Datasets:
Tasks:
Object Detection
Modalities:
Image
Formats:
imagefolder
Languages:
English
Size:
1K - 10K
License:
Search is not available for this dataset
image
imagewidth (px) 720
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Fashion 1K
Dataset Summary
Fashion 1K is a curated collection of 1,000 high-quality fashion images, focusing on apparel and outfit compositions without human models.
Unlike typical street-style datasets (like DeepFashion) that include human poses and complex backgrounds, this dataset provides clean, human-free images. The images primarily feature Flat Lay (clothing arranged on a flat surface) or Ghost Mannequin styles, making them ideal for tasks that require a clear view of the garment's structure, texture, and color without occlusion.
Key Features:
- Human-Free: No faces, limbs, or skin tones—strictly focused on the garments.
- Outfit-Centric: Many images showcase complete looks (e.g., Top + Bottom + Shoes) to aid in compatibility learning.
- Clean Backgrounds: Minimized background noise to facilitate easier segmentation and feature extraction.
Supported Tasks
This dataset is particularly suitable for:
- Virtual Try-On (VTON): Serving as the "garment" reference image (
g_img) for 2D try-on pipelines. - Fashion Compatibility Learning: Learning which items (e.g., shirt and trousers) go well together based on the curated outfits.
- Generative AI Training: Training LoRAs or ControlNets for specific clothing styles without the bias of human figures.
- E-commerce Tagging: Automated classification of clothing categories and attributes.
Dataset Structure
Data Fields
image(image): The high-resolution image of the clothing item or outfit.
Usage Example
from datasets import load_dataset
# Load the dataset
ds = load_dataset("Codatta/Fashion-1K", split="train")
# Display the first image
sample = ds[0]
sample['image'].show()
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