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首页> 外文期刊>Malaysian Journal of Computer Science >Spatio-Temporal Co-Occurrence Characterizations For Human Action Classification
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Spatio-Temporal Co-Occurrence Characterizations For Human Action Classification

机译:人体动作分类的时空共现特征

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摘要

The human action classification task is a widely researched topic and is still an open problem. Many state-ofthe- arts approaches involve the usage of bag-of-video-words with spatio-temporal local features to construct characterizations for human actions. In order to improve beyond this standard approach, we investigate the usage of co-occurrences between local features. We propose the usage of co-occurrences information to characterize human actions. A trade-off factor is used to define an optimal trade-off between vocabulary size and classification rate. Next, a spatio-temporal co-occurrence technique is applied to extract co-occurrence information between labeled local features. Novel characterizations for human actions are then constructed. These include a vector quantized correlogram-elements vector, a highly discriminative PCA (Principal Components Analysis) co-occurrence vector and a Haralick texture vector. Multi-channel kernel SVM (support vector machine) is utilized for classification. For evaluation, the well known KTH as well as the UCF-Sports action datasets are used. We obtained state-of-the-arts classification performance. We also demonstrated that we are able to fully utilize co-occurrence information, and improve the standard bag-of-video-words approach.
机译:人类行为分类任务是一个广泛研究的话题,仍然是一个未解决的问题。许多最先进的方法都涉及使用具有时空局部特征的视频袋词来构造人类行为的表征。为了改进此标准方法,我们研究了局部特征之间共现的用法。我们建议使用共现信息来表征人类行为。折衷因子用于定义词汇量和分类率之间的最佳折衷。接下来,将时空共现技术应用于提取标记局部特征之间的共现信息。然后构建人类行为的新颖表征。这些包括矢量量化的相关图元素矢量,高度区分性PCA(主成分分析)同时出现矢量和Haralick纹理矢量。多通道内核SVM(支持向量机)用于分类。为了进行评估,使用了众所周知的KTH以及UCF-Sports动作数据集。我们获得了最新的分类性能。我们还证明了我们能够充分利用同现信息,并改进了标准的视频词袋方法。

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