DocumentCode :
412718
Title :
Cultural swarms II: virtual algorithm emergence
Author :
Reynolds, Robert G. ; Peng, Bin ; Brewster, Jon
Author_Institution :
Dept. of Comput. Sci., Wayne State Univ., Detroit, MI, USA
Volume :
3
fYear :
2003
fDate :
8-12 Dec. 2003
Firstpage :
1972
Abstract :
Cultural algorithms (CA) (Reynolds 1994) is an evolutionary model derived from the cultural evolution process. CA has two major components, a population components and a belief component. In a previous paper it was show that certain problem solving phases emerged during the optimization process in a dynamic problem solving environment (Reynolds and Saleem 2003). These phases were labeled coarse grained, fine grained and backtracking respectively. I understand how these phases emerged as a result of the interaction of the five knowledge sources influenced individuals in the population component. It was demonstrated in a companion paper (Reynolds 2003) how individuals in an EP population exhibited swarm-like behavior while under the belief space during the search for an optimum in a cones-world environment. In this paper we examine the behavior of the cultural algorithm at the meta-level and demonstrate how, at that level, an algorithmic interaction of knowledge sources emerge. This interaction in terms of best-first search.
Keywords :
evolutionary computation; optimisation; search problems; backtracking; belief component; best-first search; coarse grained phase; cones-world environment; cultural algorithms; cultural evolution; evolutionary model; fine grained phase; population components; problem solving; swarm-like behavior; virtual algorithm; Computer science; Cultural differences; Genetic algorithms; Genetic programming; Particle swarm optimization; Power generation; Problem-solving; State-space methods; System testing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Evolutionary Computation, 2003. CEC '03. The 2003 Congress on
Print_ISBN :
0-7803-7804-0
Type :
conf
DOI :
10.1109/CEC.2003.1299915
Filename :
1299915
Link To Document :
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