/
void subghz_protocol_encoder_legrand_free(void* context);
/**
* Deserialize and generating an upload to send.
* @param context Pointer to a SubGhzProtocolEncoderLegrand instance
* @param flipper_format Pointer to a FlipperFormat instance
* @return status
*/
SubGhzProtocolStatus
subghz_protocol_encoder_legrand_deserialize(void* context, FlipperFormat* flipper_format);
/**
* Forced transmission stop.
* @param context Pointer to a SubGhzProtocolEncoderLegrand instance
*/
void subghz_protocol_encoder_legrand_stop(void* context);
/**
* Getting the level and duration of the upload to be loaded into DMA.
* @param context Pointer to a SubGhzProtocolEncoderLegrand instance
* @return LevelDuration
*/
LevelDuration subghz_protocol_encoder_legrand_yield(void* context);
/**
* Allocate SubGhzProtocolDecoderLegrand.
* @param environment Pointer to a SubGhzEnvironment instance
* @return SubGhzProtocolDecoderLegrand* pointer to a SubGhzProtocolDecoderLegrand instance
*/
void* subghz_protocol_decoder_legrand_alloc(SubGhzEnvironment* environment);
/**
* Free SubGhzProtocolDecoderLegrand.
* @param context Pointer to a SubGhzProtocolDecoderLegrand instance
*/
void subghz_protocol_decoder_legrand_free(void* context);
/**
* Reset decoder SubGhzProtocolDecoderLegrand.
* @param context Pointer to a SubGhzProtocolDecoderLegrand instance
*/
void subghz_protocol_decoder_legrand_reset(void* context);
/**
* Parse a raw sequence of levels and durations received from the air.
* @param context Pointer to a SubGhzProtocolDecoderLegrand instance
* @param level Signal level true-high false-low
* @param duration Duration of this level in, us
*/
void subghz_protocol_decoder_legrand_feed(void* context, bool level, uint32_t duration);
/**
* Getting the hash sum of the last randomly received parcel.
* @param context Pointer to a SubGhzProtocolDecoderLegrand instance
* @return hash Hash sum
*/
uint8_t subghz_protocol_decoder_legrand_get_hash_data(void* context);
/**
* Serialize data SubGhzProtocolDecoderLegrand.
* @param context Pointer to a SubGhzProtocolDecoderLegrand instance
* @param flipper_format Pointer to a FlipperFormat instance
* @param preset The modulation on which the signal was received, SubGhzRadioPreset
* @return status
*/
SubGhzProtocolStatus subghz_protocol_decoder_legrand_serialize(
void* context,
FlipperFormat* flipper_format,
SubGhzRadioPreset* preset);
/**
* Deserialize data SubGhzProtocolDecoderLegrand.
* @param context Pointer to a SubGhzProtocolDecoderLegrand instance
* @param flipper_format Pointer to a FlipperFormat instance
* @return status
*/
SubGhzProtocolStatus
subghz_protocol_decoder_legrand_deserialize(void* context, FlipperFormat* flipper_format);
/**
* Getting a textual representation of the received data.
* @param context Pointer to a SubGhzProtocolDecoderLegrand instance
* @param output Resulting text
*/
void subghz_protocol_decoder_legrand_get_string(void* context, FuriString* output);
#ifdef __cplusplus
}
#endif

View File

@@ -168,6 +168,7 @@ SubGhzProtocolStatus
flipper_format, "Repeat", (uint32_t*)&instance->encoder.repeat, 1); flipper_format, "Repeat", (uint32_t*)&instance->encoder.repeat, 1);
if(!subghz_protocol_encoder_magellan_get_upload(instance)) { if(!subghz_protocol_encoder_magellan_get_upload(instance)) {
instance->encoder.front = 0; // reset before start
ret = SubGhzProtocolStatusErrorEncoderGetUpload; ret = SubGhzProtocolStatusErrorEncoderGetUpload;
break; break;
} }
@@ -180,6 +181,7 @@ SubGhzProtocolStatus
void subghz_protocol_encoder_magellan_stop(void* context) { void subghz_protocol_encoder_magellan_stop(void* context) {
SubGhzProtocolEncoderMagellan* instance = context; SubGhzProtocolEncoderMagellan* instance = context;
instance->encoder.is_running = false; instance->encoder.is_running = false;
instance->encoder.front = 0; // reset position
} }
LevelDuration subghz_protocol_encoder_magellan_yield(void* context) { LevelDuration subghz_protocol_encoder_magellan_yield(void* context) {
@@ -359,15 +361,38 @@ static void subghz_protocol_magellan_check_remote_controller(SubGhzBlockGeneric*
* *
* 0x1275EC => 0x12-event codes, 0x75EC-serial (dec 117236) * 0x1275EC => 0x12-event codes, 0x75EC-serial (dec 117236)
* *
* event codes * Event codes consist of two parts:
* bit_0: 1-Open/Motion, 0-close/ok * - The upper nibble (bits 7-4) represents the event type:
* bit_1: 1-Tamper On (alarm), 0-Tamper Off (ok) * - 0x00: Nothing
* bit_2: ? * - 0x01: Door
* bit_3: 1-power on * - 0x02: Motion
* bit_4: model type - wireless reed * - 0x03: Smoke Alarm
* bit_5: model type - motion sensor * - 0x04: REM1
* bit_6: ? * - 0x05: REM1 with subtype Off1
* bit_7: ? * - 0x06: REM2
* - 0x07: REM2 with subtype Off1
* - Others: Unknown
* - The lower nibble (bits 3-0) represents the event subtype, which varies based on the model type:
* - If the model type is greater than 0x03 (e.g., REM1 or REM2):
* - 0x00: Arm1
* - 0x01: Btn1
* - 0x02: Btn2
* - 0x03: Btn3
* - 0x08: Reset
* - 0x09: LowBatt
* - 0x0A: BattOk
* - 0x0B: Learn
* - Others: Unknown
* - Otherwise:
* - 0x00: Sealed
* - 0x01: Alarm
* - 0x02: Tamper
* - 0x03: Alarm + Tamper
* - 0x08: Reset
* - 0x09: LowBatt
* - 0x0A: BattOk
* - 0x0B: Learn
* - Others: Unknown
* *
*/ */
uint64_t data_rev = subghz_protocol_blocks_reverse_key(instance->data >> 8, 24); uint64_t data_rev = subghz_protocol_blocks_reverse_key(instance->data >> 8, 24);
@@ -376,18 +401,71 @@ static void subghz_protocol_magellan_check_remote_controller(SubGhzBlockGeneric*
} }
static void subghz_protocol_magellan_get_event_serialize(uint8_t event, FuriString* output) { static void subghz_protocol_magellan_get_event_serialize(uint8_t event, FuriString* output) {
furi_string_cat_printf( const char* event_type;
output, const char* event_subtype;
"%s%s%s%s%s%s%s%s",
((event >> 4) & 0x1 ? (event & 0x1 ? " Open" : " Close") : switch((event >> 4) & 0x0F) {
(event & 0x1 ? " Motion" : " Ok")), case 0x00:
((event >> 1) & 0x1 ? ", Tamper On\n(Alarm)" : ""), event_type = "Nothing";
((event >> 2) & 0x1 ? ", ?" : ""), break;
((event >> 3) & 0x1 ? ", Power On" : ""), case 0x01:
((event >> 4) & 0x1 ? ", MT:Wireless_Reed" : ""), event_type = "Door";
((event >> 5) & 0x1 ? ", MT:Motion_Sensor" : ""), break;
((event >> 6) & 0x1 ? ", ?" : ""), case 0x02:
((event >> 7) & 0x1 ? ", ?" : "")); event_type = "Motion";
break;
case 0x03:
event_type = "Smoke Alarm";
break;
case 0x04:
event_type = "REM1";
break;
case 0x05:
event_type = "REM1";
event_subtype = "Off1";
furi_string_cat_printf(output, "%s - %s", event_type, event_subtype);
return;
case 0x06:
event_type = "REM2";
event_subtype = "Off1";
furi_string_cat_printf(output, "%s - %s", event_type, event_subtype);
return;
default:
event_type = "Unknown";
break;
}
switch(event & 0x0F) {
case 0x00:
event_subtype = (((event >> 4) & 0x0F) > 0x03) ? "Arm1" : "Sealed";
break;
case 0x01:
event_subtype = (((event >> 4) & 0x0F) > 0x03) ? "Btn1" : "Alarm";
break;
case 0x02:
event_subtype = (((event >> 4) & 0x0F) > 0x03) ? "Btn2" : "Tamper";
break;
case 0x03:
event_subtype = (((event >> 4) & 0x0F) > 0x03) ? "Btn3" : "Alarm + Tamper";
break;
case 0x08:
event_subtype = "Reset";
break;
case 0x09:
event_subtype = "LowBatt";
break;
case 0x0A:
event_subtype = "BattOk";
break;
case 0x0B:
event_subtype = "Learn";
break;
default:
event_subtype = "Unknown";
break;
}
furi_string_cat_printf(output, "%s - %s", event_type, event_subtype);
} }
uint8_t subghz_protocol_decoder_magellan_get_hash_data(void* context) { uint8_t subghz_protocol_decoder_magellan_get_hash_data(void* context) {

