The Research of Simulated Annealing Liked Particle Swarm Optimization Algorithm and Its Application

碩士 === 聖約翰科技大學 === 電機工程系碩士班 === 97 === This paper presents a simulated annealing liked particle swarm optimization algorithm ,with simulated annealing and the particle swarm optimization. The modification of both the simulated annealing and particle swarm optimization intends to more accurate conver...

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Main Authors: Chin-Ming Chiang, 江金銘
Other Authors: Cheng-Chien Kuo
Format: Others
Language:zh-TW
Published: 2009
Online Access:http://ndltd.ncl.edu.tw/handle/43653569708231488177
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spelling ndltd-TW-097SJSM04420082015-11-20T04:18:28Z http://ndltd.ncl.edu.tw/handle/43653569708231488177 The Research of Simulated Annealing Liked Particle Swarm Optimization Algorithm and Its Application 退火式粒子群演算法研究及其應用 Chin-Ming Chiang 江金銘 碩士 聖約翰科技大學 電機工程系碩士班 97 This paper presents a simulated annealing liked particle swarm optimization algorithm ,with simulated annealing and the particle swarm optimization. The modification of both the simulated annealing and particle swarm optimization intends to more accurate convergence and produce faster.In this paper, a fixed number of 200,000 function evaluation were used as the termination criterion for all of the algorithms. First of all, the sensitivity analysis of parameters for four algorithms, and then for four algorithms were tested and 20 were the best of the different dimensions of function tests, as well as simulated annealing liked particle swarm optimization excellent law and particle swarm optimization convergence excellent method to do comparison.The results show that excellent simulated annealing liked particle swarm optimization algorithm, both in the efficiency of the search of solutions and convergence speed were superior to other three algorithms (simulated annealing, genetic algorithms and particle swarm optimization). Cheng-Chien Kuo 郭政謙 2009 學位論文 ; thesis 67 zh-TW
collection NDLTD
language zh-TW
format Others
sources NDLTD
description 碩士 === 聖約翰科技大學 === 電機工程系碩士班 === 97 === This paper presents a simulated annealing liked particle swarm optimization algorithm ,with simulated annealing and the particle swarm optimization. The modification of both the simulated annealing and particle swarm optimization intends to more accurate convergence and produce faster.In this paper, a fixed number of 200,000 function evaluation were used as the termination criterion for all of the algorithms. First of all, the sensitivity analysis of parameters for four algorithms, and then for four algorithms were tested and 20 were the best of the different dimensions of function tests, as well as simulated annealing liked particle swarm optimization excellent law and particle swarm optimization convergence excellent method to do comparison.The results show that excellent simulated annealing liked particle swarm optimization algorithm, both in the efficiency of the search of solutions and convergence speed were superior to other three algorithms (simulated annealing, genetic algorithms and particle swarm optimization).
author2 Cheng-Chien Kuo
author_facet Cheng-Chien Kuo
Chin-Ming Chiang
江金銘
author Chin-Ming Chiang
江金銘
spellingShingle Chin-Ming Chiang
江金銘
The Research of Simulated Annealing Liked Particle Swarm Optimization Algorithm and Its Application
author_sort Chin-Ming Chiang
title The Research of Simulated Annealing Liked Particle Swarm Optimization Algorithm and Its Application
title_short The Research of Simulated Annealing Liked Particle Swarm Optimization Algorithm and Its Application
title_full The Research of Simulated Annealing Liked Particle Swarm Optimization Algorithm and Its Application
title_fullStr The Research of Simulated Annealing Liked Particle Swarm Optimization Algorithm and Its Application
title_full_unstemmed The Research of Simulated Annealing Liked Particle Swarm Optimization Algorithm and Its Application
title_sort research of simulated annealing liked particle swarm optimization algorithm and its application
publishDate 2009
url http://ndltd.ncl.edu.tw/handle/43653569708231488177
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