Empirical study of the improved UNIRANDI local search method

نویسنده

  • László Pál
چکیده

UNIRANDI is a stochastic local search algorithm that performs line searches from starting points along good random directions. In this paper, we focus on a modified version of this method. The new algorithm, addition to the random directions, considers more promising directions in order to speed up the optimization process. The performance of the new method is tested empirically on standard test functions in terms of function evaluations, success rates, error values, and CPU time. It is also compared to the previous version as well as other local search methods. Numerical results show that the new method is promising in terms of robustness and efficiency.

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عنوان ژورنال:
  • CEJOR

دوره 25  شماره 

صفحات  -

تاریخ انتشار 2017