dash
This commit is contained in:
parent
509ad0ae17
commit
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@ -18,6 +18,8 @@ import argparse
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import logging
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import logging
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import sys
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import sys
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from pathlib import Path
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from pathlib import Path
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from threading import Thread
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import time
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# Add project root to path
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# Add project root to path
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project_root = Path(__file__).parent
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project_root = Path(__file__).parent
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@ -179,6 +181,95 @@ def run_orchestrator_test():
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logger.error(traceback.format_exc())
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logger.error(traceback.format_exc())
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raise
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raise
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def run_web_dashboard(port: int = 8050, demo_mode: bool = True):
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"""Run the web dashboard"""
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try:
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from web.dashboard import TradingDashboard
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logger.info("Starting Web Dashboard...")
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# Initialize components
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data_provider = DataProvider(symbols=['ETH/USDT'], timeframes=['1h', '4h'])
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orchestrator = TradingOrchestrator(data_provider)
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# Create dashboard
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dashboard = TradingDashboard(data_provider, orchestrator)
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# Add orchestrator callback to send decisions to dashboard
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async def decision_callback(decision):
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dashboard.add_trading_decision(decision)
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orchestrator.add_decision_callback(decision_callback)
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if demo_mode:
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# Start demo mode with mock decisions
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logger.info("Starting demo mode with simulated trading decisions...")
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def demo_thread():
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"""Generate demo trading decisions"""
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import random
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import time
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from datetime import datetime
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from core.orchestrator import TradingDecision
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actions = ['BUY', 'SELL', 'HOLD']
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base_price = 3000.0
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while True:
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try:
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# Simulate price movement
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price_change = random.uniform(-50, 50)
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current_price = max(base_price + price_change, 1000)
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# Create mock decision
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action = random.choice(actions)
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confidence = random.uniform(0.6, 0.95)
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decision = TradingDecision(
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action=action,
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confidence=confidence,
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symbol='ETH/USDT',
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price=current_price,
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timestamp=datetime.now(),
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reasoning={'demo_mode': True, 'random_decision': True},
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memory_usage={'demo': 0}
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)
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dashboard.add_trading_decision(decision)
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logger.info(f"Demo decision: {action} ETH/USDT @${current_price:.2f} (confidence: {confidence:.2f})")
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# Update base price occasionally
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if random.random() < 0.1:
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base_price = current_price
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time.sleep(5) # New decision every 5 seconds
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except Exception as e:
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logger.error(f"Error in demo thread: {e}")
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time.sleep(10)
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# Start demo thread
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demo_thread_instance = Thread(target=demo_thread, daemon=True)
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demo_thread_instance.start()
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# Start data streaming if available
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try:
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logger.info("Starting real-time data streaming...")
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# Don't use asyncio.run here as we're already in an event loop context
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# Just log that streaming would be started in a real deployment
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logger.info("Real-time streaming would be started in production deployment")
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except Exception as e:
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logger.warning(f"Could not start real-time streaming: {e}")
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# Run dashboard
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dashboard.run(port=port, debug=False)
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except Exception as e:
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logger.error(f"Error running web dashboard: {e}")
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import traceback
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logger.error(traceback.format_exc())
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raise
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async def main():
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async def main():
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"""Main entry point"""
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"""Main entry point"""
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parser = argparse.ArgumentParser(description='Clean Trading System')
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parser = argparse.ArgumentParser(description='Clean Trading System')
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@ -187,6 +278,10 @@ async def main():
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parser.add_argument('--symbol', type=str, help='Override default symbol')
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parser.add_argument('--symbol', type=str, help='Override default symbol')
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parser.add_argument('--config', type=str, default='config.yaml',
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parser.add_argument('--config', type=str, default='config.yaml',
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help='Configuration file path')
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help='Configuration file path')
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parser.add_argument('--port', type=int, default=8050,
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help='Port for web dashboard')
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parser.add_argument('--demo', action='store_true',
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help='Run web dashboard in demo mode with simulated data')
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args = parser.parse_args()
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args = parser.parse_args()
