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CaLa: Complementary Association Learning for Augmenting Composed Image Retrieval

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Composed Image Retrieval (CIR) involves searching for target images based on an image-text pair query. While current methods treat this as a query-target matching problem, we argue that CIR triplets contain additional associations beyond this primary relation. In our paper, we identify two new relations within triplets, treating each triplet as a graph node. Firstly, we introduce the concept of text-bridged image alignment, where the query text serves as a bridge between the query image and the target image. We propose a hinge-based cross-attention mechanism to incorporate this relation into network learning. Secondly, we explore complementary text reasoning, considering CIR as a form of cross-modal retrieval where two images compose to reason about complementary text. To integrate these perspectives effectively, we design a twin attention-based compositor. By combining these complementary associations with the explicit query pair-target image relation, we establish a comprehensive set of constraints for CIR. Our framework, CaLa (Complementary Association Learning for Augmenting Composed Image Retrieval), leverages these insights. We evaluate CaLa on CIRR and FashionIQ benchmarks with multiple backbones, demonstrating its superiority in composed image retrieval.

Xintong Jiang, Yaxiong Wang, Mengjian Li, Yujiao Wu, Bingwen Hu, Xueming Qian• 2024

Related benchmarks

TaskDatasetResultRank
Composed Image RetrievalCIRR (test)
Recall@149.11
580
Composed Image RetrievalFashionIQ (val)
Average Recall@1046.69
489
Composed Image RetrievalFashion-IQ (test)
Average Recall@100.4669
169
Composed Image Retrieval (Image-Text to Image)CIRR
Recall@581.21
93
Composed Image RetrievalFashion-IQ
Average Recall@5069.22
80
Composed Person RetrievalSynCPR (test)
R@139.33
20
Composed Image RetrievalCIRR v1 (test)
Recall@143.4
3
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