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Designing m-Health Modules with Sensor Interfaces for DSP Education.

机译:设计带有传感器接口的m-Health模块以进行DSP教育。

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摘要

Advancements in mobile technologies have significantly enhanced the capabilities of mobile devices to serve as powerful platforms for sensing, processing, and visualization. Surges in the sensing technology and the abundance of data have enabled the use of these portable devices for real-time data analysis and decision-making in digital signal processing (DSP) applications. Most of the current efforts in DSP education focus on building tools to facilitate understanding of the mathematical principles. However, there is a disconnect between real-world data processing problems and the material presented in a DSP course. Sophisticated mobile interfaces and apps can potentially play a crucial role in providing a hands-on-experience with modern DSP applications to students. In this work, a new paradigm of DSP learning is explored by building an interactive easy-to-use health monitoring application for use in DSP courses. This is motivated by the increasing commercial interest in employing mobile phones for real-time health monitoring tasks. The idea is to exploit the computational abilities of the Android platform to build m-Health modules with sensor interfaces. In particular, appropriate sensing modalities have been identified, and a suite of software functionalities have been developed. Within the existing framework of the AJDSP app, a graphical programming environment, interfaces to on-board and external sensor hardware have also been developed to acquire and process physiological data. The set of sensor signals that can be monitored include electrocardiogram (ECG), photoplethysmogram (PPG), accelerometer signal, and galvanic skin response (GSR). The proposed m-Health modules can be used to estimate parameters such as heart rate, oxygen saturation, step count, and heart rate variability. A set of laboratory exercises have been designed to demonstrate the use of these modules in DSP courses. The app was evaluated through several workshops involving graduate and undergraduate students in signal processing majors at Arizona State University. The usefulness of the software modules in enhancing student understanding of signals, sensors and DSP systems were analyzed. Student opinions about the app and the proposed m-health modules evidenced the merits of integrating tools for mobile sensing and processing in a DSP curriculum, and familiarizing students with challenges in modern data-driven applications.
机译:移动技术的进步显着增强了移动设备用作感知,处理和可视化的强大平台的功能。传感技术的迅猛发展和数据的丰富性使这些便携式设备可以用于数字信号处理(DSP)应用程序中的实时数据分析和决策。 DSP教育方面当前的大多数努力都集中在构建工具上,以促进对数学原理的理解。但是,现实世界中的数据处理问题与DSP课程中介绍的材料之间存在脱节。复杂的移动界面和应用程序可能会在为学生提供现代DSP应用程序的动手实践中发挥关键作用。在这项工作中,通过构建用于DSP课程的交互式易于使用的健康监控应用程序,探索了DSP学习的新范例。这是由于越来越多的商业兴趣将移动电话用于实时健康监测任务。这个想法是利用Android平台的计算能力来构建带有传感器接口的m-Health模块。特别地,已经确定了适当的感测模态,并且已经开发了一套软件功能。在AJDSP应用程序的现有框架内,还开发了图形化编程环境,与板载和外部传感器硬件的接口来获取和处理生理数据。可以监视的传感器信号集包括心电图(ECG),光电容积描记图(PPG),加速计信号和皮肤电反应(GSR)。提出的m-Health模块可用于估计参数,例如心率,血氧饱和度,步数和心率变异性。设计了一组实验室练习来演示这些模块在DSP课程中的使用。该应用程序是通过亚利桑那州立大学信号处理专业的研究生和本科生数次研讨会进行评估的。分析了软件模块在增强学生对信号,传感器和DSP系统理解方面的有用性。学生对应用程序和拟议的m-health模块的看法证明了在DSP课程中集成用于移动感测和处理的工具的优点,并使学生熟悉现代数据驱动应用程序中的挑战。

著录项

  • 作者

    Rajan, Deepta.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Engineering Electronics and Electrical.;Engineering Biomedical.
  • 学位 M.S.
  • 年度 2013
  • 页码 114 p.
  • 总页数 114
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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