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Impact of Shifting Time-Window Post-Processing on the Quality of Face Detection Algorithms

机译:时移窗口后处理对人脸检测算法质量的影响

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We consider binary classification algorithms, which operate on single frames from video sequences. Such a class of algorithms is named OFA (One Frame Analyzed). Two such algorithms for facial detection are compared in terms of their susceptibility to the FSA (Frame Sequence Analysis) method. It introduces a shifting time-window improvement, which includes the temporal context of frames in a post-processing step that improves the classification quality. Error measures are proposed to express the frame-wise accuracy of classifying algorithms, as well as the segmentation of the result sequences which they produce. The two compared algorithms, after applying the FSA improvement, perform better in terms of all the considered measures. The performed experiments have allowed to draw conclusions regarding preferred methods of measuring accuracy of such algorithms and the selection of suitable classification algorithms for being improved. In the end of the work, the resulting future possibilities of further developing the FSA methods are noted.
机译:我们考虑二进制分类算法,该算法对视频序列中的单个帧进行操作。这类算法称为OFA(“一帧分析”)。比较了两种此类面部检测算法对FSA(帧序列分析)方法的敏感性。它引入了时移窗口改进,其中包括在后处理步骤中改善帧质量的帧的时间上下文。提出了误差度量来表达分类算法的逐帧准确性,以及它们产生的结果序列的分段。在应用FSA改进后,两种经过比较的算法在所有考虑到的措施方面表现更好。所进行的实验已经得出了关于测量这种算法的准确性的优选方法以及要改进的合适分类算法的选择的结论。在工作的最后,指出了进一步开发FSA方法的最终可能性。

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