View File

@@ -165,7 +165,7 @@ static void subghz_protocol_encoder_marantec_get_upload(SubGhzProtocolEncoderMar
} }
uint8_t subghz_protocol_marantec_crc8(uint8_t* data, size_t len) { uint8_t subghz_protocol_marantec_crc8(uint8_t* data, size_t len) {
uint8_t crc = 0x08; uint8_t crc = 0x01;
size_t i, j; size_t i, j;
for(i = 0; i < len; i++) { for(i = 0; i < len; i++) {
crc ^= data[i]; crc ^= data[i];
@@ -184,6 +184,18 @@ uint8_t subghz_protocol_marantec_crc8(uint8_t* data, size_t len) {
* @param instance Pointer to a SubGhzBlockGeneric* instance * @param instance Pointer to a SubGhzBlockGeneric* instance
*/ */
static void subghz_protocol_marantec_remote_controller(SubGhzBlockGeneric* instance) { static void subghz_protocol_marantec_remote_controller(SubGhzBlockGeneric* instance) {
// Key samples
// 1307EDF6486C5 = 000 100110000 01111110110111110110 0100 10000110 11000101
// 1303EFAFD8683 = 000 100110000 00111110111110101111 1101 10000110 10000011
// From unittests
// 1300710DF869F
// const serial button serial crc
// 130 7EDF6 4 86 C5
// 130 3EFAF D 86 83
// 130 0710D F 86 9F
instance->btn = (instance->data >> 16) & 0xF; instance->btn = (instance->data >> 16) & 0xF;
instance->serial = ((instance->data >> 12) & 0xFFFFFF00) | ((instance->data >> 8) & 0xFF); instance->serial = ((instance->data >> 12) & 0xFFFFFF00) | ((instance->data >> 8) & 0xFF);
} }
@@ -207,6 +219,7 @@ SubGhzProtocolStatus
subghz_protocol_marantec_remote_controller(&instance->generic); subghz_protocol_marantec_remote_controller(&instance->generic);
subghz_protocol_encoder_marantec_get_upload(instance); subghz_protocol_encoder_marantec_get_upload(instance);
instance->encoder.front = 0;
instance->encoder.is_running = true; instance->encoder.is_running = true;
} while(false); } while(false);
@@ -216,6 +229,7 @@ SubGhzProtocolStatus
void subghz_protocol_encoder_marantec_stop(void* context) { void subghz_protocol_encoder_marantec_stop(void* context) {
SubGhzProtocolEncoderMarantec* instance = context; SubGhzProtocolEncoderMarantec* instance = context;
instance->encoder.is_running = false; instance->encoder.is_running = false;
instance->encoder.front = 0;
} }
LevelDuration subghz_protocol_encoder_marantec_yield(void* context) { LevelDuration subghz_protocol_encoder_marantec_yield(void* context) {
@@ -253,6 +267,7 @@ void subghz_protocol_decoder_marantec_free(void* context) {
void subghz_protocol_decoder_marantec_reset(void* context) { void subghz_protocol_decoder_marantec_reset(void* context) {
furi_assert(context); furi_assert(context);
SubGhzProtocolDecoderMarantec* instance = context; SubGhzProtocolDecoderMarantec* instance = context;
instance->decoder.parser_step = MarantecDecoderStepReset;
manchester_advance( manchester_advance(
instance->manchester_saved_state, instance->manchester_saved_state,
ManchesterEventReset, ManchesterEventReset,
@@ -367,16 +382,30 @@ void subghz_protocol_decoder_marantec_get_string(void* context, FuriString* outp
SubGhzProtocolDecoderMarantec* instance = context; SubGhzProtocolDecoderMarantec* instance = context;
subghz_protocol_marantec_remote_controller(&instance->generic); subghz_protocol_marantec_remote_controller(&instance->generic);
uint8_t tdata[6] = {
instance->generic.data >> 48,
instance->generic.data >> 40,
instance->generic.data >> 32,
instance->generic.data >> 24,
instance->generic.data >> 16,
instance->generic.data >> 8};
uint8_t crc = subghz_protocol_marantec_crc8(tdata, sizeof(tdata));
bool crc_ok = (crc == (instance->generic.data & 0xFF));
furi_string_cat_printf( furi_string_cat_printf(
output, output,
"%s %db\r\n" "%s %db\r\n"
"Key:0x%lX%08lX\r\n" "Key: 0x%lX%08lX\r\n"
"Sn:0x%07lX \r\n" "Sn: 0x%07lX \r\n"
"Btn:%X\r\n", "CRC: 0x%02X - %s\r\n"
"Btn: %X\r\n",
instance->generic.protocol_name, instance->generic.protocol_name,
instance->generic.data_count_bit, instance->generic.data_count_bit,
(uint32_t)(instance->generic.data >> 32), (uint32_t)(instance->generic.data >> 32),
(uint32_t)(instance->generic.data & 0xFFFFFFFF), (uint32_t)(instance->generic.data & 0xFFFFFFFF),
instance->generic.serial, instance->generic.serial,
crc,
crc_ok ? "Valid" : "Invalid",
instance->generic.btn); instance->generic.btn);
} }

View File

@@ -107,3 +107,11 @@ SubGhzProtocolStatus
* @param output Resulting text * @param output Resulting text
*/ */
void subghz_protocol_decoder_marantec_get_string(void* context, FuriString* output); void subghz_protocol_decoder_marantec_get_string(void* context, FuriString* output);
/**
* Calculate CRC8 for Marantec protocol.
* @param data Pointer to the data buffer
* @param len Length of the data buffer
* @return CRC8 value
*/
uint8_t subghz_protocol_marantec_crc8(uint8_t* data, size_t len);

View File

@@ -0,0 +1,352 @@
#include "marantec24.h"
#include "../blocks/const.h"
#include "../blocks/decoder.h"
#include "../blocks/encoder.h"
#include "../blocks/generic.h"
#include "../blocks/math.h"
#define TAG "SubGhzProtocolMarantec24"
static const SubGhzBlockConst subghz_protocol_marantec24_const = {
.te_short = 800,
.te_long = 1600,
.te_delta = 200,
.min_count_bit_for_found = 24,
};
struct SubGhzProtocolDecoderMarantec24 {
SubGhzProtocolDecoderBase base;
SubGhzBlockDecoder decoder;
SubGhzBlockGeneric generic;
};
struct SubGhzProtocolEncoderMarantec24 {
SubGhzProtocolEncoderBase base;
SubGhzProtocolBlockEncoder encoder;
SubGhzBlockGeneric generic;
};
typedef enum {
Marantec24DecoderStepReset = 0,
Marantec24DecoderStepSaveDuration,
Marantec24DecoderStepCheckDuration,
} Marantec24DecoderStep;
const SubGhzProtocolDecoder subghz_protocol_marantec24_decoder = {
.alloc = subghz_protocol_decoder_marantec24_alloc,
.free = subghz_protocol_decoder_marantec24_free,
.feed = subghz_protocol_decoder_marantec24_feed,
.reset = subghz_protocol_decoder_marantec24_reset,
.get_hash_data = subghz_protocol_decoder_marantec24_get_hash_data,
.serialize = subghz_protocol_decoder_marantec24_serialize,
.deserialize = subghz_protocol_decoder_marantec24_deserialize,
.get_string = subghz_protocol_decoder_marantec24_get_string,
};
const SubGhzProtocolEncoder subghz_protocol_marantec24_encoder = {
.alloc = subghz_protocol_encoder_marantec24_alloc,
.free = subghz_protocol_encoder_marantec24_free,
.deserialize = subghz_protocol_encoder_marantec24_deserialize,
.stop = subghz_protocol_encoder_marantec24_stop,
.yield = subghz_protocol_encoder_marantec24_yield,
};
const SubGhzProtocol subghz_protocol_marantec24 = {
.name = SUBGHZ_PROTOCOL_MARANTEC24_NAME,
.type = SubGhzProtocolTypeStatic,
.flag = SubGhzProtocolFlag_868 | SubGhzProtocolFlag_AM | SubGhzProtocolFlag_Decodable |
SubGhzProtocolFlag_Load | SubGhzProtocolFlag_Save | SubGhzProtocolFlag_Send,
.decoder = &subghz_protocol_marantec24_decoder,
.encoder = &subghz_protocol_marantec24_encoder,
};
void* subghz_protocol_encoder_marantec24_alloc(SubGhzEnvironment* environment) {
UNUSED(environment);
SubGhzProtocolEncoderMarantec24* instance = malloc(sizeof(SubGhzProtocolEncoderMarantec24));
instance->base.protocol = &subghz_protocol_marantec24;
instance->generic.protocol_name = instance->base.protocol->name;
instance->encoder.repeat = 10;
instance->encoder.size_upload = 512;
instance->encoder.upload = malloc(instance->encoder.size_upload * sizeof(LevelDuration));
instance->encoder.is_running = false;
return instance;
}
void subghz_protocol_encoder_marantec24_free(void* context) {
furi_assert(context);
SubGhzProtocolEncoderMarantec24* instance = context;
free(instance->encoder.upload);
free(instance);
}
/**
* Generating an upload from data.
* @param instance Pointer to a SubGhzProtocolEncoderMarantec24 instance
*/
static void
subghz_protocol_encoder_marantec24_get_upload(SubGhzProtocolEncoderMarantec24* instance) {
furi_assert(instance);
size_t index = 0;
// Send initial GAP to trigger decoder
instance->encoder.upload[index++] =
level_duration_make(false, (uint32_t)subghz_protocol_marantec24_const.te_long * 9);
for(size_t r = 0; r < 4; r++) {
// Send key and GAP
for(uint8_t i = instance->generic.data_count_bit; i > 0; i--) {
if(bit_read(instance->generic.data, i - 1)) {
// Send bit 1
instance->encoder.upload[index++] =
level_duration_make(true, (uint32_t)subghz_protocol_marantec24_const.te_short);
if(i == 1) {
//Send gap if bit was last
instance->encoder.upload[index++] = level_duration_make(
false,
(uint32_t)subghz_protocol_marantec24_const.te_long * 9 +
subghz_protocol_marantec24_const.te_short);
} else {
instance->encoder.upload[index++] = level_duration_make(
false, (uint32_t)subghz_protocol_marantec24_const.te_long * 2);
}
} else {
// Send bit 0
instance->encoder.upload[index++] =
level_duration_make(true, (uint32_t)subghz_protocol_marantec24_const.te_long);
if(i == 1) {
//Send gap if bit was last
instance->encoder.upload[index++] = level_duration_make(
false,
(uint32_t)subghz_protocol_marantec24_const.te_long * 9 +
subghz_protocol_marantec24_const.te_short); // 15200
} else {
instance->encoder.upload[index++] = level_duration_make(
false, (uint32_t)subghz_protocol_marantec24_const.te_short * 3);
}
}
}
}
instance->encoder.size_upload = index;
return;
}
/**
* Analysis of received data
* @param instance Pointer to a SubGhzBlockGeneric* instance
*/
static void subghz_protocol_marantec24_check_remote_controller(SubGhzBlockGeneric* instance) {
instance->serial = instance->data >> 4;
instance->btn = instance->data & 0xF;
}
SubGhzProtocolStatus
subghz_protocol_encoder_marantec24_deserialize(void* context, FlipperFormat* flipper_format) {
furi_assert(context);
SubGhzProtocolEncoderMarantec24* instance = context;
SubGhzProtocolStatus ret = SubGhzProtocolStatusError;
do {
ret = subghz_block_generic_deserialize_check_count_bit(
&instance->generic,
flipper_format,
subghz_protocol_marantec24_const.min_count_bit_for_found);
if(ret != SubGhzProtocolStatusOk) {
break;
}
//optional parameter parameter
flipper_format_read_uint32(
flipper_format, "Repeat", (uint32_t*)&instance->encoder.repeat, 1);
subghz_protocol_marantec24_check_remote_controller(&instance->generic);
subghz_protocol_encoder_marantec24_get_upload(instance);
instance->encoder.front = 0; // reset before start
instance->encoder.is_running = true;
} while(false);
return ret;
}
void subghz_protocol_encoder_marantec24_stop(void* context) {
SubGhzProtocolEncoderMarantec24* instance = context;
instance->encoder.is_running = false;
instance->encoder.front = 0; // reset position
}
LevelDuration subghz_protocol_encoder_marantec24_yield(void* context) {
SubGhzProtocolEncoderMarantec24* instance = context;
if(instance->encoder.repeat == 0 || !instance->encoder.is_running) {
instance->encoder.is_running = false;
return level_duration_reset();
}
LevelDuration ret = instance->encoder.upload[instance->encoder.front];
if(++instance->encoder.front == instance->encoder.size_upload) {
instance->encoder.repeat--;
instance->encoder.front = 0;
}
return ret;
}
void* subghz_protocol_decoder_marantec24_alloc(SubGhzEnvironment* environment) {
UNUSED(environment);
SubGhzProtocolDecoderMarantec24* instance = malloc(sizeof(SubGhzProtocolDecoderMarantec24));
instance->base.protocol = &subghz_protocol_marantec24;
instance->generic.protocol_name = instance->base.protocol->name;
return instance;
}
void subghz_protocol_decoder_marantec24_free(void* context) {
furi_assert(context);
SubGhzProtocolDecoderMarantec24* instance = context;
free(instance);
}
void subghz_protocol_decoder_marantec24_reset(void* context) {
furi_assert(context);
SubGhzProtocolDecoderMarantec24* instance = context;
instance->decoder.parser_step = Marantec24DecoderStepReset;
}
void subghz_protocol_decoder_marantec24_feed(void* context, bool level, volatile uint32_t duration) {
furi_assert(context);
SubGhzProtocolDecoderMarantec24* instance = context;
// Marantec24 Decoder
// 2024 - @xMasterX (MMX)
// 2025 update - The protocol is not real marantec,
// it comes from chinese remote that pretends to be replica of original marantec, actually it was a cloner
// which had some thing written on it, which is uknown, but since its pretentding to be marantec,
// it was decided to keep the name of the protocol as marantec24 (24 bits)
// Key samples
// 101011000000010111001000 = AC05C8
// 101011000000010111000100 = AC05C4
// 101011000000010111001100 = AC05CC
// 101011000000010111000000 = AC05C0
switch(instance->decoder.parser_step) {
case Marantec24DecoderStepReset:
if((!level) && (DURATION_DIFF(duration, subghz_protocol_marantec24_const.te_long * 9) <
subghz_protocol_marantec24_const.te_delta * 6)) {
//Found GAP
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
instance->decoder.parser_step = Marantec24DecoderStepSaveDuration;
}
break;
case Marantec24DecoderStepSaveDuration:
if(level) {
instance->decoder.te_last = duration;
instance->decoder.parser_step = Marantec24DecoderStepCheckDuration;
} else {
instance->decoder.parser_step = Marantec24DecoderStepReset;
}
break;
case Marantec24DecoderStepCheckDuration:
if(!level) {
// Bit 0 is long and short x2 timing = 1600us HIGH (te_last) and 2400us LOW
if((DURATION_DIFF(instance->decoder.te_last, subghz_protocol_marantec24_const.te_long) <
subghz_protocol_marantec24_const.te_delta) &&
(DURATION_DIFF(duration, subghz_protocol_marantec24_const.te_short * 3) <
subghz_protocol_marantec24_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 0);
instance->decoder.parser_step = Marantec24DecoderStepSaveDuration;
// Bit 1 is short and long x2 timing = 800us HIGH (te_last) and 3200us LOW
} else if(
(DURATION_DIFF(
instance->decoder.te_last, subghz_protocol_marantec24_const.te_short) <
subghz_protocol_marantec24_const.te_delta) &&
(DURATION_DIFF(duration, subghz_protocol_marantec24_const.te_long * 2) <
subghz_protocol_marantec24_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 1);
instance->decoder.parser_step = Marantec24DecoderStepSaveDuration;
} else if(
// End of the key
DURATION_DIFF(duration, subghz_protocol_marantec24_const.te_long * 9) <
subghz_protocol_marantec24_const.te_delta * 6) {
//Found next GAP and add bit 0 or 1 (only bit 0 was found on the remotes)
if((DURATION_DIFF(
instance->decoder.te_last, subghz_protocol_marantec24_const.te_long) <
subghz_protocol_marantec24_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 0);
}
if((DURATION_DIFF(
instance->decoder.te_last, subghz_protocol_marantec24_const.te_short) <
subghz_protocol_marantec24_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 1);
}
// If got 24 bits key reading is finished
if(instance->decoder.decode_count_bit ==
subghz_protocol_marantec24_const.min_count_bit_for_found) {
instance->generic.data = instance->decoder.decode_data;
instance->generic.data_count_bit = instance->decoder.decode_count_bit;
if(instance->base.callback)
instance->base.callback(&instance->base, instance->base.context);
}
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
instance->decoder.parser_step = Marantec24DecoderStepReset;
} else {
instance->decoder.parser_step = Marantec24DecoderStepReset;
}
} else {
instance->decoder.parser_step = Marantec24DecoderStepReset;
}
break;
}
}
uint8_t subghz_protocol_decoder_marantec24_get_hash_data(void* context) {
furi_assert(context);
SubGhzProtocolDecoderMarantec24* instance = context;
return subghz_protocol_blocks_get_hash_data(
&instance->decoder, (instance->decoder.decode_count_bit / 8) + 1);
}
SubGhzProtocolStatus subghz_protocol_decoder_marantec24_serialize(
void* context,
FlipperFormat* flipper_format,
SubGhzRadioPreset* preset) {
furi_assert(context);
SubGhzProtocolDecoderMarantec24* instance = context;
return subghz_block_generic_serialize(&instance->generic, flipper_format, preset);
}
SubGhzProtocolStatus
subghz_protocol_decoder_marantec24_deserialize(void* context, FlipperFormat* flipper_format) {
furi_assert(context);
SubGhzProtocolDecoderMarantec24* instance = context;
return subghz_block_generic_deserialize_check_count_bit(
&instance->generic,
flipper_format,
subghz_protocol_marantec24_const.min_count_bit_for_found);
}
void subghz_protocol_decoder_marantec24_get_string(void* context, FuriString* output) {
furi_assert(context);
SubGhzProtocolDecoderMarantec24* instance = context;
subghz_protocol_marantec24_check_remote_controller(&instance->generic);
furi_string_cat_printf(
output,
"%s %db\r\n"
"Key: 0x%06lX\r\n"
"Serial: 0x%05lX\r\n"
"Btn: %01X",
instance->generic.protocol_name,
instance->generic.data_count_bit,
(uint32_t)(instance->generic.data & 0xFFFFFF),
instance->generic.serial,
instance->generic.btn);
}

