feat(vd960DBN): 传感快照区落地 snapshot.c + BLE SNAP_STAT/QUERY/CLEAR

- snapshot.h/c: 64B 定长 SnapRec (头部16B + 4x12B 0xC0线圈数据原样)
  环形分区独立于事件日志, 快照区 = 总容量 - 固定区576KB - 事件区
- 线程模型: USART2 ISR 只打包+RAM暂存(8深满丢新), 主循环 snap_flush 落盘
  (iot_sensor_ingest 在中断上下文, SPI 45ms 擦除严禁进中断)
- dbn_ble_srv: SNAP_STAT(0x28)/SNAP_QUERY(0x29)/SNAP_CLEAR(0x2A)
  QUERY 上限 2 条 (64x2+2=130B, ODR 教训防御)
- iot_mqtt_srv: ingest 挂 snap_enqueue, publish_sensor 挂 snap_flush
  (放在 READY 检查前, 断网照常落盘)
- peripheral_main: offlog_init 后加 snap_init
- 清空审计: 写事件流 log_clear payload[0]=2
- 测试: test_snapshot.c 8 例全过, offlog/ble_offlog 回归全过
- 文档: DLD960_BLE协议 V1.02 + ROADMAP P1.2 状态 + devlog
This commit is contained in:
wangfq
2026-08-12 17:40:14 +08:00
parent a8120cc852
commit 92887a3d92
12 changed files with 1123 additions and 8 deletions
@@ -11,6 +11,7 @@
#include <string.h>
#include "net_srv.h"
#include "offlog.h"
#include "snapshot.h"
extern uint16_t peripheral_get_mtu(void);
uint8_t g_flag_notify_temp = 0; //临时通知notify flag, 0 disable, 1 enable
@@ -1012,6 +1013,97 @@ void manage_dbn_ble_default(uint8_t *pkg, uint8_t len)
set_response_buf(&g_buf_ble_response, MAGIC_BYTE_DBN_DEFAULT, _cmd, tmp_ble_buf, _i);
PRINT("BLE: offlog_clear done\n");
} break;
case CMD_DBN_SNAP_STAT: {
/* snap stat: status(1) boot_seq(2) count(4) capacity(4) seq_first(4) seq_last(4), all LE */
uint8_t _i = 0;
uint32_t _total = snap_count();
uint32_t _seq_last = snap_seq_last();
uint32_t _seq_first = (_total > 0) ? (_seq_last - _total + 1) : 0;
uint32_t _boot = snap_boot_seq();
uint32_t _cap = SNAP_MAX_RECORDS;
if (!snap_enabled()) {
tmp_ble_buf[_i++] = 0x01; /* disabled */
} else {
tmp_ble_buf[_i++] = 0x00; /* ok */
tmp_ble_buf[_i++] = (uint8_t)(_boot & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)((_boot >> 8) & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)(_total & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)((_total >> 8) & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)((_total >> 16) & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)((_total >> 24) & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)(_cap & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)((_cap >> 8) & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)((_cap >> 16) & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)((_cap >> 24) & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)(_seq_first & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)((_seq_first >> 8) & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)((_seq_first >> 16) & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)((_seq_first >> 24) & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)(_seq_last & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)((_seq_last >> 8) & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)((_seq_last >> 16) & 0xFF);
tmp_ble_buf[_i++] = (uint8_t)((_seq_last >> 24) & 0xFF);
}
set_response_buf(&g_buf_ble_response, MAGIC_BYTE_DBN_DEFAULT, _cmd, tmp_ble_buf, _i);
PRINT("BLE: snap_stat count=%lu seq_first=%lu seq_last=%lu\n",
(unsigned long)_total, (unsigned long)_seq_first, (unsigned long)_seq_last);
} break;
case CMD_DBN_SNAP_QUERY: {
/* paged fetch: req pkg[4..7]=start_seq(LE32) pkg[8]=count(1..2)
resp: status(1) count(1) + N x 64B SnapRec raw (LE) */
uint32_t _start_seq = 0;
uint32_t _req_count = 0;
uint32_t _total = snap_count();
uint32_t _seq_last = snap_seq_last();
uint32_t _seq_first = (_total > 0) ? (_seq_last - _total + 1) : 0;
uint8_t _i = 0, _j = 0;
if (!snap_enabled()) {
tmp_ble_buf[_i++] = 0x01; /* disabled */
set_response_buf(&g_buf_ble_response, MAGIC_BYTE_DBN_DEFAULT, _cmd, tmp_ble_buf, _i);
break;
}
if (len < 11) { /* frame too short: magic+header+len+cmd+5data+2ckb */
tmp_ble_buf[_i++] = 0x02; /* bad request */
set_response_buf(&g_buf_ble_response, MAGIC_BYTE_DBN_DEFAULT, _cmd, tmp_ble_buf, _i);
break;
}
_start_seq = (uint32_t)pkg[4] | ((uint32_t)pkg[5] << 8)
| ((uint32_t)pkg[6] << 16) | ((uint32_t)pkg[7] << 24);
_req_count = pkg[8];
if (_req_count > SNAP_MAX_QUERY_RECORDS) _req_count = SNAP_MAX_QUERY_RECORDS;
if (_req_count == 0) _req_count = SNAP_MAX_QUERY_RECORDS;
/* overflow guard: resp dat = 2 + N*64 must fit tmp buf (ODR lesson) */
{ uint16_t _max_rec = (MAX_BLE_TMP_BUF_LEN >= 2) ?