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@ -203,6 +298,8 @@ async def main():
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run_data_test()
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run_data_test()
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elif args.mode == 'orchestrator':
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elif args.mode == 'orchestrator':
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run_orchestrator_test()
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run_orchestrator_test()
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elif args.mode == 'web':
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run_web_dashboard(port=args.port, demo_mode=args.demo)
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else:
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else:
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logger.info(f"Mode '{args.mode}' not yet implemented in clean architecture")
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logger.info(f"Mode '{args.mode}' not yet implemented in clean architecture")
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@ -0,0 +1 @@
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# Web module for trading system dashboard
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468
web/dashboard.py
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468
web/dashboard.py
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"""
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Trading Dashboard - Clean Web Interface
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This module provides a modern, responsive web dashboard for the trading system:
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- Real-time price charts with multiple timeframes
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- Model performance monitoring
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- Trading decisions visualization
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- System health monitoring
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- Memory usage tracking
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"""
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import asyncio
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import json
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import logging
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import time
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from datetime import datetime, timedelta
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from threading import Thread
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from typing import Dict, List, Optional, Any
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import dash
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from dash import dcc, html, Input, Output, State, callback_context
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import plotly.graph_objects as go
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import plotly.express as px
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from plotly.subplots import make_subplots
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import pandas as pd
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import numpy as np
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from core.config import get_config
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from core.data_provider import DataProvider
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from core.orchestrator import TradingOrchestrator, TradingDecision
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from models import get_model_registry
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logger = logging.getLogger(__name__)
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class TradingDashboard:
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"""Modern trading dashboard with real-time updates"""
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def __init__(self, data_provider: DataProvider = None, orchestrator: TradingOrchestrator = None):
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"""Initialize the dashboard"""
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self.config = get_config()
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self.data_provider = data_provider or DataProvider()
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self.orchestrator = orchestrator or TradingOrchestrator(self.data_provider)
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self.model_registry = get_model_registry()
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# Dashboard state
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self.recent_decisions = []
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self.performance_data = {}
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self.current_prices = {}
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self.last_update = datetime.now()
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# Create Dash app
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self.app = dash.Dash(__name__, external_stylesheets=[
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'https://cdn.jsdelivr.net/npm/bootstrap@5.1.3/dist/css/bootstrap.min.css',
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'https://cdnjs.cloudflare.com/ajax/libs/font-awesome/6.0.0/css/all.min.css'
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])
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# Setup layout and callbacks
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self._setup_layout()
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self._setup_callbacks()
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logger.info("Trading Dashboard initialized")
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def _setup_layout(self):
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"""Setup the dashboard layout"""
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self.app.layout = html.Div([
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# Header
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html.Div([
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html.H1([
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html.I(className="fas fa-chart-line me-3"),
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"Trading System Dashboard"
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], className="text-white mb-0"),
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html.P(f"Multi-Modal AI Trading • Memory: {self.model_registry.total_memory_limit_mb/1024:.1f}GB Limit",
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className="text-light mb-0 opacity-75")
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], className="bg-dark p-4 mb-4"),
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# Auto-refresh component
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dcc.Interval(
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id='interval-component',
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interval=2000, # Update every 2 seconds
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n_intervals=0
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),
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# Main content
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html.Div([
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# Top row - Key metrics
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html.Div([
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html.Div([
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html.Div([
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html.H4(id="current-price", className="text-success mb-1"),
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html.P("Current Price", className="text-muted mb-0 small")
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], className="card-body text-center")
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], className="card bg-light"),
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html.Div([
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html.Div([
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html.H4(id="total-pnl", className="mb-1"),
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html.P("Total P&L", className="text-muted mb-0 small")
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], className="card-body text-center")
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], className="card bg-light"),
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html.Div([
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html.Div([
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html.H4(id="win-rate", className="text-info mb-1"),
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html.P("Win Rate", className="text-muted mb-0 small")
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], className="card-body text-center")
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], className="card bg-light"),
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html.Div([
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html.Div([
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html.H4(id="memory-usage", className="text-warning mb-1"),
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html.P("Memory Usage", className="text-muted mb-0 small")
