Firmware (xiao_airsoft_pro.ino) : - Persistance config en flash (InternalFileSystem / LittleFS) - Mode debug activable via BLE : octet fixe offset 28 du payload config - minSensors par défaut : 2 → 3 (exige les 3 capteurs simultanément) - Toutes les fenêtres trigger à 60ms (> DEBUG_RATE 50ms) Calibration tool (xiao_calibration_tool.py) : - Scan BLE par nom automatique (30s), connexion directe si adresse fournie - Config + debug FULL envoyés automatiquement à la connexion - NUM0 : cycle debug OFF/RAW/TRIGGERS/FULL - NUM6/4 : ajustement minSensors 1-3 en temps réel - 4ème graphique : timeline des tirs détectés (barres oranges) - Layout 4 sous-graphiques avec height_ratios=[3,3,3,1] Co-Authored-By: Claude Opus 4.6 <noreply@anthropic.com>
384 lines
16 KiB
Python
384 lines
16 KiB
Python
"""
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XIAO Airsoft Calibration Tool v3
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- Rendu optimisé : set_data() sans redraw complet
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- Fenêtre glissante fixe (pas de grossissement des buffers)
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- Aucune latence même après des heures
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- 4ème courbe : timeline des tirs détectés
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"""
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import asyncio
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import struct
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import threading
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from collections import deque
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from bleak import BleakClient, BleakScanner
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DEVICE_NAME = "XIAO Airsoft Pro"
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DEVICE_ADDRESS = "" # Laisser vide pour scan automatique par nom, ou mettre l'adresse MAC pour connexion directe
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DEBUG_CHAR_UUID = "6E400005-B5A3-F393-E0A9-E50E24DCCA9E"
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SHOT_CHAR_UUID = "6E400004-B5A3-F393-E0A9-E50E24DCCA9E"
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CONFIG_CHAR_UUID = "6E400006-B5A3-F393-E0A9-E50E24DCCA9E"
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# Fenêtre fixe : WINDOW_SIZE points affichés, jamais plus
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WINDOW_SIZE = 200 # ~10s à 20Hz — ajustez si besoin
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# Buffers circulaires de taille fixe
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accel_buf = deque([0.0] * WINDOW_SIZE, maxlen=WINDOW_SIZE)
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gyro_buf = deque([0.0] * WINDOW_SIZE, maxlen=WINDOW_SIZE)
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audio_buf = deque([0] * WINDOW_SIZE, maxlen=WINDOW_SIZE)
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accel_trig = deque([False] * WINDOW_SIZE, maxlen=WINDOW_SIZE)
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gyro_trig = deque([False] * WINDOW_SIZE, maxlen=WINDOW_SIZE)
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audio_trig = deque([False] * WINDOW_SIZE, maxlen=WINDOW_SIZE)
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shot_buf = deque([0.0] * WINDOW_SIZE, maxlen=WINDOW_SIZE) # 1.0 au moment d'un tir
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thresholds = {"accel": 2.5, "gyro": 200.0, "audio": 3000} # PDM : 0-32767
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min_sensors = 3 # Nb de capteurs requis simultanément (1-3) — NUM6=+1 NUM4=-1
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shot_count = 0
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shot_pending = False # Flag : un tir reçu, à enregistrer dans shot_buf au prochain debug tick
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ble_status = "🔍 Connexion..."
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ble_running = True
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audio_max_global = 1000 # Tracks le max absolu jamais vu
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ble_client = None # Référence au client BLE actif
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config_pending = False # Flag : config à envoyer au prochain cycle
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debug_mode = 3 # 0=OFF, 1=RAW, 2=TRIGGERS, 3=FULL (actif par défaut)
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import numpy as np
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X = np.arange(WINDOW_SIZE) # axe X fixe, ne change jamais
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# ─── BLE ────────────────────────────────────────────────
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def debug_callback(sender, data):
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global audio_max_global, shot_pending
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if len(data) < 14:
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return
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accel_buf.append( struct.unpack('<f', data[1:5])[0] )
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gyro_buf.append( struct.unpack('<f', data[5:9])[0] )
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val = struct.unpack('<H', data[9:11])[0]
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audio_buf.append(val)
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if val > audio_max_global:
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audio_max_global = val
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accel_trig.append(bool(data[11]))
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gyro_trig.append( bool(data[12]))
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audio_trig.append(bool(data[13]))
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# Enregistrer le tir dans le buffer synchronisé (1.0 si tir reçu depuis le dernier tick)
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shot_buf.append(1.0 if shot_pending else 0.0)
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shot_pending = False
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def shot_callback(sender, data):
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global shot_count, shot_pending
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if data[0] == 1:
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shot_count += 1
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shot_pending = True
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async def find_device():
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"""Scan par nom (toutes les 0.5s pendant 30s max).