((MAX_BLE_TMP_BUF_LEN - 2) / (uint16_t)sizeof(SnapRec)) : 0;
if (_req_count > _max_rec) _req_count = _max_rec; }
tmp_ble_buf[_i++] = 0x00; /* status ok */
tmp_ble_buf[_i++] = 0; /* count placeholder */
if (_total > 0 && _start_seq >= _seq_first && _start_seq <= _seq_last) {
uint32_t _idx = _start_seq - _seq_first;
while (_j < _req_count && (_idx + _j) < _total) {
SnapRec _rec;
if (snap_read_idx(_idx + _j, &_rec) != 0) break;
memcpy(&tmp_ble_buf[_i], &_rec, sizeof(SnapRec));
_i += sizeof(SnapRec);
_j++;
}
}
tmp_ble_buf[1] = _j;
set_response_buf(&g_buf_ble_response, MAGIC_BYTE_DBN_DEFAULT, _cmd, tmp_ble_buf, _i);
PRINT("BLE: snap_query start_seq=%lu req=%lu fetched=%u\n",
(unsigned long)_start_seq, (unsigned long)_req_count, (unsigned)_j);
} break;
case CMD_DBN_SNAP_CLEAR: {
/* clear snapshot (audit trail). blocking (sectors erase), main-loop ctx ok */
uint8_t _i = 0;
snap_clear();
tmp_ble_buf[_i++] = 0x00; /* ok */
set_response_buf(&g_buf_ble_response, MAGIC_BYTE_DBN_DEFAULT, _cmd, tmp_ble_buf, _i);
PRINT("BLE: snap_clear done\n");
} break;
default:
{
} break;
@@ -52,6 +52,9 @@
#define CMD_DBN_OFFLOG_STAT 0x25 // query offlog stat
#define CMD_DBN_OFFLOG_QUERY 0x26 // query offlog records by seq
#define CMD_DBN_OFFLOG_CLEAR 0x27 // clear offlog (audit trail)
#define CMD_DBN_SNAP_STAT 0x28 // query snapshot stat
#define CMD_DBN_SNAP_QUERY 0x29 // query snapshot records by seq
#define CMD_DBN_SNAP_CLEAR 0x2A // clear snapshot (audit trail)
#define CMD_DBN_RW_UART_BAUD 0x31
@@ -15,7 +15,7 @@
* | 参数区 0x000000 64KB (固定)
* | OTA 区 0x010000 512KB (固定)
* | 事件区 0x090000 动态: W25Q32=512KB / Q64=1MB / Q128=2MB / Q256=4MB
* | 快照区 事件区后 剩余容量 (预留, 后续)
* | 快照区 事件区后 剩余容量 (snapshot.c, 2026-08-12 已实现)
* 上电读 JEDEC ID (0x9F) 决定事件区容量 (g_offlog_part 运行时分区表)
*
* 环形实现:
@@ -0,0 +1,136 @@
/**
******************************************************************************
* @file snapshot.h
* @author wfq
* @version V1.0
* @date 2026-08-12
* @brief DBN 传感快照日志 (W25Qxx 外部 SPI NOR, 环形, 与事件日志区分区独立)
*
* 用途: 0xC0 传感帧 (4 线圈) 按上报节奏落盘, 断网期间也有现场波形可查;
* 事件流管"发生了什么", 快照流管"波形长什么样"。
*
* 分区 (ROADMAP 2026-08-12 新规划):
* | 参数区 0x000000 64KB (固定)
* | OTA 区 0x010000 512KB (固定)
* | 事件区 0x090000 动态 (offlog 持有, g_offlog_part.area_size)
* | 快照区 事件区后 剩余容量 (总容量 - 固定区 - 事件区)
* 上电读 JEDEC ID (0x9F) 决定事件区/快照区容量 (g_snap_part 运行时分区表)
*
* 环形实现 (与 offlog 同模式):
* - 扇区 0 (区内) = 头扇区, 存元数据 (boot_seq/写位置/条数), 扇区切换时更新
* - 数据扇区每扇区 64 条 x 64B 定长记录 (4096/64)
* - 顺序写, 写满擦下一扇区 (环形覆盖), 天然磨损均衡
* - 上电从头部记录的写位置向后扫描, 找第一条无效记录 = 真实写位置 (掉电恢复)
*
* 线程模型 (关键):
* - snap_enqueue(): 中断上下文 (USART2 ISR → lup_process_frame → iot_sensor_ingest),
* 只做打包 + RAM 环形暂存 (memcpy, 无阻塞, 无 SPI 操作); 满时丢新不覆盖
* - snap_flush(): 主循环上下文 (iot_mqtt_publish_sensor), RAM 暂存 → SPI 落盘
* (扇区切换擦除 ~45ms 阻塞仅发生在主循环, 与 offlog 同底线)
* - 单生产者 (中断) 单消费者 (主循环) 无锁环形: 生产者只写 tail,
* 消费者只读 head, 留一格判满
*
* 记录格式 SnapRec (64B 定长, 无 padding):
* magic(1) len(1) flags(1) rsvd(1) | seq(4) ts_ms(4) boot_seq(2) rsvd2(2) | coils(48)
* coils = 4 x 12B, 与 0xC0 线上线圈单元完全一致:
* [0] 配置1 freq_level(2)|direction(1)|freq_type(1)|sensitivity(4)
* [1] 条件 condition(4)|loop_state(1)|car_state(1)|misc_type(2)
* [2..4] 频率 3B LE
* [5..7] 变化量 3B LE (有符号补码)
* [8..11] 杂项 4B LE
******************************************************************************
*/
#ifndef _SNAPSHOT_H__
#define _SNAPSHOT_H__
#include <stdint.h>
#include "offlog.h" /* OFFLOG_CHIP_xxx + g_offlog_part (事件区大小) */
#include "loop_uart_proto.h" /* LUP_SensorReport / LUP_CoilSensor */
/*===========================================================================
* 分区与容量
*===========================================================================*/
/* 固定分区 (与 offlog 一致): 参数区 64KB + OTA 512KB */
#define SNAP_PARAM_SIZE 0x10000UL /* 参数区 64KB (固定) */
#define SNAP_OTA_SIZE 0x80000UL /* OTA 镜像暂存 512KB (固定) */
#define SNAP_FIXED_SIZE (SNAP_PARAM_SIZE + SNAP_OTA_SIZE) /* 0x090000 */
#define SNAP_HEAD_SECTOR 0 /* 区内扇区号: 头扇区 */
#define SNAP_REC_PER_SECTOR 64 /* 4096 / 64 */
/* 运行时分区表 (snap_init 由 JEDEC ID + g_offlog_part 填充; 默认 W25Q32) */
typedef struct {
uint8_t chip; /* OFFLOG_CHIP_xxx */
uint32_t area_base; /* 快照区起始 (事件区后) */
uint32_t area_size; /* 快照区大小 (剩余容量) */
uint32_t data_sectors; /* 数据扇区数 (不含头扇区) */
uint32_t max_records; /* 最大记录数 = data_sectors * 64 */