View File

@@ -0,0 +1,109 @@
#pragma once
#include "base.h"
#define SUBGHZ_PROTOCOL_MARANTEC24_NAME "Marantec24"
typedef struct SubGhzProtocolDecoderMarantec24 SubGhzProtocolDecoderMarantec24;
typedef struct SubGhzProtocolEncoderMarantec24 SubGhzProtocolEncoderMarantec24;
extern const SubGhzProtocolDecoder subghz_protocol_marantec24_decoder;
extern const SubGhzProtocolEncoder subghz_protocol_marantec24_encoder;
extern const SubGhzProtocol subghz_protocol_marantec24;
/**
* Allocate SubGhzProtocolEncoderMarantec24.
* @param environment Pointer to a SubGhzEnvironment instance
* @return SubGhzProtocolEncoderMarantec24* pointer to a SubGhzProtocolEncoderMarantec24 instance
*/
void* subghz_protocol_encoder_marantec24_alloc(SubGhzEnvironment* environment);
/**
* Free SubGhzProtocolEncoderMarantec24.
* @param context Pointer to a SubGhzProtocolEncoderMarantec24 instance
*/
void subghz_protocol_encoder_marantec24_free(void* context);
/**
* Deserialize and generating an upload to send.
* @param context Pointer to a SubGhzProtocolEncoderMarantec24 instance
* @param flipper_format Pointer to a FlipperFormat instance
* @return status
*/
SubGhzProtocolStatus
subghz_protocol_encoder_marantec24_deserialize(void* context, FlipperFormat* flipper_format);
/**
* Forced transmission stop.
* @param context Pointer to a SubGhzProtocolEncoderMarantec24 instance
*/
void subghz_protocol_encoder_marantec24_stop(void* context);
/**
* Getting the level and duration of the upload to be loaded into DMA.
* @param context Pointer to a SubGhzProtocolEncoderMarantec24 instance
* @return LevelDuration
*/
LevelDuration subghz_protocol_encoder_marantec24_yield(void* context);
/**
* Allocate SubGhzProtocolDecoderMarantec24.
* @param environment Pointer to a SubGhzEnvironment instance
* @return SubGhzProtocolDecoderMarantec24* pointer to a SubGhzProtocolDecoderMarantec24 instance
*/
void* subghz_protocol_decoder_marantec24_alloc(SubGhzEnvironment* environment);
/**
* Free SubGhzProtocolDecoderMarantec24.
* @param context Pointer to a SubGhzProtocolDecoderMarantec24 instance
*/
void subghz_protocol_decoder_marantec24_free(void* context);
/**
* Reset decoder SubGhzProtocolDecoderMarantec24.
* @param context Pointer to a SubGhzProtocolDecoderMarantec24 instance
*/
void subghz_protocol_decoder_marantec24_reset(void* context);
/**
* Parse a raw sequence of levels and durations received from the air.
* @param context Pointer to a SubGhzProtocolDecoderMarantec24 instance
* @param level Signal level true-high false-low
* @param duration Duration of this level in, us
*/
void subghz_protocol_decoder_marantec24_feed(void* context, bool level, uint32_t duration);
/**
* Getting the hash sum of the last randomly received parcel.
* @param context Pointer to a SubGhzProtocolDecoderMarantec24 instance
* @return hash Hash sum
*/
uint8_t subghz_protocol_decoder_marantec24_get_hash_data(void* context);
/**
* Serialize data SubGhzProtocolDecoderMarantec24.
* @param context Pointer to a SubGhzProtocolDecoderMarantec24 instance
* @param flipper_format Pointer to a FlipperFormat instance
* @param preset The modulation on which the signal was received, SubGhzRadioPreset
* @return status
*/
SubGhzProtocolStatus subghz_protocol_decoder_marantec24_serialize(
void* context,
FlipperFormat* flipper_format,
SubGhzRadioPreset* preset);
/**
* Deserialize data SubGhzProtocolDecoderMarantec24.
* @param context Pointer to a SubGhzProtocolDecoderMarantec24 instance
* @param flipper_format Pointer to a FlipperFormat instance
* @return status
*/
SubGhzProtocolStatus
subghz_protocol_decoder_marantec24_deserialize(void* context, FlipperFormat* flipper_format);
/**
* Getting a textual representation of the received data.
* @param context Pointer to a SubGhzProtocolDecoderMarantec24 instance
* @param output Resulting text
*/
void subghz_protocol_decoder_marantec24_get_string(void* context, FuriString* output);

