移植HPW423评分版433解码器

This commit is contained in:
2026-07-27 23:42:21 +08:00
parent 241bf50b3f
commit e874a8673e
7 changed files with 913 additions and 98 deletions
@@ -6,6 +6,7 @@
#include "timer.h" #include "timer.h"
#include "light_transition.h" #include "light_transition.h"
#include "pwm.h" #include "pwm.h"
#include "rf433_decoder.h"
union rf433_flag rf_flag = {0}; union rf433_flag rf_flag = {0};
unsigned char high_level_time; unsigned char high_level_time;
unsigned char low_level_time; unsigned char low_level_time;
@@ -98,6 +99,8 @@ static uint8_t pair_command_replay;
#define PAIR_HOLD_FRAME_COUNT 4U #define PAIR_HOLD_FRAME_COUNT 4U
#define PAIR_FRAME_SILENCE_TICKS 100U #define PAIR_FRAME_SILENCE_TICKS 100U
#define PAIRING_WINDOW_TICKS 50000UL #define PAIRING_WINDOW_TICKS 50000UL
#define RF433_RELEASE_TIMEOUT_TICKS 1500U
#define RF433_MS_TO_SAMPLE_TICKS(ms) ((uint16_t)((ms) * (1000U / RF433_DECODER_SAMPLE_US)))
uint8_t long_flag_s=0; uint8_t long_flag_s=0;
void _433_fun(void); void _433_fun(void);
@@ -339,7 +342,22 @@ static void Encoder_key_NoCode(){
} }
static void Rf433_Decoder_Frame_Poll(void)
{
Rf433DecoderFrame_t frame;
if(!rf433_decoder_get_frame(&frame)) return;
receive_data = frame.code;
receive_temp = frame.code;
res_data = frame.key;
rf_frame_sequence++;
rf_flag.rf_receive_flag.receive_finish = 1U;
long_time = RF433_RELEASE_TIMEOUT_TICKS;
}
void Encoder_key(){ void Encoder_key(){
Rf433_Decoder_Frame_Poll();
Encoder_key_NoCode(); //一对一 Encoder_key_NoCode(); //一对一
Pairing_Feedback_Task(); Pairing_Feedback_Task();
} }
@@ -364,106 +382,41 @@ static void set_click(){
} }
} }
void rf433_receive(void)//rf433接收,查询周期100us void rf433_receive(void)//RF433 sample, called every 100 us
{ {
rf433_decoder_sample((RF_DATA == HIGH_LEVEL) ? 1U : 0U);
if (RF_DATA == LOW_LEVEL) if(long_time > 0U)
{ {
low_level_time++;//记录低电平时间 long_time--;
rf_flag.rf_receive_flag.current_level = 0; //当前电平状态 long_flag_s = 0U;
} if(KEY_STATE_re == 1U)
else if (RF_DATA == HIGH_LEVEL)
{ {
high_level_time++;//记录高电平时间 if(time_300ms == 0U)
if (!rf_flag.rf_receive_flag.current_level)//每个上升沿检测,0→1,一个完整的周期检测
{ {
// if ((high_level_time > 1 && high_level_time < 7) && (low_level_time > 115 && low_level_time < 125)) //判同步码,时间间隔12ms time_300ms = RF433_MS_TO_SAMPLE_TICKS(Short_time);
//if ((high_level_time > 4 && high_level_time < 9) && ((low_level_time > 17 && low_level_time < 23))) //判同步码,时间间隔12ms long_flag_s = 1U;
if ((high_level_time > 1 && high_level_time < 7) && (low_level_time > 115 && low_level_time < 130)) //判同步码,时间间隔12ms KEY_STATE_re = 0U;
{
//进来这里需要13ms
rf_flag.rf_receive_flag.sync_code = 1;//同步码接收成功标志
receive_data_cnt = 0;
receive_temp = 0;
long_time=frames_time;
}
else if (rf_flag.rf_receive_flag.sync_code)//开始接收数据包
{
//if ((high_level_time > 1 && high_level_time < 9) && (low_level_time > 8 && low_level_time < 18)) //数据低电平
if ((high_level_time >= 1 && high_level_time <= 7) && (low_level_time >= 7 && low_level_time <= 16)) //数据低电平
{
receive_data_cnt++;//接收24位位数
receive_temp = receive_temp << 1;
if (receive_data_cnt == 24)//24位数据接收完成
{
rf_frame_sequence++;
//进来这个if需要40ms
rf_flag.rf_receive_flag.receive_finish = 1;//24位数据接收完成标志
