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Semidefinite Programming Approach to Gaussian Sequential Rate-Distortion Trade-Offs

机译:高斯顺序率失真折衷的半定规划方法

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Sequential rate-distortion (SRD) theory provides a framework for studying the fundamental trade-off between data-rate and data-quality in real-time communication systems. In this paper, we consider the SRD problem for multi-dimensional time-varying Gauss-Markov processes under mean-square distortion criteria. We first revisit the sensor-estimator separation principle, which asserts that considered SRD problem is equivalent to a joint sensor and estimator design problem in which data-rate of the sensor output is minimized while the estimator's performance satisfies the distortion criteria. We then show that the optimal joint design can be performed by semidefinite programming. A semidefinite representation of the corresponding SRD function is obtained. Implications of the obtained result in the context of zero-delay source coding theory and applications to networked control theory are also discussed.
机译:顺序速率失真(SRD)理论提供了一个框架,用于研究实时通信系统中数据速率和数据质量之间的基本权衡。在本文中,我们考虑了均方失真准则下多维时变高斯-马尔可夫过程的SRD问题。我们首先回顾传感器-估计器分离原理,该原理断言所考虑的SRD问题等同于传感器和估计器的联合设计问题,其中传感器输出的数据速率最小化,同时估计器的性能满足失真标准。然后,我们表明可以通过半定编程来执行最佳关节设计。获得了相应SRD函数的半定表示。还讨论了在零延迟源编码理论的背景下获得的结果的含义及其在网络控制理论中的应用。

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