Initial scanner code

This commit is contained in:
Kostas Drakontidis
2026-05-13 18:17:00 +03:00
parent 81af8cd576
commit bcc3e97c80
9 changed files with 673 additions and 0 deletions
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.pio
.vscode/.browse.c_cpp.db*
.vscode/c_cpp_properties.json
.vscode/launch.json
.vscode/ipch
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This directory is intended for project header files.
A header file is a file containing C declarations and macro definitions
to be shared between several project source files. You request the use of a
header file in your project source file (C, C++, etc) located in `src` folder
by including it, with the C preprocessing directive `#include'.
```src/main.c
#include "header.h"
int main (void)
{
...
}
```
Including a header file produces the same results as copying the header file
into each source file that needs it. Such copying would be time-consuming
and error-prone. With a header file, the related declarations appear
in only one place. If they need to be changed, they can be changed in one
place, and programs that include the header file will automatically use the
new version when next recompiled. The header file eliminates the labor of
finding and changing all the copies as well as the risk that a failure to
find one copy will result in inconsistencies within a program.
In C, the convention is to give header files names that end with `.h'.
Read more about using header files in official GCC documentation:
* Include Syntax
* Include Operation
* Once-Only Headers
* Computed Includes
https://gcc.gnu.org/onlinedocs/cpp/Header-Files.html
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This directory is intended for project specific (private) libraries.
PlatformIO will compile them to static libraries and link into the executable file.
The source code of each library should be placed in a separate directory
("lib/your_library_name/[Code]").
For example, see the structure of the following example libraries `Foo` and `Bar`:
|--lib
| |
| |--Bar
| | |--docs
| | |--examples
| | |--src
| | |- Bar.c
| | |- Bar.h
| | |- library.json (optional. for custom build options, etc) https://docs.platformio.org/page/librarymanager/config.html
| |
| |--Foo
| | |- Foo.c
| | |- Foo.h
| |
| |- README --> THIS FILE
|
|- platformio.ini
|--src
|- main.c
Example contents of `src/main.c` using Foo and Bar:
```
#include <Foo.h>
#include <Bar.h>
int main (void)
{
...
}
```
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libraries by scanning project source files.
More information about PlatformIO Library Dependency Finder
- https://docs.platformio.org/page/librarymanager/ldf.html
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; PlatformIO Project Configuration File
;
; Build options: build flags, source filter
; Upload options: custom upload port, speed and extra flags
; Library options: dependencies, extra library storages
; Advanced options: extra scripting
;
; Please visit documentation for the other options and examples
; https://docs.platformio.org/page/projectconf.html
[env:esp32-s3-devkitc-1]
platform = espressif32
board = esp32-s3-devkitc-1
framework = arduino
monitor_speed = 115200
board_upload.flash_size = 4MB
board_build.partitions = default.csv
build_flags =
-DARDUINO_USB_CDC_ON_BOOT=1
-DBOARD_HAS_PSRAM
lib_deps =
h2zero/NimBLE-Arduino
knolleary/PubSubClient
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#include <unordered_map>
