首页> 美国卫生研究院文献>International Journal of Telemedicine and Applications >Multi-Sensor-Fusion Approach for a Data-Science-Oriented Preventive Health Management System: Concept and Development of a Decentralized Data Collection Approach for Heterogeneous Data Sources
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Multi-Sensor-Fusion Approach for a Data-Science-Oriented Preventive Health Management System: Concept and Development of a Decentralized Data Collection Approach for Heterogeneous Data Sources

机译:面向数据科学的预防性健康管理系统的多传感器融合方法:异构数据源的分散数据收集方法的概念和发展

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摘要

Investigations in preventive and occupational medicine are often based on the acquisition of data in the customer's daily routine. This requires convenient measurement solutions including physiological, psychological, physical, and sometimes emotional parameters. In this paper, the introduction of a decentralized multi-sensor-fusion approach for a preventive health-management system is described. The aim is the provision of a flexible mobile data-collection platform, which can be used in many different health-care related applications. Different heterogeneous data sources can be integrated and measured data are prepared and transferred to a superordinated data-science-oriented cloud-solution. The presented novel approach focuses on the integration and fusion of different mobile data sources on a mobile data collection system (mDCS). This includes directly coupled wireless sensor devices, indirectly coupled devices offering the datasets via vendor-specific cloud solutions (as e.g., Fitbit, San Francisco, USA and Nokia, Espoo, Finland) and questionnaires to acquire subjective and objective parameters. The mDCS functions as a user-specific interface adapter and data concentrator decentralized from a data-science-oriented processing cloud. A low-level data fusion in the mDCS includes the synchronization of the data sources, the individual selection of required data sets and the execution of pre-processing procedures. Thus, the mDCS increases the availability of the processing cloud and in consequence also of the higher level data-fusion procedures. The developed system can be easily adapted to changing health-care applications by using different sensor combinations. The complex processing for data analysis can be supported and intervention measures can be provided.
机译:预防和职业医学方面的调查通常基于客户日常数据的获取。这就需要方便的测量解决方案,包括生理,心理,身体和情感参数。在本文中,介绍了一种用于预防性健康管理系统的分散式多传感器融合方法。目的是提供一个灵活的移动数据收集平台,该平台可用于许多不同的医疗保健相关应用程序。可以集成不同的异构数据源,并准备测量的数据并将其传输到面向高级数据科学的云解决方案。提出的新颖方法侧重于移动数据收集系统(mDCS)上不同移动数据源的集成和融合。这包括直接耦合的无线传感器设备,通过供应商特定的云解决方案(例如,美国旧金山的Fitbit和芬兰的埃斯波的诺基亚)提供数据集的间接耦合设备以及用于获取主观和客观参数的问卷。 mDCS用作特定于用户的接口适配器,并且是从面向数据科学的处理云中分散的数据集中器。 mDCS中的低级数据融合包括数据源的同步,所需数据集的单独选择以及预处理程序的执行。因此,mDCS增加了处理云的可用性,并且因此还带来了更高级别的数据融合过程。通过使用不同的传感器组合,可以轻松地将开发的系统适应不断变化的医疗保健应用。可以支持用于数据分析的复杂处理,并且可以提供干预措施。

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