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Fashion Outfit Style Retrieval Based on Hashing Method

机译:基于散脉法的时尚服装风格检索

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This paper proposes an outfit retrieval method for moving fashion items dressed by models in the catwalk videos. The proposed method aims at retrieving similar style in fashion outfits images using a bilinear supervised hashing algorithm. The targeted images are labeled with the information of both color and attributes for comprehensive description of clothing style. The speed up robust features (SURFs) are extracted as the low-level features of fashion images and fed into the hashing algorithm as original data. To achieve better retrieval performance, a bilinear supervised hashing method is employed to learn high-quality hash codes. Outfits with similar style to the target are expected to be retrieved by hash code ranking. The experiment was conducted on a dataset composed of fashion outfit images and the experimental results show that the proposed method can retrieve styles which are close to query of color and attributes.
机译:本文提出了一种装备检索方法,用于移动时尚产品的时尚产品。所提出的方法旨在使用双线性监督散列算法在时尚服装图像中检索类似的风格。有针对性的图像的标有颜色和属性的信息,以综合衣物风格描述。加速强大的功能(冲浪)被提取为时尚图像的低级特征,并作为原始数据馈入散列算法。为了更好地检索性能,采用双线性监督散列方法来学习高质量的哈希码。预计哈希码排名将检索具有类似风格的衣服。该实验在由时尚型成套图像组成的数据集上进行,实验结果表明,该方法可以检索接近颜色和属性的查询的样式。

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