#include "main.hpp"
#include "tag/Tag.hpp"
#include "freertos/FreeRTOS.h"
#include "freertos/queue.h"
#include <HTTPClient.h>
#include <PubSubClient.h>
CB cb;
char MQTT_PUB_TOPIC[sizeof(MQTT_TOPIC) + sizeof(DEV_NAME) - 1];
std::unordered_map<std::string, Tag> tags;
std::unordered_map<std::string, UUIDCacheEntry> uuid_cache;
SemaphoreHandle_t uuid_mtx;
QueueHandle_t ble_queue;
QueueHandle_t mqtt_queue;
QueueHandle_t http_queue;
WiFiClient wifiClient;
PubSubClient mqtt(wifiClient);
void cleanupCache()
{
uint32_t now = millis();
xSemaphoreTake(uuid_mtx, portMAX_DELAY);
for (auto it = uuid_cache.begin(); it != uuid_cache.end();)
{
uint32_t age = now - it->second.last_check;
if (age > UUID_CACHE_CLEAN_TIMEOUT)
{
Serial.printf("Erasing %s from cache after being inactive for %dms.\n",
it->first.c_str(),
age);
it = uuid_cache.erase(it);
}
else
++it;
}
xSemaphoreGive(uuid_mtx);
}
void cleanupTags()
{
uint32_t now = millis();
for (auto it = tags.begin(); it != tags.end();)
{
if ((now - it->second.getLastSeen()) >= TAG_TIMEOUT)
{
Serial.printf("Erasing %s from memory after being inactive for %dms.\n",
it->first.c_str(),
now - it->second.getLastSeen());
it = tags.erase(it);
}
else
++it;
}
}
void httpTask(void *)
{
HttpEvent ev;
while (true)
{
if (xQueueReceive(http_queue, &ev, portMAX_DELAY))
{
HTTPClient http;
String url = UUID_CHECK_ENDPOINT + String(ev.uuid);
http.setTimeout(3000);
http.setReuse(false);
if (!http.begin(url))
{
Serial.println("Failed HTTP begin.");
continue;
}
int code = http.GET();
bool valid = (code == 200);
http.end();
xSemaphoreTake(uuid_mtx, portMAX_DELAY);
uuid_cache[ev.uuid] = {
(valid) ? UUIDState::VALID : UUIDState::INVALID,
millis()};
#ifdef DEBUG
Serial.printf("[%s] is now marked as %s\n", ev.uuid, (valid) ? "valid" : "invalid");
#endif
xSemaphoreGive(uuid_mtx);
}
vTaskDelay(pdMS_TO_TICKS(10));
}
}
void mqttTask(void *)
{
NetEvent ev;
while (true)
{
while (!mqtt.connected())
{
Serial.printf("MQTT Disconnected. Connecting to %s:%d\n", MQTT_HOST, MQTT_PORT);
if (mqtt.connect(DEV_NAME, MQTT_USER, MQTT_PASS))
Serial.println("MQTT connected.");
vTaskDelay(pdMS_TO_TICKS(1000));
}
if (xQueueReceive(mqtt_queue, &ev, pdMS_TO_TICKS(100)))
{
char payload[128];
snprintf(payload, sizeof(payload),
"{\"uuid\":\"%s\",\"rssi\":%.2f}",
ev.uuid,
ev.ema);
bool ok = mqtt.publish(MQTT_PUB_TOPIC, payload);
if (!ok)
Serial.println("Failed to publish on MQTT.");
}
else
mqtt.loop();
}
}
void processEvent(const BleEvent &event)
{
xSemaphoreTake(uuid_mtx, portMAX_DELAY);
auto it = uuid_cache.find(event.uuid);
uint32_t now = millis();
if (it == uuid_cache.end())
{
uuid_cache[event.uuid] = {UUIDState::PENDING, now};
xSemaphoreGive(uuid_mtx);
HttpEvent he;
strlcpy(he.uuid, event.uuid, sizeof(event.uuid));
xQueueSend(http_queue, &he, 0);
return;
}
if (it->second.state == UUIDState::INVALID &&
now - it->second.last_check > UUID_CACHE_RETRY_TIMEOUT)
{
it->second.state = UUIDState::PENDING;
it->second.last_check = now;
xSemaphoreGive(uuid_mtx);
HttpEvent he;
strlcpy(he.uuid, event.uuid, sizeof(event.uuid));
xQueueSend(http_queue, &he, 0);
return;
}
UUIDState state = it->second.state;
xSemaphoreGive(uuid_mtx);
if (state != UUIDState::VALID)
return;
Tag &tag = tags[event.uuid];
tag.addSample(event.rssi);
if (tag.shouldPublish())
{
NetEvent ne;
strlcpy(ne.uuid, event.uuid, sizeof(event.uuid));
ne.ema = tag.getEMA();
if (!xQueueSend(mqtt_queue, &ne, 0))