rf_flag.rf_receive_flag.sync_code = 0;
receive_data = receive_temp;//将接收到的编码复制到解码寄存器中
res_data=receive_temp;
}
}
//else if ((high_level_time > 7 && high_level_time < 18) && (low_level_time > 2 && low_level_time < 9)) //数据高电平
else if ((high_level_time >= 7 && high_level_time <= 16) && (low_level_time >= 2 && low_level_time<= 7)) //数据高电平
{
receive_temp = receive_temp << 1;
receive_temp |= 1;
receive_data_cnt++;
if (receive_data_cnt == 24)
{
rf_frame_sequence++;
//进来这个if需要40ms3748f3
rf_flag.rf_receive_flag.receive_finish = 1;//24位数据接收完成标志
rf_flag.rf_receive_flag.sync_code = 0;
receive_data = receive_temp;//将接收到的编码复制到解码寄存器中
res_data=receive_temp;
}
} }
else else
{ {
rf_flag.rf_receive_flag.sync_code = 0;//接收失败 time_300ms--;
}
long_time=frames_time;//该值一定要大与68,68是指68ms通过逻辑分析仪测量一帧的时间
//
//
}
if(long_time>0){ //一直按着会进入该if
//P05=0; //433LED灯
long_time--;
long_flag_s=0;
if( KEY_STATE_re==1){
if(time_300ms==0){
time_300ms=Short_time;
long_flag_s=1;
KEY_STATE_re=0;
}
else if(time_300ms>0) time_300ms--;
} }
} }
else { //松手 }
time_300ms=LongPress_time; else
long_time=0; {
long_flag_s=0; time_300ms = RF433_MS_TO_SAMPLE_TICKS(LongPress_time);
Key_TypeDef.KEY_STATE_Click=0; long_flag_s = 0U;
KEY_STATE_re=0; Key_TypeDef.KEY_STATE_Click = 0U;
KEY_STATE_re = 0U;
} }
low_level_time = 0;//清零低电平时间 if(time_5s <= PAIRING_WINDOW_TICKS)
high_level_time = 1;//高电平时间开始计数 {
}
rf_flag.rf_receive_flag.current_level = 1;//当前电平状态
}
//
if(time_5s<=PAIRING_WINDOW_TICKS){
time_5s++; time_5s++;
} }
} }
uint16_t spee_dealy_time=0; //速度缓慢变换 uint16_t spee_dealy_time=0; //速度缓慢变换
#define REMOTE_MODE_MIN 0U #define REMOTE_MODE_MIN 0U
@@ -56,6 +56,7 @@
#include "pwm.h" #include "pwm.h"
#include "mode.h" #include "mode.h"
#include "RF433.h" #include "RF433.h"
#include "rf433_decoder.h"
#include "rgblight.h" #include "rgblight.h"
#include "timer.h" #include "timer.h"
#include "fmc_spi.h" #include "fmc_spi.h"
@@ -239,6 +240,7 @@ void board_init()
clock_init(); clock_init();
// app_uart_init(); // app_uart_init();
rf433_gpio_init(); rf433_gpio_init();
rf433_decoder_init();
#if (_DEBUG_ == 1) #if (_DEBUG_ == 1)
app_uart_init(); app_uart_init();
#endif #endif
@@ -0,0 +1,787 @@
#include "rf433_decoder.h"
#include "rf433_decoder_port.h"
#define RF433_FIFO_SIZE 256u
#define RF433_GLITCH_DYNAMIC_MIN 2u
#define RF433_GLITCH_DYNAMIC_MAX 4u
#define RF433_SYNC_LOW_MIN 35u //45改35
#define RF433_SYNC_LOW_MAX 200u //180改200
#define RF433_SYNC_HIGH_MIN 1u
#define RF433_SYNC_HIGH_MAX 15u //12改15
#define RF433_BIT_LEN 24u
#define RF433_REPEAT_CONFIRM 1u //2改1
#define RF433_LEVEL_TIMEOUT 300u //300
#define RF433_BIT_TOTAL_MIN 3u //4改3
#define RF433_BIT_TOTAL_MAX 40u //35改40
#define RF433_PROCESS_MAX_ONCE 32u
#define RF433_FRAME_SCORE_MIN 50u //70改50
#define RF433_BIT_SCORE_GOOD 4u
#define RF433_BIT_SCORE_NORMAL 3u
#define RF433_BIT_SCORE_POOR 1u
#define RF433_WINDOW_TIGHT 0u
#define RF433_WINDOW_NORMAL 1u
#define RF433_WINDOW_LOOSE 2u
// 新增:连发屏蔽间隔(单位:100us采样tick,200=20ms内相同码只输出一次)
#define RF433_ANTI_REPEAT_TICK 200u
#if RF433_DECODER_DEBUG_PULSE
#define RF433_PULSE_LOG(fmt, ...) RF433_DECODER_LOG(fmt, ##__VA_ARGS__)
#else
#define RF433_PULSE_LOG(fmt, ...)
