论文标题
在国家依赖的马尔可道渠道下的最佳传输功率和控制器的最佳传输功率和控制器的共同设计
Co-design of Optimal Transmission Power and Controller for Networked Control Systems Under State-dependent Markovian Channels
论文作者
论文摘要
本文考虑了工业网络控制系统的共同设计问题,以确保此类系统的稳定性和效率属性。由于工业环境中的无线通信不仅会受到阴影褪色的影响,而且与周围环境相关,因此这种属性的保证尤其具有挑战性。为了应对此类挑战,本文首先介绍了一种新颖的与状态有关的马尔可夫频道(SD-MC)模型,该模型通过将所提出的模型的过渡概率定义为环境状态和传输力,从而明确捕获工业无线通信系统的状态依赖性特征。在提出的通道模型下,提出了最大允许的传输间隔(MATI)的足够条件,以确保期望中的渐近稳定性和几乎确定具有状态依赖性褪色通道的连续非线性控制系统的渐近稳定性。基于这种条件,然后将共同设计问题作为约束多项式优化问题(CPOP)提出,可以使用半依赖状态依赖的马尔可夫通道的半决赛编程方法有效地解决该问题。此类CPOP的解决方案代表了最佳控制和功率策略,可在无限时间范围内优化预期的联合成本,同时仍然尊重稳定性约束。对于一般的SD-MC模型,本文进一步表明,可以从所考虑的CPOP的线性编程公式中获得亚最佳解决方案。给出仿真结果以说明所提出的共同设计方案的功效。
This paper considers a co-design problem for industrial networked control systems to ensure both the stability and efficiency properties of such systems. The assurance of such properties is particularly challenging due to the fact that wireless communications in industrial environments are not only subject to shadow fading but also stochastically correlated with their surrounding environments. To address such challenges, this paper first introduces a novel state-dependent Markov channel (SD-MC) model that explicitly captures the state-dependent features of industrial wireless communication systems by defining the proposed model's transition probabilities as a function of both its environment's states and transmission power. Under the proposed channel model, sufficient conditions on Maximum Allowable Transmission Interval (MATI) are presented to ensure both asymptotic stability in expectation and almost sure asymptotic stability properties of a continuous nonlinear control system with state-dependent fading channels. Based on such conditions, the co-design problem is then formulated as a constrained polynomial optimization problem (CPOP), which can be efficiently solved using semidefinite programming methods for the case of a two-state state dependent Markovian channel. The solutions to such a CPOP represent optimal control and power strategies that optimize the average expected joint costs in an infinite time horizon while still respect the stability constraints. For a general SD-MC model, this paper further shows that sub-optimal solutions can be obtained from linear programming formulations of the considered CPOP. Simulation results are given to illustrate the efficacy of the proposed co-design scheme.