DocumentCode
1607238
Title
Time Consuming Numerical Model Calibration Using Genetic Algorithm (GA), 1-Nearest Neighbor (1NN) Classifier and Principal Component Analysis (PCA)
Author
Liu, Yang ; Ye, Wen-Jing
Author_Institution
Dept. of Eng., Exeter Univ.
fYear
2005
fDate
6/27/1905 12:00:00 AM
Firstpage
1208
Lastpage
1211
Abstract
Single objective genetic algorithm (SGA) optimization process usually needs a large number of objective function evaluations before converging towards global optimum or a near-optimum. The SGA is used as automatic calibration method for a wide range of numerical models. However, the evaluation of the quality of solutions is very time-consuming in many real-world numerical model calibration problems. The algorithm SGA-INN-PCA, an effective and efficient dynamic approximation model to reduce the number of actual fitness evaluations, is presented in this paper. Training data of 1NN classifier are produced from early generations. 1-nearest neighbor (INN) classifier is used to predict objective function values for evaluations. Principal component analysis (PCA) linearly transforms high-dimensional optimization parameters into low-dimensional optimization parameters to save test time for 1NN. The test results show that the proposed method only requires about 25 percent of actual fitness evaluations of the SGA
Keywords
calibration; genetic algorithms; principal component analysis; 1-nearest neighbor classifier; 1NN; PCA; SGA; principal component analysis; single objective genetic algorithm optimization; time consuming numerical model calibration; Calibration; Genetic algorithms; Genetic engineering; Geography; Numerical models; Optimization methods; Predictive models; Principal component analysis; Testing; Training data;
fLanguage
English
Publisher
ieee
Conference_Titel
Engineering in Medicine and Biology Society, 2005. IEEE-EMBS 2005. 27th Annual International Conference of the
Conference_Location
Shanghai
Print_ISBN
0-7803-8741-4
Type
conf
DOI
10.1109/IEMBS.2005.1616641
Filename
1616641
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