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Si DEVICE_ADDRESS est renseignée, connexion directe sans scan.
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"""
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if DEVICE_ADDRESS:
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return DEVICE_ADDRESS # connexion directe — BleakClient accepte une string
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found = None
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def cb(device, adv):
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nonlocal found
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if device.name and DEVICE_NAME.lower() in device.name.lower():
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found = device
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scanner = BleakScanner(cb)
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await scanner.start()
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for _ in range(60): # 30s max (60 × 0.5s)
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if found: break
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await asyncio.sleep(0.5)
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await scanner.stop()
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return found
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DEBUG_BYTE_OFFSET = 28 # Position fixe dans le payload 32 bytes — après toute la struct
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def build_config_payload(include_debug=False):
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"""Construit le payload ShotConfig (32 bytes) à envoyer au XIAO.
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Le byte debug_mode est placé à l'offset fixe DEBUG_BYTE_OFFSET=28,
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bien après la fin de ShotConfig quelle que soit la taille réelle en C++.
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0xFF = ne pas changer le mode debug actuel du XIAO.
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"""
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# struct ShotConfig : float, float, uint16, uint16, uint16, uint16, uint8, uint16, bool, bool, bool
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payload = struct.pack('<ffHHHHBHBBB',
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thresholds["accel"], # accelThreshold (float)
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thresholds["gyro"], # gyroThreshold (float)
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int(thresholds["audio"]), # audioThreshold (uint16)
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60, # accelWindow (uint16) ms — >DEBUG_RATE 50ms
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60, # gyroWindow (uint16) ms — >DEBUG_RATE 50ms
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60, # audioWindow (uint16) ms — >DEBUG_RATE 50ms
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min_sensors, # minSensors (uint8) — 1, 2 ou 3
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80, # shotCooldown (uint16) ms
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1, # useAccel (bool)
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1, # useGyro (bool)
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1, # useAudio (bool)
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)
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# Padder à 32 bytes avec 0xFF (= "ne pas changer")
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buf = bytearray(payload + b'\xff' * (32 - len(payload)))
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# Placer le debug_mode à l'offset fixe 28
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if include_debug:
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buf[DEBUG_BYTE_OFFSET] = debug_mode & 0xFF
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return bytes(buf)
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DEBUG_MODE_NAMES = ["OFF", "RAW", "TRIGGERS", "FULL"]
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async def ble_loop():
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global ble_status, ble_running, ble_client, config_pending
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while ble_running:
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try:
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ble_status = f"🔍 Recherche '{DEVICE_NAME}'..."
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device = await find_device()
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if not device:
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ble_status = "⚠️ XIAO non trouvé — réessai..."
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await asyncio.sleep(5)
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continue
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# device peut être une string (adresse directe) ou un BLEDevice
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if isinstance(device, str):
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addr = device
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display_name = DEVICE_NAME
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else:
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addr = device.address
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display_name = device.name or DEVICE_NAME
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ble_status = f"📡 Connexion {display_name}..."
