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Learning to embed semantic similarity for joint image-text retrieval

2022-10-07 22:20:28
Noam Malali, Yosi Keller

Abstract

We present a deep learning approach for learning the joint semantic embeddings of images and captions in a Euclidean space, such that the semantic similarity is approximated by the L2 distances in the embedding space. For that, we introduce a metric learning scheme that utilizes multitask learning to learn the embedding of identical semantic concepts using a center loss. By introducing a differentiable quantization scheme into the end-to-end trainable network, we derive a semantic embedding of semantically similar concepts in Euclidean space. We also propose a novel metric learning formulation using an adaptive margin hinge loss, that is refined during the training phase. The proposed scheme was applied to the MS-COCO, Flicke30K and Flickr8K datasets, and was shown to compare favorably with contemporary state-of-the-art approaches.

Abstract (translated)

URL

https://arxiv.org/abs/2210.03838

PDF

https://arxiv.org/pdf/2210.03838.pdf


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