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Quality and Context-Aware Smart Health Care: Evaluating the Cost-Quality Dynamics

机译:质量和上下文感知的智能医疗保健:评估成本质量动态

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摘要

Many emerging pervasive health-care applications require the determination of a variety of context attributes of an individual's activities and medical parameters and her surrounding environment. Context is a high-level representation of an entity's state, which captures activities, relationships, capabilities, etc. In practice, high-level context measures are often difficult to sense from a single data source and must instead be inferred using multiple sensors embedded in the environment. A key challenge in deploying context-driven health-care applications involves energy-efficient determination or inference of high-level context information from low-level sensor data streams. Because this abstraction has the potential to reduce the quality of the context information, it is also necessary to model the tradeoff between the cost of sensor data collection and the quality of the inferred context. This article describes a model of context inference in pervasive computing, the associated research challenges, and the significant practical impact of intelligent use of such context in pervasive health-care environments.
机译:许多新兴的普遍保健应用程序需要确定个人活动和医疗参数及其周围环境的各种背景属性。上下文是实体状态的高级表示,它捕获活动,关系,能力等。实际上,高级上下文度量通常很难从单个数据源中感知,而必须使用嵌入到其中的多个传感器来推断。环境。部署上下文驱动的医疗保健应用程序中的关键挑战涉及节能确定或从低级传感器数据流中推断高级上下文信息。因为这种抽象有可能降低上下文信息的质量,所以还必须对传感器数据收集成本与推断上下文的质量之间的折衷进行建模。本文介绍了普适计算中的上下文推断模型,相关的研究挑战以及在普适医疗保健环境中智能使用此类上下文的重大实际影响。

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