Congestion control for spatio-temporal data in cyber-physical systems

Hossein Ahmadi, T. Abdelzaher, Indranil Gupta
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引用次数: 36

Abstract

Data dissemination protocols in cyber-physical systems must consider the importance of data packets in protocol decisions. Importance of data cannot generally be accurately represented by a static priority value or deadline, but rather must stem from the dynamic state of the physical world. This paper presents a novel congestion control scheme for data collection applications that makes two key contributions. First, packet importance is measured by data contributions to the accuracy of estimating the monitored physical phenomenon. This leads to congestion control that minimizes estimation error. Second, our protocol employs a novel mechanism, i.e. spatial aggregation, in addition to temporal aggregation to control congestion. The protocol is generalized to multiple concurrent applications. Our approach employs different granularities of aggregation in transporting spatio-temporal data from nodes to a base station. The aggregation granularity is chosen locally based on the contribution of the transmitted data to the reconstruction of the phenomenon at the receiver. In an area affected by congestion, data are summarized more aggressively to reduce data transfer rate while introducing minimal error to the estimation of physical phenomena. We implement this scheme as a transport layer protocol in LiteOS running on MicaZ motes. Through experiments, we show that the proposed scheme eliminates congestion with an estimation error an order of magnitude smaller than traditional rate control approaches.
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网络物理系统中时空数据的拥塞控制
网络物理系统中的数据传播协议必须在协议决策中考虑数据包的重要性。数据的重要性通常不能用静态的优先级值或截止日期来准确地表示,而必须源于物理世界的动态状态。本文提出了一种新的数据采集应用拥塞控制方案,主要有两个方面的贡献。首先,数据包的重要性是通过对估计被监测物理现象的准确性的数据贡献来衡量的。这导致拥塞控制最小化估计误差。其次,我们的协议采用了一种新的机制,即空间聚合,除了时间聚合来控制拥塞。该协议被推广到多个并发应用。我们的方法采用不同粒度的聚合将时空数据从节点传输到基站。聚合粒度是根据传输数据对接收端现象重建的贡献在本地选择的。在受拥塞影响的区域,数据被更积极地汇总以降低数据传输速率,同时为物理现象的估计引入最小的误差。我们将此方案实现为运行在MicaZ motes上的LiteOS中的传输层协议。通过实验,我们表明,该方案消除了拥塞,估计误差比传统的速率控制方法小一个数量级。
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ICCPS '21: ACM/IEEE 12th International Conference on Cyber-Physical Systems, Nashville, Tennessee, USA, May 19-21, 2021 Demo Abstract: SURE: An Experimentation and Evaluation Testbed for CPS Security and Resilience Poster Abstract: Thermal Side-Channel Forensics in Additive Manufacturing Systems Exploiting Wireless Channel Randomness to Generate Keys for Automotive Cyber-Physical System Security WiP Abstract: Platform for Designing and Managing Resilient and Extensible CPS
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