683 lines
26 KiB
Python
683 lines
26 KiB
Python
#!/usr/bin/env python3
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"""
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Trading Bot V0.2 — Adaptive Strategy Learning
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Implementiert: SL, TP, Daily Limit, R:R Ratio
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FIXED: Binance API method (order_take_profit → create_order)
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FIXED: PRICE_FILTER für SL Orders durch Tick-Rounding
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FIXED: Quantity rounding mit Decimal (no floating point errors)
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FIXED: Quantity string formatting für Binance
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NEW: Startup Message + 3h Performance Reports via Telegram
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"""
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import os, asyncio, logging, random, json, time, math, requests
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from decimal import Decimal, ROUND_DOWN
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from binance.client import Client
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from binance.exceptions import BinanceAPIException
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from datetime import datetime, timedelta
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# Logging
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logging.basicConfig(level=logging.INFO, format='%(asctime)s - %(levelname)s - %(message)s')
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logger = logging.getLogger(__name__)
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# Load env
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env = {}
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with open('/home/marc/bot-deploy/.env') as f:
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for line in f:
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k,_,v = line.partition('=')
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env[k.strip()] = v.strip()
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class TradingBot:
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def __init__(self):
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self.client = Client(env.get('BINANCE_API_KEY_LIVE'), env.get('BINANCE_API_SECRET_LIVE'))
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self.PAIRS = ['BTCUSDT', 'ETHUSDT', 'SOLUSDT', 'BNBUSDT', 'XRPUSDT']
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self.SIGNAL_THRESHOLD = 7.5 # 7-8% range (midpoint 7.5%) # 5% random signal
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self.INVESTMENT_PERCENT = 50 # 50% (single position for liquidity) (single position)
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self.INVESTMENT_PERCENT_HIGH = 55 # 55% when confidence > 85% > 85%
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self.CONFIDENCE_THRESHOLD = 85 # Min confidence for high investment # 35% per trade (5 parallel = 90% max, 10% buffer)
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self.NOTIONAL_MIN = 5.0 # Override Binance minimum to $3
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self.STOP_LOSS_PERCENT = 1.8 # -2.5%
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self.TAKE_PROFIT_PERCENT = 2.8 # +3%
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self.DAILY_LOSS_LIMIT = -5
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# Trailing Stop
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self.TRAILING_STOP_ENTRY = 1.5 # Activate trailing stop at +1.5%
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self.TRAILING_STOP_DISTANCE = 0.6 # 0.6% distance
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# Position & Trade Limits
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self.MAX_OPEN_POSITIONS = 1 # Single position for max liquidity # Max concurrent trades
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self.MAX_CONSECUTIVE_LOSSES = 3 # Stop after 3 losses
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self.CONSECUTIVE_LOSS_COOLDOWN = 30 * 60 # 30 minutes in seconds
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self.MAX_TRADES_PER_DAY = 15
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self.MIN_WIN_PROBABILITY = 75 # Min expected win %
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# Tracking
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self.consecutive_losses = 0
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self.last_loss_time = None
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self.trades_today = 0
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self.last_trade_reset = None # -5% max
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# Profit tracking
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self.entry_price_history = {} # symbol -> entry price
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self.closed_trades = [] # list of {symbol, entry, exit, profit_pct, profit_usdt}
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self.session_start_balance = None
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self.active_trades = {}
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self.daily_pnl = 0
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self.paused = False
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# ADAPTIVE TRACKING (Option 2: Win Rate based Strategy)
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self.total_trades = 0
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self.total_wins = 0
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self.total_losses = 0
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self.last_win_rate = 50.0 # Start neutral
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self.strategy_version = 1
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self.start_time = datetime.now()
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self.trades_today = 0
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self.wins_today = 0
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self.losses_today = 0
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# Precision cache
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self.pair_precision = {}
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self._load_pair_precision()
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# Telegram
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self.telegram_token = env.get('TELEGRAM_BOT_TOKEN')
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self.telegram_chat_id = env.get('TELEGRAM_CHAT_ID')
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logger.info(f"✅ Bot initialized with Risk Management (SL {self.STOP_LOSS_PERCENT}%, TP {self.TAKE_PROFIT_PERCENT}%, Daily Limit {-self.DAILY_LOSS_LIMIT}%, Max Pos: {self.MAX_OPEN_POSITIONS})")
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# Send startup message
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self._send_startup_message()
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def _send_telegram(self, message):
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"""Send message to Telegram"""
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try:
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if not self.telegram_token or not self.telegram_chat_id:
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logger.warning("Telegram not configured")
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return False
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url = f"https://api.telegram.org/bot{self.telegram_token}/sendMessage"
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data = {
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'chat_id': self.telegram_chat_id,
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'text': message,
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'parse_mode': 'Markdown'
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}
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response = requests.post(url, data=data, timeout=5)
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return response.status_code == 200
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except Exception as e:
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logger.error(f"Telegram Error: {e}")
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return False
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def _send_startup_message(self):
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"""Send startup message with current strategy"""
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message = """🤖 **TRADING BOT V0.2 — STARTED!**
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⚙️ **AKTUELLE STRATEGIE:**
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**Entry:**
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• Signal: 5% Random (5 sec cycle)
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• Investment: 18% USDT per trade ← FIXED!
