DocumentCode
2071974
Title
Stochastic problem solving by local computation based on self-organization paradigm
Author
Kanada, Yasusi ; Hirokawa, Masao
Author_Institution
Real World Comput. Partnership, Tsukuba Res. Center, Ibaraki, Japan
Volume
3
fYear
1994
fDate
4-7 Jan. 1994
Firstpage
82
Lastpage
91
Abstract
We are developing a new problem-solving methodology based on a self-organization paradigm. To realize our future goal of self-organizing computational systems, we have to study computation based on local information and its emergent behavior, which are considered essential in self-organizing systems. This paper presents a stochastic (or nondeterministic) problem solving method using local operations and local evaluation functions. Several constraint satisfaction problems are solved and approximate solutions of several optimization problem are found by this method in polynomial order time in average. Major features of this method are as follows. Problems can be solved using one or a few simple production rules and evaluation functions, both of which work locally, i.e., on a small number of objects. Local maxima of the sum of evaluation function values can sometimes be avoided. Limit cycles of execution can also be avoided. There are two methods for changing the locality of rules. The efficiency of searches and the possibility of falling into local maxima can be controlled by changing the locality.<>
Keywords
problem solving; self-adjusting systems; software engineering; constraint satisfaction problems; emergent behavior; local computation; local evaluation functions; local information; local maxima; nondeterministic problem solving method; polynomial order time; production rules; self-organization paradigm; software development methods; stochastic problem solving;
fLanguage
English
Publisher
ieee
Conference_Titel
System Sciences, 1994. Proceedings of the Twenty-Seventh Hawaii International Conference on
Conference_Location
Wailea, HI, USA
Print_ISBN
0-8186-5090-7
Type
conf
DOI
10.1109/HICSS.1994.323363
Filename
323363
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