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Automatic foreground extraction of clothing images based on GrabCut in massive images

机译:基于大块图像中的GrabCut的服装图像自动前景提取

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In recent years, clothing image retrieval has become an important research focus in the field of CBIR (content based image retrieval) [1]. Because of the complexity of CBIR, there are still many difficulties to be overcome. When people search a clothes, they usually focus on the clothing area. Therefore, we must remove unrelated background, or it will affect feature extraction results. Usually, foreground extraction is more time-consuming than extracting images' features. To establish a database of several million clothing images, it is very necessary to reduce time of extraction. In this paper, we proposed a fast method for extracting the clothing area automatically based on GrabCut algorithm [2]. Compared to extracting clothing area in image manually, auto extraction will significantly reduce workload. Firstly, we use a rectangle proportional to size of image instead of user input. Secondly, to solve the problem of time consuming, we did some optimization work. Experiment results show that an overall foreground extraction rate of 82.2% can be achieved without human interaction.
机译:近年来,服装图像检索已成为CBIR(基于内容的图像检索)领域的重要研究重点[1]。由于CBIR的复杂性,仍然有许多困难需要克服。人们搜寻衣服时,通常会着眼于衣服区域。因此,必须删除不相关的背景,否则将影响特征提取结果。通常,前景提取比提取图像特征要耗时得多。要建立一个包含数百万个服装图像的数据库,非常有必要减少提取时间。在本文中,我们提出了一种基于GrabCut算法[2]的自动提取衣物区域的快速方法。与手动提取图像中的衣物区域相比,自动提取将大大减少工作量。首先,我们使用与图像大小成比例的矩形而不是用户输入。其次,为了解决耗时的问题,我们做了一些优化工作。实验结果表明,无需人工干预,整体前景提取率为82.2%。

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