首页> 外文期刊>ifac papersonline >Adaptive Generalized Policy Iteration in Active Fault Detection and Control ★ ★ This work was supported by the Czech Science Foundation, project No. GA15-12068S.
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Adaptive Generalized Policy Iteration in Active Fault Detection and Control ★ ★ This work was supported by the Czech Science Foundation, project No. GA15-12068S.

机译:主动故障检测与控制★ ★中的自适应广义策略迭代 这项工作得到了捷克科学基金会的支持,项目编号。GA15-12068S型

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摘要

The paper deals with a suboptimal solution to the problem of active fault detection and control for stochastic nonlinear systems over an infinite time horizon. The design of an active fault detector and controller is formulated as a dynamic optimization problem that is solved using the generalized policy iteration algorithm. A key parameter of this algorithm that influences computational demands and the speed of convergence is the number of successive approximations used in a policy evaluation step. Although general guidelines are known, no exact algorithm for choosing this parameter exists. The paper proposes an adaptive algorithm for determining this key parameter to speed up convergence given a specified accuracy of the solution. The adaptive algorithm is demonstrated and compared with non-adaptive generalized policy iteration algorithms in a numerical example.
机译:本文探讨了随机非线性系统在无限时间范围内主动故障检测和控制问题的次优解。将主动故障检测器和控制器的设计表述为利用广义策略迭代算法求解的动态优化问题。该算法影响计算需求和收敛速度的一个关键参数是策略评估步骤中使用的连续近似数。尽管通用准则是已知的,但不存在选择此参数的确切算法。该文提出了一种自适应算法,用于确定该关键参数,以在给定解的指定精度下加速收敛。在数值算例中演示了自适应算法,并与非自适应广义策略迭代算法进行了比较。

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