Files
foxhunt/trading_engine
jgrusewski bf5e0ae904 🔧 Wave 106 Agent 5: Service Validation + Compilation Fixes
## Fixes
- trading_engine: Add missing async_queue field to PersistenceEngine::new()
- trading_engine: Fix AtomicU64 imports (remove std::sync::atomic:: prefix)
- trading_engine: Add mpsc import for AsyncAuditQueue
- api_gateway: Fix RateLimiter error handling (use anyhow::anyhow!)

## Validation Results (3/4 Services PASS)
 trading_service (460MB, port 50052) - Graceful PostgreSQL error
 backtesting_service (302MB, port 50053) - Excellent logging
 ml_training_service (338MB, port 50054) - Best CLI design
 api_gateway (port 50051) - 20 compilation errors (secrecy API)

## Documentation
- WAVE106_AGENT5_SERVICE_VALIDATION.md (comprehensive report)
- SERVICE_VALIDATION_SUMMARY.md (quick reference)
- API_GATEWAY_FIX_GUIDE.md (30-min fix instructions)
- QUICK_START_SERVICES.md (developer guide)
- scripts/offline_service_validation.sh (automated testing)

## Key Findings
- Error handling: Excellent (no panics, detailed error chains)
- Configuration: Working (env var fallbacks operational)
- Logging: Production-grade (structured tracing)
- ml_training_service: Exemplary CLI (4 subcommands, offline config validation)

## Next Steps
1. Fix api_gateway (30 minutes - secrecy API .into() conversions)
2. Deploy infrastructure (PostgreSQL, Redis, Vault)
3. Integration testing with full stack

🤖 Generated with [Claude Code](https://claude.com/claude-code)

Co-Authored-By: Claude <noreply@anthropic.com>
2025-10-05 01:06:49 +02:00
..

Trading Engine Crate

Overview

The trading_engine crate provides the high-performance core infrastructure essential for High-Frequency Trading (HFT) operations. It focuses on ultra-low latency execution, precise timing, and efficient order management to handle demanding market conditions.

Features

  • Extreme Performance Optimization: Utilizes RDTSC for precise timing, CPU affinity for dedicated core execution, and SIMD instructions for vectorized data processing.
  • Robust Order Management: Manages the lifecycle of orders, from placement to execution and cancellation, ensuring accuracy and low-latency updates.
  • Flexible Execution Engine: Implements a highly optimized engine capable of processing trading strategies and executing orders across various venues.
  • Multi-Broker Connectivity: Seamlessly integrates with multiple brokers, including Interactive Brokers and ICMarkets, via specialized adapters.
  • Event-Sourced Architecture: Employs event sourcing for deterministic state reconstruction, coupled with comprehensive metrics and persistent storage.
  • Concurrent Lock-Free Data Structures: Leverages advanced lock-free data structures to minimize contention and maximize throughput in multi-threaded environments.

Architecture

The trading_engine is structured around several key components:

  • Execution Core: The central logic for strategy evaluation and trade decision-making.
  • Order Manager: Handles all order-related operations, maintaining order state and communicating with broker adapters.
  • Broker Adapters: Abstract interfaces and concrete implementations for connecting to specific trading venues (e.g., IbAdapter, IcMarketsAdapter).
  • Performance Utilities: Modules for RDTSC access, CPU core pinning, and SIMD instruction sets.
  • Event Store: A mechanism for recording all significant events, enabling replay and auditability.
  • Metrics System: Collects and reports performance and operational statistics.
  • Persistence Layer: Stores critical state and event data for recovery and analysis.
  • Concurrency Primitives: Custom lock-free queues, rings, and other data structures.

Usage

To initialize the trading engine and place a simple order:

use trading_engine::{
    engine::TradingEngine,
    order::{Order, OrderSide, OrderType},
    broker::BrokerType,
};

#[tokio::main]
async fn main() -> Result<(), Box<dyn std::error::Error>> {
    let mut engine = TradingEngine::new();
    engine.connect_broker(BrokerType::InteractiveBrokers).await?;

    let order = Order {
        symbol: "ESZ23".to_string(),
        side: OrderSide::Buy,
        order_type: OrderType::Limit,
        quantity: 1,
        price: Some(4500.0),
        // ... other order details
    };

    let order_id = engine.place_order(order).await?;
    println!("Placed order with ID: {}", order_id);

    Ok(())
}

Testing

To run the tests for the trading_engine crate:

cargo test --package trading_engine

Documentation

Comprehensive API documentation is available at docs.rs/trading_engine.