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Color-Aware Re-Ranking for Fashion Image Retrieval

  • Data Science Department Hepsiburada Istanbul
  • Istanbul Technical University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Color plays a central role in fashion perception and user preference, yet modern embedding-based image retrieval systems primarily optimize for semantic and structural similarity, often neglecting chromatic coherence. As a result, retrieved garments may be category-correct but visually inconsistent in color. This paper introduces CA-Rank, a segmentation-driven, model-agnostic post-retrieval framework that enhances fashion image retrieval by explicitly incorporating perceptual color similarity.Each image is first processed by a class-agnostic segmentation model to isolate garment pixels, ensuring that both embeddings and color descriptors are computed on garment-only regions. CA-Rank evaluates two color similarity strategies:Weighted Color Matching (WCM), which compares discrete HSV-based color compositions, and Weighted Chamfer Similarity (WCS), which operates in the CIE-LAB color space on quantized palettes using a symmetric, weight-aware Chamfer formulation. While WCM provides a simple baseline, WCS demonstrates substantially higher robustness to illumination, mixed hues, and fine-grained chromatic variation; therefore, the final re-ranking relies on WCS to refine the top-K candidates without any additional training or modification of the underlying retrieval model. Experiments on a segmented subset of the In-Shop Clothes Retrieval benchmark show consistent improvements in Hit@K across diverse backbones, with the largest gains at top ranks where users are most sensitive to color mismatches. Qualitative analyses further indicate that CA-Rank produces retrieval results that are both semantically accurate and perceptually color-consistent, offering a simple and effective mechanism for improving the visual coherence of fashion search systems.

Original languageEnglish
Title of host publicationICCDE 2026 - 2026 12th International Conference on Computing and Data Engineering
PublisherAssociation for Computing Machinery, Inc
Pages134-140
Number of pages7
ISBN (Electronic)9798400720215
DOIs
Publication statusPublished - 5 Jun 2026
Event12th International Conference on Computing and Data Engineering, ICCDE 2026 - Phuket, Thailand
Duration: 4 Feb 20266 Feb 2026

Publication series

NameICCDE 2026 - 2026 12th International Conference on Computing and Data Engineering

Conference

Conference12th International Conference on Computing and Data Engineering, ICCDE 2026
Country/TerritoryThailand
CityPhuket
Period4/02/266/02/26

Bibliographical note

Publisher Copyright:
© 2026 Copyright held by the owner/author(s)

Keywords

  • CLIP
  • Face Recognition
  • Image Retrieval
  • Inpainting
  • Occlusion
  • Person Re-identification
  • Stable Diffusion

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