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首页> 外文期刊>Embedded Systems Letters, IEEE >Temperature Compensated Time Synchronization
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Temperature Compensated Time Synchronization

机译:温度补偿时间同步

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摘要

Time synchronization in embedded sensor networks is an important service for correlating data between nodes and communication scheduling. While many different approaches to the problem are possible, one major effect of clock frequency difference between nodes, environmental temperature changes, has often been left out of the solution. The common assumption that the temperature is static over a certain period of time is often used as an excuse to assume constant frequency errors in a clock. This assumption forces synchronization protocols to resynchronize too often. While there exists hardware solutions to this problem, their prohibitive high cost and power consumption make them unsuitable for some applications, such as wireless sensor networks. Temperature compensated time synchronization (TCTS) exploits the on-board temperature sensor existing in many sensor network platforms. It uses this temperature sensor to autonomously calibrate the local oscillator and removes effects of environmental temperature changes. This allows a time synchronization protocol to increase its resynchronization period, without loosing synchronization accuracy, and thus saves energy and communication overhead. In addition, TCTS provides a stable clock source when radio communication is impaired. We present the theory behind TCTS, and provide initial results of a simulated comparison of TCTS and the Flooding Time Synchronization Protocol.
机译:嵌入式传感器网络中的时间同步是一项重要的服务,可用于在节点之间关联数据并进行通信调度。解决问题的方法可能多种多样,但节点之间时钟频率差异(环境温度变化)的一个主要影响常常被排除在解决方案之外。温度在特定时间段内保持不变的通常假设通常被用作借以假设时钟中出现恒定频率误差。这种假设迫使同步协议过于频繁地重新同步。尽管存在解决此问题的硬件解决方案,但是它们的高昂成本和功耗使其不适用于某些应用,例如无线传感器网络。温度补偿时间同步(TCTS)利用了许多传感器网络平台中现有的板载温度传感器。它使用该温度传感器来自动校准本地振荡器,并消除环境温度变化的影响。这允许时间同步协议增加其重新同步周期,而不会失去同步精度,从而节省了能量和通信开销。另外,当无线电通信受损时,TCTS提供稳定的时钟源。我们介绍了TCTS背后的理论,并提供了TCTS与洪泛时间同步协议的模拟比较的初步结果。

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