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README.md
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---
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language: en
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tags:
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- codestral
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- vision-language
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- code-generation
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- multimodal
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- mlx
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license: other
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library_name: mlx
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inference: false
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license_name: mnpl
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license_link: https://mistral.ai/licences/MNPL-0.1.md
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---
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# Codestral-ViT
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A multimodal code generation model that combines vision and language understanding. Built on MLX for Apple Silicon, it integrates CLIP's visual capabilities with Codestral's code generation abilities.
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## Overview
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Codestral-ViT extends the Codestral language model with visual understanding capabilities. It can:
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- Generate code from text descriptions
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- Understand and explain code from screenshots
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- Suggest improvements to code based on visual context
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- Process multiple images with advanced tiling strategies
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## Technical Details
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- **Base Models:**
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- Language: Codestral-22B (4-bit quantized)
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- Vision: CLIP ViT-Large/14
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- Framework: MLX (Apple Silicon)
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- **Architecture:**
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- Vision encoder processes images into 512-dim embeddings
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- Learned projection layer maps vision features to language space
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- Dynamic RoPE scaling for 32K context window
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- Support for overlapping image crops and tiling
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- **Input Processing:**
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- Images: 224x224 pixels, CLIP normalization
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- Text: Up to 32,768 tokens
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- Special tokens for image-text fusion
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## Example Usage
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```python
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from PIL import Image
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from src.model import MultimodalCodestral
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model = MultimodalCodestral()
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# Code generation from screenshot
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image = Image.open("code_screenshot.png")
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response = model.generate_with_images(
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prompt="Explain this code and suggest improvements",
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images=[image]
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)
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# Multiple image processing
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images = [Image.open(f) for f in ["img1.png", "img2.png"]]
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response = model.generate_with_images(
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prompt="Compare these code implementations",
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images=images
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)
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```
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## Capabilities
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- **Code Understanding:**
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- Analyzes code structure from screenshots
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- Identifies patterns and anti-patterns
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- Suggests contextual improvements
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- **Image Processing:**
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- Handles multiple image inputs
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- Supports various image formats
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- Advanced crop and resize strategies
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- **Generation Features:**
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- Context-aware code completion
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- Documentation generation
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- Code refactoring suggestions
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- Bug identification and fixes
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## Requirements
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- Apple Silicon hardware (M1/M2/M3)
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- 32GB+ RAM recommended
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- MLX framework
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- Python 3.8+
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## Limitations
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- Apple Silicon only (no CPU/CUDA support)
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- Memory intensive for large images/codebases
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- Visual understanding bounded by CLIP's capabilities
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- Generation quality depends on input clarity
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## License
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This model is released under the Mistral Non-Profit License (MNPL). See [license details](https://mistral.ai/licences/MNPL-0.1.md).
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## Citation
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```bibtex
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@software{codestral-vit,
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author = {Mike Casale},
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title = {Codestral-ViT: A Vision-Language Model for Code Generation},
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year = {2023},
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publisher = {Hugging Face},
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url = {https://huggingface.co/casale-xyz/codestral-vit}
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}
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```
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