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Deep Bidirectional Cross-Triplet Embedding for Online Clothing Shopping

机译:用于服装在线购物的深度双向交叉三重嵌入

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摘要

In this article, we address the cross-domain (i.e., street and shop) clothing retrieval problem and investigate its real-world applications for online clothing shopping. It is a challenging problem due to the large discrepancy between street and shop domain images. We focus on learning an effective feature-embedding model to generate robust and discriminative feature representation across domains. Existing triplet embedding models achieve promising results by finding an embedding metric in which the distance between negative pairs is larger than the distance between positive pairs plus a margin. However, existing methods do not address the challenges in the cross-domain clothing retrieval scenario sufficiently. First, the intradomain and cross-domain data relationships need to be considered simultaneously. Second, the number of matched and nonmatched cross-domain pairs are unbalanced. To address these challenges, we propose a deep cross-triplet embedding algorithm together with a cross-triplet sampling strategy. The extensive experimental evaluations demonstrate the effectiveness of the proposed algorithms well. Furthermore, we investigate two novel online shopping applications, clothing trying on and accessories recommendation, based on a unified cross-domain clothing retrieval framework.
机译:在本文中,我们解决了跨域(即街道和商店)服装检索问题,并研究了其在在线服装购物中的实际应用。由于街道和商店域图像之间的巨大差异,这是一个具有挑战性的问题。我们专注于学习有效的特征嵌入模型,以生成跨域的鲁棒且具有区别性的特征表示。现有的三重态嵌入模型通过找到一种嵌入度量来实现令人鼓舞的结果,在该度量中,负对之间的距离大于正对之间的距离加上边距。但是,现有方法不能充分解决跨域服装检索场景中的挑战。首先,需要同时考虑域内和跨域数据关系。其次,匹配和不匹配的跨域对的数量不平衡。为了解决这些挑战,我们提出了一种深层的三元组嵌入算法以及一个三元组采样策略。大量的实验评估很好地证明了所提出算法的有效性。此外,我们基于统一的跨域服装检索框架,研究了两种新颖的在线购物应用程序:试穿服装和配饰推荐。

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