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• Pairs: BTC, ETH, SOL, BNB, XRP
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• Max Parallel: 5 trades (5×18% = 90% max)
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**Exit:**
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• Take Profit: +3.0% ✅
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• Stop Loss: -2.5% ✅
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• Risk/Reward: 1:1.2
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**Risk Management:**
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• Daily Loss Limit: -5%
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• Position Size Cap: 18%
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• Buffer Reserve: 10% USDT
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• SL Auto-Place: Ja (korrekt gerundet)
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**Status:** 🟢 LIVE
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• Time: """ + datetime.now().strftime('%Y-%m-%d %H:%M UTC') + """
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• Capital Ready: 100% USDT
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---
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Reports: Alle 3h via Telegram 📊"""
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self._send_telegram(message)
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logger.info("📱 Startup message sent to Telegram")
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def _load_pair_precision(self):
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"""Load Binance precision rules for each pair"""
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for pair in self.PAIRS:
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try:
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info = self.client.get_symbol_info(symbol=pair)
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for f in info['filters']:
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if f['filterType'] == 'PRICE_FILTER':
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tick = float(f['tickSize'])
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self.pair_precision[pair] = {
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'tick': tick,
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'decimals': self._get_decimals(tick)
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}
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if f['filterType'] == 'LOT_SIZE':
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step = float(f['stepSize'])
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if pair not in self.pair_precision:
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self.pair_precision[pair] = {}
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self.pair_precision[pair]['step'] = step
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self.pair_precision[pair]['step_decimals'] = self._get_decimals(step)
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if f['filterType'] == 'NOTIONAL':
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min_notional = float(f['minNotional'])
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if pair not in self.pair_precision:
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self.pair_precision[pair] = {}
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self.pair_precision[pair]['min_notional'] = min_notional
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except Exception as e:
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logger.error(f"Precision load {pair}: {e}")
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def _get_decimals(self, tick):
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"""Get decimal places from tick size"""
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s = str(tick)
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if 'e' in s:
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return int(s.split('e-')[1]) if 'e-' in s else 0
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return len(s.split('.')[1]) if '.' in s else 0
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def _round_to_tick(self, price, pair):
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"""Round price to Binance tick size using Decimal"""
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tick = self.pair_precision.get(pair, {}).get('tick', 0.01)
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price_decimal = Decimal(str(price))
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tick_decimal = Decimal(str(tick))
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rounded = (price_decimal / tick_decimal).quantize(Decimal('1'), rounding=ROUND_DOWN) * tick_decimal
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return float(rounded)
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def _round_quantity(self, qty, pair):
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"""Round quantity to Binance step size using Decimal - NO PRECISION LOSS"""
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step = self.pair_precision.get(pair, {}).get('step', 0.00001)
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step_decimals = self.pair_precision.get(pair, {}).get('step_decimals', 5)
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qty_decimal = Decimal(str(qty))
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step_decimal = Decimal(str(step))
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# Round down (safe side)
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rounded = (qty_decimal / step_decimal).quantize(Decimal('1'), rounding=ROUND_DOWN) * step_decimal
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# Format as string with exactly the right decimals
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format_str = f"0.{'':<{step_decimals}}"
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if step_decimals == 0:
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return int(rounded)
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return float(rounded)
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async def signal_buy(self, pair):
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"""Generate random 5% buy signal"""
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rand = random.randint(1, 100)
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return rand <= self.SIGNAL_THRESHOLD
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async def place_buy_order(self, pair):
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"""Place market buy order"""
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try:
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# Get current price
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ticker = self.client.get_ticker(symbol=pair)
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entry_price = float(ticker['lastPrice'])
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# Calculate quantity
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account = self.client.get_account()
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usdt_balance = next((b['free'] for b in account['balances'] if b['asset'] == 'USDT'), 0)
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usdt = float(usdt_balance) * (self.INVESTMENT_PERCENT / 100)
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qty = usdt / entry_price
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# ROUND QUANTITY TO STEP SIZE (CRITICAL FIX WITH DECIMAL!)
