Portfolio
OUR PROJECTS
FASHION TAGGER
Supported by TÜBİTAK, this project aims to automate product tagging for the fashion industry using advanced deep learning and image processing techniques. The project involves segmenting images to identify product boundaries and classifying them into main categories. The system determines the dominant color and further classifies products based on specific attributes like skirt length or collar type, generating detailed and grammatically coherent product labels. These labels can be produced in multiple languages, including Turkish and English. This comprehensive tagging system not only reduces the workload for e-commerce sites but also enhances product tracking and control while optimizing labels for search engines.
TWIN SHOP
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CELLQUANT
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Social Marketing Campaign
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5 Design Conference Branding
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