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Ecological Momentary Assessment based Differences between Android and iOS Users of the TrackYourHearing mHealth Crowdsensing Platform

机译:基于生态矩评估的TrackYourHearing mHealth人群感知平台的Android和iOS用户之间的差异

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mHealth technologies are increasingly utilized in various medical contexts. Mobile crowdsensing is such a technology, which is often used for data collection scenarios related to questions on chronic disorders. One prominent reason for the latter setting is based on the fact that powerful Ecological Momentary Assessments (EMA) can be performed. Notably, when mobile crowdsensing solutions are used to integrate EMA measurements, many new challenges arise. For example, the measurements must be provided in the same way on different mobile operating systems. However, the newly given possibilities can surpass the challenges. For example, if different mobile operating systems must be technically provided, one direction could be to investigate whether users of different mobile operating systems pose a different behaviour when performing EMA measurements. In a previous work, we investigated differences between iOS and Android users from the TrackYourTinnitus mHealth crowdsensing platform, which has the goal to reveal insights on the daily fluctuations of tinnitus patients. In this work, we investigated differences between iOS and Android users from the TrackYourHearing mHealth crowdsensing platform, which aims at insights on the daily fluctuations of patients with hearing loss. We analyzed 3767 EMA measurements based on a daily applied questionnaire of 84 patients. Statistical analyses have been conducted to see whether these 84 patients differ with respect to the used mobile operating system and their given answers to the EMA measurements. We present the obtained results and compare them to the previous mentioned study. Our insights show the differences in the two studies and that the overall results are worth being investigated in a more in-depth manner. Particularly, it must be investigated whether the used mobile operating system constitutes a confounder when gathering EMA-based data through a crowdsensing platform.
机译:移动医疗技术在各种医疗环境中得到越来越多的利用。移动人群感知是一种技术,通常用于与慢性疾病有关的数据收集场景。后一种设置的一个突出原因是基于可以执行强大的生态矩评估(EMA)的事实。值得注意的是,当使用移动人群感应解决方案来集成EMA测量时,会出现许多新的挑战。例如,必须在不同的移动操作系统上以相同的方式提供测量。但是,新给定的可能性可以克服挑战。例如,如果必须在技术上提供不同的移动操作系统,则一个方向可能是调查执行EMA测量时不同移动操作系统的用户是否构成不同的行为。在先前的工作中,我们从TrackYourTinnitus mHealth人群感知平台调查了iOS和Android用户之间的差异,该平台的目的是揭示对耳鸣患者每日波动的见解。在这项工作中,我们通过TrackYourHearing mHealth人群感知平台调查了iOS和Android用户之间的差异,该平台旨在洞悉听力损失患者的日常波动。我们基于84名患者的每日应用调查表分析了3767 EMA的测量结果。进行了统计分析,以查看这84位患者在使用的移动操作系统及其对EMA测量的给出答案方面是否有所不同。我们介绍获得的结果,并将其与先前提到的研究进行比较。我们的见解表明了两项研究的差异,值得对整体结果进行更深入的研究。特别是,当通过人群感知平台收集基于EMA的数据时,必须调查所使用的移动操作系统是否构成混杂因素。

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