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Local Temporal Coherence for Object-Aware Keypoint Selection in Video Sequences

机译:视频序列中对象感知关键点选择的局部时间相干性

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Local feature extraction is an important solution for video analysis. The common framework of local feature extraction consists of a local keypoint detector and a keypoint descriptor. Existing keypoint detectors mainly focus on the spatial relationships among pixels, resulting in a large amount of redundant keypoints on background which are often temporally stationary. This paper proposes an object-aware local keypoint selection approach to keep the active keypoints on object and to reduce the redundant keypoints on background by exploring the temporal coherence among successive frames in video. The proposed approach is made up of three local temporal coherence criteria: (1) local temporal intensity coherence; (2) local temporal motion coherence; (3) local temporal orientation coherence. Experimental results on two publicly available datasets show that the proposed approach reduces more than 60% keypoints, which are redundant, and doubles the precision of keypoints.
机译:局部特征提取是视频分析的重要解决方案。局部特征提取的通用框架包括局部关键点检测器和关键点描述符。现有的关键点检测器主要关注像素之间的空间关系,导致背景上的大量冗余关键点通常在时间上是固定的。本文提出了一种基于对象的局部关键点选择方法,该方法通过探索视频中连续帧之间的时间相干性来保持对象上的活动关键点并减少背景上的冗余关键点。所提出的方法由三个局部时间相干性准则组成:(1)局部时间强度相干性; (2)局部时态运动的连贯性; (3)局部时间取向的连贯性。在两个可公开获得的数据集上的实验结果表明,该方法减少了60%以上的关键点,这些关键点是多余的,并使关键点的精度提高了一倍。

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