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], className="card-body text-center")
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], className="card bg-light"),
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], className="row g-3 mb-4"),
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# Charts row
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html.Div([
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# Price chart
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html.Div([
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html.Div([
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html.H5([
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html.I(className="fas fa-chart-candlestick me-2"),
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"Price Chart"
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], className="card-title"),
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dcc.Graph(id="price-chart", style={"height": "400px"})
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], className="card-body")
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], className="card"),
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# Model performance chart
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html.Div([
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html.Div([
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html.H5([
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html.I(className="fas fa-brain me-2"),
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"Model Performance"
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], className="card-title"),
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dcc.Graph(id="model-performance-chart", style={"height": "400px"})
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], className="card-body")
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], className="card")
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], className="row g-3 mb-4"),
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# Bottom row - Recent decisions and system status
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html.Div([
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# Recent decisions
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html.Div([
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html.Div([
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html.H5([
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html.I(className="fas fa-robot me-2"),
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"Recent Trading Decisions"
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], className="card-title"),
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html.Div(id="recent-decisions", style={"maxHeight": "300px", "overflowY": "auto"})
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], className="card-body")
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], className="card"),
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# System status
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html.Div([
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html.Div([
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html.H5([
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html.I(className="fas fa-server me-2"),
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"System Status"
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], className="card-title"),
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html.Div(id="system-status")
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], className="card-body")
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], className="card")
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], className="row g-3")
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], className="container-fluid")
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])
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def _setup_callbacks(self):
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"""Setup dashboard callbacks for real-time updates"""
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@self.app.callback(
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[
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Output('current-price', 'children'),
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Output('total-pnl', 'children'),
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Output('total-pnl', 'className'),
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Output('win-rate', 'children'),
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Output('memory-usage', 'children'),
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Output('price-chart', 'figure'),
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Output('model-performance-chart', 'figure'),
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Output('recent-decisions', 'children'),
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Output('system-status', 'children')
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],
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[Input('interval-component', 'n_intervals')]
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)
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def update_dashboard(n_intervals):
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"""Update all dashboard components"""
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try:
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# Get current prices
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symbol = self.config.symbols[0] if self.config.symbols else "ETH/USDT"
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current_price = self.data_provider.get_current_price(symbol)
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# Get model performance metrics
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performance_metrics = self.orchestrator.get_performance_metrics()
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# Get memory stats
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memory_stats = self.model_registry.get_memory_stats()
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# Calculate P&L from recent decisions
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total_pnl = 0.0
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wins = 0
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total_trades = len(self.recent_decisions)
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for decision in self.recent_decisions[-20:]: # Last 20 decisions
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if hasattr(decision, 'pnl') and decision.pnl:
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total_pnl += decision.pnl
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if decision.pnl > 0:
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wins += 1
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# Format outputs
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price_text = f"${current_price:.2f}" if current_price else "Loading..."
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pnl_text = f"${total_pnl:.2f}"
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pnl_class = "text-success mb-1" if total_pnl >= 0 else "text-danger mb-1"
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win_rate_text = f"{(wins/total_trades*100):.1f}%" if total_trades > 0 else "0.0%"
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memory_text = f"{memory_stats['utilization_percent']:.1f}%"
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# Create charts
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price_chart = self._create_price_chart(symbol)
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performance_chart = self._create_performance_chart(performance_metrics)
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# Create recent decisions list
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decisions_list = self._create_decisions_list()
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# Create system status
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system_status = self._create_system_status(memory_stats)
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return (
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price_text, pnl_text, pnl_class, win_rate_text, memory_text,
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price_chart, performance_chart, decisions_list, system_status
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)
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except Exception as e:
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logger.error(f"Error updating dashboard: {e}")
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# Return safe defaults
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empty_fig = go.Figure()
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empty_fig.add_annotation(text="Loading...", xref="paper", yref="paper", x=0.5, y=0.5)
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return (
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"Loading...", "$0.00", "text-muted mb-1", "0.0%", "0.0%",
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empty_fig, empty_fig, [], html.P("Loading system status...")
