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Asynchronous control for coupled Markov decision systems

机译:耦合马尔可夫决策系统的异步控制

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This paper considers optimal control for a collection of separate Markov decision systems that operate asynchronously over their own state spaces. Decisions at each system affect: (i) the time spent in the current state, (ii) a vector of penalties incurred, and (iii) the next-state transition probabilities. An example is a network of smart devices that perform separate tasks but share a common wireless channel. The model can also be applied to data center scheduling and to various types of cyber-physical networks. The combined state space grows exponentially with the number of systems. However, a simple strategy is developed where each system makes separate decisions. Total complexity grows only linearly in the number of systems, and the resulting performance can be pushed arbitrarily close to optimal.
机译:本文考虑了针对一组单独的马尔可夫决策系统的最优控制,这些决策系统在各自的状态空间上异步运行。每个系统的决策都会影响:(i)当前状态所花费的时间,(ii)所产生的惩罚向量,以及(iii)下一个状态的转移概率。一个示例是智能设备网络,它们执行单独的任务,但共享一个公共无线通道。该模型还可以应用于数据中心调度和各种类型的电子物理网络。组合状态空间随系统数量成倍增长。但是,开发了一种简单的策略,其中每个系统都做出单独的决策。总复杂度仅在系统数量中呈线性增长,并且可以将结果性能任意逼近最佳值。

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