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Towards an open data framework for body sensor networks supporting bluetooth low energy

机译:迈向支持蓝牙低功耗的人体传感器网络开放数据框架

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Major companies, healthcare professionals, the military, and other scientists and innovators are now sensing that fitness and health data from wearable biosensors will likely provide new discoveries and insights into physiological, cognitive, and emotional health status of an individual. Having the ability to collect, process, and correlate data simultaneously from a set of heterogonous biosensor sources may be a key factor in informing the development of new technologies for reducing health risks, improving health status, and possibly preventing and predicting disease. The challenge in achieving this is getting easy access to heterogeneous data from a set of disparate sensors in a single, integrated wearable monitoring system. Often times, the data recorded by commercial biosensing devices are contained within each manufacturer's proprietary platform. Summary data is available for some devices as free downloads or included only in annual premium memberships. Access to raw measurements is generally unavailable, especially from a custom developed application that may include prototype biosensors. In this paper, we explore key ideas on how to leverage the design features of Bluetooth Low Energy to ease the integration of disparate biosensors at the sensor communication layer. This component is intended to fit into a larger, multi-layered, open data framework that can provide additional data management and analytics capabilities for consumers and scientists alike at all the layers of a data access model which is typically employed in a body sensor network system.
机译:大型公司,医疗保健专业人员,军队以及其他科学家和创新者现在都在意识到,可穿戴式生物传感器的健身和健康数据可能会为个人的生理,认知和情感健康状况提供新的发现和见识。能够同时从一组异类生物传感器来源收集,处理和关联数据的能力可能是通知开发降低健康风险,改善健康状况以及可能预防和预测疾病的新技术的关键因素。实现这一目标的挑战是如何在单个集成的可穿戴监控系统中轻松访问来自一组不同传感器的异构数据。通常,由商业生物传感设备记录的数据包含在每个制造商的专有平台中。某些设备的摘要数据可免费下载,或仅包含在年度高级会员资格中。通常无法获得原始测量值,尤其是从可能包含原型生物传感器的定制开发应用程序中获取。在本文中,我们探索了有关如何利用低功耗蓝牙的设计功能来简化传感器通信层上不同生物传感器集成的关键思想。该组件旨在适应更大的多层开放数据框架,该框架可以为身体传感器网络系统中通常使用的数据访问模型的所有层上的消费者和科学家提供额外的数据管理和分析功能。 。

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