} SnapPart;
extern SnapPart g_snap_part;
/* 兼容宏: 展开为运行时值 */
#define SNAP_DATA_BASE (g_snap_part.area_base + 4096UL)
#define SNAP_AREA_SIZE (g_snap_part.area_size)
#define SNAP_DATA_SECTOR_CNT (g_snap_part.data_sectors)
#define SNAP_DATA_SIZE ((g_snap_part.data_sectors) * 4096UL)
#define SNAP_MAX_RECORDS (g_snap_part.max_records)
/* 头扇区记录 (32B, 扇区切换时更新) */
typedef struct {
uint8_t magic[4]; /* "SNAP" */
uint32_t boot_seq; /* 上次上电序号 (本 boot 由 init 时 +1) */
uint32_t wr_sector; /* 上次写扇区号 (区内 1..n) */
uint32_t wr_off; /* 上次写偏移 (绝对地址) */
uint32_t wr_seq; /* 下一条记录全局 seq (掉电恢复锚点) */
uint32_t count; /* 有效记录数 (0..max_records) */
uint32_t rsvd[2];
} SnapHead; /* 28B, 按 32B 对齐使用 */
#define SNAP_HEAD_MAGIC0 'S'
#define SNAP_HEAD_MAGIC1 'N'
#define SNAP_HEAD_MAGIC2 'A'
#define SNAP_HEAD_MAGIC3 'P'
/* 快照记录 (64B 定长, 字段重排保证自然对齐无 padding:
4×uint8 → uint32×2 → uint16×2 → coils[48] = 16+48 = 64) */
typedef struct {
uint8_t magic; /* 0xA6 (区别于事件 0xA5) */
uint8_t len; /* 线圈数据有效长度 = coil_count*12 (0..48) */
uint8_t flags; /* bit0: 分包帧 (预留) */
uint8_t rsvd;
uint32_t seq; /* 全局序号 (跨 boot 递增, flush 时分配) */
uint32_t ts_ms; /* boot 内相对时间 mstick() (采集时刻) */
uint16_t boot_seq; /* 启动序号 */
uint16_t rsvd2;
uint8_t coils[48]; /* 4 × 12B 线圈数据 (0xC0 线上格式原样) */
} SnapRec; /* 64B, 无 padding */
#define SNAP_MAGIC 0xA6
#define SNAP_REC_SIZE sizeof(SnapRec)
#define SNAP_COIL_BYTES 12
#define SNAP_COILS_MAX 4
/* RAM 暂存深度 (中断 enqueue → 主循环 flush 之间的缓冲)
Loop 帧最快 150ms, publish_sensor 每轮 flush, 8 深 ≈ 1.2s 余量;
CH32V208 SRAM 紧张: 64B × 8 = 512B, 远小于 SPI_FLASH_BUF 的 4KB */
#define SNAP_RAM_DEPTH 8
#define SNAP_MAX_QUERY_RECORDS 2 /* 快照 QUERY 分页上限: (132-2)/64 */
/*===========================================================================
* API
*===========================================================================*/
void snap_init(void); /* 上电初始化 (扫描恢复) */
uint8_t snap_enabled(void); /* Flash 初始化成功 */
void snap_enqueue(const LUP_SensorReport *sr); /* 中断安全: 打包→RAM 暂存 (满丢新) */
void snap_flush(void); /* 主循环: RAM 暂存→SPI 落盘 */
uint32_t snap_count(void); /* 有效记录数 */
uint32_t snap_seq_last(void); /* 最新一条记录全局序号 (0=空) */
uint32_t snap_boot_seq(void); /* 当前 boot 序号 */
int snap_read_idx(uint32_t idx, SnapRec *out); /* 按逻辑序号读, 0=成功 -1=越界 */
void snap_clear(void); /* 清空快照区 (审计写入事件流) */
#endif /* _SNAPSHOT_H__ */
@@ -24,6 +24,7 @@
#include "tcp_json_srv.h"
#include "storage.h"
#include "offlog.h"
#include "snapshot.h"
#include "ch32v20x_iwdg.h"
#include <string.h>
#include <stdlib.h>
@@ -164,6 +165,7 @@ static void iot_sensor_ingest(const LUP_SensorReport *sr) {
iot_evt_feed(sr); // 事件沿检测
memcpy(&_cached_sr, sr, sizeof(LUP_SensorReport)); // 刷新 loop_data 快照
_cached_sr_valid = 1;
snap_enqueue(sr); /* 快照入队: 中断安全, 主循环 snap_flush 落盘 */
}
/* lup 传感回调: uart_srv 消费路径的帧从这里喂入 (lup_process_frame 已过校验) */
@@ -774,6 +776,10 @@ void iot_mqtt_publish_sensor(void) {
}
}
/* 快照落盘: 主循环上下文 (Step1 直读帧 + 回调帧都已在 ingest 入队);
放在 READY/enable 检查之前 → 断网/未使能期间照常落 (脱机取证语义) */
snap_flush();
/*--- 事件上报状态机: 发送/重发/重连补报 ---*/
iot_evt_process();
@@ -23,6 +23,7 @@
#include "net_srv.h"
#include "storage.h"
#include "offlog.h"
#include "snapshot.h"
#include "tcp_json_srv.h"
#include "loop_uart_proto.h"
#include "iot_mqtt_srv.h"
@@ -304,6 +305,7 @@ int main(void)
GetMacAddr(gMacAddr);
storage_init();
offlog_init();
snap_init();
/* 复位原因: 必须在初始化后立即读 (离复位时刻最近), 并清除标志,
保证下次上电只反映本次复位原因 (RCC_RSTSCKR, STM32F1/CH32V20x 兼容) */
@@ -0,0 +1,408 @@
/**
******************************************************************************
* @file snapshot.c
* @author wfq
* @version V1.0
* @date 2026-08-12
* @brief DBN 传感快照日志 — 环形实现 (与 offlog 同模式, 分区独立)
*
* 依赖: storage.c (SPI_Flash_*), cmcng.h (mstick), offlog.c (g_offlog_part + 审计)
* 线程模型: enqueue 在中断 (USART2 ISR), flush/write_raw/clear 在主循环。
* 所有 SPI 操作只在主循环 (扇区擦除 ~45ms 阻塞可接受, 与 offlog 同底线)。
******************************************************************************
*/
#include "snapshot.h"
#include "storage.h"
#include "cmcng.h"
#include <string.h>
/* 编译期断言: 记录必须是 64B (定长环形索引依赖) */
typedef char snap_rec_size_must_be_64[(sizeof(SnapRec) == 64) ? 1 : -1];
typedef char snap_head_size_must_be_32[(sizeof(SnapHead) == 32) ? 1 : -1];
/*===========================================================================