Serial.println("Failed to send MQTT data over MQTT Queue.");
}
}
void CB::onResult(const NimBLEAdvertisedDevice *d)
{
if (!d->haveServiceUUID() || !d->haveName())
return;
NimBLEUUID uuid = d->getServiceUUID(0);
const std::string &name = d->getName();
if ((uuid.bitSize() != 128) || (name != TAG_NAME))
return;
BleEvent event;
strlcpy(event.uuid, uuid.toString().c_str(), sizeof(event.uuid));
event.rssi = d->getRSSI();
xQueueSend(ble_queue, &event, pdMS_TO_TICKS(5));
}
void setup()
{
Serial.begin(115200);
WiFi.begin(WIFI_SSID, WIFI_PASS);
while (WiFi.status() != WL_CONNECTED)
{
delay(500);
Serial.print(".");
}
Serial.println("\nWiFi connected");
snprintf(MQTT_PUB_TOPIC, sizeof(MQTT_PUB_TOPIC), "%s%s", MQTT_TOPIC, DEV_NAME);
mqtt.setServer(MQTT_HOST, MQTT_PORT);
mqtt.setKeepAlive(60);
mqtt.setSocketTimeout(5);
ble_queue = xQueueCreate(100, sizeof(BleEvent));
mqtt_queue = xQueueCreate(100, sizeof(NetEvent));
http_queue = xQueueCreate(100, sizeof(HttpEvent));
uuid_mtx = xSemaphoreCreateMutex();
xTaskCreatePinnedToCore(mqttTask, "mqtt", 4096, NULL, 1, NULL, 1);
xTaskCreatePinnedToCore(httpTask, "http", 4096, NULL, 1, NULL, 1);
NimBLEDevice::init(DEV_NAME);
NimBLEScan *scan = NimBLEDevice::getScan();
scan->setScanCallbacks(&cb);
scan->setActiveScan(false);
scan->setDuplicateFilter(false);
scan->start(0, false, true);
}
void loop()
{
BleEvent ev;
while (xQueueReceive(ble_queue, &ev, 0))
processEvent(ev);
static uint32_t last_cleanup = 0;
if (millis() - last_cleanup >= CLEANUP_INTERVAL)
{
cleanupTags();
cleanupCache();
last_cleanup = millis();
}
}
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#ifndef MAIN_HPP
#define MAIN_HPP
#include <Arduino.h>
#include <NimBLEDevice.h>
#include <string>
#define CLEANUP_INTERVAL 5 * 1000 // ms
#define TAG_TIMEOUT 60 * 1000 // ms
#define UUID_CACHE_RETRY_TIMEOUT 5 * 60 * 1000 // ms
#define UUID_CACHE_CLEAN_TIMEOUT 60 * 60 * 1000 // ms
#define TAG_NAME "X6TAG"
#define UUID_CHECK_ENDPOINT "http://192.168.1.2/check/"
#define MQTT_HOST "192.168.1.2"
#define MQTT_PORT 1883
#define MQTT_USER "user"
#define MQTT_PASS "pass"
#define MQTT_TOPIC "scanners/"
#define WIFI_SSID "COSMOTE-489882"
#define WIFI_PASS "x32hbh54673ngccdsfa9"
#define DEV_NAME "Scanner_Room_A"
struct BleEvent
{
char uuid[37];
int8_t rssi;
};
struct NetEvent
{
char uuid[37];
float ema;
};
struct HttpEvent
{
char uuid[37];
};
enum class UUIDState
{
PENDING,
VALID,
INVALID
};
struct UUIDCacheEntry
{
UUIDState state;
uint32_t last_check;
};
class CB : public NimBLEScanCallbacks
{
public:
void onResult(const NimBLEAdvertisedDevice *d) override;
};
#endif
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#include <iostream>
#include "Tag.hpp"
uint32_t Tag::getLastSeen() const { return this->last_seen; }
void Tag::addSample(int8_t rssi)
{
#ifdef DEBUG
Serial.printf("[addSample()]: rssi_window[%d] = %d\n", this->win_idx, rssi);
Serial.flush();
#endif
this->rssi_window[this->win_idx] = rssi;
this->win_idx = (this->win_idx + 1) % 5;
#ifdef DEBUG
Serial.printf("[addSample()]: count = %d", this->count);
Serial.flush();
#endif
if (this->count < 5)
{
this->count++;
#ifdef DEBUG
Serial.printf(" -> %d", this->count);
Serial.flush();
#endif
}
#ifdef DEBUG
Serial.println();
Serial.flush();
#endif
int8_t median = getMedian();
#ifdef DEBUG
Serial.printf("[addSample()]: median = %d\n", median);
Serial.flush();
#endif
// EMA update
if (!this->init)
{
#ifdef DEBUG
Serial.printf("[addSample()]: init = false\n");
Serial.flush();
#endif