View File

@@ -7,7 +7,6 @@
#include "../blocks/math.h" #include "../blocks/math.h"
#define TAG "SubGhzProtocolPhoenixV2" #define TAG "SubGhzProtocolPhoenixV2"
//transmission only static mode //transmission only static mode
static const SubGhzBlockConst subghz_protocol_phoenix_v2_const = { static const SubGhzBlockConst subghz_protocol_phoenix_v2_const = {
@@ -91,6 +90,9 @@ void subghz_protocol_encoder_phoenix_v2_free(void* context) {
free(instance); free(instance);
} }
// Pre define functions
static void subghz_protocol_phoenix_v2_check_remote_controller(SubGhzBlockGeneric* instance);
/** /**
* Generating an upload from data. * Generating an upload from data.
* @param instance Pointer to a SubGhzProtocolEncoderPhoenix_V2 instance * @param instance Pointer to a SubGhzProtocolEncoderPhoenix_V2 instance
@@ -107,6 +109,7 @@ static bool
} else { } else {
instance->encoder.size_upload = size_upload; instance->encoder.size_upload = size_upload;
} }
//Send header //Send header
instance->encoder.upload[index++] = instance->encoder.upload[index++] =
level_duration_make(false, (uint32_t)subghz_protocol_phoenix_v2_const.te_short * 60); level_duration_make(false, (uint32_t)subghz_protocol_phoenix_v2_const.te_short * 60);
@@ -153,6 +156,7 @@ SubGhzProtocolStatus
ret = SubGhzProtocolStatusErrorEncoderGetUpload; ret = SubGhzProtocolStatusErrorEncoderGetUpload;
break; break;
} }
instance->encoder.is_running = true; instance->encoder.is_running = true;
} while(false); } while(false);
@@ -274,16 +278,66 @@ void subghz_protocol_decoder_phoenix_v2_feed(void* context, bool level, uint32_t
} }
} }
static uint16_t subghz_protocol_phoenix_v2_decrypt_counter(uint64_t full_key) {
uint16_t encrypted_value = (uint16_t)((full_key >> 40) & 0xFFFF);
uint8_t byte1 = (uint8_t)(encrypted_value >> 8); // First encrypted counter byte
uint8_t byte2 = (uint8_t)(encrypted_value & 0xFF); // Second encrypted counter byte
uint8_t xor_key1 = (uint8_t)(full_key >> 24); // First byte of serial
uint8_t xor_key2 = (uint8_t)((full_key >> 16) & 0xFF); // Second byte of serial
for(int i = 0; i < 16; i++) {
// Store the most significant bit (MSB) of byte1.
// The check `(msb_of_byte1 == 0)` will determine if we apply the XOR keys.
uint8_t msb_of_byte1 = byte1 & 0x80;
// Store the least significant bit (LSB) of byte2.
uint8_t lsb_of_byte2 = byte2 & 1;
// Perform a bit shuffle between the two bytes
byte2 = (byte2 >> 1) | msb_of_byte1;
byte1 = (byte1 << 1) | lsb_of_byte2;
// Conditionally apply the XOR keys based on the original MSB of byte1.
if(msb_of_byte1 == 0) {
byte1 ^= xor_key1;
// The mask `& 0x7F` clears the MSB of byte2 after the XOR.
byte2 = (byte2 ^ xor_key2) & 0x7F;
}
}
return (uint16_t)byte2 << 8 | byte1;
}
/** /**
* Analysis of received data * Analysis of received data
* @param instance Pointer to a SubGhzBlockGeneric* instance * @param instance Pointer to a SubGhzBlockGeneric* instance
*/ */
static void subghz_protocol_phoenix_v2_check_remote_controller(SubGhzBlockGeneric* instance) { static void subghz_protocol_phoenix_v2_check_remote_controller(SubGhzBlockGeneric* instance) {
// 2022.08 - @Skorpionm
// 2025.07 - @xMasterX & @RocketGod-git
// Fully supported now, with button switch and add manually
//
// Key samples
// Full key example: 0xC63E01B9615720 - after subghz_protocol_blocks_reverse_key was applied
// Serial - B9615720
// Button - 01
// Encrypted -> Decrypted counters
// C63E - 025C
// BCC1 - 025D
// 3341 - 025E
// 49BE - 025F
// 99D3 - 0260
// E32C - 0261
uint64_t data_rev = uint64_t data_rev =
subghz_protocol_blocks_reverse_key(instance->data, instance->data_count_bit + 4); subghz_protocol_blocks_reverse_key(instance->data, instance->data_count_bit + 4);
instance->serial = data_rev & 0xFFFFFFFF; instance->serial = data_rev & 0xFFFFFFFF;
instance->cnt = (data_rev >> 40) & 0xFFFF; instance->cnt = subghz_protocol_phoenix_v2_decrypt_counter(data_rev);
instance->btn = (data_rev >> 32) & 0xF; instance->btn = (data_rev >> 32) & 0xF;
// encrypted cnt is (data_rev >> 40) & 0xFFFF
} }
uint8_t subghz_protocol_decoder_phoenix_v2_get_hash_data(void* context) { uint8_t subghz_protocol_decoder_phoenix_v2_get_hash_data(void* context) {
@@ -318,14 +372,15 @@ void subghz_protocol_decoder_phoenix_v2_get_string(void* context, FuriString* ou
subghz_protocol_phoenix_v2_check_remote_controller(&instance->generic); subghz_protocol_phoenix_v2_check_remote_controller(&instance->generic);
furi_string_cat_printf( furi_string_cat_printf(
output, output,
"%s %dbit\r\n" "V2 Phoenix %dbit\r\n"
"Key:%02lX%08lX\r\n" "Key:%05lX%08lX\r\n"
"Sn:0x%07lX \r\n" "Sn:0x%07lX \r\n"
"Btn:%X\r\n", "Cnt: 0x%04lX\r\n"
instance->generic.protocol_name, "Btn: %X\r\n",
instance->generic.data_count_bit, instance->generic.data_count_bit,
(uint32_t)(instance->generic.data >> 32) & 0xFFFFFFFF, (uint32_t)(instance->generic.data >> 32) & 0xFFFFFFFF,
(uint32_t)(instance->generic.data & 0xFFFFFFFF), (uint32_t)(instance->generic.data & 0xFFFFFFFF),
instance->generic.serial, instance->generic.serial,
instance->generic.cnt,
instance->generic.btn); instance->generic.btn);
} }

View File

@@ -212,6 +212,7 @@ SubGhzProtocolStatus
subghz_protocol_power_smart_remote_controller(&instance->generic); subghz_protocol_power_smart_remote_controller(&instance->generic);
subghz_protocol_encoder_power_smart_get_upload(instance); subghz_protocol_encoder_power_smart_get_upload(instance);
instance->encoder.front = 0; // reset before start
instance->encoder.is_running = true; instance->encoder.is_running = true;
} while(false); } while(false);
@@ -221,6 +222,7 @@ SubGhzProtocolStatus
void subghz_protocol_encoder_power_smart_stop(void* context) { void subghz_protocol_encoder_power_smart_stop(void* context) {
SubGhzProtocolEncoderPowerSmart* instance = context; SubGhzProtocolEncoderPowerSmart* instance = context;
instance->encoder.is_running = false; instance->encoder.is_running = false;
instance->encoder.front = 0; // reset position
} }
LevelDuration subghz_protocol_encoder_power_smart_yield(void* context) { LevelDuration subghz_protocol_encoder_power_smart_yield(void* context) {

View File

@@ -44,7 +44,15 @@ const SubGhzProtocol* const subghz_protocol_registry_items[] = {
&subghz_protocol_kinggates_stylo_4k, &subghz_protocol_kinggates_stylo_4k,
&subghz_protocol_bin_raw, &subghz_protocol_bin_raw,
&subghz_protocol_mastercode, &subghz_protocol_mastercode,
&subghz_protocol_legrand,
&subghz_protocol_dickert_mahs, &subghz_protocol_dickert_mahs,
&subghz_protocol_gangqi,
&subghz_protocol_marantec24,
&subghz_protocol_hollarm,
&subghz_protocol_hay21,
&subghz_protocol_revers_rb2,
&subghz_protocol_feron,
&subghz_protocol_roger,
}; };
const SubGhzProtocolRegistry subghz_protocol_registry = { const SubGhzProtocolRegistry subghz_protocol_registry = {

View File

@@ -45,4 +45,12 @@
#include "kinggates_stylo_4k.h" #include "kinggates_stylo_4k.h"
#include "bin_raw.h" #include "bin_raw.h"
#include "mastercode.h" #include "mastercode.h"
#include "legrand.h"
#include "dickert_mahs.h" #include "dickert_mahs.h"
#include "gangqi.h"
#include "marantec24.h"
#include "hollarm.h"
#include "hay21.h"
#include "revers_rb2.h"
#include "feron.h"
#include "roger.h"

View File

@@ -31,7 +31,7 @@ bool subghz_protocol_secplus_v2_create_data(
* @param flipper_format Pointer to a FlipperFormat instance * @param flipper_format Pointer to a FlipperFormat instance
* @param serial Serial number, 28 bit * @param serial Serial number, 28 bit
* @param btn Button number, 4 bit * @param btn Button number, 4 bit
* @param cnt Container value, 16 bit * @param cnt Counter value, 16 bit
* @param manufacture_name Name of manufacturer's key * @param manufacture_name Name of manufacturer's key
* @param preset Modulation, SubGhzRadioPreset * @param preset Modulation, SubGhzRadioPreset
* @return true On success * @return true On success

View File

@@ -245,8 +245,8 @@ void subghz_protocol_decoder_raw_reset(void* context) {
void subghz_protocol_decoder_raw_feed(void* context, bool level, uint32_t duration) { void subghz_protocol_decoder_raw_feed(void* context, bool level, uint32_t duration) {
furi_check(context); furi_check(context);
SubGhzProtocolDecoderRAW* instance = context; SubGhzProtocolDecoderRAW* instance = context;
// Add check if we got duration higher than 1 second, we skipping it, temp fix
if(!instance->pause && (instance->upload_raw != NULL)) { if((!instance->pause && (instance->upload_raw != NULL)) && (duration < ((uint32_t)1000000))) {
if(duration > subghz_protocol_raw_const.te_short) { if(duration > subghz_protocol_raw_const.te_short) {
if(instance->last_level != level) { if(instance->last_level != level) {
instance->last_level = (level ? true : false); instance->last_level = (level ? true : false);
@@ -273,7 +273,7 @@ void subghz_protocol_decoder_raw_get_string(void* context, FuriString* output) {
furi_check(context); furi_check(context);
//SubGhzProtocolDecoderRAW* instance = context; //SubGhzProtocolDecoderRAW* instance = context;
UNUSED(context); UNUSED(context);
furi_string_cat_printf(output, "RAW Date"); furi_string_cat_printf(output, "RAW Data");
} }
void* subghz_protocol_encoder_raw_alloc(SubGhzEnvironment* environment) { void* subghz_protocol_encoder_raw_alloc(SubGhzEnvironment* environment) {

