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Reliability or Sustainability: Optimal Data Stream Estimation and Scheduling in Smart Water Networks

机译:可靠性或可持续性:智能水网络中的最佳数据流估计和调度

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As a typical cyber-physical system (CPS), smart water distribution networks require monitoring of underground water pipes with high sample rates for precise data analysis and water network control. Due to poor underground wireless channel quality and long-range communication requirements, high transmission power is typically adopted to communicate high-speed sensor data streams, posing challenges for long-term sustainable monitoring. In this article, we develop the first sustainable water sensing system, exploiting energy harvesting opportunities from water flows. Our system does this by scheduling the transmission of a subset of the data streams, whereas other correlated streams are estimated using autoregressive models based on the sound-velocity propagation of pressure signals inside water networks. To compute the optimal scheduling policy, we formalize a stochastic optimization problem to maximize the estimation reliability while ensuring the system's sustainable operation under dynamic conditions. We develop data transmission scheduling (DTS), an asymptotically optimal scheme, and FAST-DTS, a lightweight online algorithm that can adapt to arbitrary energy and correlation dynamics. Using more than 170 days of real data from our smart water system deployment and conducting in vitro experiments to our small-scale testbed, our evaluation demonstrates that Fast-DTS significantly outperforms three alternatives, considering data reliability, energy utilization, and sustainable operation.
机译:作为典型的网络物理系统(CPS),智能水分配网络要求以高采样率监视地下水管道,以进行精确的数据分析和水网络控制。由于地下无线信道质量差和远程通信要求差,通常采用高传输功率来通信高速传感器数据流,这对长期可持续监测提出了挑战。在本文中,我们利用水流中的能量收集机会,开发了第一个可持续的水传感系统。我们的系统通过调度数据流子集的传输来实现此目的,而其他相关流则基于水网络内压力信号的声速传播,使用自回归模型进行估算。为了计算最佳调度策略,我们将随机优化问题形式化,以最大化估计可靠性,同时确保系统在动态条件下的可持续运行。我们开发了渐近最佳方案数据传输调度(DTS)和可以适应任意能量和相关动力学的轻量级在线算法FAST-DTS。我们使用智能水系统部署过程中超过170天的真实数据,并在小型试验台上进行了体外实验,我们的评估表明,考虑到数据可靠性,能源利用和可持续运营,Fast-DTS的性能明显优于三种选择。

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