Clothing Style Recognition and Design by Using Feature Representation and Collaboration Learning

Yinghui Fan
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Abstract

In order to recognize the clothing style, this paper establishes a standard clothing style library. The images of clothing style are provided and annotated by fashion design experts. The clothing style image is represented as a set of line segments that is obtained by detecting the lines and corners consisting of the edge feature points in the image. Then, the authors extract the features of the line segment set and use the extracted features to establish clothing style matching rules to make the system automatically produce the matching and recognizing criteria for the clothing style images. When inputting an image of a person wearing clothes, they first find the position of the person through skin color detection and then locate the clothing. The clothing region is segmented by seed growth algorithm. The features of the segmentation are compared with clothing style matching rules to determine the style. The experimental results show that the recognition rate of clothing style can reach more than 92% for the standard clothing images and more than 91% for real clothing images.
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基于特征表示和协作学习的服装风格识别与设计
为了识别服装风格,本文建立了一个标准的服装风格库。服装风格的形象由服装设计专家提供和诠释。将服装风格图像表示为线段的集合,线段是通过检测图像中由边缘特征点组成的直线和角得到的。然后,提取线段集的特征,利用提取的特征建立服装风格匹配规则,使系统自动生成服装风格图像的匹配和识别准则。当输入一个穿着衣服的人的图像时,他们首先通过肤色检测找到这个人的位置,然后定位衣服。采用种子生长算法对服装区域进行分割。将分割的特征与服装风格匹配规则进行比较,确定服装风格。实验结果表明,该方法对标准服装图像的服装风格识别率可达92%以上,对真实服装图像的服装风格识别率可达91%以上。
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