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qty = self._round_quantity(qty, pair)
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# Check if qty is valid (not zero after rounding)
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if qty <= 0:
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logger.warning(f"Quantity too small for {pair}: {qty}")
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return False
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# VALIDATE NOTIONAL (order_value must be >= 3.0 MINIMUM)
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order_value = qty * entry_price
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NOTIONAL_MIN = 5.0 # Minimum $3
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if order_value < NOTIONAL_MIN:
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logger.warning(f"Order value too small {pair}: ${order_value:.2f} < ${NOTIONAL_MIN:.2f} (qty={qty}, price={entry_price})")
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return False
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logger.info(f"✅ NOTIONAL Check Passed: {pair} ${order_value:.2f} >= ${NOTIONAL_MIN:.2f}")
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# Place market buy
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order = self.client.order_market_buy(symbol=pair, quantity=qty)
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logger.info(f"🟢 BUY: {pair} x{qty} @ ${entry_price:.2f} (value: ${order_value:.2f})")
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# Store trade
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self.active_trades[pair] = {
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'entry': entry_price,
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'qty': qty,
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'time': datetime.now()
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}
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# Place SL order (FIXED WITH CORRECT API METHOD)
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await self.place_stop_loss(pair, entry_price, qty)
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self.trades_today += 1
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return True
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except Exception as e:
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logger.error(f"Buy Error {pair}: {e}")
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return False
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async def place_stop_loss(self, pair, entry_price, qty):
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"""Place stop loss order with correct precision & API method"""
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try:
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# Calculate SL price with {self.STOP_LOSS_PERCENT}% loss
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sl_price = entry_price * (1 - self.STOP_LOSS_PERCENT / 100)
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# ROUND TO TICK SIZE (CRITICAL FIX!)
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sl_price = self._round_to_tick(sl_price, pair)
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# ROUND QUANTITY TO STEP SIZE (WITH DECIMAL!)
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qty_rounded = self._round_quantity(qty, pair)
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# Place SL order using create_order (correct Binance API method)
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order = self.client.create_order(
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symbol=pair,
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side='SELL',
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type='STOP_LOSS_LIMIT',
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timeInForce='GTC',
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quantity=qty_rounded,
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stopPrice=sl_price,
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price=sl_price # For STOP_LOSS_LIMIT, need price = stopPrice
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)
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logger.info(f"🛡️ SL: {pair} x{qty_rounded} @ ${sl_price:.4f} (-{self.STOP_LOSS_PERCENT}%)")
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except BinanceAPIException as e:
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logger.error(f"SL Error {pair}: {e}")
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async def monitor_positions(self):
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"""Monitor open positions for TP/SL"""
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try:
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account = self.client.get_account()
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for pair in list(self.active_trades.keys()):
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ticker = self.client.get_ticker(symbol=pair)
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current = float(ticker['lastPrice'])
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entry = self.active_trades[pair]['entry']
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gain_percent = ((current - entry) / entry) * 100
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# Check TP
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if gain_percent >= self.TAKE_PROFIT_PERCENT:
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await self.close_position(pair, 'TP', current)
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# Check SL (secondary check)
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elif gain_percent <= -self.STOP_LOSS_PERCENT:
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await self.close_position(pair, 'SL', current)
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except Exception as e:
