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Face detection and facial feature localization without considering the appearance of image context

机译:人脸检测和人脸特征定位,无需考虑图像上下文的外观

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摘要

Face and facial feature detection plays an important role in various applications such as human computer interaction, video surveillance, face tracking, and face recognition. Efficient face and facial feature detection algorithms are required for applying to those tasks. This paper presents the algorithms for all types of face images in the presence of several image conditions. There are two main stages. In the first stage, the faces are detected from an original image by using Canny edge detection and our proposed average face templates. Second, a proposed neural visual model (NVM) is used to recognize all possibilities of facial feature positions. Input parameters are obtained from the positions of facial features and the face characteristics that are low sensitive to intensity change. Finally, to improve the results, image dilation is applied for removing some irrelevant regions. Additionally, the algorithms can be extended to rotational invariance problem by using Radon transformation to extract the main angle of the face. With more than 1000 images, the algorithms are successfully tested with various types of faces affected by intensity, occlusion, structural components, facial expression, illumination, noise, and orientation.
机译:面部和面部特征检测在诸如人机交互,视频监控,面部跟踪和面部识别等各种应用中起着重要作用。需要有效的面部和面部特征检测算法才能应用于这些任务。本文介绍了在几种图像条件下针对所有类型人脸图像的算法。有两个主要阶段。在第一阶段,通过使用Canny边缘检测和我们建议的平均人脸模板从原始图像中检测人脸。其次,提出的神经视觉模型(NVM)用于识别面部特征位置的所有可能性。输入参数是从对强度变化不敏感的面部特征和面部特征的位置获得的。最后,为了改善结果,图像膨胀被应用以去除一些不相关的区域。此外,通过使用Radon变换提取面部主角,可以将算法扩展到旋转不变性问题。借助1000幅图像,该算法已成功测试了受强度,遮挡,结构成分,面部表情,照明,噪声和方向影响的各种类型的面部。

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