首页> 外文会议>Intelligent Vehicles Symposium, 2003. Proceedings. IEEE >Optical flow preprocessing for pose classification and transition recognition using class-specific principle component analysis
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Optical flow preprocessing for pose classification and transition recognition using class-specific principle component analysis

机译:使用特定于类别的主成分分析进行姿态分类和过渡识别的光流预处理

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This paper introduces a technique for achieving a high degree of accuracy in driver pose estimation and pose transition identification using pose-specific principle components developed by Belhumeur, Hespanha and Kriegman (1997) in a noisy video sequence. The proposed method uses the estimated optical flow in a bandpass filtered image series to establish a spatially stable window that defines the pixel domain for further processing and principle component extraction. Optical flow tracking is achieved via spatial correlation using a likelihood measure that accounts for similarity between pixel values and brightness distribution in sequential video frames.
机译:本文介绍了一种技术,该技术可使用由Belhumeur,Hespanha和Kriegman(1997)在嘈杂的视频序列中开发的特定于姿势的主成分来实现驾驶员姿势估计和姿势过渡识别的高精度。所提出的方法使用带通滤波图像序列中的估计光流来建立空间稳定的窗口,该窗口定义像素域以进行进一步处理和主成分提取。使用似然度量通过空间相关性实现光流跟踪,该似然度量考虑了连续视频帧中像素值和亮度分布之间的相似性。

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