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Crowd-Centric Counting via Unsupervised Learning;

机译:通过无监督学群为中心的计算;

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摘要

Counting targets (people or things) within a monitored area is an important task in emerging wireless applications, including those for smart environments, safety, and security. Conventional device-free radio-based systems for counting targets rely on localization and data association (i.e., individual-centric information) to infer the number of targets present in an area (i.e., crowd-centric information). However, many applications (e.g., affluence analytics) require only crowd-centric rather than individual-centric information. Moreover, individual-centric approaches may be inadequate due to the complexity of data association. This paper proposes a new technique for crowd-centric counting of device-free targets based on unsupervised learning, where the number of targets is inferred directly from a low-dimensional representation of the received waveforms. The proposed technique is validated via experimentation using an ultra-wideband sensor radar in an indoor environment.;

著录项

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  • 作者单位
  • 年(卷),期 2020(),
  • 年度 2020
  • 页码
  • 总页数 7
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 网站名称 数字空间系统
  • 栏目名称 所有文件
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  • 入库时间 2022-08-19 17:01:58
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