View File

@@ -0,0 +1,415 @@
#include "revers_rb2.h"
#include <lib/toolbox/manchester_decoder.h>
#include <lib/toolbox/manchester_encoder.h>
#include "../blocks/const.h"
#include "../blocks/decoder.h"
#include "../blocks/encoder.h"
#include "../blocks/generic.h"
#include "../blocks/math.h"
#define TAG "SubGhzProtocolRevers_RB2"
static const SubGhzBlockConst subghz_protocol_revers_rb2_const = {
.te_short = 250,
.te_long = 500,
.te_delta = 160,
.min_count_bit_for_found = 64,
};
struct SubGhzProtocolDecoderRevers_RB2 {
SubGhzProtocolDecoderBase base;
SubGhzBlockDecoder decoder;
SubGhzBlockGeneric generic;
ManchesterState manchester_saved_state;
uint16_t header_count;
};
struct SubGhzProtocolEncoderRevers_RB2 {
SubGhzProtocolEncoderBase base;
SubGhzProtocolBlockEncoder encoder;
SubGhzBlockGeneric generic;
};
typedef enum {
Revers_RB2DecoderStepReset = 0,
Revers_RB2DecoderStepHeader,
Revers_RB2DecoderStepDecoderData,
} Revers_RB2DecoderStep;
const SubGhzProtocolDecoder subghz_protocol_revers_rb2_decoder = {
.alloc = subghz_protocol_decoder_revers_rb2_alloc,
.free = subghz_protocol_decoder_revers_rb2_free,
.feed = subghz_protocol_decoder_revers_rb2_feed,
.reset = subghz_protocol_decoder_revers_rb2_reset,
.get_hash_data = subghz_protocol_decoder_revers_rb2_get_hash_data,
.serialize = subghz_protocol_decoder_revers_rb2_serialize,
.deserialize = subghz_protocol_decoder_revers_rb2_deserialize,
.get_string = subghz_protocol_decoder_revers_rb2_get_string,
};
const SubGhzProtocolEncoder subghz_protocol_revers_rb2_encoder = {
.alloc = subghz_protocol_encoder_revers_rb2_alloc,
.free = subghz_protocol_encoder_revers_rb2_free,
.deserialize = subghz_protocol_encoder_revers_rb2_deserialize,
.stop = subghz_protocol_encoder_revers_rb2_stop,
.yield = subghz_protocol_encoder_revers_rb2_yield,
};
const SubGhzProtocol subghz_protocol_revers_rb2 = {
.name = SUBGHZ_PROTOCOL_REVERSRB2_NAME,
.type = SubGhzProtocolTypeStatic,
.flag = SubGhzProtocolFlag_433 | SubGhzProtocolFlag_AM | SubGhzProtocolFlag_Decodable |
SubGhzProtocolFlag_Load | SubGhzProtocolFlag_Save | SubGhzProtocolFlag_Send,
.decoder = &subghz_protocol_revers_rb2_decoder,
.encoder = &subghz_protocol_revers_rb2_encoder,
};
void* subghz_protocol_encoder_revers_rb2_alloc(SubGhzEnvironment* environment) {
UNUSED(environment);
SubGhzProtocolEncoderRevers_RB2* instance = malloc(sizeof(SubGhzProtocolEncoderRevers_RB2));
instance->base.protocol = &subghz_protocol_revers_rb2;
instance->generic.protocol_name = instance->base.protocol->name;
instance->encoder.repeat = 10;
instance->encoder.size_upload = 1768;
instance->encoder.upload = malloc(instance->encoder.size_upload * sizeof(LevelDuration));
instance->encoder.is_running = false;
return instance;
}
void subghz_protocol_encoder_revers_rb2_free(void* context) {
furi_assert(context);
SubGhzProtocolEncoderRevers_RB2* instance = context;
free(instance->encoder.upload);
free(instance);
}
static LevelDuration
subghz_protocol_encoder_revers_rb2_add_duration_to_upload(ManchesterEncoderResult result) {
LevelDuration data = {.duration = 0, .level = 0};
switch(result) {
case ManchesterEncoderResultShortLow:
data.duration = subghz_protocol_revers_rb2_const.te_short;
data.level = false;
break;
case ManchesterEncoderResultLongLow:
data.duration = subghz_protocol_revers_rb2_const.te_long;
data.level = false;
break;
case ManchesterEncoderResultLongHigh:
data.duration = subghz_protocol_revers_rb2_const.te_long;
data.level = true;
break;
case ManchesterEncoderResultShortHigh:
data.duration = subghz_protocol_revers_rb2_const.te_short;
data.level = true;
break;
default:
furi_crash("SubGhz: ManchesterEncoderResult is incorrect.");
break;
}
return level_duration_make(data.level, data.duration);
}
/**
* Generating an upload from data.
* @param instance Pointer to a SubGhzProtocolEncoderRevers_RB2 instance
*/
static void
subghz_protocol_encoder_revers_rb2_get_upload(SubGhzProtocolEncoderRevers_RB2* instance) {
furi_assert(instance);
size_t index = 0;
for(size_t r = 0; r < 6; r++) {
ManchesterEncoderState enc_state;
manchester_encoder_reset(&enc_state);
ManchesterEncoderResult result;
for(uint8_t i = instance->generic.data_count_bit; i > 0; i--) {
if(!manchester_encoder_advance(
&enc_state, bit_read(instance->generic.data, i - 1), &result)) {
instance->encoder.upload[index++] =
subghz_protocol_encoder_revers_rb2_add_duration_to_upload(result);
manchester_encoder_advance(
&enc_state, bit_read(instance->generic.data, i - 1), &result);
}
instance->encoder.upload[index++] =
subghz_protocol_encoder_revers_rb2_add_duration_to_upload(result);
}
instance->encoder.upload[index] =
subghz_protocol_encoder_revers_rb2_add_duration_to_upload(
manchester_encoder_finish(&enc_state));
if(level_duration_get_level(instance->encoder.upload[index])) {
index++;
}
instance->encoder.upload[index++] = level_duration_make(false, (uint32_t)320);
}
instance->encoder.size_upload = index;
}
/**
* Analysis of received data
* @param instance Pointer to a SubGhzBlockGeneric* instance
*/
static void subghz_protocol_revers_rb2_remote_controller(SubGhzBlockGeneric* instance) {
// Revers RB2 / RB2M Decoder
// 02.2025 - @xMasterX (MMX)
instance->serial = (((instance->data << 16) >> 16) >> 10);
}
SubGhzProtocolStatus
subghz_protocol_encoder_revers_rb2_deserialize(void* context, FlipperFormat* flipper_format) {
furi_assert(context);
SubGhzProtocolEncoderRevers_RB2* instance = context;
SubGhzProtocolStatus ret = SubGhzProtocolStatusError;
do {
ret = subghz_block_generic_deserialize_check_count_bit(
&instance->generic,
flipper_format,
subghz_protocol_revers_rb2_const.min_count_bit_for_found);
if(ret != SubGhzProtocolStatusOk) {
break;
}
//optional parameter parameter
flipper_format_read_uint32(
flipper_format, "Repeat", (uint32_t*)&instance->encoder.repeat, 1);
subghz_protocol_revers_rb2_remote_controller(&instance->generic);
subghz_protocol_encoder_revers_rb2_get_upload(instance);
instance->encoder.front = 0;
instance->encoder.is_running = true;
} while(false);
return ret;
}
void subghz_protocol_encoder_revers_rb2_stop(void* context) {
SubGhzProtocolEncoderRevers_RB2* instance = context;
instance->encoder.is_running = false;
instance->encoder.front = 0;
}
LevelDuration subghz_protocol_encoder_revers_rb2_yield(void* context) {
SubGhzProtocolEncoderRevers_RB2* instance = context;
if(instance->encoder.repeat == 0 || !instance->encoder.is_running) {
instance->encoder.is_running = false;
return level_duration_reset();
}
LevelDuration ret = instance->encoder.upload[instance->encoder.front];
if(++instance->encoder.front == instance->encoder.size_upload) {
instance->encoder.repeat--;
instance->encoder.front = 0;
}
return ret;
}
void* subghz_protocol_decoder_revers_rb2_alloc(SubGhzEnvironment* environment) {
UNUSED(environment);
SubGhzProtocolDecoderRevers_RB2* instance = malloc(sizeof(SubGhzProtocolDecoderRevers_RB2));
instance->base.protocol = &subghz_protocol_revers_rb2;
instance->generic.protocol_name = instance->base.protocol->name;
return instance;
}
void subghz_protocol_decoder_revers_rb2_free(void* context) {
furi_assert(context);
SubGhzProtocolDecoderRevers_RB2* instance = context;
free(instance);
}
void subghz_protocol_decoder_revers_rb2_reset(void* context) {
furi_assert(context);
SubGhzProtocolDecoderRevers_RB2* instance = context;
instance->decoder.parser_step = Revers_RB2DecoderStepReset;
instance->header_count = 0;
manchester_advance(
instance->manchester_saved_state,
ManchesterEventReset,
&instance->manchester_saved_state,
NULL);
}
void subghz_protocol_decoder_revers_rb2_addbit(void* context, bool data) {
SubGhzProtocolDecoderRevers_RB2* instance = context;
instance->decoder.decode_data = (instance->decoder.decode_data << 1) | data;
instance->decoder.decode_count_bit++;
if(instance->decoder.decode_count_bit >= 65) {
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
return;
}
if(instance->decoder.decode_count_bit <
subghz_protocol_revers_rb2_const.min_count_bit_for_found) {
return;
}
// Revers RB2 / RB2M Decoder
// 02.2025 - @xMasterX (MMX)
uint16_t preamble = (instance->decoder.decode_data >> 48) & 0xFF;
uint16_t stop_code = (instance->decoder.decode_data & 0x3FF);
if(preamble == 0xFF && stop_code == 0x200) {
//Found header and stop code
instance->generic.data = instance->decoder.decode_data;
instance->generic.data_count_bit = instance->decoder.decode_count_bit;
if(instance->base.callback)
instance->base.callback(&instance->base, instance->base.context);
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
manchester_advance(
instance->manchester_saved_state,
ManchesterEventReset,
&instance->manchester_saved_state,
NULL);
}
}
void subghz_protocol_decoder_revers_rb2_feed(void* context, bool level, volatile uint32_t duration) {
furi_assert(context);
SubGhzProtocolDecoderRevers_RB2* instance = context;
ManchesterEvent event = ManchesterEventReset;
switch(instance->decoder.parser_step) {
case Revers_RB2DecoderStepReset:
if((!level) &&
(DURATION_DIFF(duration, 600) < subghz_protocol_revers_rb2_const.te_delta)) {
instance->decoder.parser_step = Revers_RB2DecoderStepHeader;
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
manchester_advance(
instance->manchester_saved_state,
ManchesterEventReset,
&instance->manchester_saved_state,
NULL);
}
break;
case Revers_RB2DecoderStepHeader:
if(!level) {
if(DURATION_DIFF(duration, subghz_protocol_revers_rb2_const.te_short) <
subghz_protocol_revers_rb2_const.te_delta) {
if(instance->decoder.te_last == 1) {
instance->header_count++;
}
instance->decoder.te_last = level;
} else {
instance->header_count = 0;
instance->decoder.te_last = 0;
instance->decoder.parser_step = Revers_RB2DecoderStepReset;
}
} else {
if(DURATION_DIFF(duration, subghz_protocol_revers_rb2_const.te_short) <
subghz_protocol_revers_rb2_const.te_delta) {
if(instance->decoder.te_last == 0) {
instance->header_count++;
}
instance->decoder.te_last = level;
} else {
instance->header_count = 0;
instance->decoder.te_last = 0;
instance->decoder.parser_step = Revers_RB2DecoderStepReset;
}
}
if(instance->header_count == 4) {
instance->header_count = 0;
instance->decoder.decode_data = 0xF;
instance->decoder.decode_count_bit = 4;
instance->decoder.parser_step = Revers_RB2DecoderStepDecoderData;
}
break;
case Revers_RB2DecoderStepDecoderData:
if(!level) {
if(DURATION_DIFF(duration, subghz_protocol_revers_rb2_const.te_short) <
subghz_protocol_revers_rb2_const.te_delta) {
event = ManchesterEventShortLow;
} else if(
DURATION_DIFF(duration, subghz_protocol_revers_rb2_const.te_long) <
subghz_protocol_revers_rb2_const.te_delta) {
event = ManchesterEventLongLow;
} else {
instance->decoder.parser_step = Revers_RB2DecoderStepReset;
}
} else {
if(DURATION_DIFF(duration, subghz_protocol_revers_rb2_const.te_short) <
subghz_protocol_revers_rb2_const.te_delta) {
event = ManchesterEventShortHigh;
} else if(
DURATION_DIFF(duration, subghz_protocol_revers_rb2_const.te_long) <
subghz_protocol_revers_rb2_const.te_delta) {
event = ManchesterEventLongHigh;
} else {
instance->decoder.parser_step = Revers_RB2DecoderStepReset;
}
}
if(event != ManchesterEventReset) {
bool data;
bool data_ok = manchester_advance(
instance->manchester_saved_state, event, &instance->manchester_saved_state, &data);
if(data_ok) {
subghz_protocol_decoder_revers_rb2_addbit(instance, data);
}
}
break;
}
}
uint8_t subghz_protocol_decoder_revers_rb2_get_hash_data(void* context) {
furi_assert(context);
SubGhzProtocolDecoderRevers_RB2* instance = context;
return subghz_protocol_blocks_get_hash_data(
&instance->decoder, (instance->decoder.decode_count_bit / 8) + 1);
}
SubGhzProtocolStatus subghz_protocol_decoder_revers_rb2_serialize(
void* context,
FlipperFormat* flipper_format,
SubGhzRadioPreset* preset) {
furi_assert(context);
SubGhzProtocolDecoderRevers_RB2* instance = context;
return subghz_block_generic_serialize(&instance->generic, flipper_format, preset);
}
SubGhzProtocolStatus
subghz_protocol_decoder_revers_rb2_deserialize(void* context, FlipperFormat* flipper_format) {
furi_assert(context);
SubGhzProtocolDecoderRevers_RB2* instance = context;
return subghz_block_generic_deserialize_check_count_bit(
&instance->generic,
flipper_format,
subghz_protocol_revers_rb2_const.min_count_bit_for_found);
}
void subghz_protocol_decoder_revers_rb2_get_string(void* context, FuriString* output) {
furi_assert(context);
SubGhzProtocolDecoderRevers_RB2* instance = context;
subghz_protocol_revers_rb2_remote_controller(&instance->generic);
furi_string_cat_printf(
output,
"%s %db\r\n"
"Key:%lX%08lX\r\n"
"Sn:0x%08lX \r\n",
instance->generic.protocol_name,
instance->generic.data_count_bit,
(uint32_t)(instance->generic.data >> 32),
(uint32_t)(instance->generic.data & 0xFFFFFFFF),
instance->generic.serial);
}

