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Automatic face recognition for film character retrieval in feature-length films

机译:自动人脸识别功能,用于提取长篇电影中的电影角色

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摘要

The objective of this work is to recognize all the frontal faces of a character in the closed world of a movie or situation comedy, given a small number of query faces. This is challenging because faces in a feature-length film are relatively uncontrolled with a wide variability of scale, pose, illumination, and expressions, and also may be partially occluded. We develop a recognition method based on a cascade of processing steps that normalize for the effects of the changing imaging environment. In particular there are three areas of novelty: (i) we suppress the background surrounding the face, enabling the maximum area of the face to be retained for recognition rather than a subset; (ii) we include a pose refinement step to optimize the registration between the test image and face exemplar; and (iii) we use robust distance to a sub-space to allow for partial occlusion and expression change. The method is applied and evaluated on several feature length films. It is demonstrated that high recall rates (over 92%) can be achieved whilst maintaining good precision (over 93%).
机译:这项工作的目的是在给定少量查询面孔的情况下,识别电影或情景喜剧的封闭世界中角色的所有正面面孔。这是具有挑战性的,因为长篇幅胶片中的脸部在比例,姿势,照明和表情的变化范围较大的情况下相对不受控制,并且也可能被部分遮挡。我们基于一系列处理步骤开发了一种识别方法,该处理步骤针对变化的成像环境的影响进行了标准化。特别是,它具有三个新颖性的区域:(i)抑制面部周围的背景,从而保留面部的最大区域以供识别,而不是子集; (ii)我们包括一个姿势优化步骤,以优化测试图像和面部样本之间的配准; (iii)我们使用到子空间的稳健距离来允许部分遮挡和表情变化。该方法被应用于和评估了几个特征长度的胶片。结果表明,在保持良好精度(超过93%)的同时,可以实现较高的召回率(超过92%)。

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