* 内部状态 (仅主循环访问: init/flush/clear/查询)
*===========================================================================*/
static uint32_t _wr_off; /* 下一条记录写入的绝对地址 */
static uint16_t _wr_sector; /* 当前写扇区号 (区内 1..n) */
static uint32_t _wr_seq; /* 下一条记录的全局 seq */
static uint16_t _boot_seq; /* 当前 boot 序号 */
static uint32_t _count; /* 有效记录数 (0..max_records) */
static uint8_t _ready; /* init 完成标志 */
/* 中断安全 RAM 暂存 (单生产者=中断 enqueue / 单消费者=主循环 flush, 无锁)
生产者只写 g_snap_wr / g_snap_count, 消费者只读 g_snap_rd; count 满则丢新 */
static SnapRec g_snap_pending[SNAP_RAM_DEPTH];
static volatile uint8_t g_snap_rd; /* 消费者 (主循环) 读指针 */
static volatile uint8_t g_snap_wr; /* 生产者 (中断) 写指针 */
static volatile uint8_t g_snap_count; /* 暂存条数 (容量 = SNAP_RAM_DEPTH) */
static volatile uint32_t g_snap_drop; /* 满时丢弃计数 (调试用) */
/*===========================================================================
* 运行时分区表 (ROADMAP 2026-08-12: JEDEC ID + 事件区大小 → 快照区 = 剩余)
*===========================================================================*/
SnapPart g_snap_part = {
OFFLOG_CHIP_W25Q32, /* 默认 */
0x110000UL, /* W25Q32: 0x090000 + 512KB 事件区 */
0x2F0000UL, /* 3008KB = 4MB - 576KB - 512KB */
751, /* 3008KB/4096 - 1 头扇区 */
48064, /* 751 * 64 */
};
/* 芯片总容量 (W25Q32 4MB → W25Q256 32MB) */
static uint32_t snap_chip_total(uint8_t chip)
{
switch (chip) {
case OFFLOG_CHIP_W25Q32: return 0x00400000UL;
case OFFLOG_CHIP_W25Q64: return 0x00800000UL;
case OFFLOG_CHIP_W25Q128: return 0x01000000UL;
case OFFLOG_CHIP_W25Q256: return 0x02000000UL;
default: return 0x00400000UL; /* 未知→默认 4MB */
}
}
/* 读 JEDEC ID → 填分区表。事件区大小与 offlog 同一事实来源 (g_offlog_part),
快照区 = 总容量 - 固定区 - 事件区。未知芯片按 W25Q32 兜底 */
static void snap_part_detect(void)
{
uint8_t dev = SPI_Flash_ReadJEDEC_ID();
uint8_t chip = OFFLOG_CHIP_W25Q32;
uint32_t evt_size;
uint32_t total;
switch (dev) {
case OFFLOG_CHIP_W25Q32: chip = dev; break;
case OFFLOG_CHIP_W25Q64: chip = dev; break;
case OFFLOG_CHIP_W25Q128: chip = dev; break;
case OFFLOG_CHIP_W25Q256: chip = dev; break;
default: chip = OFFLOG_CHIP_W25Q32; break;
}
evt_size = g_offlog_part.area_size; /* 与事件区严格一致 */
total = snap_chip_total(chip);
g_snap_part.chip = chip;
g_snap_part.area_base = SNAP_FIXED_SIZE + evt_size;
g_snap_part.area_size = total - SNAP_FIXED_SIZE - evt_size;
g_snap_part.data_sectors = (g_snap_part.area_size / 4096UL) - 1;
g_snap_part.max_records = g_snap_part.data_sectors * SNAP_REC_PER_SECTOR;
}
/*===========================================================================
* 基础读写
*===========================================================================*/
static void snap_head_write(const SnapHead *h)
{
uint8_t buf[32];
memset(buf, 0xFF, sizeof(buf));
memcpy(buf, h, sizeof(SnapHead));
SPI_Flash_Write(buf, g_snap_part.area_base, sizeof(buf));
}
static void snap_head_read(SnapHead *h)
{
uint8_t buf[32];
SPI_Flash_Read(buf, g_snap_part.area_base, sizeof(buf));
memcpy(h, buf, sizeof(SnapHead));
}
static int snap_rec_read_at(uint32_t abs_off, SnapRec *out)
{
SPI_Flash_Read((uint8_t *)out, abs_off, SNAP_REC_SIZE);
return (out->magic == SNAP_MAGIC) ? 0 : -1;
}
/*===========================================================================
* 上电扫描恢复 (与 offlog 同模式: 从头记录写位置向后扫, magic + seq 连续)
*===========================================================================*/
static void snap_scan_recover(const SnapHead *h)
{
uint32_t pos = h->wr_off;
uint32_t scanned = 0;
uint32_t expect_seq = h->wr_seq;
SnapRec r;
/* 防御: wr_off 必须在数据区范围内且 64B 对齐 */
if (pos < SNAP_DATA_BASE || pos >= g_snap_part.area_base + g_snap_part.area_size) {
pos = SNAP_DATA_BASE;
}
if ((pos - SNAP_DATA_BASE) % SNAP_REC_SIZE != 0) {
pos = SNAP_DATA_BASE;
}
while (scanned < SNAP_MAX_RECORDS) {
if (snap_rec_read_at(pos, &r) != 0) {
break; /* 找到真实写位置 */
}
if (expect_seq != 0 && r.seq != expect_seq) {
break; /* seq 不连续 (损坏/残留) → 视为写位置 */
}
pos += SNAP_REC_SIZE;
if (pos >= SNAP_DATA_BASE + SNAP_DATA_SIZE) {
pos = SNAP_DATA_BASE; /* 回绕数据区 */
}
scanned++;
expect_seq++;
}
_wr_off = pos;
_wr_sector = (uint16_t)((pos - SNAP_DATA_BASE) / 4096) + 1; /* 区内 1..n */
_wr_seq = expect_seq;
_count = h->count + scanned;
if (_count > SNAP_MAX_RECORDS) _count = SNAP_MAX_RECORDS;
_boot_seq = (uint16_t)(h->boot_seq + 1);
