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  2. README.md +114 -0
  3. dataset.yaml +21 -0
  4. dataset_info.json +50 -0
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README.md ADDED
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+ ---
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+ title: SOHL Multi-Dish Indian Food Detection Dataset
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+ emoji: 🍽️
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+ colorFrom: orange
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+ colorTo: red
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+ sdk: static
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+ pinned: false
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+ tags:
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+ - computer-vision
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+ - object-detection
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+ - yolo
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+ - food-detection
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+ - indian-cuisine
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+ - multi-dish
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+ - yolov8
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+ license: mit
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+ ---
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+
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+ # 🍽️ SOHL Multi-Dish Indian Food Detection Dataset
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+
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+ ## Overview
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+ This dataset contains **377 annotated images** of Indian food plates with **multiple dishes per image**. Designed for training YOLO models to detect and classify multiple food items on a single plate.
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+
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+ ## Dataset Statistics
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+ - **Images**: 377
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+ - **Annotations**: 377
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+ - **Classes**: 16
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+ - **Format**: YOLOv8 (images + txt annotations)
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+ - **Created**: 2025-08-16
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+
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+ ## Classes
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+ 0. **bread_or_Roti_naan** - Chapati, naan, roti, paratha, and other Indian breads
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+ 1. **curry_dish** - General curry preparations, gravies, and liquid dishes
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+ 2. **rice_dish** - Plain rice, biryani, pulao, and rice preparations
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+ 3. **dry_vegetable** - Bhindi, aloo, cauliflower, and dry sabzi preparations
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+ 4. **snack_item** - Samosa, pakora, vada, dhokla, and fried snacks
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+ 5. **sweet_item** - Traditional sweets, desserts, and mithai
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+ 6. **accompaniment** - Pickle, raita, papad, chutney, and side dishes
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+ 7. **Dal_or_sambar** - Dal preparations, sambar, and lentil-based dishes
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+ 8. **drink** - Beverages, juices, lassi, and liquid refreshments
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+ 9. **eggs** - Egg preparations, omelettes, and egg-based dishes
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+ 10. **fish_dish** - Fish curry, fried fish, and seafood preparations
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+ 11. **fruits** - Fresh fruits, fruit salads, and fruit-based items
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+ 12. **pasta** - Pasta dishes and Italian preparations
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+ 13. **salad** - Vegetable salads, mixed salads, and fresh preparations
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+ 14. **soup** - Soups, broths, and liquid appetizers
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+ 15. **south_indian_breakfast** - Dosa, idli, upma, and South Indian breakfast items
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+
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+ ## Dataset Structure
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+ ```
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+ sohl-multidish-yolo-dataset/
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+ ├── images/ # 377 image files
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+ ├── labels/ # 377 YOLO format annotations
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+ ├── dataset.yaml # YOLOv8 configuration
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+ └── README.md # This file
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+ ```
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+
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+ ## Usage
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+
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+ ### Download Dataset
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+ ```python
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+ from huggingface_hub import snapshot_download
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+
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+ # Download entire dataset
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+ dataset_path = snapshot_download(
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+ repo_id="SohlHealth/sohl-multidish-yolo-dataset",
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+ repo_type="dataset"
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+ )
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+ ```
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+
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+ ### Train YOLOv8
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+ ```python
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+ from ultralytics import YOLO
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+
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+ # Load model and train
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+ model = YOLO('yolov8s.pt')
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+ results = model.train(
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+ data='dataset.yaml',
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+ epochs=100,
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+ batch=8,
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+ imgsz=640
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+ )
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+ ```
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+
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+ ## Key Features
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+ - ✅ **Multi-dish detection**: 2-6 items per plate
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+ - ✅ **Indian cuisine focus**: Traditional dishes and combinations
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+ - ✅ **Real-world scenarios**: Restaurant and home environments
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+ - ✅ **Complex layouts**: Overlapping items, various plate styles
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+ - ✅ **High-quality annotations**: Precise bounding boxes
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+ - ✅ **Comprehensive classes**: 16 food categories including regional specialties
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+
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+ ## Performance Expectations
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+ Based on similar datasets and architectures:
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+ - **Expected [email protected]**: 15-25% (multi-dish detection is challenging)
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+ - **Training time**: 3-6 hours on modern GPU
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+ - **Recommended epochs**: 100-150
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+ - **Best practices**: Transfer learning from food detection models
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+
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+ ## Citation
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+ ```
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+ @dataset{sohl_multidish_dataset_20250816_161951,
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+ title={SOHL Multi-Dish Indian Food Detection Dataset},
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+ author={SOHL AI Team},
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+ year={2025},
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+ url={https://huggingface.co/datasets/SohlHealth/sohl-multidish-yolo-dataset}
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+ }
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+ ```
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+
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+ ## License
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+ MIT License - See LICENSE file for details.
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+
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+ ## Contact
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+ For questions about this dataset, please contact the SOHL AI team.
dataset.yaml ADDED
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+ names:
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+ 0: bread_or_Roti_naan
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+ 1: curry_dish
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+ 2: rice_dish
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+ 3: dry_vegetable
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+ 4: snack_item
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+ 5: sweet_item
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+ 6: accompaniment
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+ 7: Dal_or_sambar
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+ 8: drink
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+ 9: eggs
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+ 10: fish_dish
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+ 11: fruits
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+ 12: pasta
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+ 13: salad
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+ 14: soup
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+ 15: south_indian_breakfast
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+ path: .
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+ test: images
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+ train: images
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+ val: images
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+ {
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+ "name": "SOHL Multi-Dish Indian Food Detection Dataset",
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+ "description": "YOLOv8 dataset for detecting multiple Indian food items on plates",
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+ "version": "1.0.0",
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+ "created": "2025-08-16T16:19:51.524231",
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+ "statistics": {
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+ "total_images": 377,
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+ "total_labels": 377,
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+ "image_formats": [
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+ ".jpg"
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+ ],
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+ "missing_labels": []
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+ },
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+ "classes": {
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+ "0": "bread_or_Roti_naan",
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+ "1": "curry_dish",
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+ "2": "rice_dish",
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+ "3": "dry_vegetable",
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+ "4": "snack_item",
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+ "5": "sweet_item",
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+ "6": "accompaniment",
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+ "7": "Dal_or_sambar",
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+ "8": "drink",
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+ "9": "eggs",
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+ "10": "fish_dish",
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+ "11": "fruits",
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+ "12": "pasta",
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+ "13": "salad",
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+ "14": "soup",
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+ "15": "south_indian_breakfast"
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+ },
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+ "format": "YOLOv8",
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+ "usage": "object_detection",
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+ "domain": "food_detection",
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+ "cuisine": "indian",
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+ "features": [
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+ "multi_dish_detection",
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+ "complex_layouts",
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+ "real_world_scenarios",
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+ "high_quality_annotations",
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+ "comprehensive_classes"
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+ ],
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+ "recommended_training": {
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+ "epochs": 100,
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+ "batch_size": 8,
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+ "image_size": 640,
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+ "augmentation": "moderate",
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+ "transfer_learning": "recommended"
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+ }
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+ }
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