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Finding Faces in News Photos Using Both Face and Name Information

机译:使用面孔和名字信息在新闻照片中寻找面孔

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We propose a method to associate names and faces for querying people in large news photo collections. On the assumption that a person's face is likely to appear when his/her name is mentioned in the caption, first all the faces associated with the query name are selected. Among these faces, there could be many faces corresponding to the queried person in different conditions, poses and times, but there could also be other faces corresponding to other people in the caption or some non-face images due to the errors in the face detection method used. However, in most cases, the number of corresponding faces of the queried person will be large, and these faces will be more similar to each other than to others. When the similarities of faces are represented in a graph structure, the set of most similar faces will be the densest component in the graph. In this study, we propose a graph-based method to find the most similar subset among the set of possible faces associated with the query name, where the most similar subset is likely to correspond to the faces of the queried person.
机译:我们提出了一种将姓名和面孔相关联的方法,以查询大型新闻图片集中的人物。假设在标题中提及一个人的名字时可能会出现一个人的脸,首先选择与查询名称关联的所有脸。在这些面孔中,可能存在许多在不同条件,姿势和时间下与被查询人相对应的面孔,但由于面部检测中的错误,标题或某些非面部图像中可能还会有其他面孔与其他人相对应使用的方法。但是,在大多数情况下,被查询者的对应面孔数量会很大,并且这些面孔彼此之间的相似度将更高。当在图形结构中表示人脸相似度时,一组最相似的人脸将是图形中最密集的部分。在这项研究中,我们提出了一种基于图的方法,以在与查询名称相关联的可能面孔中找到最相似的子集,其中最相似的子集很可能对应于被查询人的面孔。

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