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Leveraging Textile Capacitive Sensor Arrays for Body Gesture Classification Applications

机译:利用纺织电容式传感器阵列进行手势分类应用

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摘要

The objective of this thesis is to explore textile capacitive sensor arrays (CSAs) as a means for capturing human body gestures. Given their low profile, these fabric sensors can be integrated into the user's clothing or environment to provide a unique low-cost solution for capturing information-rich kinetic signals. However, our attempts to infer motion and user intent indirectly from an array of irregular deformable sensors revealed computational challenges to implementation of the low-cost smart sensor. This thesis includes a discussion of challenges for use of fabric capacitive sensors, as well as implementation of low-cost embedded systems utilizing distance-based and statistical classifiers.;The usage of CSAs is motivated through three unique applications; namely, an environmental control system for individuals with limited upper-body mobility, a distracted driving detector, and a restless leg syndrome sleep monitoring system. The three applications are compared to their commercial equivalents in terms of power, cost, and usability to highlight the advantages of CSAs. The fabrication of the CSAs, and the design of the custom data acquisition module are described in detail. Algorithms presented for classifying gestures include K-Nearest Neighbor and Hidden Markov Models. Finally, for sensor validation and assisting design of future CSA applications, initial work on a low-cost tool based on finite-element simulation is presented.
机译:本文的目的是探索纺织电容传感器阵列(CSA)作为捕获人体手势的一种手段。鉴于它们的外形小巧,这些织物传感器可以集成到用户的衣服或环境中,以提供独特的低成本解决方案来捕获信息丰富的动力学信号。然而,我们从一系列不规则的可变形传感器间接推断运动和用户意图的尝试揭示了实现低成本智能传感器的计算挑战。本文讨论了使用结构式电容传感器的挑战,以及利用基于距离和统计分类器的低成本嵌入式系统的实现方法。CSA的使用是通过三个独特的应用推动的;即,针对上身活动受限的个人的环境控制系统,注意力分散的驾驶检测器以及不安定的腿综合征睡眠监测系统。将这三个应用程序在功率,成本和可用性方面与它们的商业等效项进行比较,以突出CSA的优势。详细介绍了CSA的制造以及定制数据获取模块的设计。提出的手势分类算法包括K最近邻和隐马尔可夫模型。最后,为了进行传感器验证和辅助未来CSA应用程序的设计,提出了基于有限元仿真的低成本工具的初步工作。

著录项

  • 作者

    Singh, Gurashish.;

  • 作者单位

    University of Maryland, Baltimore County.;

  • 授予单位 University of Maryland, Baltimore County.;
  • 学科 Computer engineering.
  • 学位 M.S.
  • 年度 2016
  • 页码 104 p.
  • 总页数 104
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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