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Local and global event-based optimization: Performace and complexity

机译:本地和全球事件的优化:性能和复杂性

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Markov decision processes (MDPs) provide a general framework for many control, decision-making, and optimization problems. An well-known difficulty in MDPs is that the state and action space increase exponentially with the scale of the problem. The event-based optimization (EBO) provides an alternative approach to solve the large scale MDPs by concentrating on the state transitions with certain common properties. The scale and performance of the EBO problem is affected by the definition of events. In this paper, we demonstrate the relationship between the complexity of the events and the performance of the event-based policies by a multi-room Heating, Ventilation, and Air-Conditioning (HVAC) control problem. First, we formulate the multi-room HVAC control problem as an event-based optimization, and define the global events and local events of the problem. Second, we propose the definition of the complexity performance curve (CPC). A CPC describes the relationship between the complexity of the events and the performance of the best policy under the given complexity. Third, we give the method to estimate the CPC in the certain EBO problem. Fourth, we demonstrate the CPCs of the multi-room HVAC control problem.
机译:马尔可夫决策过程(MDPS)为许多控制,决策和优化问题提供了一般框架。在MDP中众所周知的困难是,状态和行动空间随着问题的规模呈指数级增长。基于事件的优化(EBO)提供了一种通过集中在具有某些公共属性的状态转换的大规模MDP来解决大规模MDP的替代方法。 EBO问题的规模和性能受事件定义的影响。在本文中,我们通过多房间加热,通风和空调(HVAC)控制问题展示了事件复杂性与基于事件的策略的性能之间的关系。首先,我们将多房间HVAC控制问题作为基于事件的优化,并定义问题的全局事件和本地事件。其次,我们提出了复杂性能曲线(CPC)的定义。 CPC描述了事件复杂性与在给定复杂性下最佳政策的性能之间的关系。第三,我们给出了估计某些EBO问题中的CPC的方法。第四,我们展示了多房间HVAC控制问题的CPC。

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