if (_boot_seq == 0) _boot_seq = 1;
}
/*===========================================================================
* 初始化
*===========================================================================*/
void snap_init(void)
{
SnapHead h;
snap_part_detect(); /* JEDEC ID + 事件区大小 → 快照区容量 */
memset(&h, 0xFF, sizeof(h));
snap_head_read(&h);
if (!(h.magic[0] == SNAP_HEAD_MAGIC0 && h.magic[1] == SNAP_HEAD_MAGIC1 &&
h.magic[2] == SNAP_HEAD_MAGIC2 && h.magic[3] == SNAP_HEAD_MAGIC3)) {
/* 全新区: 擦全部数据扇区, 写头 */
uint32_t i;
for (i = 0; i < SNAP_DATA_SECTOR_CNT; i++) {
SPI_Flash_Erase_Sector(SNAP_DATA_BASE / 4096 + i);
}
memset(&h, 0xFF, sizeof(h));
h.magic[0] = SNAP_HEAD_MAGIC0;
h.magic[1] = SNAP_HEAD_MAGIC1;
h.magic[2] = SNAP_HEAD_MAGIC2;
h.magic[3] = SNAP_HEAD_MAGIC3;
h.boot_seq = 0;
h.wr_sector = 1;
h.wr_off = SNAP_DATA_BASE;
h.wr_seq = 0;
h.count = 0;
snap_head_write(&h);
_wr_off = SNAP_DATA_BASE;
_wr_sector = 1;
_wr_seq = 1;
_count = 0;
_boot_seq = 1;
} else {
snap_scan_recover(&h);
}
/* 回写头: boot_seq 递增 */
h.magic[0] = SNAP_HEAD_MAGIC0;
h.magic[1] = SNAP_HEAD_MAGIC1;
h.magic[2] = SNAP_HEAD_MAGIC2;
h.magic[3] = SNAP_HEAD_MAGIC3;
h.boot_seq = _boot_seq;
h.wr_sector = _wr_sector;
h.wr_off = _wr_off;
h.wr_seq = _wr_seq;
h.count = _count;
snap_head_write(&h);
g_snap_rd = 0;
g_snap_wr = 0;
g_snap_count = 0;
g_snap_drop = 0;
_ready = 1;
}
/*===========================================================================
* 落盘 (主循环上下文)
*===========================================================================*/
static void snap_flush_head(void)
{
SnapHead h;
h.magic[0] = SNAP_HEAD_MAGIC0;
h.magic[1] = SNAP_HEAD_MAGIC1;
h.magic[2] = SNAP_HEAD_MAGIC2;
h.magic[3] = SNAP_HEAD_MAGIC3;
h.boot_seq = _boot_seq;
h.wr_sector = _wr_sector;
h.wr_off = _wr_off;
h.wr_seq = _wr_seq;
h.count = _count;
snap_head_write(&h);
}
/* 目标扇区是否已有数据 (环形覆盖判定): 读首条记录 magic */
static int snap_sector_has_data(uint32_t abs_sec_off)
{
SnapRec r;
SPI_Flash_Read((uint8_t *)&r, abs_sec_off, SNAP_REC_SIZE);
return (r.magic == SNAP_MAGIC) ? 1 : 0;
}
/* 写一条记录 (仅主循环; rec->seq 已由 snap_flush 分配) */
static void snap_write_raw(const SnapRec *rec)
{
/* 环形回绕: 写指针越过数据区末尾 → 回到区首 */
if (_wr_off >= SNAP_DATA_BASE + SNAP_DATA_SIZE) {
_wr_off = SNAP_DATA_BASE;
}
/* 切扇区判定: 写指针所在扇区与 _wr_sector 不一致 → 擦除目标扇区 */
{
uint32_t sec_index = (_wr_off - SNAP_DATA_BASE) / 4096; /* 0..n-2 */
if ((uint32_t)(_wr_sector - 1) != sec_index) {
uint32_t target_abs = (SNAP_DATA_BASE / 4096 + sec_index) * 4096;
if (snap_sector_has_data(target_abs)) {
uint32_t erased = (_count > SNAP_REC_PER_SECTOR)
? SNAP_REC_PER_SECTOR : _count;
_count -= erased;
}
SPI_Flash_Erase_Sector(target_abs / 4096);
_wr_sector = (uint16_t)(sec_index + 1); /* 区内 1..n */
snap_flush_head(); /* 扇区切换 → 更新头 (掉电恢复锚点) */
}
}
SPI_Flash_Write_NoCheck((uint8_t *)rec, _wr_off, SNAP_REC_SIZE);
_wr_off += SNAP_REC_SIZE;
_wr_seq++;
if (_count < SNAP_MAX_RECORDS) _count++;
}
/*===========================================================================
* 打包 (与 0xC0 线上线圈单元 12B 格式一致)
*===========================================================================*/
static void snap_pack_coil(const LUP_CoilSensor *cs, uint8_t *o)
{
o[0] = (uint8_t)((cs->freq_level << 6) | (cs->direction << 5)
| (cs->freq_type << 4) | (cs->sensitivity & 0x0F));
o[1] = (uint8_t)((cs->condition << 4) | (cs->loop_state << 3)
| (cs->car_state << 2) | (cs->misc_type & 0x03));
o[2] = (uint8_t)(cs->freq & 0xFF);
o[3] = (uint8_t)((cs->freq >> 8) & 0xFF);
o[4] = (uint8_t)((cs->freq >> 16) & 0xFF);
o[5] = (uint8_t)(cs->variation & 0xFF);
o[6] = (uint8_t)((cs->variation >> 8) & 0xFF);
o[7] = (uint8_t)((cs->variation >> 16) & 0xFF);
o[8] = (uint8_t)(cs->misc.passtime_ms & 0xFF);
o[9] = (uint8_t)((cs->misc.passtime_ms >> 8) & 0xFF);
o[10] = (uint8_t)((cs->misc.passtime_ms >> 16) & 0xFF);
o[11] = (uint8_t)((cs->misc.passtime_ms >> 24) & 0xFF);
}
/* 打包传感帧 → SnapRec (seq 留待 flush 时分配; ts_ms/boot_seq 用采集时刻) */
static void snap_pack(const LUP_SensorReport *sr, SnapRec *rec)
{
uint8_t i, n;
memset(rec, 0, sizeof(*rec));
rec->magic = SNAP_MAGIC;
n = (sr->coil_count > SNAP_COILS_MAX) ? SNAP_COILS_MAX : sr->coil_count;
rec->len = n * SNAP_COIL_BYTES;
rec->ts_ms = mstick();
rec->boot_seq = _boot_seq;
for (i = 0; i < n; i++) {
