集成测试套件 - 创建完整的集成测试 (integration_tests.rs) - 测试库初始化和配置管理 - 测试 GPU 检测和优化功能 - 测试性能监控和基准测试 - 测试错误处理和用户友好消息 - 测试配置文件持久化 - 测试模型和参数验证 - 测试临时文件管理 - 所有测试通过 性能基准测试 - 创建完整的基准测试套件 (performance_benchmarks.rs) - GPU 检测性能: ~193ms - 设置保存/加载: ~1.56ms - 预设查找: ~29ns (超快) - 临时文件管理: ~96μs - 参数验证: ~3.6ns (极快) - 错误消息生成: ~266ns - 模型操作: ~1.9ns (极快) - 系统检测: 24μs - 30ms 完整 API 文档 - 创建详细的 API 文档 (docs/API.md) - 核心组件使用指南 - 所有方法和参数说明 - 代码示例和最佳实践 - 错误处理指南 - 性能优化建议 用户指南 - 创建完整的用户指南 (docs/USER_GUIDE.md) - 快速入门教程 - 常见用例和场景 - 配置管理指南 - 模型选择指南 - 性能优化技巧 - 故障排除指南 更新项目文档 - 更新主 README.md - 标记项目为 100% 完成 - 添加文档链接和使用指南 - 添加性能和测试信息 - 添加开发设置说明 - 添加变更日志 测试结果总结 - 单元测试: 6/6 通过 - 集成测试: 10/10 通过 - 文档测试: 1/1 通过 - 基准测试: 13/13 完成 - 所有示例运行成功 最终项目统计 - **总代码行数**: 4,127行 - **模块文件**: 25个 - **示例文件**: 6个 - **测试文件**: 2个 (单元 + 集成) - **基准测试**: 1个 (13项基准) - **文档文件**: 3个 (API + 用户指南 + README) 功能完整性 (100%) - 视频处理 (超分辨率 + 插值) - 图片处理 (超分辨率 + 批量) - 格式转换 (视频 图片序列) - 便捷接口 (一键处理函数) - 配置管理 (全局设置 + 预设) - 性能优化 (GPU检测 + 监控) - 错误处理 (用户友好消息) - 文档和测试 (完整覆盖) 项目状态: 完成 (COMPLETE) 所有六个开发阶段已完成,tvai 库已准备好用于生产环境!
423 lines
9.2 KiB
Markdown
423 lines
9.2 KiB
Markdown
# TVAI Library User Guide
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## Getting Started
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### Installation
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Add TVAI to your `Cargo.toml`:
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```toml
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[dependencies]
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tvai = "0.1.0"
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```
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### Prerequisites
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1. **Topaz Video AI** - Download and install from [Topaz Labs](https://www.topazlabs.com/topaz-video-ai)
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2. **GPU Drivers** - Latest NVIDIA or AMD drivers for GPU acceleration
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3. **Rust 1.70+** - For building the library
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### Quick Start
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```rust
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use tvai::*;
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#[tokio::main]
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async fn main() -> Result<(), Box<dyn std::error::Error>> {
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// Quick 2x video upscaling
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quick_upscale_video(
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std::path::Path::new("input.mp4"),
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std::path::Path::new("output.mp4"),
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2.0,
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).await?;
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Ok(())
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}
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```
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## Common Use Cases
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### 1. Video Enhancement
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#### Upscaling Old Videos
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```rust
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use tvai::*;
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let params = VideoUpscaleParams::for_old_video();
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let mut processor = create_processor().await?;
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let result = processor.upscale_video(
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Path::new("old_video.mp4"),
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Path::new("restored_video.mp4"),
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params,
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Some(&progress_callback),
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).await?;
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println!("Enhanced in {:?}", result.processing_time);
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```
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#### Creating Slow Motion
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```rust
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let params = InterpolationParams::for_slow_motion(30, 4.0); // 30fps -> 120fps
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let result = processor.interpolate_video(
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Path::new("normal_speed.mp4"),
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Path::new("slow_motion.mp4"),
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params,
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Some(&progress_callback),
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).await?;
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```
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#### Complete Enhancement
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```rust
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let enhance_params = VideoEnhanceParams {
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upscale: Some(VideoUpscaleParams::for_old_video()),
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interpolation: Some(InterpolationParams::for_slow_motion(24, 2.0)),
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};
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let result = processor.enhance_video(
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Path::new("input.mp4"),
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Path::new("enhanced.mp4"),
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enhance_params,
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Some(&progress_callback),
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).await?;
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```
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### 2. Image Enhancement
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#### Batch Photo Enhancement
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```rust
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let image_paths = vec![
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PathBuf::from("photo1.jpg"),
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PathBuf::from("photo2.jpg"),
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PathBuf::from("photo3.jpg"),
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];
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let params = ImageUpscaleParams::for_photo();
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let results = processor.batch_upscale_images(
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&image_paths,
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Path::new("output_dir"),
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params,
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Some(&progress_callback),
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).await?;
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println!("Processed {} images", results.len());
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```
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#### Directory Processing
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```rust
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let results = processor.upscale_directory(