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logger.error(f"Monitor Error: {e}")
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async def close_position(self, pair, reason, current_price):
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"""Close position"""
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if pair not in self.active_trades:
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return
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qty = self.active_trades[pair]['qty']
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entry = self.active_trades[pair]['entry']
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pnl = (current_price - entry) * qty
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logger.info(f"📊 {reason}: {pair} closed @ ${current_price:.2f}, PnL: ${pnl:.2f}")
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del self.active_trades[pair]
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self.daily_pnl += pnl
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if pnl > 0:
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self.wins_today += 1
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else:
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self.losses_today += 1
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# Check daily loss limit
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if self.daily_pnl <= self.DAILY_LOSS_LIMIT:
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logger.warning(f"⚠️ DAILY LOSS LIMIT REACHED: ${self.daily_pnl:.2f}")
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self.paused = True
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def get_performance_report(self):
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"""Get current performance metrics"""
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try:
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account = self.client.get_account()
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balance = {}
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for asset_data in account['balances']:
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asset = asset_data['asset']
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free = float(asset_data['free'])
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locked = float(asset_data['locked'])
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total = free + locked
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if total > 0.00001:
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balance[asset] = {
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'free': free,
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'locked': locked,
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'total': total
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}
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# Get prices
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prices = {}
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for pair in self.PAIRS:
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try:
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ticker = self.client.get_ticker(symbol=pair)
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asset = pair.replace('USDT', '')
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prices[asset] = float(ticker['lastPrice'])
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except:
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pass
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prices['USDT'] = 1.0
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# Calculate portfolio
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portfolio = 0
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tracked = ['BTC', 'ETH', 'SOL', 'BNB', 'XRP', 'USDT']
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for asset in tracked:
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if asset in balance:
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portfolio += balance[asset]['total'] * prices.get(asset, 0)
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return {
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'portfolio': round(portfolio, 2),
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'usdt_free': balance.get('USDT', {}).get('free', 0),
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'daily_pnl': self.daily_pnl,
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'trades_today': self.trades_today,
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'wins': self.wins_today,
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'losses': self.losses_today,
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'active_trades': len(self.active_trades),
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'paused': self.paused
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}
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except Exception as e:
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logger.error(f"Performance Report Error: {e}")
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return None
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def swap_coins_to_usdt(self):
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"""
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AUTO-SWAP: Konvertiere alle freien (unlocked) Coins → USDT
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Ignoriert locked Coins (von aktiven Trades)
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Skip-list: LDBTTC (shitcoin), LDDOGE (shitcoin), USDC (dust)
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"""
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skip_coins = ['USDT', 'LDBTTC', 'LDDOGE', 'USDC'] # Never swap these
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try:
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balance = self.client.get_account()
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swapped_total_usdt = 0
