感知推理质量的上下文确定

Nirmalya Roy
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引用次数: 1

摘要

对个人环境(生理和活动)的节能测定是辅助生活环境的一个重要技术挑战。给定多个传感器的预期可用性,上下文确定可以被视为对多个传感器数据流的估计问题。本文建立了一个正式的、实际适用的模型,以捕获上下文估计的准确性和感知的通信开销之间的权衡。特别是,我们建议使用公差范围来减少单个传感器的报告频率,同时确保派生上下文的可接受准确性。在我们的设想中,应用程序为推理质量(Quality-of-Inference, qinf)度量指定它们的最低可接受值。我们开发了一种优化技术,允许上下文服务以最小的通信成本计算满足指定qinf的最佳传感器集及其相关容差值。太阳黑子传感器的实验结果证明了这种方法的潜在影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Quality-of-Inference aware context determination
Energy-efficient determination of an individual's context (both physiological and activity) is an important technical challenge for assisted living environments. Given the expected availability of multiple sensors, context determination may be viewed as an estimation problem over multiple sensor data streams. This paper develops a formal and practically applicable model to capture the tradeoff between the accuracy of context estimation and the communication overheads of sensing. In particular, we propose the use of tolerance ranges to reduce an individual sensor's reporting frequency, while ensuring acceptable accuracy of the derived context. In our vision, applications specify their minimally acceptable value for a Quality-of-Inference (QoINF) metric. We develop an optimization technique allowing the context service to compute both the best set of sensors and their associated tolerance values that satisfy the specified QoINF at a minimum communication cost. Experimental results with SunSPOT sensors demonstrate the potential impact of this approach.
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