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An efficient class of direct search surrogate methods for solving expensive optimization problems with CPU-time-related functions

机译:一类有效的直接搜索替代方法,用于解决与CPU时间相关的函数的昂贵优化问题

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In this paper, we characterize a new class of computationally expensive optimization problems and introduce an approach for solving them. In this class of problems, objective function values may be directly related to the computational time required to obtain them, so that, as the optimal solution is approached, the computational time required to evaluate the objective is significantly less than at points farther away from the solution. This is motivated by an application in which each objective function evaluation requires both a numerical fluid dynamics simulation and an image registration process, and the goal is to find the parameter values of a predetermined reference image by comparing the flow dynamics from the numerical simulation and the reference image through the image comparison process. In designing an approach to numerically solve the more general class of problems in an efficient way, we make use of surrogates based on CPU times of previously evaluated points, rather than their function values, all within the search step framework of mesh adaptive direct search algorithms. Because of the expected positive correlation between function values and their CPU times, a time cutoff parameter is added to the objective function evaluation to allow its termination during the comparison process if the computational time exceeds a specified threshold. The approach was tested using the NOMADm and DACE MATLAB® software packages, and results are presented.
机译:在本文中,我们描述了一类新的计算量大的优化问题,并介绍了解决这些问题的方法。在此类问题中,目标函数值可能与获得它们所需的计算时间直接相关,因此,随着逼近最佳解,评估目标所需的计算时间明显少于远离目标值的时间。解。这是由一种应用程序所激发的,在该应用程序中,每个目标函数评估都需要进行数值流体动力学模拟和图像配准过程,并且目标是通过比较来自数值模拟和流体动力学的流动动力学来找到预定参考图像的参数值。通过图像比较过程参考图像。在设计一种有效地数值解决更一般问题的方法时,我们在网格自适应直接搜索算法的搜索步骤框架内都使用了基于先前评估点的CPU时间(而不是其功能值)的替代项。由于功能值与其CPU时间之间存在预期的正相关性,因此如果计算时间超过指定的阈值,则将时间截止参数添加到目标功能评估中,以允许其在比较过程中终止。使用NOMADm和DACEMATLAB®软件包对该方法进行了测试,并给出了结果。

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