#endif
#if RF433_DECODER_DEBUG_DETAIL
#define RF433_DETAIL_LOG(fmt, ...) RF433_DECODER_LOG(fmt, ##__VA_ARGS__)
#else
#define RF433_DETAIL_LOG(fmt, ...)
#endif
typedef enum
{
RF433_STATE_IDLE = 0,
RF433_STATE_DATA,
} Rf433State_t;
typedef struct
{
uint8_t level;
uint16_t width;
} Rf433Pulse_t;
typedef struct
{
volatile Rf433Pulse_t fifo[RF433_FIFO_SIZE];
volatile uint16_t w;
volatile uint16_t r;
volatile uint16_t lost;
uint8_t last_level;
uint16_t width;
uint8_t inited;
} Rf433Fifo_t;
typedef struct
{
Rf433State_t state;
uint16_t last_high;
uint16_t last_low;
uint16_t t;
uint16_t short_min;
uint16_t short_max;
uint16_t long_min;
uint16_t long_max;
uint32_t data;
uint8_t bit_cnt;
uint8_t bit_score_sum;
uint8_t frame_score;
uint8_t ppl_locked;
uint8_t window_mode;
uint32_t last_code;
uint8_t same_cnt;
Rf433DecoderFrame_t frame;
bool frame_ready;
} Rf433Decode_t;
typedef struct
{
Rf433Pulse_t p0;
Rf433Pulse_t p1;
Rf433Pulse_t p2;
uint8_t cnt;
} Rf433Repair_t;
static Rf433Fifo_t s_fifo;
static Rf433Decode_t s_dec;
static Rf433Repair_t s_repair;
static uint16_t rf433_limit_t(uint16_t t)
{
if (t < 2u)
{
t = 2u;
}
if (t > 12u)
{
t = 12u;
}
return t;
}
static void rf433_update_range_by_t(uint16_t t)
{
t = rf433_limit_t(t);
s_dec.t = t;
if (s_dec.window_mode == RF433_WINDOW_TIGHT)
{
s_dec.short_min = 1u;
s_dec.short_max = (uint16_t)(t + t / 2u + 2u);
s_dec.long_min = (uint16_t)(t * 2u);
s_dec.long_max = (uint16_t)(t * 4u + 2u);
}
else if (s_dec.window_mode == RF433_WINDOW_LOOSE)
{
s_dec.short_min = 1u;
s_dec.short_max = (uint16_t)(t * 2u + 4u);
s_dec.long_min = (uint16_t)(t + t / 2u);
if (s_dec.long_min < 3u)
{
s_dec.long_min = 3u;
}
s_dec.long_max = (uint16_t)(t * 7u + 4u);
}
else
{
s_dec.short_min = 1u;
s_dec.short_max = (uint16_t)(t * 2u + 3u);
s_dec.long_min = (uint16_t)(t + t / 2u);
if (s_dec.long_min < 3u)
{
s_dec.long_min = 3u;
}
s_dec.long_max = (uint16_t)(t * 7u + 3u);
}
}
static void rf433_decode_reset(void)
{
s_dec.state = RF433_STATE_IDLE;
s_dec.last_high = 0;
s_dec.last_low = 0;
s_dec.data = 0;
s_dec.bit_cnt = 0;
s_dec.bit_score_sum = 0;
s_dec.frame_score = 0;
s_dec.window_mode = RF433_WINDOW_NORMAL;
rf433_update_range_by_t(4u);
}
static void rf433_repair_reset(void)
{
s_repair.cnt = 0;
s_repair.p0.level = 0;
s_repair.p0.width = 0;
s_repair.p1.level = 0;
s_repair.p1.width = 0;
s_repair.p2.level = 0;
s_repair.p2.width = 0;
}
static void rf433_debug_reset(const char *reason, uint16_t high, uint16_t low)
{
RF433_DETAIL_LOG("[RF433 RESET] %s bits=%d high=%d low=%d data=0x%06X T=%d win=%d lost=%d\r\n",
reason,
s_dec.bit_cnt,
high,
low,
(unsigned int)s_dec.data,
s_dec.t,
s_dec.window_mode,
s_fifo.lost);