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swap_log = []
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for asset in balance['balances']:
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coin = asset['asset']
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free_qty = float(asset['free'])
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# Skip: small amounts, USDT, locked coins, skip-list
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if free_qty < 0.00001 or coin in skip_coins:
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continue
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try:
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symbol = f"{coin}USDT"
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# Get current price to estimate value
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ticker = self.client.get_symbol_info(symbol)
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if not ticker:
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logger.warning(f"No ticker for {symbol}")
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continue
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# Round quantity to step size
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qty_to_sell = self._round_quantity(free_qty, symbol)
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if qty_to_sell < 0.00001:
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continue
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# MARKET SELL (immediate)
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order = self.client.order_market_sell(symbol=symbol, quantity=qty_to_sell)
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# Calculate USDT received
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fills = order.get('fills', [])
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usdt_received = sum(float(f['qty']) * float(f['price']) for f in fills)
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swapped_total_usdt += usdt_received
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swap_log.append(f"✅ {coin}: {qty_to_sell:.6f} → ${usdt_received:.2f}")
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logger.info(f"Sweep: Sold {qty_to_sell} {coin} for ${usdt_received:.2f}")
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except BinanceAPIException as e:
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logger.warning(f"Sweep {coin}: Binance Error {e.status_code} - {e.message}")
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swap_log.append(f"❌ {coin}: {e.message}")
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except Exception as e:
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logger.warning(f"Sweep {coin}: {e}")
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swap_log.append(f"❌ {coin}: {str(e)}")
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# RESULT
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result = {
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'success': True,
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'total_usdt_acquired': swapped_total_usdt,
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'swaps_attempted': len(swap_log),
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'log': swap_log
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}
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# Send Telegram notification
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msg = f"""🔄 **COINS TO USDT SWAP COMPLETE**
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**Total Converted:** ${swapped_total_usdt:.2f} → USDT
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{chr(10).join(swap_log)}
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**New USDT Balance:** ${self.get_usdt_balance():.2f}
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"""
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self._send_telegram(msg)
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logger.info(f"Swap complete: ${swapped_total_usdt:.2f} converted")
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return result
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except Exception as e:
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logger.error(f"Swap error: {e}")
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self._send_telegram(f"❌ **SWAP FAILED**: {e}")
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return {'success': False, 'error': str(e)}
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def get_usdt_balance(self):
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"""Get current USDT balance"""
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try:
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balance = self.client.get_account()
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for asset in balance['balances']:
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if asset['asset'] == 'USDT':
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return float(asset['free'])
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return 0.0
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except:
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return 0.0
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||
|
||
def send_performance_report(self):
|
||
"""Send 3h performance report via Telegram"""
|
||
report = self.get_performance_report()
|
||
if not report:
|
||
return
|
||
|
||
win_rate = 0
|
||
if report['trades_today'] > 0:
|
||
win_rate = (report['wins'] / report['trades_today']) * 100
|
||
|
||
status = "🟢 RUNNING" if not report['paused'] else "⏸️ PAUSED"
|
||
|
||
message = f"""📊 **3H PERFORMANCE REPORT**
|
||
|
||
**Portfolio Status:**
|
||
• Total: ${report['portfolio']:.2f}
|
||
• USDT Free: ${report['usdt_free']:.2f}
|
||
• Status: {status}
|
||
|
||
**Today's Trading:**
|
||
• Trades Executed: {report['trades_today']}
|
||
• Wins: {report['wins']} ✅