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async with BleakClient(addr, timeout=15.0) as client:
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ble_client = client
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await client.start_notify(DEBUG_CHAR_UUID, debug_callback)
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await client.start_notify(SHOT_CHAR_UUID, shot_callback)
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ble_status = f"✅ {display_name} ({addr})"
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# À la connexion : envoyer config + activer debug FULL automatiquement
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try:
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payload = build_config_payload(include_debug=True)
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await client.write_gatt_char(CONFIG_CHAR_UUID, payload, response=True)
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print(f"📤 Config initiale + Debug={DEBUG_MODE_NAMES[debug_mode]} envoyés")
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except Exception as ex:
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print(f"⚠️ Erreur envoi config initiale: {ex}")
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while client.is_connected and ble_running:
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if config_pending:
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try:
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payload = build_config_payload(include_debug=True)
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await client.write_gatt_char(CONFIG_CHAR_UUID, payload, response=True)
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print(f"📤 Config → Accel:{thresholds['accel']:.1f}G Gyro:{thresholds['gyro']:.0f}°/s Audio:{thresholds['audio']} Debug:{DEBUG_MODE_NAMES[debug_mode]}")
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except Exception as ex:
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print(f"⚠️ Erreur envoi config: {ex}")
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finally:
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config_pending = False
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await asyncio.sleep(0.1)
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ble_client = None
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ble_status = "❌ Déconnecté — reconnexion..."
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except Exception as e:
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ble_client = None
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ble_status = f"❌ {str(e)[:50]}"
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await asyncio.sleep(5)
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def run_ble():
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asyncio.run(ble_loop())
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# ─── MATPLOTLIB optimisé ────────────────────────────────
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import matplotlib
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matplotlib.use('TkAgg')
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import matplotlib.pyplot as plt
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import matplotlib.gridspec as gridspec
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from matplotlib.animation import FuncAnimation
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BG = '#1a1a2e'
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PANEL = '#16213e'
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TEXT = '#e0e0e0'
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CA = '#4fc3f7' # accel
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CG = '#81c784' # gyro
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CM = '#ce93d8' # audio
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CT = '#ef5350' # trigger / seuil
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CS = '#ff9800' # shot (orange vif)
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GRID = '#2a2a4a'
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fig = plt.figure(figsize=(13, 10), facecolor=BG)
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# 4 lignes : 3 capteurs (hauteur 3) + 1 timeline tirs (hauteur 1)
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gs = gridspec.GridSpec(4, 1, hspace=0.5, top=0.92, bottom=0.05,
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height_ratios=[3, 3, 3, 1])
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axes = [fig.add_subplot(gs[i]) for i in range(4)]
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for ax in axes:
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ax.set_facecolor(PANEL)
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ax.tick_params(colors=TEXT, labelsize=8)
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for sp in ax.spines.values():
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sp.set_edgecolor('#444466')
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ax.grid(True, alpha=0.2, color=GRID)
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ax.set_xlim(0, WINDOW_SIZE - 1)
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axes[0].set_ylabel("G", color=TEXT, fontsize=9)
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axes[1].set_ylabel("°/s", color=TEXT, fontsize=9)
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axes[2].set_ylabel("Niveau",color=TEXT, fontsize=9)
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axes[3].set_ylabel("Tirs", color=CS, fontsize=9)
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axes[3].set_xlabel("Echantillons (fenetre glissante)", color=TEXT, fontsize=8)
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axes[3].set_ylim(-0.1, 1.5)
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axes[3].set_yticks([]) # pas de graduations Y sur la timeline
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# Créer les artistes UNE SEULE FOIS — on ne les recrée jamais
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line_a, = axes[0].plot(X, list(accel_buf), color=CA, lw=1.5)
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line_g, = axes[1].plot(X, list(gyro_buf), color=CG, lw=1.5)
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line_m, = axes[2].plot(X, list(audio_buf), color=CM, lw=1.5)
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line_s, = axes[3].plot(X, list(shot_buf), color=CS, lw=0, marker='|',
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markersize=20, markeredgewidth=2.5) # barres verticales
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thr_a = axes[0].axhline(thresholds["accel"], color=CT, ls='--', lw=1.5)
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thr_g = axes[1].axhline(thresholds["gyro"], color=CT, ls='--', lw=1.5)
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thr_m = axes[2].axhline(thresholds["audio"], color=CT, ls='--', lw=1.5)
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from matplotlib.patches import Rectangle
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from matplotlib.collections import PatchCollection
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# Titres dynamiques
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titles = [
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axes[0].set_title("", color=TEXT, fontsize=10, fontweight='bold', pad=5),