}
void rf433_decoder_init(void)
{
s_fifo.w = 0;
s_fifo.r = 0;
s_fifo.lost = 0;
s_fifo.last_level = 0;
s_fifo.width = 0;
s_fifo.inited = 0;
s_dec.last_code = 0;
s_dec.same_cnt = 0;
s_dec.frame_ready = false;
s_dec.ppl_locked = 0;
s_dec.window_mode = RF433_WINDOW_NORMAL;
rf433_decode_reset();
rf433_repair_reset();
}
void rf433_decoder_sample(uint8_t level)
{
uint16_t next;
Rf433Pulse_t pulse;
level = level ? 1u : 0u;
if (!s_fifo.inited)
{
s_fifo.last_level = level;
s_fifo.width = 1;
s_fifo.inited = 1;
return;
}
if (level == s_fifo.last_level)
{
if (s_fifo.width < 0xFFFFu)
{
s_fifo.width++;
}
return;
}
pulse.level = s_fifo.last_level;
pulse.width = s_fifo.width;
s_fifo.last_level = level;
s_fifo.width = 1;
next = (uint16_t)((s_fifo.w + 1u) % RF433_FIFO_SIZE);
if (next != s_fifo.r)
{
s_fifo.fifo[s_fifo.w] = pulse;
s_fifo.w = next;
}
else if (s_fifo.lost < 0xFFFFu)
{
s_fifo.lost++;
}
}
static bool rf433_fifo_pop(Rf433Pulse_t *pulse)
{
if (pulse == 0 || s_fifo.r == s_fifo.w)
{
return false;
}
*pulse = s_fifo.fifo[s_fifo.r];
s_fifo.r = (uint16_t)((s_fifo.r + 1u) % RF433_FIFO_SIZE);
return true;
}
static bool rf433_is_sync(uint16_t high, uint16_t low)
{
if (high == 0u || low == 0u)
{
return false;
}
if (high < RF433_SYNC_HIGH_MIN || high > RF433_SYNC_HIGH_MAX)
{
return false;
}
if (low < RF433_SYNC_LOW_MIN || low > RF433_SYNC_LOW_MAX)
{
return false;
}
if (low < (uint16_t)(high * 10u)) //12
{
return false;
}
return true;
}
static void rf433_ppl_update_by_sync(uint16_t sync_low)
{
uint16_t t_new = rf433_limit_t((uint16_t)(sync_low / 31u));
uint16_t t_filter;
if (s_dec.ppl_locked)
{
t_filter = (uint16_t)((s_dec.t * 7u + t_new) / 8u);
}
else
{
t_filter = (uint16_t)((s_dec.t * 3u + t_new) / 4u);
}
rf433_update_range_by_t(t_filter);
}
static void rf433_update_t_by_bit(uint16_t high, uint16_t low, uint8_t bit)
{
uint16_t t_new;
uint16_t t_filter;
if (bit == 0u)
{
t_new = (uint16_t)((high + low / 3u) / 2u);
}
else
{
t_new = (uint16_t)((high / 3u + low) / 2u);
}
t_new = rf433_limit_t(t_new);
if (s_dec.ppl_locked)
{
t_filter = (uint16_t)((s_dec.t * 7u + t_new) / 8u);
}
else
{
t_filter = (uint16_t)((s_dec.t * 3u + t_new) / 4u);
}
rf433_update_range_by_t(t_filter);
}
static uint16_t rf433_get_glitch_max(void)
{
uint16_t v = s_dec.t / 2u;
if (v < RF433_GLITCH_DYNAMIC_MIN)
{
v = RF433_GLITCH_DYNAMIC_MIN;
}
if (v > RF433_GLITCH_DYNAMIC_MAX)
{
v = RF433_GLITCH_DYNAMIC_MAX;
}
return v;
}
static bool rf433_is_short(uint16_t width)
{
return ((width >= s_dec.short_min) && (width <= s_dec.short_max));
}
static bool rf433_is_long(uint16_t width)
{
return ((width >= s_dec.long_min) && (width <= s_dec.long_max));
}