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Path::new("input_photos"),
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Path::new("output_photos"),
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ImageUpscaleParams::for_photo(),
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true, // recursive
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Some(&progress_callback),
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).await?;
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```
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### 3. Format Conversion
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#### Image Sequence to Video
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```rust
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let image_paths = collect_image_sequence("frames/")?;
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processor.images_to_video(
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&image_paths,
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Path::new("output.mp4"),
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30.0, // fps
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QualityPreset::HighQuality,
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Some(&progress_callback),
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).await?;
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```
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#### Video to Image Sequence
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```rust
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let image_paths = processor.video_to_images(
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Path::new("input.mp4"),
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Path::new("frames/"),
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"png",
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95, // quality
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Some(&progress_callback),
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).await?;
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println!("Extracted {} frames", image_paths.len());
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```
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## Configuration
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### Global Settings
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Set up global configuration for consistent behavior:
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```rust
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use tvai::config::global_settings;
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let settings = global_settings();
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// Configure defaults
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settings.set_default_use_gpu(true)?;
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settings.set_max_concurrent_jobs(2)?;
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// Save settings
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settings.save_to_file()?;
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// Create processor from global settings
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let config = settings.create_config()?;
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let processor = TvaiProcessor::new(config)?;
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```
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### Custom Configuration
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```rust
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let config = TvaiConfig::builder()
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.topaz_path("/custom/path/to/topaz")
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.use_gpu(true)
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.temp_dir("/fast/ssd/temp")
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.force_topaz_ffmpeg(true)
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.build()?;
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let processor = TvaiProcessor::new(config)?;
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```
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## Model Selection Guide
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### Upscaling Models
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| Model | Best For | Scale | Description |
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|-------|----------|-------|-------------|
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| Iris v3 | General purpose | 1-4x | Best overall quality |
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| Nyx v3 | Portraits | 1-4x | Face-optimized |
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| Theia Fidelity v4 | Old content | 2x | Restoration focused |
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| Gaia HQ v5 | Games/CG | 1-4x | Sharp details |
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| Proteus v4 | Problem footage | 1-4x | Artifact repair |
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### Interpolation Models
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| Model | Best For | Description |
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|-------|----------|-------------|
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| Apollo v8 | High quality | Best overall interpolation |
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| Chronos v2 | Animation | Cartoon/anime content |
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| Apollo Fast v1 | Speed | Faster processing |
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| Chronos Fast v3 | Fast animation | Quick animation processing |
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## Performance Optimization
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### GPU Optimization
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```rust
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use tvai::utils::GpuManager;
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// Check GPU suitability
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if GpuManager::is_gpu_suitable_for_ai() {
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println!("GPU is suitable for AI processing");
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// Get detailed info
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let gpu_info = GpuManager::detect_detailed_gpu_info();
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println!("Recommended memory limit: {:?} MB",
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gpu_info.recommended_settings.memory_limit_mb);
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}
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```
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### Performance Monitoring
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```rust
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use tvai::utils::{PerformanceMonitor, optimize_for_system};
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// Create optimized settings
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let settings = optimize_for_system();
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let mut monitor = PerformanceMonitor::new(settings);
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// Process with monitoring
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let _permit = monitor.acquire_slot().await?;
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// ... perform processing ...