snap_pack_coil(&sr->coils[i], rec->coils + i * SNAP_COIL_BYTES);
}
}
/*===========================================================================
* 中断安全入队 (USART2 ISR 上下文; 无 SPI, 无阻塞; 满丢新不覆盖)
* - 生产者只写 g_snap_wr / g_snap_pending / g_snap_count
* - 消费者只读 g_snap_rd; count 为 volatile 字节, 单核单指令读写天然原子
* - 满判定: count >= DEPTH (容量 = SNAP_RAM_DEPTH)
*===========================================================================*/
void snap_enqueue(const LUP_SensorReport *sr)
{
SnapRec rec;
if (!_ready || sr == NULL) return;
snap_pack(sr, &rec);
if (g_snap_count >= SNAP_RAM_DEPTH) {
g_snap_drop++; /* 暂存满 → 丢新帧 (快照环形, 可接受) */
return;
}
g_snap_pending[g_snap_wr] = rec;
g_snap_wr = (uint8_t)((g_snap_wr + 1) & (SNAP_RAM_DEPTH - 1));
g_snap_count++;
}
/*===========================================================================
* 主循环落盘 (iot_mqtt_publish_sensor 每轮调用; 断网/未使能照常落)
* - seq 在主循环分配 (中断不碰 _wr_seq, 避免共享状态)
*===========================================================================*/
void snap_flush(void)
{
if (!_ready) return;
while (g_snap_count > 0) {
SnapRec *rec = &g_snap_pending[g_snap_rd];
rec->seq = _wr_seq; /* 主循环独占分配 */
snap_write_raw(rec);
g_snap_rd = (uint8_t)((g_snap_rd + 1) & (SNAP_RAM_DEPTH - 1));
g_snap_count--;
}
if (g_snap_drop != 0) {
g_snap_drop = 0; /* 丢弃计数清零 (调试观察点) */
}
}
/*===========================================================================
* 查询
*===========================================================================*/
uint8_t snap_enabled(void)
{
return _ready;
}
uint32_t snap_count(void)
{
return _count;
}
uint32_t snap_seq_last(void)
{
return (_wr_seq > 0) ? (_wr_seq - 1) : 0;
}
uint32_t snap_boot_seq(void)
{
return _boot_seq;
}
int snap_read_idx(uint32_t idx, SnapRec *out)
{
uint32_t cnt = _count;
if (!_ready || idx >= cnt) return -1;
/* 逻辑首 = 写位置向前 cnt 条 (环形) */
uint32_t phys = (_wr_off - SNAP_DATA_BASE); /* 0..DATA_SIZE */
uint32_t start = (phys + SNAP_DATA_SIZE - cnt * SNAP_REC_SIZE) % SNAP_DATA_SIZE;
uint32_t read_off = SNAP_DATA_BASE + (start + idx * SNAP_REC_SIZE) % SNAP_DATA_SIZE;
return snap_rec_read_at(read_off, out);
}
/*===========================================================================
* 清空 (审计: 事件流记一条 LOG_CLEAR, payload[0]=2=快照流)
*===========================================================================*/
void snap_clear(void)
{
uint32_t i;
if (!_ready) return;
for (i = 0; i < SNAP_DATA_SECTOR_CNT; i++) {
SPI_Flash_Erase_Sector(SNAP_DATA_BASE / 4096 + i);
}
_wr_off = SNAP_DATA_BASE;
_wr_sector = 1;
_count = 0;
/* _wr_seq / _boot_seq 不重置: 序号单调递增, 保证快照全局唯一 */
{
uint8_t p[1] = {2}; /* 2 = 快照流 (审计区分) */
offlog_evt(OFFLOG_EVT_LOG_CLEAR, p, 1);
}
snap_flush_head();
}
+28
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@@ -6,6 +6,34 @@
---
## 2026-08-12 — 传感快照区落地(snapshot.cBLE 新增 0x28/0x29/0x2A
### 背景
ROADMAP P1.2 分区规划(参数区→OTA→事件日志区→传感快照区)中,事件区已落地(offlog),快照区此前为预留。本次实现快照流:0xC0 传感帧按上报节奏落盘,断网期间波形照常记录,可离线回放。
### 关键设计决策
1. **64B 定长记录 SnapRec**:头部 16Bmagic=0xA6/len/flags/seq/ts_ms/boot_seq+ 4×12B 线圈数据(与 0xC0 线上格式逐字节一致,可直接对照抓包)→ W25Q32 下 48064 条。
2. **线程安全(踩坑预警)**`iot_sensor_ingest()`**USART2 ISR 上下文**`loop_uart_proto.h:209` 明确标注)被调用!SPI 擦除 ~45ms 绝不能在中断里做 → 中断只打包+入 RAM 暂存(8 深,满丢新),主循环 `iot_mqtt_publish_sensor()` 每轮 `snap_flush()` 落盘。单生产者(中断)单消费者(主循环)count 计数环形,volatile 字节天然原子。
3. **分区表同一事实来源**:快照区 = 总容量 − 固定区 576KB − 事件区(`g_offlog_part.area_size`),杜绝两模块对事件区大小理解不一致。
4. **审计**:快照清除写事件流 `log_clear`payload[0]=2=快照流)。
5. **BLE 指令对齐 OFFLOG 模式**SNAP_STAT(0x28)/SNAP_QUERY(0x29)/SNAP_CLEAR(0x2A)QUERY 上限 2 条(64×2+2=130B ≤ 单包缓冲,ODR 教训防御)。
### 测试
`test_snapshot.c` 8 例全过(中断安全/打包格式/环形回绕/掉电恢复/扇区切换/暂存满丢新/清空审计/分区表);`test_offlog` 8 例、`test_ble_offlog` 7 例回归全过。
> ⚠ 测试踩坑:不要在同文件 include offlog.c + snapshot.c —— 两个 .c 的 static 变量(如 `_wr_off`)在同一翻译单元**符号冲突**,快照 clear 审计会污染事件写指针。测试改为 mock `g_offlog_part` + `offlog_evt`。
### 待板上验证
- 快照区 0x110000 起、W25Q32 48064 条 capacity 打印
- 中断风暴下暂存满丢新行为(观察点:`g_snap_drop`
- 掉电恢复跨扇区扫描
---
## 2026-08-12 — BLE 分包粒度动态化修复(Too large noti 丢包)
### 背景
+353
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@@ -0,0 +1,353 @@
/**
* test_snapshot.c — 传感快照日志 gcc 隔离单测
*
* 编译: gcc -I../BLE/OnlyUpdateApp_Peripheral/APP/include \
* -o test_snapshot test_snapshot.c
* 运行: ./test_snapshot
*
* Mock: W25Q32 NOR 行为 (写=AND, 擦=0xFF), mstick 固定值,