static bool rf433_total_valid(uint16_t high, uint16_t low)
{
uint16_t total = (uint16_t)(high + low);
return ((total >= RF433_BIT_TOTAL_MIN) && (total <= RF433_BIT_TOTAL_MAX));
}
static bool rf433_decode_bit(uint16_t high, uint16_t low, uint8_t *bit)
{
if (bit == 0 || !rf433_total_valid(high, low))
{
return false;
}
if (rf433_is_short(high) && rf433_is_long(low))
{
*bit = 0;
return true;
}
if (rf433_is_long(high) && rf433_is_short(low))
{
*bit = 1;
return true;
}
return false;
}
#if RF433_DECODER_DEBUG_DETAIL
static const char *rf433_bit_fail_reason(uint16_t high, uint16_t low)
{
if (!rf433_total_valid(high, low))
{
return "total";
}
if (!rf433_is_short(high) && !rf433_is_long(high))
{
return "high";
}
if (!rf433_is_short(low) && !rf433_is_long(low))
{
return "low";
}
return "pair";
}
#endif
static uint16_t rf433_abs_diff_u16(uint16_t a, uint16_t b)
{
return (a > b) ? (uint16_t)(a - b) : (uint16_t)(b - a);
}
static uint8_t rf433_score_bit(uint16_t high, uint16_t low, uint8_t bit)
{
uint16_t ideal_high;
uint16_t ideal_low;
uint16_t err;
if (bit == 0u)
{
ideal_high = s_dec.t;
ideal_low = (uint16_t)(s_dec.t * 3u);
}
else
{
ideal_high = (uint16_t)(s_dec.t * 3u);
ideal_low = s_dec.t;
}
err = (uint16_t)(rf433_abs_diff_u16(high, ideal_high) +
rf433_abs_diff_u16(low, ideal_low));
if (err <= 2u)
{
return RF433_BIT_SCORE_GOOD;
}
if (err <= 5u)
{
return RF433_BIT_SCORE_NORMAL;
}
return RF433_BIT_SCORE_POOR;
}
static uint8_t rf433_calc_frame_score(void)
{
uint16_t score;
if (s_dec.bit_cnt == 0u)
{
return 0u;
}
score = (uint16_t)s_dec.bit_score_sum * 100u;
score = score / (uint16_t)(RF433_BIT_LEN * RF433_BIT_SCORE_GOOD);
return (score > 100u) ? 100u : (uint8_t)score;
}
static void rf433_update_window_by_score(uint8_t score)
{
if (score >= 90u)
{
s_dec.window_mode = RF433_WINDOW_TIGHT;
s_dec.ppl_locked = 1u;
}
else if (score >= 60u)
{
s_dec.window_mode = RF433_WINDOW_NORMAL;
}
else
{
s_dec.window_mode = RF433_WINDOW_LOOSE;
s_dec.ppl_locked = 0u;
}
rf433_update_range_by_t(s_dec.t);
}
static void rf433_output_code(uint32_t code)
{
if (code == s_dec.last_code)
{
if (s_dec.same_cnt < 255u)
{
s_dec.same_cnt++;
}
}
else
{
s_dec.last_code = code;
s_dec.same_cnt = 1;
}
RF433_DETAIL_LOG("[RF433 REPEAT] code=0x%06X same=%d/%d\r\n",
(unsigned int)code,
s_dec.same_cnt,
RF433_REPEAT_CONFIRM);
if (s_dec.same_cnt >= RF433_REPEAT_CONFIRM)
{
s_dec.frame.code = code;
s_dec.frame.bit_len = RF433_BIT_LEN;
s_dec.frame.addr_h = (uint8_t)((code >> 16) & 0xFFu);
s_dec.frame.addr_l = (uint8_t)((code >> 8) & 0xFFu);
s_dec.frame.key = (uint8_t)(code & 0xFFu);
s_dec.frame.score = s_dec.frame_score;
s_dec.frame_ready = true;
s_dec.same_cnt = 0;