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)
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def _create_price_chart(self, symbol: str) -> go.Figure:
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"""Create price chart with multiple timeframes"""
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try:
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# Get recent data
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df = self.data_provider.get_latest_candles(symbol, '1h', limit=24)
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if df.empty:
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fig = go.Figure()
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fig.add_annotation(text="No data available", xref="paper", yref="paper", x=0.5, y=0.5)
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return fig
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# Create candlestick chart
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fig = go.Figure(data=[go.Candlestick(
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x=df['timestamp'],
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open=df['open'],
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high=df['high'],
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low=df['low'],
|
||||||
|
close=df['close'],
|
||||||
|
name=symbol
|
||||||
|
)])
|
||||||
|
|
||||||
|
# Add moving averages if available
|
||||||
|
if 'sma_20' in df.columns:
|
||||||
|
fig.add_trace(go.Scatter(
|
||||||
|
x=df['timestamp'],
|
||||||
|
y=df['sma_20'],
|
||||||
|
name='SMA 20',
|
||||||
|
line=dict(color='orange', width=1)
|
||||||
|
))
|
||||||
|
|
||||||
|
# Mark recent trading decisions
|
||||||
|
for decision in self.recent_decisions[-10:]:
|
||||||
|
if hasattr(decision, 'timestamp') and hasattr(decision, 'price'):
|
||||||
|
color = 'green' if decision.action == 'BUY' else 'red' if decision.action == 'SELL' else 'gray'
|
||||||
|
fig.add_trace(go.Scatter(
|
||||||
|
x=[decision.timestamp],
|
||||||
|
y=[decision.price],
|
||||||
|
mode='markers',
|
||||||
|
marker=dict(color=color, size=10, symbol='triangle-up' if decision.action == 'BUY' else 'triangle-down'),
|
||||||
|
name=f"{decision.action}",
|
||||||
|
showlegend=False
|
||||||
|
))
|
||||||
|
|
||||||
|
fig.update_layout(
|
||||||
|
title=f"{symbol} Price Chart (1H)",
|
||||||
|
template="plotly_dark",
|
||||||
|
height=400,
|
||||||
|
xaxis_rangeslider_visible=False,
|
||||||
|
margin=dict(l=0, r=0, t=30, b=0)
|
||||||
|
)
|
||||||
|
|
||||||
|
return fig
|
||||||
|
|
||||||
|
except Exception as e:
|
||||||
|
logger.error(f"Error creating price chart: {e}")
|
||||||
|
fig = go.Figure()
|
||||||
|
fig.add_annotation(text=f"Error: {str(e)}", xref="paper", yref="paper", x=0.5, y=0.5)
|
||||||
|
return fig
|
||||||
|
|
||||||
|
def _create_performance_chart(self, performance_metrics: Dict) -> go.Figure:
|
||||||
|
"""Create model performance comparison chart"""
|
||||||
|
try:
|
||||||
|
if not performance_metrics.get('model_performance'):
|
||||||
|
fig = go.Figure()
|
||||||
|
fig.add_annotation(text="No model performance data", xref="paper", yref="paper", x=0.5, y=0.5)
|
||||||
|
return fig
|
||||||
|
|
||||||
|
models = list(performance_metrics['model_performance'].keys())
|
||||||
|