this->ema = median;
#ifdef DEBUG
Serial.printf("[addSample()]: ema = %f\n", this->ema);
Serial.flush();
#endif
this->init = true;
}
else
{
this->ema = 0.8f * this->ema + 0.2f * median;
#ifdef DEBUG
Serial.printf("[addSample()]: ema = %f\n", this->ema);
Serial.flush();
#endif
}
last_seen = millis();
}
int8_t Tag::getMedian() const
{
if (this->count == 0)
{
#ifdef DEBUG
Serial.printf("[getMedian()]: count = 0\n");
Serial.flush();
#endif
return 0;
}
int8_t sorted[5];
#ifdef DEBUG
Serial.printf("[getMedian()]: rssi_window[] = {");
Serial.flush();
#endif
for (uint8_t i = 0; i < this->count; i++)
{
#ifdef DEBUG
Serial.printf(" %d", rssi_window[i]);
Serial.flush();
#endif
sorted[i] = this->rssi_window[i];
}
#ifdef DEBUG
Serial.printf(" }\n");
Serial.flush();
#endif
std::sort(sorted, sorted + this->count);
return sorted[this->count / 2];
}
float Tag::getEMA() const { return this->ema; }
bool Tag::isReady() const { return count == 5; }
bool Tag::shouldPublish()
{
if (!this->isReady())
{
#ifdef DEBUG
Serial.printf("[shouldPublish()]: isReady = false\n");
Serial.flush();
#endif
return false;
}
uint32_t now = millis();
uint32_t time_delta = (this->prev_time == 0 ? INTERVAL : now - this->prev_time);
float ema_delta = std::abs(this->ema - this->prev_ema);
bool time_trigger = time_delta >= INTERVAL;
bool ema_trigger = ema_delta >= EMA_THRESHOLD;
#ifdef DEBUG
Serial.printf("[shouldPublish()]: time_delta = %u\n"
"[shouldPublish()]: ema_delta = %f\n"
"[shouldPublish()]: time_trigger = %s\n"
"[shouldPublish()]: ema_trigger = %s\n",
time_delta,
ema_delta,
(time_trigger ? "true" : "false"),
(ema_trigger ? "true" : "false"));
Serial.flush();
#endif
if (time_trigger || ema_trigger)
{
#ifdef DEBUG
Serial.printf("[shouldPublish()]: return true\n");
Serial.flush();
#endif
this->prev_time = now;
this->prev_ema = this->ema;
return true;
}
#ifdef DEBUG
Serial.printf("[shouldPublish()]: return false\n");
Serial.flush();
#endif
return false;
}
void Tag::reset()
{
this->win_idx = 0;
this->count = 0;
this->ema = 0;
this->init = false;
for (uint8_t i = 0; i < 5; i++)
this->rssi_window[i] = 0;
}
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#ifndef TAG_HPP
#define TAG_HPP
#include <Arduino.h>
/*
* EMA_THRESHOLD Options:
* 1 - High Sensitivity / Fine Tracking
* 2 - Static Object / Presence Detection
* 3 - General Tracking (Default)
* 4-5 - Noisy Environment / Interference
*/
#define EMA_THRESHOLD 3
#define INTERVAL 5000 // ms
#define WINDOW_SIZE 5
// #define DEBUG 1
class Tag
{
private:
int8_t rssi_window[WINDOW_SIZE];
uint8_t win_idx = 0;
uint8_t count = 0;
uint32_t prev_time = 0;
uint32_t last_seen = 0;
float ema = 0;
float prev_ema = 0;
bool init = false;
public:
Tag() = default;
uint32_t getLastSeen() const;
void addSample(int8_t rssi);
int8_t getMedian() const;
float getEMA() const;
bool isReady() const;
bool shouldPublish();
void reset();
};
#endif
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This directory is intended for PlatformIO Test Runner and project tests.
Unit Testing is a software testing method by which individual units of
source code, sets of one or more MCU program modules together with associated
control data, usage procedures, and operating procedures, are tested to
determine whether they are fit for use. Unit testing finds problems early
in the development cycle.
More information about PlatformIO Unit Testing:
- https://docs.platformio.org/en/latest/advanced/unit-testing/index.html