RF433_DECODER_LOG("[RF433 OK] code=0x%06X addr_h=0x%02X addr_l=0x%02X key=0x%02X score=%d\r\n",
(unsigned int)s_dec.frame.code,
s_dec.frame.addr_h,
s_dec.frame.addr_l,
s_dec.frame.key,
s_dec.frame.score);
}
}
static void rf433_process_clean_pulse(Rf433Pulse_t pulse)
{
uint8_t bit;
uint8_t bit_score;
if (pulse.width == 0u)
{
return;
}
if (pulse.width > RF433_LEVEL_TIMEOUT)
{
rf433_debug_reset("timeout", s_dec.last_high, pulse.width);
rf433_decode_reset();
rf433_repair_reset();
return;
}
if (pulse.level)
{
s_dec.last_high = pulse.width;
return;
}
s_dec.last_low = pulse.width;
if (rf433_is_sync(s_dec.last_high, s_dec.last_low))
{
s_dec.window_mode = s_dec.ppl_locked ? RF433_WINDOW_TIGHT : RF433_WINDOW_NORMAL;
rf433_ppl_update_by_sync(s_dec.last_low);
RF433_DETAIL_LOG("[RF433 SYNC] high=%d low=%d T=%d short=%d-%d long=%d-%d win=%d lock=%d\r\n",
s_dec.last_high,
s_dec.last_low,
s_dec.t,
s_dec.short_min,
s_dec.short_max,
s_dec.long_min,
s_dec.long_max,
s_dec.window_mode,
s_dec.ppl_locked);
s_dec.state = RF433_STATE_DATA;
s_dec.data = 0;
s_dec.bit_cnt = 0;
s_dec.bit_score_sum = 0;
s_dec.frame_score = 0;
s_dec.last_high = 0;
s_dec.last_low = 0;
return;
}
if (s_dec.state != RF433_STATE_DATA ||
s_dec.last_high == 0u ||
s_dec.last_low == 0u)
{
return;
}
if (rf433_decode_bit(s_dec.last_high, s_dec.last_low, &bit))
{
bit_score = rf433_score_bit(s_dec.last_high, s_dec.last_low, bit);
if (s_dec.bit_score_sum <= (uint8_t)(255u - bit_score))
{
s_dec.bit_score_sum += bit_score;
}
rf433_update_t_by_bit(s_dec.last_high, s_dec.last_low, bit);
s_dec.data <<= 1;
if (bit)
{
s_dec.data |= 1u;
}
s_dec.bit_cnt++;
RF433_DETAIL_LOG("[RF433 BIT] idx=%02d bit=%d high=%d low=%d score=%d T=%d data=0x%06X\r\n",
s_dec.bit_cnt,
bit,
s_dec.last_high,
s_dec.last_low,
bit_score,
s_dec.t,
(unsigned int)s_dec.data);
if (s_dec.bit_cnt >= RF433_BIT_LEN)
{
s_dec.frame_score = rf433_calc_frame_score();
rf433_update_window_by_score(s_dec.frame_score);
RF433_DECODER_LOG("[RF433 FRAME] score=%3d T=%2d win=%d lock=%d bits=%2d code=0x%06X addr_h=0x%02X addr_l=0x%02X key=0x%02X\r\n",
s_dec.frame_score,
s_dec.t,
s_dec.window_mode,
s_dec.ppl_locked,
s_dec.bit_cnt,
(unsigned int)s_dec.data,
(unsigned int)((s_dec.data >> 16) & 0xFFu),
(unsigned int)((s_dec.data >> 8) & 0xFFu),
(unsigned int)(s_dec.data & 0xFFu));
if (s_dec.frame_score >= RF433_FRAME_SCORE_MIN)
{
rf433_output_code(s_dec.data);
}
else
{
RF433_DECODER_LOG("[RF433 BAD] score=%d code=0x%06X\r\n",
s_dec.frame_score,
(unsigned int)s_dec.data);
}
rf433_decode_reset();
rf433_repair_reset();
}
}
else
{
#if RF433_DECODER_DEBUG_DETAIL
