Parameter Optimization of Single Sample Virtually Expanded Method

Parameter Optimization of Single Sample Virtually

Expanded Method

Xiaoxia Zhao1, Wenjun Meng1, Jinhu Su1, Yuxuan Chen2

1School of Mechanical Engineering, Taiyuan University of Science and Technology, China

2Design and Research Institute, North China Municipal Engineering Design and Research Institute Co. Ltd., China

Abstract: Aiming at single sample experiment of sample number n=1, the relationship of parameters virtually expanded from n=1 to n=13 is derived in this paperand the big-samples data are gained by Bootstrap method. Instead of existing methods, a developing particle swarm optimization based on Minimax is put forward. With the application of this method in the parameter optimization, the lower confidence limit approaches the lower confidence limit of the Semiempirical Evaluation Method with more rapid speed and higher precision. In this way, the most suitable augmented parameters virtually expanded from n=1 to n=13 are gained, which provides a better virtual augment method for the sample augment from n=1 to n=13.

Keywords: Bootstrap method, semiempirical evaluation method, single sample, augmented parameter, minimax, particle swarm optimization (PSO).

Received November 14, 2016; accepted July 22, 2018
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