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Conditional distance based matching for one-shot gesture recognition

机译:基于距离的单次手势识别匹配

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摘要

A problem of matching gestures, where there are one or few samples per class, is considered in this paper. The proposed approach shows that much better results are achieved if the distance between the pattern of frame-wise distances of two gesture sequences with a third (anchor) sequence from the modelbase is considered. Such a measure is called as conditional distance and these distance pattern are referred to as "warp vectors". If these warp vectors are similar, then so are the sequences; if not, they are dissimilar. At the algorithmic core, there are two dynamic time warping processes, one to compute the warp vectors with the anchor sequences and the other to compare these warp vectors. In order to reduce the complexity a speedup strategy is proposed by pre-selecting "good" anchor sequences. Conditional distance is used for individual and sentence level gesture matching. Both single and multiple subject datasets are used. Experiments show improved performance above 82% spanning 179 classes. (C) 2014 Elsevier Ltd. All rights reserved.
机译:在本文中考虑了匹配手势的问题,其中每个类别有一个或多个样本。所提出的方法表明,如果考虑来自模型基的第三(锚地)序列的帧距离的帧距离之间的距离之间的距离,则实现了更好的结果。这种度量称为条件距离,并且这些距离模式被称为“经线向量”。如果这些翘曲矢量相似,则序列也是如此;如果没有,它们是不同的。在算法核心,有两个动态时间翘曲过程,一个用于将横向序列计算的翘曲矢量计算,另一个用于比较这些翘曲矢量。为了降低复杂性,通过预选择“良好”的锚序列来提出加速策略。条件距离用于个人和句子级手势匹配。使用单个和多个主题数据集。实验表明,在82%跨越179类以上的性能提高。 (c)2014年elestvier有限公司保留所有权利。

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