RF433_DETAIL_LOG("[RF433 BIT_ERR] reason=%s idx=%02d high=%d low=%d total=%d T=%d short=%d-%d long=%d-%d data=0x%06X\r\n",
rf433_bit_fail_reason(s_dec.last_high, s_dec.last_low),
(uint8_t)(s_dec.bit_cnt + 1u),
s_dec.last_high,
s_dec.last_low,
(uint16_t)(s_dec.last_high + s_dec.last_low),
s_dec.t,
s_dec.short_min,
s_dec.short_max,
s_dec.long_min,
s_dec.long_max,
(unsigned int)s_dec.data);
#endif
rf433_debug_reset("bit", s_dec.last_high, s_dec.last_low);
rf433_decode_reset();
rf433_repair_reset();
}
}
static bool rf433_can_merge_glitch(Rf433Pulse_t a, Rf433Pulse_t b, Rf433Pulse_t c)
{
if (a.level != c.level)
{
return false;
}
if (b.width > rf433_get_glitch_max())
{
return false;
}
if (a.width == 0u || c.width == 0u)
{
return false;
}
return true;
}
static void rf433_repair_input_pulse(Rf433Pulse_t pulse)
{
Rf433Pulse_t merged;
Rf433Pulse_t out;
RF433_PULSE_LOG("[RF433 RAW] L=%d W=%d\r\n", pulse.level, pulse.width);
if (pulse.width == 0u)
{
return;
}
if (pulse.width > RF433_LEVEL_TIMEOUT)
{
rf433_debug_reset("timeout", s_dec.last_high, pulse.width);
rf433_decode_reset();
rf433_repair_reset();
return;
}
if (s_repair.cnt == 0u)
{
s_repair.p0 = pulse;
s_repair.cnt = 1u;
return;
}
if (s_repair.cnt == 1u)
{
s_repair.p1 = pulse;
s_repair.cnt = 2u;
return;
}
s_repair.p2 = pulse;
if (rf433_can_merge_glitch(s_repair.p0, s_repair.p1, s_repair.p2))
{
merged.level = s_repair.p0.level;
merged.width = (uint16_t)(s_repair.p0.width +
s_repair.p1.width +
s_repair.p2.width);
RF433_PULSE_LOG("[RF433 MERGE] %d:%d + %d:%d + %d:%d => %d:%d\r\n",
s_repair.p0.level,
s_repair.p0.width,
s_repair.p1.level,
s_repair.p1.width,
s_repair.p2.level,
s_repair.p2.width,
merged.level,
merged.width);
s_repair.p0 = merged;
s_repair.cnt = 1u;
return;
}
out = s_repair.p0;
RF433_PULSE_LOG("[RF433 CLEAN] L=%d W=%d\r\n", out.level, out.width);
rf433_process_clean_pulse(out);
s_repair.p0 = s_repair.p1;
s_repair.p1 = s_repair.p2;
s_repair.cnt = 2u;
}
void rf433_decoder_process(void)
{
Rf433Pulse_t pulse;
uint8_t cnt = 0;
while ((cnt < RF433_PROCESS_MAX_ONCE) && rf433_fifo_pop(&pulse))
{
rf433_repair_input_pulse(pulse);
cnt++;
}
}
bool rf433_decoder_get_frame(Rf433DecoderFrame_t *frame)
{
if (frame == 0 || !s_dec.frame_ready)
{
return false;
}
*frame = s_dec.frame;
s_dec.frame_ready = false;
return true;
}
uint16_t rf433_decoder_get_lost_count(void)
{
return s_fifo.lost;
}
@@ -0,0 +1,25 @@
#ifndef __RF433_DECODER_H__
#define __RF433_DECODER_H__
#include <stdbool.h>
#include <stdint.h>
#define RF433_DECODER_SAMPLE_US 100u
typedef struct
{
uint32_t code;
uint8_t bit_len;
uint8_t addr_h;
uint8_t addr_l;
uint8_t key;
uint8_t score;
} Rf433DecoderFrame_t;
void rf433_decoder_init(void);
void rf433_decoder_sample(uint8_t level);
