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Timing synchronization of low power wireless sensor nodes with largely differing clock frequencies and variable synchronization intervals

机译:具有大不相同的时钟频率和可变同步间隔的低功率无线传感器节点的定时同步

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In this paper a novel synchronization method for wireless sensor networks with star topology is presented. We address timing synchronization using low frequency real-time clocks in all nodes. A beacon-driven TDMA-protocol for bidirectional node/base communication is used. Between the beacons, which are sent by the base station, lie the superframe time intervals to handle data transmission from node to base. We discuss the protocol and its energy saving advantages including the challenges of synchronization. We reduce the required communication for synchronization based on long term synchronicity of the node to save energy. Due to the individual node clock, the accurate superframe time interval usually will consist of a rational number of clock ticks. We propose to use a ΔΣ-converter to generate a sequence of superframes with different time durations, but each consisting of integer multiples of clock ticks, which - on average - achieve the accurate superframe duration for any rational number of clock ticks. We show by theory and measurements that our novel approach leads to a variance of the synchronization error which is constant at a value of 0.25 clock cycles. The variance is independent of the rate at which the nodes listen to the beacon of the base station.
机译:本文提出了一种新的星形拓扑无线传感器网络同步方法。我们在所有节点中使用低频实时时钟解决时序同步问题。使用用于双向节点/基础通信的信标驱动的TDMA协议。在基站发送的信标之间放置超帧时间间隔,以处理从节点到基站的数据传输。我们讨论了该协议及其节能优势,包括同步方面的挑战。我们基于节点的长期同步性减少了同步所需的通信,以节省能源。由于单个节点时钟的原因,准确的超帧时间间隔通常将由合理数量的时钟滴答组成。我们建议使用ΔΣ转换器来生成具有不同持续时间的超帧序列,但是每个超帧都由时钟滴答的整数倍组成,平均而言,对于任何合理数量的时钟滴答,平均而言,它都可以实现准确的超帧持续时间。我们通过理论和测量表明,我们的新方法导致同步误差的变化,该变化在0.25个时钟周期的值上恒定。该方差与节点侦听基站信标的速率无关。

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