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A Local Stability Supported Parallel Distributed Constraint Optimization Algorithm

机译:局部稳定性支持的并行分布式约束优化算法

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This paper presents a new distributed constraint optimization algorithm called LSPA, which can be used to solve large scale distributed constraint optimization problem (DCOP). Different from the access of local information in the existing algorithms, a new criterion called local stability is defined and used to evaluate which is the next agent whose value needs to be changed. The propose of local stability opens a new research direction of refining initial solution by finding key agents which can seriously effect global solution once they modify assignments. In addition, the construction of initial solution could be received more quickly without repeated assignment and conflict. In order to execute parallel search, LSPA finds final solution by constantly computing local stability of compatible agents. Experimental evaluation shows that LSPA outperforms some of the state-of-the-art incomplete distributed constraint optimization algorithms, guaranteeing better solutions received within ideal time.
机译:本文介绍了一种名为LSPA的新的分布式约束优化算法,可用于解决大规模分布式约束优化问题(DCOP)。与现有算法中的本地信息的访问不同,定义了一个名为局部稳定性的新标准,并用于评估哪些代理是需要更改的值。本地稳定性的提出通过查找可以在修改任务后找到可以严重影响全球解决方案的关键代理来开辟了更新的初始解决方案的新研究方向。此外,如果没有重复的分配和冲突,可以更快地获得初始解决方案的构建。为了执行并行搜索,LSPA通过不断计算兼容代理的本地稳定性来查找最终解决方案。实验评估表明,LSPA优于一些最先进的不完整的分布式约束优化算法,保证了在理想时间内收到的更好的解决方案。

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