**Mission**: Close gap between Wave 126 "theoretical 100%" and operational readiness **Agent 118: Database Schema** ✅ - Created migration 020_create_executions_table.sql - Added executions table with 9 columns, 5 indexes - Foreign key to orders table with CASCADE - UNBLOCKED load testing (Agent 123) **Agent 119: GPU Docker Configuration** ✅ (USER PRIORITY) - Updated docker-compose.yml with NVIDIA runtime - Configured GPU environment variables for ML service - Verified RTX 3050 Ti accessible (nvidia-smi working) - CUDA 13.0 enabled in container - SATISFIED user requirement: "Ensure GPU is working in docker" **Agent 120: Prometheus HTTP Exporters** ⚠️ PARTIAL - Added Prometheus dependencies to all 4 services - Implemented /metrics endpoints with Axum HTTP servers - Services compiled and running healthy - ISSUE: HTTP endpoints not responding (needs investigation) **Agent 121: Test Fixes** ⚠️ PARTIAL - Fixed timing test in trading_engine (TSC availability check) - Trading engine: 100% pass rate (298/298) - NEW ISSUE: PPO continuous policy test failing (log probabilities) - Overall: 99.83% pass rate (574/575 in ml crate) **Wave 1 Results**: - Critical path: ✅ Database schema unblocked load testing - User requirement: ✅ GPU working in Docker - Monitoring: ❌ Prometheus needs fix - Testing: ⚠️ 99.83% pass rate (1 new failure) **Files Modified** (11): - migrations/020_create_executions_table.sql (new) - docker-compose.yml (GPU runtime) - services/*/src/main.rs (4 files - Prometheus exporters) - services/*/Cargo.toml (3 files - dependencies) - trading_engine/src/timing.rs (test fix) **Next**: Wave 2 - Execution Validation (6 agents) 🤖 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude <noreply@anthropic.com>
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.