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Style Finder: Fine-Grained Clothing Style Detection and Retrieval

机译:样式查找器:细粒度的服装样式检测和检索

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With the rapid proliferation of smartphones and tablet computers, search has moved beyond text to other modalities like images and voice. For many applications like Fashion, visual search offers a compelling interface that can capture stylistic visual elements beyond color and pattern that cannot be as easily described using text. However, extracting and matching such attributes remains an extremely challenging task due to high variability and deformability of clothing items. In this paper, we propose a fine-grained learning model and multimedia retrieval framework to address this problem. First, an attribute vocabulary is constructed using human annotations obtained on a novel fine-grained clothing dataset. This vocabulary is then used to train a fine-grained visual recognition system for clothing styles. We report benchmark recognition and retrieval results on Women's Fashion Coat Dataset and illustrate potential mobile applications for attribute-based multimedia retrieval of clothing items and image annotation.
机译:随着智能手机和平板电脑的迅速普及,搜索已经从文本扩展到了图像和语音等其他形式。对于诸如Fashion之类的许多应用程序,视觉搜索提供了一个引人注目的界面,该界面可以捕捉超出颜色和图案的风格视觉元素,而这些色彩和图案是使用文本无法轻松描述的。然而,由于衣物的高度可变性和可变形性,提取和匹配这些属性仍然是极具挑战性的任务。在本文中,我们提出了一种细粒度的学习模型和多媒体检索框架来解决这个问题。首先,使用在新颖的细粒度服装数据集上获得的人类注释来构造属性词汇表。然后,该词汇表将用于训练服装样式的细粒度视觉识别系统。我们在女性时装外套数据集上报告基准识别和检索结果,并说明了基于属性的服装项目和图像注释的多媒体检索的潜在移动应用程序。

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