* g_offlog_part (事件区 512KB), offlog_evt (审计记录 mock)
* 注意: 不 include offlog.c — 两个 .c 的 static 变量 (如 _wr_off) 在
* 同一翻译单元会符号冲突 (踩过: snap_clear 审计写乱了快照写指针)
* 覆盖: 全新初始化 / 中断安全(enqueue 不落盘) / flush 落盘 / 打包格式
* 环形回绕 / 掉电恢复 / 扇区切换 / 暂存满丢新 / 清空审计 / 分区表
*/
#include <stdio.h>
#include <string.h>
#include <stdint.h>
#include "../BLE/OnlyUpdateApp_Peripheral/APP/include/offlog.h"
/* ============ mock W25Q32 (4MB, NOR 语义) ============ */
static uint8_t flash[4 * 1024 * 1024];
void SPI_Flash_Erase_Sector(uint32_t sec)
{
memset(flash + sec * 4096, 0xFF, 4096);
}
void SPI_Flash_Read(uint8_t *buf, uint32_t addr, uint16_t size)
{
memcpy(buf, flash + addr, size);
}
void SPI_Flash_Write_NoCheck(uint8_t *buf, uint32_t addr, uint16_t size)
{
uint16_t i;
for (i = 0; i < size; i++) flash[addr + i] &= buf[i]; /* NOR: 只能 1→0 */
}
uint8_t SPI_Flash_ReadJEDEC_ID(void) { return 0x16; } /* mock W25Q32 */
void SPI_Flash_Write(uint8_t *buf, uint32_t addr, uint16_t size)
{
/* 模拟 storage.c 行为: 目标区域非全 FF 则擦整扇区再写 */
uint16_t i;
int need_erase = 0;
for (i = 0; i < size; i++) {
if (flash[addr + i] != 0xFF) { need_erase = 1; break; }
}
if (need_erase) SPI_Flash_Erase_Sector(addr / 4096);
SPI_Flash_Write_NoCheck(buf, addr, size);
}
/* ============ mock 时间 ============ */
static uint32_t mock_ms = 0;
uint32_t mstick(void) { return mock_ms; }
/* ============ mock offlog 依赖 (不 include offlog.c, 避免 static 冲突) ============ */
OfflogPart g_offlog_part = {
OFFLOG_CHIP_W25Q32, /* W25Q32 */
0x80000UL, /* 事件区 512KB */
127,
16256,
};
static uint8_t g_audit_type;
static uint8_t g_audit_payload[4];
static uint8_t g_audit_len;
void offlog_evt(uint8_t type, const uint8_t *payload, uint8_t len)
{
g_audit_type = type;
g_audit_len = len;
if (payload && len > 0 && len <= 4) memcpy(g_audit_payload, payload, len);
}
/* ch32v20x 库类型 (单测环境无 SDK) */
typedef unsigned char u8;
/* ============ 被测模块 (直接包含实现) ============ */
#include "../BLE/OnlyUpdateApp_Peripheral/APP/snapshot.c"
/* ============ 断言 ============ */
static int failures = 0;
#define CHECK(cond) do { \
if (!(cond)) { printf("FAIL %s:%d %s\n", __FILE__, __LINE__, #cond); failures++; } \
} while (0)
static void reset_flash(void)
{
memset(flash, 0xFF, sizeof(flash));
mock_ms = 0;
}
/* 构造一帧传感报告: 4 线圈, 各线圈填可辨识值 */
static void make_report(LUP_SensorReport *sr, uint32_t base_freq, int32_t base_var)
{
uint8_t i;
memset(sr, 0, sizeof(*sr));
sr->sens_type = 0x0C;
sr->coil_count = 4;
for (i = 0; i < 4; i++) {
sr->coils[i].freq_level = 2; /* 中低 66nF */
sr->coils[i].direction = 1;
sr->coils[i].freq_type = 0;
sr->coils[i].sensitivity = 9;
sr->coils[i].condition = 5;
sr->coils[i].loop_state = 1;
sr->coils[i].car_state = (i & 1); /* 0/1 交替 */
sr->coils[i].misc_type = 0;
sr->coils[i].freq = base_freq + i * 1000;
sr->coils[i].variation = base_var + i * 100;
sr->coils[i].misc.passtime_ms = 0x10000000 + i;
}
}
/* 测试1: 全新初始化 → enqueue 不落盘(中断安全), flush 落盘可读回 */
static void test_fresh_init_and_flush(void)
{
LUP_SensorReport sr;
SnapRec r;
uint32_t i;
reset_flash();
snap_init();
CHECK(snap_enabled() == 1);
CHECK(snap_count() == 0);
make_report(&sr, 0x123456, 1000);
mock_ms = 12345;
/* 中断路径: 只 enqueue, 不 flush → flash 不得有任何快照数据 */
snap_enqueue(&sr);
CHECK(snap_count() == 0); /* 未落盘 */
for (i = 0; i < 64; i++) {
CHECK(flash[SNAP_DATA_BASE + i] == 0xFF); /* 数据区仍全 FF */
}
/* 主循环: flush → 落盘 1 条 */
snap_flush();
CHECK(snap_count() == 1);
CHECK(snap_read_idx(0, &r) == 0);
CHECK(r.magic == SNAP_MAGIC);
CHECK(r.len == 48); /* 4 线圈 × 12B */
CHECK(r.seq == 1);
CHECK(r.boot_seq == 1);
CHECK(r.ts_ms == 12345);
CHECK(snap_seq_last() == 1);
printf("PASS test_fresh_init_and_flush\n");
}
/* 测试2: 打包格式与 0xC0 线上线圈单元 12B 一致 */
static void test_pack_format(void)
{
LUP_SensorReport sr;
SnapRec r;
reset_flash();
snap_init();
make_report(&sr, 0x123456, -12345); /* 负变化量 */
/* 覆盖值: freq_level=2 direction=1 freq_type=0 sens=9 → o[0]=0xA9
condition=5 loop=1 car=0 misc=3 → o[1]=0x5B
freq=0x123456 → 56 34 12
variation=-12345 → 0xFFFFCFC7 截 24bit → C7 CF FF
misc=0x10000000 → 00 00 00 10 */
sr.coils[0].freq = 0x123456;
sr.coils[0].variation = -12345;
sr.coils[0].misc_type = 3;
sr.coils[0].misc.relay_count = 0x10000000;
snap_enqueue(&sr);
snap_flush();
snap_read_idx(0, &r);
