DocumentCode :
3669233
Title :
Local and global event-based optimization: Performace and complexity
Author :
Zijian Wu;Qing-Shan Jia;Xiaohong Guan
Author_Institution :
Center for Intelligent and Networked Systems (CFINS), TNLIST, Tsinghua University, Beijing 100084, China
fYear :
2015
Firstpage :
1375
Lastpage :
1380
Abstract :
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.
Keywords :
"Complexity theory","Optimization","Heat transfer","Humidity","Heating","Glass","Aerospace electronics"
Publisher :
ieee
Conference_Titel :
Automation Science and Engineering (CASE), 2015 IEEE International Conference on
ISSN :
2161-8070
Electronic_ISBN :
2161-8089
Type :
conf
DOI :
10.1109/CoASE.2015.7294290
Filename :
7294290
Link To Document :
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