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Kalman filter with innovation-based triggering

机译:Kalman过滤基于创新的触发

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摘要

Due to the constraints of the bandwidth and energy, the communication rate of sensors-to-estimator may be required to be reduced to save communication resources and energy in network control systems (NCSs). This paper studies the remote state estimation triggered by the innovation to meet expected estimation performance in order to improve the performance of the whole system under reducing communication rate. We propose an event-trigger based on measurement innovation, which decide on how information could be sent to remote estimator for estimation. Then under the Gaussian assumption of the predicted conditional probability density, a minimum mean squared error (MMSE) Kalman filter with innovation-based triggering is derived based on the Bayes Rule which realizes the tradeoff between communication rate and estimation quality. Furthermore, it provides the solution to the average communication rate under a given threshold and the optimal threshold value in the case of known communication rate. A numerical example is simulated to verify the effectiveness and correctness of the designed filter.
机译:由于带宽和能量的约束,可能需要减少传感器到估计器的通信率,以节省网络控制系统(NCS)中的通信资源和能量。本文研究了创新触发的远程状态估计,以满足预期的估计性能,以提高整个系统在降低通信率下的性能。我们提出了一种基于测量创新的事件触发器,该事件触发器决定如何将信息发送到远程估算器以进行估计。然后,根据预测条件概率密度的高斯假设,基于贝叶斯规则导出具有基于创新的触发的最小均方误差(MMSE)Kalman滤波器,该贝叶斯规则实现了通信率和估计质量之间的权衡。此外,在已知通信速率的情况下,它在给定阈值下的平均通信速率和最佳阈值提供了解决方案。模拟数值示例以验证设计过滤器的有效性和正确性。

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