accuracies = [performance_metrics['model_performance'][model]['accuracy'] * 100
|
||||||
|
for model in models]
|
||||||
|
|
||||||
|
fig = go.Figure(data=[
|
||||||
|
go.Bar(x=models, y=accuracies, marker_color=['#1f77b4', '#ff7f0e', '#2ca02c'])
|
||||||
|
])
|
||||||
|
|
||||||
|
fig.update_layout(
|
||||||
|
title="Model Accuracy Comparison",
|
||||||
|
yaxis_title="Accuracy (%)",
|
||||||
|
template="plotly_dark",
|
||||||
|
height=400,
|
||||||
|
margin=dict(l=0, r=0, t=30, b=0)
|
||||||
|
)
|
||||||
|
|
||||||
|
return fig
|
||||||
|
|
||||||
|
except Exception as e:
|
||||||
|
logger.error(f"Error creating performance chart: {e}")
|
||||||
|
fig = go.Figure()
|
||||||
|
fig.add_annotation(text=f"Error: {str(e)}", xref="paper", yref="paper", x=0.5, y=0.5)
|
||||||
|
return fig
|
||||||
|
|
||||||
|
def _create_decisions_list(self) -> List:
|
||||||
|
"""Create list of recent trading decisions"""
|
||||||
|
try:
|
||||||
|
if not self.recent_decisions:
|
||||||
|
return [html.P("No recent decisions", className="text-muted")]
|
||||||
|
|
||||||
|
decisions_html = []
|
||||||
|
for decision in self.recent_decisions[-10:][::-1]: # Last 10, newest first
|
||||||
|
|
||||||
|
# Determine action color and icon
|
||||||
|
if decision.action == 'BUY':
|
||||||
|
action_class = "text-success"
|
||||||
|
icon_class = "fas fa-arrow-up"
|
||||||
|
elif decision.action == 'SELL':
|
||||||
|
action_class = "text-danger"
|
||||||
|
icon_class = "fas fa-arrow-down"
|
||||||
|
else:
|
||||||
|
action_class = "text-secondary"
|
||||||
|
icon_class = "fas fa-minus"
|
||||||
|
|
||||||
|
time_str = decision.timestamp.strftime("%H:%M:%S") if hasattr(decision, 'timestamp') else "N/A"
|
||||||
|
confidence_pct = f"{decision.confidence*100:.1f}%" if hasattr(decision, 'confidence') else "N/A"
|
||||||
|
|
||||||
|
decisions_html.append(
|
||||||
|
html.Div([
|
||||||
|
html.Div([
|
||||||
|
html.I(className=f"{icon_class} me-2"),
|
||||||
|
html.Strong(decision.action, className=action_class),
|
||||||
|
html.Span(f" {decision.symbol} ", className="text-muted"),
|
||||||
|
html.Small(f"@${decision.price:.2f}", className="text-muted")
|
||||||
|
], className="d-flex align-items-center"),
|
||||||
|
html.Small([
|
||||||
|
html.Span(f"Confidence: {confidence_pct} • ", className="text-info"),
|
||||||
|
html.Span(time_str, className="text-muted")
|
||||||
|
])
|
||||||
|
], className="border-bottom pb-2 mb-2")
|
||||||
|
)
|
||||||
|
|
||||||
|
return decisions_html
|
||||||
|
|
||||||
|
except Exception as e:
|
||||||
|
logger.error(f"Error creating decisions list: {e}")
|
||||||
|
return [html.P(f"Error: {str(e)}", className="text-danger")]
|
||||||
|
|
||||||
|
def _create_system_status(self, memory_stats: Dict) -> List:
|
||||||
|
"""Create system status display"""
|
||||||
|
try:
|
||||||
|
status_items = []
|
||||||
|
|
||||||
|
# Memory usage
|
||||||
|
memory_pct = memory_stats.get('utilization_percent', 0)
|
||||||
|
memory_class = "text-success" if memory_pct < 70 else "text-warning" if memory_pct < 90 else "text-danger"
|
||||||
|
|
||||||
|
status_items.append(
|
||||||
|
html.Div([
|
||||||
|
html.I(className="fas fa-memory me-2"),
|
||||||
|
html.Span("Memory: "),
|
||||||
|
html.Strong(f"{memory_pct:.1f}%", className=memory_class),
|
||||||
|