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#pragma once
#include "base.h"
#define SUBGHZ_PROTOCOL_REVERSRB2_NAME "Revers_RB2"
typedef struct SubGhzProtocolDecoderRevers_RB2 SubGhzProtocolDecoderRevers_RB2;
typedef struct SubGhzProtocolEncoderRevers_RB2 SubGhzProtocolEncoderRevers_RB2;
extern const SubGhzProtocolDecoder subghz_protocol_revers_rb2_decoder;
extern const SubGhzProtocolEncoder subghz_protocol_revers_rb2_encoder;
extern const SubGhzProtocol subghz_protocol_revers_rb2;
/**
* Allocate SubGhzProtocolEncoderRevers_RB2.
* @param environment Pointer to a SubGhzEnvironment instance
* @return SubGhzProtocolEncoderRevers_RB2* pointer to a SubGhzProtocolEncoderRevers_RB2 instance
*/
void* subghz_protocol_encoder_revers_rb2_alloc(SubGhzEnvironment* environment);
/**
* Free SubGhzProtocolEncoderRevers_RB2.
* @param context Pointer to a SubGhzProtocolEncoderRevers_RB2 instance
*/
void subghz_protocol_encoder_revers_rb2_free(void* context);
/**
* Deserialize and generating an upload to send.
* @param context Pointer to a SubGhzProtocolEncoderRevers_RB2 instance
* @param flipper_format Pointer to a FlipperFormat instance
* @return status
*/
SubGhzProtocolStatus
subghz_protocol_encoder_revers_rb2_deserialize(void* context, FlipperFormat* flipper_format);
/**
* Forced transmission stop.
* @param context Pointer to a SubGhzProtocolEncoderRevers_RB2 instance
*/
void subghz_protocol_encoder_revers_rb2_stop(void* context);
/**
* Getting the level and duration of the upload to be loaded into DMA.
* @param context Pointer to a SubGhzProtocolEncoderRevers_RB2 instance
* @return LevelDuration
*/
LevelDuration subghz_protocol_encoder_revers_rb2_yield(void* context);
/**
* Allocate SubGhzProtocolDecoderRevers_RB2.
* @param environment Pointer to a SubGhzEnvironment instance
* @return SubGhzProtocolDecoderRevers_RB2* pointer to a SubGhzProtocolDecoderRevers_RB2 instance
*/
void* subghz_protocol_decoder_revers_rb2_alloc(SubGhzEnvironment* environment);
/**
* Free SubGhzProtocolDecoderRevers_RB2.
* @param context Pointer to a SubGhzProtocolDecoderRevers_RB2 instance
*/
void subghz_protocol_decoder_revers_rb2_free(void* context);
/**
* Reset decoder SubGhzProtocolDecoderRevers_RB2.
* @param context Pointer to a SubGhzProtocolDecoderRevers_RB2 instance
*/
void subghz_protocol_decoder_revers_rb2_reset(void* context);
/**
* Parse a raw sequence of levels and durations received from the air.
* @param context Pointer to a SubGhzProtocolDecoderRevers_RB2 instance
* @param level Signal level true-high false-low
* @param duration Duration of this level in, us
*/
void subghz_protocol_decoder_revers_rb2_feed(void* context, bool level, uint32_t duration);
/**
* Getting the hash sum of the last randomly received parcel.
* @param context Pointer to a SubGhzProtocolDecoderRevers_RB2 instance
* @return hash Hash sum
*/
uint8_t subghz_protocol_decoder_revers_rb2_get_hash_data(void* context);
/**
* Serialize data SubGhzProtocolDecoderRevers_RB2.
* @param context Pointer to a SubGhzProtocolDecoderRevers_RB2 instance
* @param flipper_format Pointer to a FlipperFormat instance
* @param preset The modulation on which the signal was received, SubGhzRadioPreset
* @return status
*/
SubGhzProtocolStatus subghz_protocol_decoder_revers_rb2_serialize(
void* context,
FlipperFormat* flipper_format,
SubGhzRadioPreset* preset);
/**
* Deserialize data SubGhzProtocolDecoderRevers_RB2.
* @param context Pointer to a SubGhzProtocolDecoderRevers_RB2 instance
* @param flipper_format Pointer to a FlipperFormat instance
* @return status
*/
SubGhzProtocolStatus
subghz_protocol_decoder_revers_rb2_deserialize(void* context, FlipperFormat* flipper_format);
/**
* Getting a textual representation of the received data.
* @param context Pointer to a SubGhzProtocolDecoderRevers_RB2 instance
* @param output Resulting text
*/
void subghz_protocol_decoder_revers_rb2_get_string(void* context, FuriString* output);