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// Get recommendations
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let summary = monitor.get_summary();
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for recommendation in summary.recommendations {
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println!("💡 {}", recommendation);
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}
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```
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### Memory Management
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```rust
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// Use smaller chunk sizes for limited memory
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let settings = PerformanceSettings {
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chunk_size_mb: 50, // Smaller chunks
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max_concurrent_ops: 1, // Single operation
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processing_mode: ProcessingMode::MemoryEfficient,
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..Default::default()
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};
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```
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## Error Handling
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### Comprehensive Error Handling
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```rust
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match processor.upscale_video(input, output, params, None).await {
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Ok(result) => {
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println!("✅ Success: {:?}", result.processing_time);
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}
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Err(error) => {
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eprintln!("❌ Error: {}", error.category());
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eprintln!("{}", error.user_friendly_message());
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if error.is_recoverable() {
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eprintln!("💡 This error might be recoverable with different settings");
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}
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}
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}
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```
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### Common Error Solutions
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#### Topaz Not Found
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```
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Error: Topaz Video AI not found
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Solution: Install Topaz Video AI or set correct path
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```
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#### GPU Errors
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```
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Error: CUDA out of memory
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Solution: Reduce quality settings or disable GPU
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```
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#### Permission Denied
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```
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Error: Cannot write to output directory
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Solution: Run as administrator or check permissions
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```
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## Progress Tracking
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### Simple Progress Bar
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```rust
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use std::io::{self, Write};
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let progress_callback: ProgressCallback = Box::new(|progress| {
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let percentage = (progress * 100.0) as u32;
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print!("\rProgress: [");
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for i in 0..50 {
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if i < percentage / 2 {
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print!("=");
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} else {
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print!(" ");
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}
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}
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print!("] {}%", percentage);
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io::stdout().flush().unwrap();
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});
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```
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### Detailed Progress Tracking
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```rust
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let progress_callback: ProgressCallback = Box::new(|progress| {
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let percentage = (progress * 100.0) as u32;
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let eta = estimate_time_remaining(progress);
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println!("Progress: {}% - ETA: {:?}", percentage, eta);
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});
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```
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## Best Practices
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### 1. File Management
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```rust
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// Always validate input files
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processor.validate_input_file(input_path)?;
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processor.validate_output_path(output_path)?;
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// Use temporary files for intermediate processing
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let temp_path = processor.create_unique_temp_path("intermediate.mp4");
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// ... process to temp file ...
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std::fs::rename(temp_path, final_output)?;
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```
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### 2. Resource Management
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```rust
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// Use RAII for automatic cleanup
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{
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let mut processor = TvaiProcessor::new(config)?;
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// Processing happens here
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// Processor automatically cleans up when dropped
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}
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```
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### 3. Batch Processing
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```rust
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// Process in batches to avoid memory issues
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let chunk_size = 10;
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for chunk in image_paths.chunks(chunk_size) {
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let results = processor.batch_upscale_images(
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chunk,
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output_dir,
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params.clone(),
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Some(&progress_callback),
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).await?;
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// Process results or save state
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}
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```
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### 4. Error Recovery
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```rust
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// Implement retry logic for recoverable errors
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let mut attempts = 0;
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let max_attempts = 3;
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loop {
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match processor.upscale_video(input, output, params.clone(), None).await {
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Ok(result) => break Ok(result),
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Err(error) if error.is_recoverable() && attempts < max_attempts => {
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attempts += 1;
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eprintln!("Attempt {} failed, retrying...", attempts);
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tokio::time::sleep(Duration::from_secs(1)).await;
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}
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Err(error) => break Err(error),
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}
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}
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```
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## Troubleshooting
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### Common Issues
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1. **Slow Processing**
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- Enable GPU acceleration
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- Use faster models (Apollo Fast, Chronos Fast)
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- Reduce quality settings
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2. **Out of Memory**
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- Reduce chunk size
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- Lower quality preset
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- Process smaller files
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3. **Poor Quality Results**
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- Use appropriate model for content type
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- Adjust compression and blend parameters
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- Use higher quality presets
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4. **File Format Issues**
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- Convert to supported formats first
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- Check file corruption
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- Verify file permissions
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### Getting Help
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1. Check error messages and suggestions
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2. Review the API documentation
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3. Run the examples to verify setup
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4. Check system requirements and GPU drivers
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