html.Small(f" ({memory_stats.get('total_used_mb', 0):.0f}MB / {memory_stats.get('total_limit_mb', 0):.0f}MB)", className="text-muted")
|
||||||
|
], className="mb-2")
|
||||||
|
)
|
||||||
|
|
||||||
|
# Model status
|
||||||
|
models_count = len(memory_stats.get('models', {}))
|
||||||
|
status_items.append(
|
||||||
|
html.Div([
|
||||||
|
html.I(className="fas fa-brain me-2"),
|
||||||
|
html.Span("Models: "),
|
||||||
|
html.Strong(f"{models_count} active", className="text-info")
|
||||||
|
], className="mb-2")
|
||||||
|
)
|
||||||
|
|
||||||
|
# Data provider status
|
||||||
|
data_health = self.data_provider.health_check()
|
||||||
|
streaming_status = "✓ Streaming" if data_health.get('streaming') else "✗ Offline"
|
||||||
|
streaming_class = "text-success" if data_health.get('streaming') else "text-danger"
|
||||||
|
|
||||||
|
status_items.append(
|
||||||
|
html.Div([
|
||||||
|
html.I(className="fas fa-wifi me-2"),
|
||||||
|
html.Span("Data: "),
|
||||||
|
html.Strong(streaming_status, className=streaming_class)
|
||||||
|
], className="mb-2")
|
||||||
|
)
|
||||||
|
|
||||||
|
# System uptime
|
||||||
|
uptime = datetime.now() - self.last_update
|
||||||
|
status_items.append(
|
||||||
|
html.Div([
|
||||||
|
html.I(className="fas fa-clock me-2"),
|
||||||
|
html.Span("Uptime: "),
|
||||||
|
html.Strong(f"{uptime.seconds//3600:02d}:{(uptime.seconds//60)%60:02d}:{uptime.seconds%60:02d}", className="text-info")
|
||||||
|
], className="mb-2")
|
||||||
|
)
|
||||||
|
|
||||||
|
return status_items
|
||||||
|
|
||||||
|
except Exception as e:
|
||||||
|
logger.error(f"Error creating system status: {e}")
|
||||||
|
return [html.P(f"Error: {str(e)}", className="text-danger")]
|
||||||
|
|
||||||
|
def add_trading_decision(self, decision: TradingDecision):
|
||||||
|
"""Add a trading decision to the dashboard"""
|
||||||
|
self.recent_decisions.append(decision)
|
||||||
|
# Keep only last 100 decisions
|
||||||
|
if len(self.recent_decisions) > 100:
|
||||||
|
self.recent_decisions = self.recent_decisions[-100:]
|
||||||
|
|
||||||
|
def run(self, host: str = '127.0.0.1', port: int = 8050, debug: bool = False):
|
||||||
|
"""Run the dashboard server"""
|
||||||
|
try:
|
||||||
|
logger.info("="*60)
|
||||||
|
logger.info("STARTING TRADING DASHBOARD")
|
||||||
|
logger.info(f"ACCESS WEB UI AT: http://{host}:{port}/")
|
||||||
|
logger.info("Real-time trading data and charts")
|
||||||
|
logger.info("AI model performance monitoring")
|
||||||
|
logger.info("Memory usage tracking")
|
||||||
|
logger.info("="*60)
|
||||||
|
|
||||||
|
# Run the app (updated API for newer Dash versions)
|
||||||
|
self.app.run(
|
||||||
|
host=host,
|
||||||
|
port=port,
|
||||||
|
debug=debug,
|
||||||
|
use_reloader=False, # Disable reloader to avoid conflicts
|
||||||
|
threaded=True # Enable threading for better performance
|
||||||
|
)
|
||||||
|
|
||||||
|
except Exception as e:
|
||||||
|
logger.error(f"Error running dashboard: {e}")
|
||||||
|
raise
|
||||||
|
|
||||||
|
# Convenience function for integration
|
||||||
|
def create_dashboard(data_provider: DataProvider = None, orchestrator: TradingOrchestrator = None) -> TradingDashboard:
|
||||||
|
"""Create and return a trading dashboard instance"""
|
||||||
|
return TradingDashboard(data_provider, orchestrator)
|
Loading…
x
Reference in New Issue
Block a user