CHECK(r.coils[0] == 0xA9);
CHECK(r.coils[1] == 0x5B);
CHECK(r.coils[2] == 0x56 && r.coils[3] == 0x34 && r.coils[4] == 0x12);
CHECK(r.coils[5] == 0xC7 && r.coils[6] == 0xCF && r.coils[7] == 0xFF);
CHECK(r.coils[8] == 0x00 && r.coils[9] == 0x00 && r.coils[10] == 0x00 && r.coils[11] == 0x10);
/* 线圈 2: car_state=1 → o[1] bit2=1 → 0x5F (其他字段相同) */
CHECK((r.coils[12 + 1] & 0x04) == 0x04);
CHECK((r.coils[0 + 1] & 0x04) == 0x00);
printf("PASS test_pack_format\n");
}
/* 测试3: 环形回绕 — 写满 max+5 条, count 封顶, 序号单调 */
static void test_ring_wrap(void)
{
LUP_SensorReport sr;
SnapRec r;
uint32_t i, n = SNAP_MAX_RECORDS + 5;
reset_flash();
snap_init();
make_report(&sr, 0x100, 100);
for (i = 0; i < n; i++) {
snap_enqueue(&sr);
snap_flush();
}
CHECK(snap_count() == SNAP_MAX_RECORDS - SNAP_REC_PER_SECTOR + 5);
CHECK(snap_read_idx(snap_count() - 1, &r) == 0);
CHECK(r.seq == n);
CHECK(snap_seq_last() == n);
CHECK(snap_read_idx(snap_count(), &r) == -1); /* 越界 */
printf("PASS test_ring_wrap (count %lu, max %lu)\n",
(unsigned long)snap_count(), (unsigned long)SNAP_MAX_RECORDS);
}
/* 测试4: 掉电恢复 — 写 10 条后重新 init, boot_seq 递增, seq 连续 */
static void test_power_loss_recovery(void)
{
LUP_SensorReport sr;
SnapRec r;
uint32_t i;
reset_flash();
snap_init();
make_report(&sr, 0x200, 200);
for (i = 0; i < 10; i++) {
snap_enqueue(&sr);
snap_flush();
}
CHECK(snap_count() == 10);
snap_init(); /* 模拟掉电重启 */
CHECK(snap_boot_seq() == 2);
CHECK(snap_count() == 10);
snap_enqueue(&sr);
snap_flush();
CHECK(snap_count() == 11);
CHECK(snap_read_idx(10, &r) == 0);
CHECK(r.seq == 11);
CHECK(r.boot_seq == 2);
printf("PASS test_power_loss_recovery\n");
}
/* 测试5: 扇区切换 — 写满 64 条后头扇区更新, 数据完整 */
static void test_sector_switch(void)
{
LUP_SensorReport sr;
SnapRec r;
SnapHead h;
uint32_t i;
reset_flash();
snap_init();
make_report(&sr, 0x300, 300);
for (i = 0; i < 64; i++) {
snap_enqueue(&sr);
snap_flush();
}
snap_enqueue(&sr);
snap_flush(); /* 第 65 条触发扇区切换 */
CHECK(snap_count() == 65);
SPI_Flash_Read((uint8_t *)&h, g_snap_part.area_base, sizeof(h));
CHECK(h.magic[0] == SNAP_HEAD_MAGIC0);
CHECK(h.wr_sector == 2);
CHECK(h.wr_off == SNAP_DATA_BASE + 4096);
CHECK(snap_read_idx(63, &r) == 0);
CHECK(r.seq == 64);
CHECK(snap_read_idx(64, &r) == 0);
CHECK(r.seq == 65);
printf("PASS test_sector_switch\n");
}
/* 测试6: RAM 暂存满丢新 — 8 深, 第 9 条丢, flush 只落 8 条 */
static void test_ram_overflow_drop(void)
{
LUP_SensorReport sr;
SnapRec r;
uint32_t i;
reset_flash();
snap_init();
make_report(&sr, 0x400, 400);
for (i = 0; i < SNAP_RAM_DEPTH + 3; i++) { /* 11 条, 深 8 */
snap_enqueue(&sr); /* 不 flush, 模拟中断风暴 */
}
CHECK(snap_count() == 0); /* 全部还在 RAM */
snap_flush();
CHECK(snap_count() == 8); /* 只落 8 条, 丢 3 条 */
CHECK(snap_read_idx(0, &r) == 0);
CHECK(r.seq == 1); /* 丢的是最新(尾部) */
CHECK(snap_read_idx(7, &r) == 0);
CHECK(r.seq == 8);
printf("PASS test_ram_overflow_drop\n");
}
/* 测试7: 清空 — 擦数据区 + 事件流审计 (payload[0]=2=快照流) */
static void test_clear_audit(void)
{
LUP_SensorReport sr;
SnapRec r;
uint32_t i;
reset_flash();
g_audit_type = 0; g_audit_len = 0; memset(g_audit_payload, 0, sizeof(g_audit_payload));
snap_init();
make_report(&sr, 0x500, 500);
for (i = 0; i < 5; i++) {
snap_enqueue(&sr);
snap_flush();
}
CHECK(snap_count() == 5);
snap_clear();
CHECK(snap_count() == 0);
CHECK(snap_seq_last() == 5); /* seq 不重置 */
CHECK(snap_read_idx(0, &r) == -1); /* 数据区已空 */
/* 审计: offlog_evt 被调用, type=LOG_CLEAR, payload[0]=2 */
CHECK(g_audit_type == OFFLOG_EVT_LOG_CLEAR);
CHECK(g_audit_len == 1);
CHECK(g_audit_payload[0] == 2);
printf("PASS test_clear_audit\n");
}
/* 测试8: 运行时分区 — W25Q32 快照区 0x110000, 3008KB, 48064 条 */
static void test_part_table(void)
{
reset_flash();
snap_init();
CHECK(g_snap_part.area_base == 0x110000UL);
CHECK(g_snap_part.area_size == 0x2F0000UL); /* 3008KB */
CHECK(g_snap_part.data_sectors == 751);
CHECK(g_snap_part.max_records == 751 * 64);
CHECK(SNAP_DATA_BASE == 0x111000UL); /* base + 4KB 头扇区 */
printf("PASS test_part_table\n");
}
int main(void)
{
test_fresh_init_and_flush();
test_pack_format();
test_ring_wrap();
test_power_loss_recovery();
test_sector_switch();
test_ram_overflow_drop();
test_clear_audit();
test_part_table();
if (failures) {
printf("\n%d FAILURE(S)\n", failures);
return 1;
}
printf("\nALL PASS\n");
return 0;
}