Event detection with vector similarity based on fourier transformation

Tao Han, Yuqing Lan, Limin Xiao, Binyang Huang, Kai Zhang
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引用次数: 3

Abstract

Event detection through sensors data recording human activities is an aspect to learn human behaviors. In this paper, counted numbers from a sensor installed on a building entrance recording the number of people entering the building, will be processed to find the anomaly time interval when there are more people going through the entrance, which is viewed as event. An approach is adopted having two steps: first, the counted numbers over time is processed by Fourier Transformation and we get the parameter of a vector (ReX[k], ImX[k]) representing kth point in the data set; second, the vectors of (ReX[k], ImX[k]) are classified by KNN algorithm in two dimensions, categorizing the data in the same time interval in 70 days and the data in 48 intervals in one day. The results show that the proposed method works well.
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基于傅里叶变换的向量相似度事件检测
通过传感器记录人类活动的数据进行事件检测是学习人类行为的一个方面。本文通过安装在建筑物入口处的传感器记录进入建筑物的人数,并对其计数进行处理,找出进入建筑物的人数较多时的异常时间间隔,将其视为事件。采用的方法分为两步:首先,对随时间变化的计数进行傅里叶变换处理,得到代表数据集中第k个点的向量(ReX[k], ImX[k])的参数;其次,用KNN算法对向量(ReX[k], ImX[k])进行二维分类,70天内对同一时间间隔的数据进行分类,一天内对48个间隔的数据进行分类。结果表明,该方法效果良好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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