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Uniformly sampled genetic algorithm with gradient search for structural identification - Part II: Local search

机译:具有梯度搜索的均匀采样遗传算法用于结构识别-第二部分:局部搜索

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摘要

This paper investigates several gradient local search methods as an enhancement to Part I, to further improve the computational efficiency while achieving the same identification accuracy. The present study is significant in several ways. First, this study reveals the characteristics of structural identification from the optimization perspective. Second, the "switch point" from global search to local search is determined with due consideration in convergence speed and avoidance of local optima. Finally, the combined strategy based on Part I and Part II with a particular local search (BFGS) is found to achieve substantial improvement in identification efficiency and accuracy.
机译:本文研究了几种梯度局部搜索方法,作为对第I部分的增强,以进一步提高计算效率,同时实现相同的识别精度。本研究在几个方面具有重要意义。首先,本研究从优化的角度揭示了结构识别的特征。第二,从全局搜索到局部搜索的“转换点”是在考虑收敛速度和避免局部最优的基础上确定的。最后,发现基于第一部分和第二部分的组合策略与特定的局部搜索(BFGS)可以显着提高识别效率和准确性。

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