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Histogram of Oriented Gradients Feature Extraction From Raw Bayer Pattern Images

机译:由导向梯度的直方图来自生拜耳图案图像的特征提取

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摘要

This brief studies the redundancy in the image processing pipeline for histogram of oriented gradients (HOG) feature extraction. The impact of demosaicing on the extracted HOG features is analyzed and experimented. It is shown that by taking advantage of the inter-channel correlation of natural images, the HOG features can be directly extracted from the Bayer pattern images with proper gamma compression. Due to the elimination of the image processing pipeline, the power consumption and computational complexity of the detection system can be significantly reduced. Experimental results show that the Bayer pattern image-based HOG features can be used in pedestrian detection systems with little performance degradation.
机译:本简要研究了针对定向梯度(HOG)特征提取的直方图的图像处理管道中的冗余。分析和实验分析了去脱脂术对提取的猪特征的影响。结果表明,通过利用自然图像的信道间相关性,可以通过适当的伽马压缩从拜耳图案图像直接提取猪特征。由于消除图像处理管道,可以显着降低检测系统的功耗和计算复杂性。实验结果表明,拜耳图案的基于图像的猪特征可用于性能下降少的行人检测系统。

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