Large Scale Fashion Search System with Deep Learning and Quantization Indexing

Thoi Hoang Dinh, Toan Pham Van, Ta Minh Thanh, Hau Nguyen Thanh, Anh Pham Hoang
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引用次数: 2

Abstract

Recently, the problems of clothes recognition and clothing item retrieval have attracted a number of researchers, due to its practical and potential values to real-world applications. The main task is to automatically find relevant clothing items given a single user-provided image without any extra metadata. Most existing systems mainly focus on clothes classification, attribute prediction, and matching the exact in-shop items with the query image. However, these systems do not mention the problem of latency period or the amount of time that users have to wait when they query an image until the query results are retrieved. In this paper, we propose a fashion search system that automatically recognizes clothes and suggests multiple similar clothing items with an impressively low latency. Through extensive experiments, it is verified that our system outperforms almost existing systems in term of clothing item retrieval time.
基于深度学习和量化索引的大规模时尚搜索系统
近年来,服装识别和服装项目检索问题因其实用性和潜在的应用价值而引起了许多研究者的关注。主要任务是在没有任何额外元数据的情况下,根据单个用户提供的图像自动查找相关的服装项目。大多数现有的系统主要集中在服装分类、属性预测以及与查询图像匹配准确的店内商品上。但是,这些系统没有提到延迟期问题,也没有提到用户在查询图像时必须等待的时间量,直到检索到查询结果。在本文中,我们提出了一个时尚搜索系统,它可以自动识别衣服,并以极低的延迟推荐多个相似的服装项目。通过大量的实验证明,我们的系统在服装检索时间方面优于几乎现有的系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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