Homewear Image Classification Dataset

#Classification Task #Image Recognition #Product Recognition #Image Classification #Online Shopping
  • 20000 records
  • 1.5G
  • JPG/PNG/JSON
  • CC-BY-NC-SA 4.0
  • MOBIUSI INCMOBIUSI INC
Updated:2026-02-04

AI Analysis & Value Prop

The current retail e-commerce industry faces challenges such as low product recognition efficiency and poor user experience. Especially in the homewear market, consumers rely on high-quality image data for an intuitive understanding of products. However, existing image classification datasets are limited and cannot meet the demand for precise classification in the market. This dataset aims to address the issues of accuracy and diversity in image classification by providing a rich collection of homewear product images. The dataset is constructed by using web crawlers to capture homewear images from various e-commerce platforms, ensuring sample diversity. Each image undergoes multiple rounds of manual annotation and consistency checks, with final reviews conducted by industry experts to ensure data quality. The data is stored in JPG format, organized with a mapping relationship between image IDs and classification labels, facilitating subsequent model training and application.

Dataset Insights

Sample Examples

a6b2e041**.png|959*1280|1.09 MB

7ebec7dc**.png|942*1280|1.34 MB

5b5f415f**.png|973*1280|880.83 KB

a8668802**.png|916*1280|1.16 MB

cf9d9368**.png|1000*1280|1.57 MB

Technical Specifications

FieldTypeDescription
file_namestringFile name
qualitystringResolution
color_palettestringThe color palette in the image, reflecting the colors of the home wear in the picture.
patternstringThe type of pattern appearing on the home wear, such as stripes, plaid, etc.
material_texturestringThe material texture of the home wear in the image, such as cotton, silk, etc.
clothing_stylestringThe style type of the home wear displayed in the image, such as casual, classic, etc.
sleeve_lengthstringThe sleeve length of the home wear, such as long sleeve, short sleeve, sleeveless, etc.

Compliance Statement

Authorization TypeCC-BY-NC-SA 4.0 (Attribution–NonCommercial–ShareAlike)
Commercial UseRequires exclusive subscription or authorization contract (monthly or per-invocation charging)
Privacy and AnonymizationNo PII, no real company names, simulated scenarios follow industry standards
Compliance SystemCompliant with China's Data Security Law / EU GDPR / supports enterprise data access logs

Frequently Asked Questions

What is the homewear image classification dataset?
The homewear image classification dataset is an image classification dataset specifically for homewear product images, applicable to applications in the retail industry.
What are the uses of the homewear image classification dataset?
This dataset can be used to train machine learning models to automatically recognize and classify homewear product images, enhancing operational efficiency in the retail industry.
What data modalities are included in the homewear image classification dataset?
The homewear image classification dataset includes image data modality, specifically for visual data analysis.
How can the homewear image classification dataset be used to improve sales strategies in the retail industry?
By analyzing images in the dataset, retailers can optimize product displays and improve the visual appeal of their online stores, ultimately increasing consumer conversion rates.
How does the homewear image classification dataset help improve the performance of image recognition models?
Containing diverse homewear product images, this dataset provides rich samples for machine learning models, enhancing their recognition accuracy and generalization ability.

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Cite this Work

@dataset{Mobiusi2025,
  title={Homewear Image Classification Dataset},
  author={MOBIUSI INC},
  year={2025},
  url={https://www.mobiusi.com/datasets/21d9df2c5045b2e60ea17ec7dcf54780?dataset_scene_id=9},
  urldate={2025-09-15},
  keywords={Homewear Dataset, Image Classification Dataset, E-commerce Image Recognition},
  version={1.0}
}

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