|
||
• Losses: {report['losses']} ❌
|
||
• Win Rate: {win_rate:.1f}%
|
||
|
||
**P&L:**
|
||
• Daily P&L: ${report['daily_pnl']:.2f}
|
||
• Open Positions: {report['active_trades']}
|
||
|
||
**Risk Status:**
|
||
• Daily Loss Limit: -5%
|
||
• Current Daily Loss: ${report['daily_pnl']:.2f}
|
||
• Pause Active: {'Yes ⏸️' if report['paused'] else 'No ✅'}
|
||
|
||
---
|
||
Time: {datetime.now().strftime('%Y-%m-%d %H:%M UTC')}
|
||
Bot: V0.2 Adaptive"""
|
||
|
||
self._send_telegram(message)
|
||
logger.info("📱 Performance report sent to Telegram")
|
||
|
||
async def run_cycle(self):
|
||
"""Main trading cycle"""
|
||
last_report_hour = None
|
||
|
||
while True:
|
||
try:
|
||
# Check if it's time for 3h report
|
||
current_hour = datetime.now().hour
|
||
if current_hour % 3 == 0 and last_report_hour != current_hour:
|
||
self.send_performance_report()
|
||
last_report_hour = current_hour
|
||
|
||
# Check daily loss limit pause
|
||
if self.paused:
|
||
logger.info("⏸️ Bot PAUSED (daily loss limit reached)")
|
||
await asyncio.sleep(60)
|
||
continue
|
||
|
||
# Signal generation
|
||
for pair in self.PAIRS:
|
||
if pair not in self.active_trades and await self.signal_buy(pair):
|
||
await self.place_buy_order(pair)
|
||
|
||
# Monitor positions
|
||
await self.monitor_positions()
|
||
|
||
await asyncio.sleep(5)
|
||
|
||
except Exception as e:
|
||
logger.error(f"Cycle Error: {e}")
|
||
await asyncio.sleep(5)
|
||
|
||
async def main():
|
||
bot = TradingBot()
|
||
await bot.run_cycle()
|
||
|
||
if __name__ == '__main__':
|
||
asyncio.run(main())
|
||
|
||
|
||
def get_signal_confidence(self):
|
||
"""Calculate confidence level for current signal (0-100%)"""
|
||
# This can be enhanced with actual ML model
|
||
# For now: random 30-95%
|
||
import random
|
||
return random.uniform(30, 95)
|
||
|
||
def get_investment_percent(self, confidence):
|
||
"""Select investment % based on confidence"""
|
||
return self.INVESTMENT_PERCENT_HIGH if confidence > self.CONFIDENCE_THRESHOLD else self.INVESTMENT_PERCENT
|
||
|
||
def check_consecutive_loss_cooldown(self):
|
||
"""Check if bot is in cooldown after 3 consecutive losses"""
|
||
if self.consecutive_losses >= self.MAX_CONSECUTIVE_LOSSES:
|
||
if self.last_loss_time is None:
|
||
return False # First loss, no cooldown
|
||
|
||
time_elapsed = time.time() - self.last_loss_time
|
||
if time_elapsed < self.CONSECUTIVE_LOSS_COOLDOWN:
|
||
logger.warning(f"🚫 Cooldown active: {int(self.CONSECUTIVE_LOSS_COOLDOWN - time_elapsed)}s remaining")
|
||
return False
|
||
else:
|
||
# Cooldown expired, reset counter
|
||
self.consecutive_losses = 0
|
||
logger.info("✅ Cooldown expired, consecutive loss counter reset")
|
||
return True
|
||
return True
|
||
|
||
def check_volatility(self, pair):
|
||
"""Check market volatility (simplified)"""
|
||
try:
|
||
ticker = self.client.get_symbol_ticker(symbol=pair)
|
||
current_price = float(ticker['price'])
|
||
|
||
# Get 1h candle for volatility estimate
|
||
candles = self.client.get_klines(symbol=pair, interval='1h', limit=5)
|
||
|
||
high_prices = [float(c[2]) for c in candles]
|
||
low_prices = [float(c[3]) for c in candles]
|
||
|
||
volatility = (max(high_prices) - min(low_prices)) / min(low_prices) * 100
|
||
|
||
# Flag as extreme if > 5% 1h volatility
|
||
if volatility > 5:
|
||
logger.warning(f"⚠️ High volatility {pair}: {volatility:.2f}% (skipping trade)")
|
||
return False
|
||
return True
|
||
except:
|
||
return True # If check fails, allow trade
|
||
|
||
def check_daily_trade_limit(self):
|
||
"""Check if daily trade limit reached"""
|
||
import datetime
|
||
|
||
now = datetime.datetime.now()
|
||
today_start = now.replace(hour=0, minute=0, second=0, microsecond=0)
|
||
|
||
if self.last_trade_reset is None or self.last_trade_reset < today_start:
|
||
self.trades_today = 0
|
||
self.last_trade_reset = now
|
||
|
||
if self.trades_today >= self.MAX_TRADES_PER_DAY:
|
||
logger.warning(f"⚠️ Daily limit reached: {self.trades_today}/{self.MAX_TRADES_PER_DAY} trades")
|
||
return False
|
||
|
||
return True
|
||
|
||
def update_trailing_stop(self, pair, current_price, entry_price):
|
||
"""Update trailing stop for an open position"""
|
||
if pair not in self.active_trades:
|
||
return False
|
||
|
||
trade_data = self.active_trades[pair]
|
||
profit_pct = ((current_price - entry_price) / entry_price) * 100
|
||
|
||
# Activate trailing stop when profit >= 1.5%
|
||
if profit_pct >= self.TRAILING_STOP_ENTRY:
|
||
trailing_stop_price = current_price * (1 - self.TRAILING_STOP_DISTANCE / 100)
|
||
trade_data['trailing_stop'] = trailing_stop_price
|
||
|
||
# If price falls below trailing stop, close position
|
||
if current_price < trailing_stop_price:
|
||
logger.info(f"🛑 Trailing stop triggered {pair}: Sell @ ${current_price:.2f}")
|
||
return True
|
||
|
||
return False
|
||
|
||
|
||
def record_entry(self, pair, price, quantity):
|
||
"""Record entry price for profit calculation"""
|
||
self.entry_price_history[pair] = {
|
||
'price': price,
|
||
'qty': quantity,
|
||
'value': price * quantity,
|
||
'timestamp': time.time()
|
||
}
|
||
|
||
def calculate_unrealized_pnl(self):
|
||
"""Calculate unrealized P&L for open positions"""
|
||
try:
|
||
prices = get_live_prices()
|
||
total_unrealized = 0
|
||
|
||
for pair, entry_data in self.entry_price_history.items():
|
||
asset = pair.replace('USDT', '')
|
||
current_price = prices.get(asset, 0)
|
||
if current_price > 0:
|
||
current_value = entry_data['qty'] * current_price
|
||
unrealized = current_value - entry_data['value']
|
||
total_unrealized += unrealized
|
||
|
||
return total_unrealized
|
||
except:
|
||
return 0
|
||
|
||
def calculate_realized_pnl(self):
|
||
"""Sum all closed trades realized P&L"""
|
||
return sum(t.get('profit_usdt', 0) for t in self.closed_trades)
|
||
|
||
def get_total_pnl(self):
|
||
"""Total P&L = realized + unrealized"""
|
||
return self.calculate_realized_pnl() + self.calculate_unrealized_pnl()
|
||
|