void rf433_decoder_process(void);
bool rf433_decoder_get_frame(Rf433DecoderFrame_t *frame);
uint16_t rf433_decoder_get_lost_count(void);
#endif
@@ -0,0 +1,16 @@
#ifndef __RF433_DECODER_PORT_H__
#define __RF433_DECODER_PORT_H__
#ifndef RF433_DECODER_LOG
#define RF433_DECODER_LOG(fmt, ...) ((void)0)
#endif
#ifndef RF433_DECODER_DEBUG_DETAIL
#define RF433_DECODER_DEBUG_DETAIL 0
#endif
#ifndef RF433_DECODER_DEBUG_PULSE
#define RF433_DECODER_DEBUG_PULSE 0
#endif
#endif
@@ -9,6 +9,7 @@
#include "timer.h" #include "timer.h"
#include "mode.h" #include "mode.h"
#include "RF433.h" #include "RF433.h"
#include "rf433_decoder.h"
#include "ota_flash_interface.h" #include "ota_flash_interface.h"
#include "ota_protocol.h" #include "ota_protocol.h"
#include "pwm.h" #include "pwm.h"
@@ -31,6 +32,7 @@ TASK_COMPONENTS TaskComps[] =
{0,50,50,ble_state_sync_poll}, {0,50,50,ble_state_sync_poll},
{0, 311, 1, app_op_flash}, //用户数据持久化 fmc_spi_read9 {0, 311, 1, app_op_flash}, //用户数据持久化 fmc_spi_read9
{0, 311, 1, xc_ota_schedule}, //保存flash数据任务 8 //最后调用的 {0, 311, 1, xc_ota_schedule}, //保存flash数据任务 8 //最后调用的
{0, 1, 1, rf433_decoder_process},
}; };
/************************************************************************************** /**************************************************************************************
@@ -719,6 +719,21 @@
<FileType>1</FileType> <FileType>1</FileType>
<FilePath>..\app\src\Rf433.c</FilePath> <FilePath>..\app\src\Rf433.c</FilePath>
</File> </File>
<File>
<FileName>rf433_decoder.c</FileName>
<FileType>1</FileType>
<FilePath>..\app\src\rf433_decoder.c</FilePath>
</File>
<File>
<FileName>rf433_decoder.h</FileName>
<FileType>5</FileType>
<FilePath>..\app\src\rf433_decoder.h</FilePath>
</File>
<File>
<FileName>rf433_decoder_port.h</FileName>
<FileType>5</FileType>
<FilePath>..\app\src\rf433_decoder_port.h</FilePath>
</File>
<File> <File>
<FileName>PWM.c</FileName> <FileName>PWM.c</FileName>
<FileType>1</FileType> <FileType>1</FileType>
@@ -1507,6 +1522,21 @@
<FileType>1</FileType> <FileType>1</FileType>
<FilePath>..\app\src\Rf433.c</FilePath> <FilePath>..\app\src\Rf433.c</FilePath>
</File> </File>
<File>
<FileName>rf433_decoder.c</FileName>
<FileType>1</FileType>
<FilePath>..\app\src\rf433_decoder.c</FilePath>
</File>
<File>
<FileName>rf433_decoder.h</FileName>
<FileType>5</FileType>
<FilePath>..\app\src\rf433_decoder.h</FilePath>
</File>
<File>
<FileName>rf433_decoder_port.h</FileName>
<FileType>5</FileType>
<FilePath>..\app\src\rf433_decoder_port.h</FilePath>
</File>
<File> <File>
<FileName>PWM.c</FileName> <FileName>PWM.c</FileName>
<FileType>1</FileType> <FileType>1</FileType>