首页> 外文会议>Computer Vision, Graphics Image Processing, ICVGIP, 2008 Sixth Indian Conference On >Combining Skin-Color Detector and Evidence Aggregated Random Field Models towards Validating Face Detection Results
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Combining Skin-Color Detector and Evidence Aggregated Random Field Models towards Validating Face Detection Results

机译:结合肤色检测器和证据聚合随机场模型以验证人脸检测结果

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In this paper, a framework for validating any generic face detection algorithm's result is proposed. A two stage cascaded face validation filter is described that relies on a skin-color detector and on a face silhouette structure modeler towards increasing face detection capacity of any face detection algorithm. While the skin-color detector combines a static skin-color and a dynamic background-color modeler, the face silhouette structure modeler incorporates an aggregate of random field models combined through a Demspter-Shafer framework of evidence merging. Together, the two modelers validate any face subimage generated by face detection algorithms. Experiments conducted on FERET and on an in-house face database supports the claim for improved face detection results using the proposed filter. An extension of the same framework towards head pose estimation is also suggested.
机译:本文提出了一种用于验证任何通用人脸检测算法结果的框架。描述了一种两级联的面部验证滤波器,其依赖于肤色检测器和面部轮廓结构建模器来增加任何面部检测算法的面部检测能力。肤色检测器结合了静态肤色和动态背景建模器,而人脸轮廓结构建模器则结合了通过Demspter-Shafer证据合并框架组合而成的随机场模型的集合。两位建模人员共同验证了由面部检测算法生成的任何面部子图像。在FERET和内部人脸数据库上进行的实验均支持使用所提出的过滤器改善人脸检测结果的主张。还建议将相同框架扩展到头部姿势估计。

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