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首页> 外文期刊>IEEE transactions on multimedia >Face and Hair Region Labeling Using Semi-Supervised Spectral Clustering-Based Multiple Segmentations
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Face and Hair Region Labeling Using Semi-Supervised Spectral Clustering-Based Multiple Segmentations

机译:使用基于半监督谱聚类的多重分割进行面部和头发区域标记

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摘要

The multiple segmentation (MS) scheme is considered to be a way to get a better spatial support for various shaped objects in image segmentation. The MS scheme assumes that the segmented regions (i.e., segments) can be treated as hypotheses for object support rather than mere partitionings of the image. As for attaining each segmentation in the MS scheme, one of the most popular methods is to employ spectral clustering (SC). When applied to image segmentation tasks, SC groups a set of pixels or small regions into unique segments. While it has been popularly used in image segmentation, it often fails to deal with images containing objects with complex boundaries. To split the image as close to the object boundaries as possible, some prior knowledge can be used to guide the clustering algorithm toward appropriate partitioning of the data. In semisupervised clustering, prior knowledge is often formulated as pairwise constraints. In this paper, we propose an MS technique combined with constrained SC to build a face and hair region labeler. To put it concretely, pairwise constraints modified to fit the problem of labeling face regions are added to SC and multiple segments are generated by the constrained SC. Then, the labeling is conducted by estimating the likelihoods for each segment to belong to the target object classes. Experiments are conducted on three datasets and the results show that the proposed scheme offers useful tools for labeling the face images.
机译:多重分割(MS)方案被认为是一种在图像分割中为各种形状的物体获得更好空间支持的方法。 MS方案假设分割的区域(即,段)可以被视为对象支持的假设,而不是图像的仅分割。关于在MS方案中实现每个分割,最流行的方法之一是采用频谱聚类(SC)。当应用于图像分割任务时,SC将一组像素或小区域分组为唯一的片段。尽管它已广泛用于图像分割中,但通常无法处理包含具有复杂边界的对象的图像。为了使图像尽可能接近对象边界,可以使用一些先验知识来指导聚类算法朝数据的适当划分。在半监督聚类中,先验知识通常被表述为成对约束。在本文中,我们提出了一种结合约束SC的MS技术来构建面部和头发区域标签。具体地说,将为适应标记面部区域问题而修改的成对约束添加到SC,并通过约束SC生成多个片段。然后,通过估计每个片段属于目标对象类别的可能性来进行标记。对三个数据集进行了实验,结果表明,该方案为标签人脸图像提供了有用的工具。

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