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Spatiotemporal recursive hyperspheric classification with an application to dynamic gesture recognition

机译:时空递归超球面分类及其在动态手势识别中的应用

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摘要

The Recursive Hyperspheric Classification (RHC) is a novel algorithm well-suited for classifying noisy, multivariate datasets. Creating a taxonomy of hyperspheres, the RHC algorithm partitions a search space into labeled regions that are consumed in the recognition process of unlabeled data. While the algorithm is robust, classical RHC cannot cope with spatiotemporal data, such as dynamic gestures, because there is no mechanism that will facilitate temporal learning. Nonetheless, there exists a strong demand for computers to actively recognize gestures, for the simplest gesture can encode and convey an abundance of information. Gestures are a natural mode of communication by means of body movement, and they can imply intent. Therefore, in this paper, the Spatiotemporal Recursive Hyperspheric Classification (STRHC) algorithm is introduced, which utilizes a temporal queue, allowing the algorithm to classify and recognize temporal data, including human gestures that are sensed with the Xbox Kinect, a popular motion sensor. When validating its strength, STRHC has achieved up to a 95.33% average recognition rate while harnessing a diverse dataset of gestures. (C) 2019 Elsevier B.V. All rights reserved.
机译:递归超球面分类(RHC)是一种非常适合对嘈杂的多元数据集进行分类的新颖算法。 RHC算法创建了超球体分类法,将搜索空间划分为标记区域,这些区域在未标记数据的识别过程中被消耗。尽管该算法很健壮,但传统的RHC无法应付时空数据(例如动态手势),因为没有任何机制可以促进时态学习。尽管如此,强烈要求计算机主动识别手势,因为最简单的手势可以编码并传达大量信息。手势是通过身体移动进行交流的一种自然方式,它们可以暗示意图。因此,在本文中,引入了时空递归超球分类(STRHC)算法,该算法利用时间队列,允许该算法对时间数据进行分类和识别,包括使用流行的运动传感器Xbox Kinect感测到的人的手势。在验证其强度时,STRHC在利用各种手势数据集的同时,平均识别率高达95.33%。 (C)2019 Elsevier B.V.保留所有权利。

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