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Design and Implementation of a Scalable Crowdsensing Platform for Geospatial Data of Tinnitus Patients

机译:耳鸣患者地理空间数据的可扩展众年群体平台的设计与实现

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Smart devices and low-powered sensors are becoming increasingly ubiquitous and nowadays almost all of these devices are connected, which is a promising foundation for crowdsensing of data related to various environmental phenomena. Resulting data is especially meaningful when it is related to time and location. Interestingly, many existing approaches built their solution on monolithic backends that process data on a per-request basis. However, for many scenarios, such technical setting is not suitable for managing data requests of a large crowd. For example, when dealing with millions of data points, still many challenges arise for modern smartphones if calculations or advanced visualization features must be accomplished directly on the smartphone. Therefore, the work at hand proposes an architectural design for managing geospatial data of tinnitus patients, which combines a cloudnative approach with Big Data concepts used in the Internet of Things. The presented architectural design shall serve as a generic foundation to implement (1) a scalable backend for a platform that covers the aforementioned crowdsensing requirements as well as to provide (2) a sophisticated stream processing concept to calculate and pre-aggregate incoming measurement data of tinnitus patients. Following this, this paper presents a visualization feature to provide users with a comprehensive overview of noise levels in their environment based on noise measurements. This shall help tinnitus or hearing-impaired patients to avoid locations with a burdensome sound level.
机译:智能设备和低功耗传感器变得越来越多,现在几乎所有这些设备都连接,这是一个有希望的与各种环境现象有关的数据的众群。当它与时间和位置有关时,结果数据尤为有意义。有趣的是,许多现有方法在整个请求基础上处理数据的单片后端建立了解决方案。但是,对于许多情况,这种技术设置不适合管理大人群的数据请求。例如,在处理数百万个数据点时,如果必须直接在智能手机上直接完成计算或高级可视化功能,则出于现代智能手机出现许多挑战。因此,手工的工作提出了一种用于管理耳鸣患者的地理空间数据的建筑设计,该患者结合了互联网上使用的大数据概念。呈现的架构设计应作为实现(1)用于涵盖上述众晶要求的平台的可扩展后端的通用基础,并提供(2)复杂的流处理概念来计算和预汇总传入的测量数据耳鸣患者。在此之后,本文介绍了可视化功能,以便根据噪声测量为用户提供全面的噪声水平省略噪声水平。这将有助于耳鸣或听力受损的患者,以避免具有沉重声级的位置。

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