- Configure code signing with verified certificate - Set up provisioning profile and build settings - Implement basic SwiftUI Hello World - Update technical documentation - Verify build and deployment pipeline
264 lines
5.5 KiB
Markdown
264 lines
5.5 KiB
Markdown
# Tech Context
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## Technology Stack
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### Core Technologies
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1. Swift (5.9+)
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2. SwiftUI (4.0+)
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3. Metal (3.0+)
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4. Vision (2.0+)
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5. CoreML (5.0+)
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6. Create ML (3.0+)
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7. Stockfish (16+)
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### Development Tools
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1. Xcode (15.0+)
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2. Swift Package Manager
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3. Git (2.40+)
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4. CoreML Tools (5.0+)
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5. Create ML App (3.0+)
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## Development Environment Status
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### Apple Developer Configuration
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- Program: Enrolled and Verified
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- App ID: com.chessprism.ChessPrism
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- Device: M3-Haulmark registered and confirmed
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- Capabilities: Configured for macOS
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- Certificate: Single verified Apple Development certificate
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- Team ID: RJHWWWSF6Q
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- Signing Identity: S6HYLY2Y7Y
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### Build Configuration
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- Basic SwiftUI implementation tested
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- Hello World deployment successful
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- Code signing verified
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- Provisioning profile installed
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- Development certificates consolidated
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### Testing Frameworks
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1. XCTest (5.0+)
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2. XCUITest (5.0+)
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3. Performance Testing Tools
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4. Security Testing Suite
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## Development System Specifications
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### Operating System
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- System: Darwin
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- Version: 15.2
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- Architecture: arm64
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### Hardware Specifications
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- CPU: Apple M3 Max
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- Memory: 64.00 GB
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- GPU: Apple M3 Max (40 cores)
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- Metal Support: Metal 3
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### Display Information
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- Main Display: LG ULTRAGEAR+
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- Resolution: 3840 x 1080
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- Refresh Rate: 120Hz
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- Features: Television support, rotation support
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### Development Tools
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- Xcode: 16.2 (Build version 16C5032a)
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- Swift: 6.0.3 (swiftlang-6.0.3.1.10 clang-1600.0.30.1)
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- Target: arm64-apple-macosx15.0
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## Development Environment Requirements
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### Minimum Requirements
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- Apple Silicon (M1)
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- 16GB RAM
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- Metal 2 support
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### Recommended Requirements
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- Apple M2/M3 series
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- 32GB+ RAM
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- Metal 3 support
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- Apple Neural Engine
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### Software Requirements
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1. MacOS (Ventura 13.0+)
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2. Xcode (15.0+)
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3. Swift (5.9+)
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4. Git (2.40+)
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5. CoreML Tools (5.0+)
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## Configuration Details
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### Swift Concurrency
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1. Async/await pattern implementation
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2. Task management system
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3. Structured concurrency
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4. Actor-based isolation
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### CoreML Integration
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1. Model versioning system
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2. Apple Neural Engine optimization
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3. Model update mechanism
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4. Performance monitoring
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### Security Implementation
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1. App Sandbox configuration
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2. Privacy manifest requirements
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3. Secure storage implementation
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4. Data encryption standards
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## Development Workflow
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1. Version Control:
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- Git branching strategy
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- Code review process
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- Commit message guidelines
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2. CI/CD Pipeline:
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- Automated testing
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- Build verification
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- Deployment automation
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- Release management
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3. Code Quality:
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- Linting configuration
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- Static analysis
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- Code coverage requirements
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- Documentation standards
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## Monitoring & Logging
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1. Performance Monitoring:
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- Rendering performance
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- Analysis latency
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- Resource usage
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2. Error Tracking:
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- Crash reporting
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- Error logging
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- User feedback integration
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3. Analytics:
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- Usage tracking
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- Feature adoption
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- Performance metrics
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## Technical Constraints
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1. Real-time Requirements:
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- <100ms analysis latency
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- 120fps rendering
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- 99.9% recognition accuracy
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2. Compatibility:
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- MacOS Silicon only
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- Firefox browser integration
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- Chess.com specific optimizations
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3. Security:
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- App Sandbox compliance
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- Privacy manifest requirements
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- Secure data handling
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## Documentation Standards
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1. Code Documentation:
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- API documentation
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- Architecture diagrams
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- Technical specifications
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2. User Documentation:
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- Installation guide
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- Usage instructions
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- Troubleshooting guide
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3. Developer Documentation:
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- Setup instructions
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- Contribution guidelines
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- Code style guide
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## Detailed Technical Specifications
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### Metal Rendering Pipeline
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1. Pipeline Stages:
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- Vertex processing
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- Fragment shading
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- Composition
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- Post-processing
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2. Performance Optimization:
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- Command buffer optimization
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- Texture compression
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- Shader LOD management
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- Frame pacing
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3. Visual Effects:
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- Anti-aliasing
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- Bloom effects
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- Motion blur
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- Depth effects
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### Vision Framework Integration
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1. Image Analysis Pipeline:
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- Image preprocessing
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- Feature detection
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- Object recognition
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- Position tracking
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2. Performance Considerations:
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- GPU acceleration
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- Batch processing
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- Memory optimization
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- Error handling
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3. Integration Points:
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- CoreML model integration
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- Metal texture sharing
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- SwiftUI view integration
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- Async/await pattern
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### Async/Await Patterns
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1. Concurrency Model:
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- Task groups
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- Async sequences
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- Actor isolation
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- Continuations
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2. Error Handling:
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- Structured concurrency
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- Task cancellation
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- Error propagation
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- Retry mechanisms
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3. Performance Optimization:
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- Task prioritization
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- Resource contention management
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- Memory safety
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- Thread management
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### CoreML Model Architecture
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1. Model Specifications:
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- Input/output formats
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- Model quantization
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- Neural engine optimization
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- Model versioning
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2. Training Pipeline:
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- Data collection
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- Model training
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- Validation
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- Deployment
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3. Performance Considerations:
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- Batch processing
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- Memory management
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- Model compression
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- Inference optimization
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### Stockfish Integration
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1. Engine Configuration:
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- Thread management
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- Hash size optimization
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- Analysis depth
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- Time controls
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2. Analysis Pipeline:
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- Position evaluation
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- Move generation
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- Threat detection
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- Position caching
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3. Performance Optimization:
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- Parallel analysis
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- Cache management
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- Engine tuning
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- Resource allocation
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