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axes[1].set_title("", color=TEXT, fontsize=10, fontweight='bold', pad=5),
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axes[2].set_title("", color=TEXT, fontsize=10, fontweight='bold', pad=5),
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axes[3].set_title("", color=CS, fontsize=10, fontweight='bold', pad=5),
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]
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status_txt = fig.text(0.01, 0.97, "", color=TEXT, fontsize=9, va='top')
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debug_txt = fig.text(0.01, 0.945, "", color='#ffcc44', fontsize=8, va='top')
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help_txt = fig.text(0.99, 0.97,
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"NUM7/1 Accel+-0.1G NUM8/2 Gyro+-10dps NUM9/3 Audio+-500 NUM6/4 MinSensors+-1 NUM0 Debug NUM5 Reset ESC Quitter",
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color='#8888aa', fontsize=8, va='top', ha='right')
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# Fonds de trigger (spans) — créés une fois, rendus invisibles par défaut
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trig_spans_a = [axes[0].axvspan(i, i+1, alpha=0, color=CT) for i in range(0, WINDOW_SIZE, 1)]
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trig_spans_g = [axes[1].axvspan(i, i+1, alpha=0, color=CT) for i in range(0, WINDOW_SIZE, 1)]
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trig_spans_m = [axes[2].axvspan(i, i+1, alpha=0, color=CT) for i in range(0, WINDOW_SIZE, 1)]
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# Spans de tir sur tous les graphiques (ligne verticale orange traversant tout)
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shot_spans = [axes[3].axvspan(i, i+1, alpha=0, color=CS) for i in range(0, WINDOW_SIZE, 1)]
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def update_spans(spans, trig_list):
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"""Met à jour l'alpha des spans sans en créer de nouveaux"""
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tl = list(trig_list)
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for i, span in enumerate(spans):
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span.set_alpha(0.25 if i < len(tl) and tl[i] else 0)
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def update(frame):
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# Snapshot des buffers (rapide)
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a = np.array(accel_buf)
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g = np.array(gyro_buf)
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m = np.array(audio_buf)
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s = np.array(shot_buf)
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# Mise à jour des données des lignes
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line_a.set_ydata(a)
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line_g.set_ydata(g)
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line_m.set_ydata(m)
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line_s.set_ydata(s)
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# Mise à jour des seuils
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thr_a.set_ydata([thresholds["accel"], thresholds["accel"]])
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thr_g.set_ydata([thresholds["gyro"], thresholds["gyro"]])
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thr_m.set_ydata([thresholds["audio"], thresholds["audio"]])
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# Ylim adaptatif
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axes[0].set_ylim(0, max(thresholds["accel"] * 1.8, a.max() * 1.2, 2.0))
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axes[1].set_ylim(0, max(thresholds["gyro"] * 1.8, g.max() * 1.2, 100))
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axes[2].set_ylim(0, max(audio_max_global * 1.2, thresholds["audio"] * 2.0, 1000))
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# Triggers capteurs
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update_spans(trig_spans_a, accel_trig)
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update_spans(trig_spans_g, gyro_trig)
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update_spans(trig_spans_m, audio_trig)
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# Spans tirs (orange plein sur la timeline)
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sl = list(shot_buf)
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for i, span in enumerate(shot_spans):
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span.set_alpha(0.85 if i < len(sl) and sl[i] > 0 else 0)
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# Titres avec valeurs courantes
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titles[0].set_text(
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f"Accelerometre "
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f"val: {a[-1]:.2f} G "
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f"seuil: {thresholds['accel']:.1f} G "
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f"[NUM7=+0.1 NUM1=-0.1]")
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titles[1].set_text(
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f"Gyroscope "
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f"val: {g[-1]:.0f} dps "
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f"seuil: {thresholds['gyro']:.0f} dps "
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f"[NUM8=+10 NUM2=-10]")
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titles[2].set_text(
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f"Microphone PDM "
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f"val: {m[-1]:.0f} "
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f"seuil: {thresholds['audio']} "
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f"[NUM9=+500 NUM3=-500]")
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titles[3].set_text(f"Tirs detectes : {shot_count} (fenetre glissante)")
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status_txt.set_text(
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f"{ble_status} | Tirs total : {shot_count}")
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debug_txt.set_text(
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f"Debug XIAO : {DEBUG_MODE_NAMES[debug_mode]} [NUM0 = cycle OFF->RAW->TRIGGERS->FULL] | "
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f"MinSensors : {min_sensors}/3 [NUM6=+1 NUM4=-1]")
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return (line_a, line_g, line_m, line_s,
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thr_a, thr_g, thr_m,
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*titles, status_txt, debug_txt)
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def on_key(event):
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global audio_max_global, ble_running, config_pending, debug_mode, min_sensors
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k = event.key
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changed = False
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# Pavé numérique (Num Lock ON : '7','1'... / Num Lock OFF : 'num7','num1'...)