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#include "roger.h"
#include "../blocks/const.h"
#include "../blocks/decoder.h"
#include "../blocks/encoder.h"
#include "../blocks/generic.h"
#include "../blocks/math.h"
#define TAG "SubGhzProtocolRoger"
static const SubGhzBlockConst subghz_protocol_roger_const = {
.te_short = 500,
.te_long = 1000,
.te_delta = 270,
.min_count_bit_for_found = 28,
};
struct SubGhzProtocolDecoderRoger {
SubGhzProtocolDecoderBase base;
SubGhzBlockDecoder decoder;
SubGhzBlockGeneric generic;
};
struct SubGhzProtocolEncoderRoger {
SubGhzProtocolEncoderBase base;
SubGhzProtocolBlockEncoder encoder;
SubGhzBlockGeneric generic;
};
typedef enum {
RogerDecoderStepReset = 0,
RogerDecoderStepSaveDuration,
RogerDecoderStepCheckDuration,
} RogerDecoderStep;
const SubGhzProtocolDecoder subghz_protocol_roger_decoder = {
.alloc = subghz_protocol_decoder_roger_alloc,
.free = subghz_protocol_decoder_roger_free,
.feed = subghz_protocol_decoder_roger_feed,
.reset = subghz_protocol_decoder_roger_reset,
.get_hash_data = subghz_protocol_decoder_roger_get_hash_data,
.serialize = subghz_protocol_decoder_roger_serialize,
.deserialize = subghz_protocol_decoder_roger_deserialize,
.get_string = subghz_protocol_decoder_roger_get_string,
};
const SubGhzProtocolEncoder subghz_protocol_roger_encoder = {
.alloc = subghz_protocol_encoder_roger_alloc,
.free = subghz_protocol_encoder_roger_free,
.deserialize = subghz_protocol_encoder_roger_deserialize,
.stop = subghz_protocol_encoder_roger_stop,
.yield = subghz_protocol_encoder_roger_yield,
};
const SubGhzProtocol subghz_protocol_roger = {
.name = SUBGHZ_PROTOCOL_ROGER_NAME,
.type = SubGhzProtocolTypeStatic,
.flag = SubGhzProtocolFlag_433 | SubGhzProtocolFlag_868 | SubGhzProtocolFlag_AM |
SubGhzProtocolFlag_Decodable | SubGhzProtocolFlag_Load | SubGhzProtocolFlag_Save |
SubGhzProtocolFlag_Send,
.decoder = &subghz_protocol_roger_decoder,
.encoder = &subghz_protocol_roger_encoder,
};
void* subghz_protocol_encoder_roger_alloc(SubGhzEnvironment* environment) {
UNUSED(environment);
SubGhzProtocolEncoderRoger* instance = malloc(sizeof(SubGhzProtocolEncoderRoger));
instance->base.protocol = &subghz_protocol_roger;
instance->generic.protocol_name = instance->base.protocol->name;
instance->encoder.repeat = 10;
instance->encoder.size_upload = 256;
instance->encoder.upload = malloc(instance->encoder.size_upload * sizeof(LevelDuration));
instance->encoder.is_running = false;
return instance;
}
void subghz_protocol_encoder_roger_free(void* context) {
furi_assert(context);
SubGhzProtocolEncoderRoger* instance = context;
free(instance->encoder.upload);
free(instance);
}
/**
* Generating an upload from data.
* @param instance Pointer to a SubGhzProtocolEncoderRoger instance
*/
static void subghz_protocol_encoder_roger_get_upload(SubGhzProtocolEncoderRoger* instance) {
furi_assert(instance);
size_t index = 0;
// Send key and GAP
for(uint8_t i = instance->generic.data_count_bit; i > 0; i--) {
if(bit_read(instance->generic.data, i - 1)) {
// Send bit 1
instance->encoder.upload[index++] =
level_duration_make(true, (uint32_t)subghz_protocol_roger_const.te_long);
if(i == 1) {
//Send gap if bit was last
instance->encoder.upload[index++] = level_duration_make(
false, (uint32_t)subghz_protocol_roger_const.te_short * 19);
} else {
instance->encoder.upload[index++] =
level_duration_make(false, (uint32_t)subghz_protocol_roger_const.te_short);
}
} else {
// Send bit 0
instance->encoder.upload[index++] =
level_duration_make(true, (uint32_t)subghz_protocol_roger_const.te_short);
if(i == 1) {
//Send gap if bit was last
instance->encoder.upload[index++] = level_duration_make(
false, (uint32_t)subghz_protocol_roger_const.te_short * 19);
} else {
instance->encoder.upload[index++] =
level_duration_make(false, (uint32_t)subghz_protocol_roger_const.te_long);
}
}
}
instance->encoder.size_upload = index;
return;
}
/**
* Analysis of received data
* @param instance Pointer to a SubGhzBlockGeneric* instance
*/
static void subghz_protocol_roger_check_remote_controller(SubGhzBlockGeneric* instance) {
// Roger Decoder
// 2025.07 - @xMasterX (MMX)
// Key samples
// 0010001111111001 0001 00100000 // S/N: 0x23F9 Btn: 0x1 End: 0x20
// 0010001111111001 0010 00100011 // S/N: 0x23F9 Btn: 0x2 End: 0x23
// 0101011001010110 0001 00000001 // S/N: 0x5656 Btn: 0x1 End: 0x01
// 0101011001010110 0010 00000010 // S/N: 0x5656 Btn: 0x2 End: 0x02
// 0000110111111110 0001 00000001 // S/N: 0x0DFE Btn: 0x1 End: 0x01
// 0000110111111110 0100 00000100 // S/N: 0x0DFE Btn: 0x4 End: 0x04
// 0000110111111110 0010 00000010 // S/N: 0x0DFE Btn: 0x2 End: 0x02
// 0000110111111110 1000 00001000 // S/N: 0x0DFE Btn: 0x8 End: 0x08
instance->serial = instance->data >> 12;
instance->btn = (instance->data >> 8) & 0xF;
}
SubGhzProtocolStatus
subghz_protocol_encoder_roger_deserialize(void* context, FlipperFormat* flipper_format) {
furi_assert(context);
SubGhzProtocolEncoderRoger* instance = context;
SubGhzProtocolStatus ret = SubGhzProtocolStatusError;
do {
ret = subghz_block_generic_deserialize_check_count_bit(
&instance->generic,
flipper_format,
subghz_protocol_roger_const.min_count_bit_for_found);
if(ret != SubGhzProtocolStatusOk) {
break;
}
//optional parameter parameter
flipper_format_read_uint32(
flipper_format, "Repeat", (uint32_t*)&instance->encoder.repeat, 1);
subghz_protocol_roger_check_remote_controller(&instance->generic);
subghz_protocol_encoder_roger_get_upload(instance);
instance->encoder.front = 0;
instance->encoder.is_running = true;
} while(false);
return ret;
}
void subghz_protocol_encoder_roger_stop(void* context) {
SubGhzProtocolEncoderRoger* instance = context;
instance->encoder.is_running = false;
instance->encoder.front = 0;
}
LevelDuration subghz_protocol_encoder_roger_yield(void* context) {
SubGhzProtocolEncoderRoger* instance = context;
if(instance->encoder.repeat == 0 || !instance->encoder.is_running) {
instance->encoder.is_running = false;
return level_duration_reset();
}
LevelDuration ret = instance->encoder.upload[instance->encoder.front];
if(++instance->encoder.front == instance->encoder.size_upload) {
instance->encoder.repeat--;
instance->encoder.front = 0;
}
return ret;
}
void* subghz_protocol_decoder_roger_alloc(SubGhzEnvironment* environment) {
UNUSED(environment);
SubGhzProtocolDecoderRoger* instance = malloc(sizeof(SubGhzProtocolDecoderRoger));
instance->base.protocol = &subghz_protocol_roger;
instance->generic.protocol_name = instance->base.protocol->name;
return instance;
}
void subghz_protocol_decoder_roger_free(void* context) {
furi_assert(context);
SubGhzProtocolDecoderRoger* instance = context;
free(instance);
}
void subghz_protocol_decoder_roger_reset(void* context) {
furi_assert(context);
SubGhzProtocolDecoderRoger* instance = context;
instance->decoder.parser_step = RogerDecoderStepReset;
}
void subghz_protocol_decoder_roger_feed(void* context, bool level, volatile uint32_t duration) {
furi_assert(context);
SubGhzProtocolDecoderRoger* instance = context;
switch(instance->decoder.parser_step) {
case RogerDecoderStepReset:
if((!level) && (DURATION_DIFF(duration, subghz_protocol_roger_const.te_short * 19) <
subghz_protocol_roger_const.te_delta * 5)) {
//Found GAP
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
instance->decoder.parser_step = RogerDecoderStepSaveDuration;
}
break;
case RogerDecoderStepSaveDuration:
if(level) {
instance->decoder.te_last = duration;
instance->decoder.parser_step = RogerDecoderStepCheckDuration;
} else {
instance->decoder.parser_step = RogerDecoderStepReset;
}
break;
case RogerDecoderStepCheckDuration:
if(!level) {
// Bit 1 is long and short timing = 1000us HIGH (te_last) and 500us LOW
if((DURATION_DIFF(instance->decoder.te_last, subghz_protocol_roger_const.te_long) <
subghz_protocol_roger_const.te_delta) &&
(DURATION_DIFF(duration, subghz_protocol_roger_const.te_short) <
subghz_protocol_roger_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 1);
instance->decoder.parser_step = RogerDecoderStepSaveDuration;
// Bit 0 is short and long timing = 500us HIGH (te_last) and 1000us LOW
} else if(
(DURATION_DIFF(instance->decoder.te_last, subghz_protocol_roger_const.te_short) <
subghz_protocol_roger_const.te_delta) &&
(DURATION_DIFF(duration, subghz_protocol_roger_const.te_long) <
subghz_protocol_roger_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 0);
instance->decoder.parser_step = RogerDecoderStepSaveDuration;
} else if(
// End of the key
DURATION_DIFF(duration, subghz_protocol_roger_const.te_short * 19) <
subghz_protocol_roger_const.te_delta * 5) {
//Found next GAP and add bit 1 or 0
if((DURATION_DIFF(instance->decoder.te_last, subghz_protocol_roger_const.te_long) <
subghz_protocol_roger_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 1);
}
if((DURATION_DIFF(instance->decoder.te_last, subghz_protocol_roger_const.te_short) <
subghz_protocol_roger_const.te_delta)) {
subghz_protocol_blocks_add_bit(&instance->decoder, 0);
}
// If got full 28 bits key reading is finished
if(instance->decoder.decode_count_bit ==
subghz_protocol_roger_const.min_count_bit_for_found) {
instance->generic.data = instance->decoder.decode_data;
instance->generic.data_count_bit = instance->decoder.decode_count_bit;
if(instance->base.callback)
instance->base.callback(&instance->base, instance->base.context);
}
instance->decoder.decode_data = 0;
instance->decoder.decode_count_bit = 0;
instance->decoder.parser_step = RogerDecoderStepReset;
} else {
instance->decoder.parser_step = RogerDecoderStepReset;
}
} else {
instance->decoder.parser_step = RogerDecoderStepReset;
}
break;
}
}
uint8_t subghz_protocol_decoder_roger_get_hash_data(void* context) {
furi_assert(context);
SubGhzProtocolDecoderRoger* instance = context;
return subghz_protocol_blocks_get_hash_data(
&instance->decoder, (instance->decoder.decode_count_bit / 8) + 1);
}
SubGhzProtocolStatus subghz_protocol_decoder_roger_serialize(
void* context,
FlipperFormat* flipper_format,
SubGhzRadioPreset* preset) {
furi_assert(context);
SubGhzProtocolDecoderRoger* instance = context;
return subghz_block_generic_serialize(&instance->generic, flipper_format, preset);
}
SubGhzProtocolStatus
subghz_protocol_decoder_roger_deserialize(void* context, FlipperFormat* flipper_format) {
furi_assert(context);
SubGhzProtocolDecoderRoger* instance = context;
return subghz_block_generic_deserialize_check_count_bit(
&instance->generic, flipper_format, subghz_protocol_roger_const.min_count_bit_for_found);
}
void subghz_protocol_decoder_roger_get_string(void* context, FuriString* output) {
furi_assert(context);
SubGhzProtocolDecoderRoger* instance = context;
subghz_protocol_roger_check_remote_controller(&instance->generic);
furi_string_cat_printf(
output,
"%s %db\r\n"
"Key: 0x%07lX\r\n"
"Serial: 0x%04lX\r\n"
"End: 0x%02lX\r\n"
"Btn: %01X",
instance->generic.protocol_name,
instance->generic.data_count_bit,
(uint32_t)(instance->generic.data & 0xFFFFFFF),
instance->generic.serial,
(uint32_t)(instance->generic.data & 0xFF),
instance->generic.btn);
}

