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Correcting rolling-shutter distortion of CMOS sensors using facial feature detection

机译:使用面部特征检测校正CMOS传感器的卷帘失真

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This paper proposes a fully automated post image processing scheme based on facial feature detection to correct the horizontal temporal shear or rolling shutter distortion. This distortion occurs when obtaining images or video sequences from a CMOS camera with a rolling shutter whenever there is relative horizontal movement between the sensor and the object being imaged during the integration time of the image frame. Unlike CCD sensors, such as the interline CCD, which provides an electronic shutter mechanism called a global shutter in which the light collection starts and ends at exactly the same time for all pixels, CMOS sensors can not hold and store all the pixels at the same time. Each scanline is exposed, sampled, and stored in sequence, resulting in the rolling shutter effect or temporal distortion of the image that will cause inaccurate facial recognition results. Facial feature detection is performed using correlation based methods with low computational complexity. The location of key facial feature points is then used to calculate the temporal horizontal shear or the distortion of the image. This information can then be used to remove the temporal horizontal shear distortion from the detected face or the entire image. We present experimental results on controlled data sets and real scenes to show that the proposed method yields excellent results in reversing the temporal horizontal shear caused by the CMOS rolling shutter sensor and significantly improves the accuracy of our facial recognition algorithm.
机译:本文提出了一种基于面部特征检测的全自动图像处理方案,以校正水平时间剪切或滚动快门失真。每当在传感器和在图像帧的集成时间期间在图像帧的集成时间内成像时,当从CMOS相机获得具有滚动快门的CMOS相机的图像或视频序列时发生这种失真。与CCD传感器不同,例如Interline CCD,它提供一种名为全局快门的电子快门机制,其中光收集在所有像素的同时在完全相同的时间内结束,CMOS传感器不能保持和存储相同的所有像素时间。每个扫描线都暴露,采样并依次存储,导致滚动快门效果或图像的时间失真,这将导致面部识别结果不准确。使用基于相关的具有低计算复杂度的方法进行面部特征检测。然后使用关键面部特征点的位置来计算图像的时间水平剪切或图像的失真。然后可以使用该信息来从检测到的面部或整个图像中移除时间水平剪切失真。我们在受控数据集和真实场景上呈现实验结果,以表明所提出的方法产生优异的结果,在反转由CMOS滚动快门传感器引起的时间水平剪切并显着提高了我们面部识别算法的准确性。

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