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if k in ('7', 'num7'): thresholds["accel"] = round(thresholds["accel"] + 0.1, 1); changed = True
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elif k in ('1', 'num1'): thresholds["accel"] = round(max(0.3, thresholds["accel"] - 0.1), 1); changed = True
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elif k in ('8', 'num8'): thresholds["gyro"] = thresholds["gyro"] + 10; changed = True
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elif k in ('2', 'num2'): thresholds["gyro"] = max(20, thresholds["gyro"] - 10); changed = True
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elif k in ('9', 'num9'): thresholds["audio"] = thresholds["audio"] + 500; changed = True
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elif k in ('3', 'num3'): thresholds["audio"] = max(200, thresholds["audio"] - 500); changed = True
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elif k in ('6', 'num6'): min_sensors = min(3, min_sensors + 1); print(f"MinSensors → {min_sensors}"); changed = True
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elif k in ('4', 'num4'): min_sensors = max(1, min_sensors - 1); print(f"MinSensors → {min_sensors}"); changed = True
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elif k in ('0', 'num0'):
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debug_mode = (debug_mode + 1) % 4 # cycle OFF→RAW→TRIGGERS→FULL
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print(f"Debug XIAO → {DEBUG_MODE_NAMES[debug_mode]}")
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changed = True # déclenche l'envoi du nouveau mode au XIAO
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elif k in ('5', 'num5'):
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audio_max_global = 1000
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for b in (accel_buf, gyro_buf, audio_buf, shot_buf,
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accel_trig, gyro_trig, audio_trig):
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b.clear()
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b.extend([0] * WINDOW_SIZE)
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print("Courbes reinitialisees")
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elif k == 'escape':
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ble_running = False
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plt.close('all')
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# Envoi de la config (+ debug mode) au XIAO si connecté
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if changed:
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config_pending = True
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# Affichage console
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if k in ('7','1','num7','num1'): print(f"Accel seuil → {thresholds['accel']:.1f} G")
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elif k in ('8','2','num8','num2'): print(f"Gyro seuil → {thresholds['gyro']:.0f} °/s")
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elif k in ('9','3','num9','num3'): print(f"Audio seuil → {thresholds['audio']}")
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def on_close(event):
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global ble_running
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ble_running = False
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fig.canvas.mpl_connect('key_press_event', on_key)
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fig.canvas.mpl_connect('close_event', on_close)
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def main():
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print("╔══════════════════════════════════════════════╗")
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print("║ XIAO Airsoft Calibration Tool v3 ║")
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print("║ Rendu optimisé — aucune latence ║")
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print("╚══════════════════════════════════════════════╝")
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print(f"\n🎯 Cible : '{DEVICE_NAME}'")
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print("⚠️ Tapez 'D' dans le Moniteur Série Arduino")
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print(" jusqu'à voir 'Debug : FULL'\n")
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|
||
ble_thread = threading.Thread(target=run_ble, daemon=True)
|
||
ble_thread.start()
|
||
|
||
anim = FuncAnimation(
|
||
fig, update,
|
||
interval=80, # ~12 fps, largement suffisant
|
||
blit=False, # blit=True cause des bugs de spans
|
||
cache_frame_data=False
|
||
)
|
||
plt.show()
|
||
|
||
global ble_running
|
||
ble_running = False
|
||
|
||
if __name__ == "__main__":
|
||
main()
|