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Human action recognition based on Adaptive Distance Generalization of Isometric Mapping

机译:基于等距映射自适应距离泛化的人体动作识别

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Manifold learning could effectively represent human action which has Non-linear characteristics. Isometric Mapping (ISOMAP) is a classic unsupervised algorithm of manifold learning. However, ISOMAP couldn't work well for the data with the class priori information. Moreover, the computational complexity of dimension reduction to the new data point is too high to be used in real time. Considering two shortages of ISOMAP, the Adaptive Distance Generalization of Isometric Mapping (ADGI) is proposed, using human action silhouette sequences as the features, in which the adaptive distance factor is introduced to combine with generalization of ISOMAP. Finally the nearest neighbor classifier is used for recognition. For the dimension reduction of human action features, ADGI is effective. Experiments in Weizmann database show the presented algorithm is better both in recognition ratio and in real time for human action recognition.
机译:流形学习可以有效地代表具有非线性特征的人类行为。等距映射(ISOMAP)是流形学习的经典无监督算法。但是,ISOMAP对于具有类先验信息的数据不能很好地工作。此外,降维到新数据点的计算复杂性太高而无法实时使用。考虑到ISOMAP的两个不足,提出了以人的动作轮廓序列为特征的等距映射的自适应距离综合(ADGI),其中引入了自适应距离因子与ISOMAP的推广相结合。最后,最近的邻居分类器用于识别。对于减少人类行为特征的尺寸,ADGI是有效的。在Weizmann数据库中进行的实验表明,该算法在人体动作识别方面的识别率和实时性都更好。

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