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Smart Homecare Surveillance System: Behavior Identification Based on State-Transition Support Vector Machines and Sound Directivity Pattern Analysis

机译:智能家居护理监控系统:基于状态转换支持向量机和声音指向性模式分析的行为识别

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摘要

This study presents a smart homecare surveillance system, which utilizes sound-steered cameras to identify behavior of interest. First of all, to detect multiple source locations, a new direction-of-arrival (DOA) algorithm is proposed by introducing cascaded frequency filters, which can quickly calculate directions without creating much complexity. This method can also locate and separate different signals at the same time. Second, after the camera points in the direction of the estimated angle, the proposed state-transition support vector machine is used to provide favorable discriminability for human behavior identification. A new Markov random field (MRF) function based on the localized contour sequence (LCS) is also presented while the system computes transition probabilities between states. Such LCS-based MRF functions can effectively smooth transitions and enhance recognition. The experimental results show that the average error of DOA decreases to around 7°, which is better than those of the baselines. Also, our proposed behavior identification system can reach an 88.3% accuracy rate. The aforementioned results have therefore demonstrated the feasibility of the proposed method.
机译:这项研究提出了一种智能家庭护理监控系统,该系统利用声控摄像机识别感兴趣的行为。首先,为了检测多个源位置,通过引入级联频率滤波器提出了一种新的到达方向(DOA)算法,该算法可以快速计算方向而不会产生太多复杂性。此方法还可以同时定位和分离不同的信号。其次,在摄像机指向估计角度的方向后,使用提出的状态转换支持向量机为人类行为识别提供良好的可分辨性。在系统计算状态之间的转移概率的同时,还提出了一种基于局部轮廓序列(LCS)的新马尔可夫随机场(MRF)函数。这种基于LCS的MRF功能可以有效地平滑过渡并增强识别能力。实验结果表明,DOA的平均误差降低到大约7°,这比基线的误差要好。此外,我们提出的行为识别系统可以达到88.3%的准确率。因此,上述结果证明了所提出方法的可行性。

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