一种用于人体传感器设计的信息质量度量方法

Italo Armenti, Philip Asare, J. Su, J. Lach
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引用次数: 4

摘要

身体传感器网络(BSNs)是一种新兴技术,它能够长期、连续、远程监测各种医疗应用中的生理和生物动力学信息。由于BSN中不同组件的计算、存储和通信能力不同,系统设计人员必须在信息质量与资源消耗和系统电池寿命之间进行权衡。考虑到这些权衡,有可能的信息呈现给医疗从业者在终点可能偏离什么是最初的感觉。在某些情况下,这些偏差可能会导致从业者做出与原始数据不同的决策。开发此类系统的工程师通常会使用RMSE等传统的数据质量度量方法;然而,在许多情况下,这些指标与特定应用程序的信息质量概念并没有很好地关联。因此,有必要对信息失真及其对决策的影响进行客观度量,以帮助BSN设计者在设计约束和信息质量之间做出更明智的权衡,并帮助从业者了解BSN产生的信息类型,他们必须根据这些信息做出决策。在本文中,我们提出了为各种BSN应用程序开发此类指标的一般方法,通过案例研究说明了如何将此方法应用于实际应用程序,并讨论了开发此类指标的问题。
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A methodology for developing quality of information metrics for body sensor design
Body sensors networks (BSNs) are emerging technologies that are enabling long-term, continuous, remote monitoring of physiologic and biokinematic information for various medical applications. Because of the varying computational, storage, and communication capabilities of different components in the BSN, system designers must make design choices that trade off information quality with resource consumption and system battery lifetime. Given these trade-offs, there is the possibility that the information presented to the health practitioner at the end point may deviate from what was originally sensed. In some cases, these deviations may cause a practitioner to make a different decision from what would have been made given the original data. Engineers working on such systems typically resort to traditional measures of data quality like RMSE; however, these metrics have been shown in many cases to not correlate well with the notions of information quality for the particular application. Objective metrics of information distortion and its effects on decision making are therefore necessary to help BSN designers make more informed trade-offs between design constraints and information quality and to help practitioners understand the kind of information being produced by BSNs, on which they have to base decisions. In this paper, we present a general methodology for developing such metrics for various BSN applications, illustrate how this methodology can be applied to a real application through a case study, and discuss issues with developing such metrics.
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