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#pragma once
#include "base.h"
#define SUBGHZ_PROTOCOL_ROGER_NAME "Roger"
typedef struct SubGhzProtocolDecoderRoger SubGhzProtocolDecoderRoger;
typedef struct SubGhzProtocolEncoderRoger SubGhzProtocolEncoderRoger;
extern const SubGhzProtocolDecoder subghz_protocol_roger_decoder;
extern const SubGhzProtocolEncoder subghz_protocol_roger_encoder;
extern const SubGhzProtocol subghz_protocol_roger;
/**
* Allocate SubGhzProtocolEncoderRoger.
* @param environment Pointer to a SubGhzEnvironment instance
* @return SubGhzProtocolEncoderRoger* pointer to a SubGhzProtocolEncoderRoger instance
*/
void* subghz_protocol_encoder_roger_alloc(SubGhzEnvironment* environment);
/**
* Free SubGhzProtocolEncoderRoger.
* @param context Pointer to a SubGhzProtocolEncoderRoger instance
*/
void subghz_protocol_encoder_roger_free(void* context);
/**
* Deserialize and generating an upload to send.
* @param context Pointer to a SubGhzProtocolEncoderRoger instance
* @param flipper_format Pointer to a FlipperFormat instance
* @return status
*/
SubGhzProtocolStatus
subghz_protocol_encoder_roger_deserialize(void* context, FlipperFormat* flipper_format);
/**
* Forced transmission stop.
* @param context Pointer to a SubGhzProtocolEncoderRoger instance
*/
void subghz_protocol_encoder_roger_stop(void* context);
/**
* Getting the level and duration of the upload to be loaded into DMA.
* @param context Pointer to a SubGhzProtocolEncoderRoger instance
* @return LevelDuration
*/
LevelDuration subghz_protocol_encoder_roger_yield(void* context);
/**
* Allocate SubGhzProtocolDecoderRoger.
* @param environment Pointer to a SubGhzEnvironment instance
* @return SubGhzProtocolDecoderRoger* pointer to a SubGhzProtocolDecoderRoger instance
*/
void* subghz_protocol_decoder_roger_alloc(SubGhzEnvironment* environment);
/**
* Free SubGhzProtocolDecoderRoger.
* @param context Pointer to a SubGhzProtocolDecoderRoger instance
*/
void subghz_protocol_decoder_roger_free(void* context);
/**
* Reset decoder SubGhzProtocolDecoderRoger.
* @param context Pointer to a SubGhzProtocolDecoderRoger instance
*/
void subghz_protocol_decoder_roger_reset(void* context);
/**
* Parse a raw sequence of levels and durations received from the air.
* @param context Pointer to a SubGhzProtocolDecoderRoger instance
* @param level Signal level true-high false-low
* @param duration Duration of this level in, us
*/
void subghz_protocol_decoder_roger_feed(void* context, bool level, uint32_t duration);
/**
* Getting the hash sum of the last randomly received parcel.
* @param context Pointer to a SubGhzProtocolDecoderRoger instance
* @return hash Hash sum
*/
uint8_t subghz_protocol_decoder_roger_get_hash_data(void* context);
/**
* Serialize data SubGhzProtocolDecoderRoger.
* @param context Pointer to a SubGhzProtocolDecoderRoger instance
* @param flipper_format Pointer to a FlipperFormat instance
* @param preset The modulation on which the signal was received, SubGhzRadioPreset
* @return status
*/
SubGhzProtocolStatus subghz_protocol_decoder_roger_serialize(
void* context,
FlipperFormat* flipper_format,
SubGhzRadioPreset* preset);
/**
* Deserialize data SubGhzProtocolDecoderRoger.
* @param context Pointer to a SubGhzProtocolDecoderRoger instance
* @param flipper_format Pointer to a FlipperFormat instance
* @return status
*/
SubGhzProtocolStatus
subghz_protocol_decoder_roger_deserialize(void* context, FlipperFormat* flipper_format);
/**
* Getting a textual representation of the received data.
* @param context Pointer to a SubGhzProtocolDecoderRoger instance
* @param output Resulting text
*/
void subghz_protocol_decoder_roger_get_string(void* context, FuriString* output);

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@@ -219,18 +219,43 @@ static void subghz_protocol_scher_khan_check_remote_controller(
*/ */
switch(instance->data_count_bit) { switch(instance->data_count_bit) {
// case 35: //MAGIC CODE, Static case 35: //MAGIC CODE, Static
// instance->protocol_name = "MAGIC CODE, Static"; *protocol_name = "MAGIC CODE, Static";
// break; instance->serial = 0;
instance->btn = 0;
instance->cnt = 0;
break;
case 51: //MAGIC CODE, Dynamic case 51: //MAGIC CODE, Dynamic
*protocol_name = "MAGIC CODE, Dynamic"; *protocol_name = "MAGIC CODE, Dynamic";
instance->serial = ((instance->data >> 24) & 0xFFFFFF0) | ((instance->data >> 20) & 0x0F); instance->serial = ((instance->data >> 24) & 0xFFFFFF0) | ((instance->data >> 20) & 0x0F);
instance->btn = (instance->data >> 24) & 0x0F; instance->btn = (instance->data >> 24) & 0x0F;
instance->cnt = instance->data & 0xFFFF; instance->cnt = instance->data & 0xFFFF;
break; break;
// case 57: //MAGIC CODE PRO / PRO2 case 57: //MAGIC CODE PRO / PRO2
// instance->protocol_name = "MAGIC CODE PRO / PRO2"; *protocol_name = "MAGIC CODE PRO/PRO2";
// break; instance->serial = 0;
instance->btn = 0;
instance->cnt = 0;
break;
case 63: //MAGIC CODE, Dynamic Response
*protocol_name = "MAGIC CODE, Response";
instance->serial = 0;
instance->btn = 0;
instance->cnt = 0;
break;
case 64: //MAGICAR, Response ???
*protocol_name = "MAGICAR, Response";
instance->serial = 0;
instance->btn = 0;
instance->cnt = 0;
break;
case 81: // MAGIC CODE PRO / PRO2 Response ???
case 82: // MAGIC CODE PRO / PRO2 Response ???
*protocol_name = "MAGIC CODE PRO,\n Response";
instance->serial = 0;
instance->btn = 0;
instance->cnt = 0;
break;
default: default:
*protocol_name = "Unknown"; *protocol_name = "Unknown";

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@@ -554,6 +554,7 @@ SubGhzProtocolStatus
break; break;
} }
instance->encoder.front = 0; // reset before start
instance->encoder.is_running = true; instance->encoder.is_running = true;
} while(false); } while(false);
@@ -563,6 +564,7 @@ SubGhzProtocolStatus
void subghz_protocol_encoder_secplus_v2_stop(void* context) { void subghz_protocol_encoder_secplus_v2_stop(void* context) {
SubGhzProtocolEncoderSecPlus_v2* instance = context; SubGhzProtocolEncoderSecPlus_v2* instance = context;
instance->encoder.is_running = false; instance->encoder.is_running = false;
instance->encoder.front = 0; // reset position
} }
LevelDuration subghz_protocol_encoder_secplus_v2_yield(void* context) { LevelDuration subghz_protocol_encoder_secplus_v2_yield(void* context) {

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@@ -1076,7 +1076,9 @@ Function,+,felica_crc_trim,void,BitBuffer*
Function,+,felica_free,void,FelicaData* Function,+,felica_free,void,FelicaData*
Function,+,felica_get_base_data,FelicaData*,const FelicaData* Function,+,felica_get_base_data,FelicaData*,const FelicaData*
Function,+,felica_get_device_name,const char*,"const FelicaData*, NfcDeviceNameType" Function,+,felica_get_device_name,const char*,"const FelicaData*, NfcDeviceNameType"
Function,+,felica_get_ic_name,void,"const FelicaData*, FuriString*"
Function,+,felica_get_uid,const uint8_t*,"const FelicaData*, size_t*" Function,+,felica_get_uid,const uint8_t*,"const FelicaData*, size_t*"
Function,+,felica_get_workflow_type,void,FelicaData*
Function,+,felica_is_equal,_Bool,"const FelicaData*, const FelicaData*" Function,+,felica_is_equal,_Bool,"const FelicaData*, const FelicaData*"
Function,+,felica_load,_Bool,"FelicaData*, FlipperFormat*, uint32_t" Function,+,felica_load,_Bool,"FelicaData*, FlipperFormat*, uint32_t"
Function,+,felica_poller_activate,FelicaError,"FelicaPoller*, FelicaData*" Function,+,felica_poller_activate,FelicaError,"FelicaPoller*, FelicaData*"
@@ -1084,8 +1086,10 @@ Function,+,felica_poller_read_blocks,FelicaError,"FelicaPoller*, const uint8_t,
Function,+,felica_poller_sync_read,FelicaError,"Nfc*, FelicaData*, const FelicaCardKey*" Function,+,felica_poller_sync_read,FelicaError,"Nfc*, FelicaData*, const FelicaCardKey*"
Function,+,felica_reset,void,FelicaData* Function,+,felica_reset,void,FelicaData*
Function,+,felica_save,_Bool,"const FelicaData*, FlipperFormat*" Function,+,felica_save,_Bool,"const FelicaData*, FlipperFormat*"
Function,+,felica_service_get_attribute_string,void,"const FelicaService*, FuriString*"
Function,+,felica_set_uid,_Bool,"FelicaData*, const uint8_t*, size_t" Function,+,felica_set_uid,_Bool,"FelicaData*, const uint8_t*, size_t"
Function,+,felica_verify,_Bool,"FelicaData*, const FuriString*" Function,+,felica_verify,_Bool,"FelicaData*, const FuriString*"
Function,+,felica_write_directory_tree,void,"const FelicaData*, FuriString*"
Function,-,feof,int,FILE* Function,-,feof,int,FILE*
Function,-,feof_unlocked,int,FILE* Function,-,feof_unlocked,int,FILE*
Function,-,ferror,int,FILE* Function,-,ferror,int,FILE*
1 entry status name type params
1076 Function + felica_free void FelicaData*
1077 Function + felica_get_base_data FelicaData* const FelicaData*
1078 Function + felica_get_device_name const char* const FelicaData*, NfcDeviceNameType
1079 Function + felica_get_ic_name void const FelicaData*, FuriString*
1080 Function + felica_get_uid const uint8_t* const FelicaData*, size_t*
1081 Function + felica_get_workflow_type void FelicaData*
1082 Function + felica_is_equal _Bool const FelicaData*, const FelicaData*
1083 Function + felica_load _Bool FelicaData*, FlipperFormat*, uint32_t
1084 Function + felica_poller_activate FelicaError FelicaPoller*, FelicaData*
1086 Function + felica_poller_sync_read FelicaError Nfc*, FelicaData*, const FelicaCardKey*
1087 Function + felica_reset void FelicaData*
1088 Function + felica_save _Bool const FelicaData*, FlipperFormat*
1089 Function + felica_service_get_attribute_string void const FelicaService*, FuriString*
1090 Function + felica_set_uid _Bool FelicaData*, const uint8_t*, size_t
1091 Function + felica_verify _Bool FelicaData*, const FuriString*
1092 Function + felica_write_directory_tree void const FelicaData*, FuriString*
1093 Function - feof int FILE*
1094 Function - feof_unlocked int FILE*
1095 Function - ferror int FILE*