非平稳仿真过程瞬态模式下搜索引擎优化算法的行为分析

O. Rogova, V. Stroganov, D. Stroganov
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引用次数: 0

摘要

本文在平均积分估计的基础上,分析了控制仿真模型在解决泛函极值选择问题时的行为。假设搜索引擎优化算法直接包含在模型中。研究的重点是控制区间的持续时间估计问题,即在不同参数下选择搜索方向的系统仿真时间。控制区间越小,函数估计的精度越低,相应地,选择正确搜索方向的概率也就越低。然而,由于对仿真时间的普遍限制,搜索算法执行的步数较大,从而提高了收敛到极值的速度。因此,控制间隔持续时间的选择提出了一个问题。这项工作的目的是建立一个被控制过程的模型,即改变被控制参数的过程,根据控制区间的持续时间估计优化算法的收敛速度。由于所有进行过程的非平稳性质,直接在仿真模型上分析优化过程的收敛性实际上是不可能的。在这方面,本文介绍了一类条件非平稳高斯过程,并在此基础上评估了受控仿真模型的效率。假设采用对称设计选择方向,且当前点非平稳过程的所有实现都具有相同的初始状态。通过对该模型的分析,得到了估计极值位置的精度随控制区间持续时间的解析表达式。得到的结果使得在模拟模型进行实验的时间普遍有限的情况下,可以构造序列分析方案,提高了优化问题求解的精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of the behavior of search engine optimization algorithms on transient modes of non-stationary simulation processes
The article deals with the analysis of the behavior of controlled simulation models for solving the choice of extreme values of the functional, which it determines on the basis of the average integral estimate. It is assumed that the search engine optimization algorithm is directly included in the model. Of interest is the problem of estimating the duration of the control interval, i.e. system simulation time with different parameters to select the search direction. The smaller the control interval, the lower the accuracy of the estimates of the functional and, accordingly, the lower the probability of choosing the correct search direction. However, with a general limitation on the simulation time, the search algorithm performs a larger number of steps, which increases the rate of convergence to the extreme value. Thus, the choice of the duration of the control interval raises a question. The aim of the work is to build a model of a controlled process, i.e. the process of changing the controlled parameters, to estimate the rate of convergence of the optimization algorithm depending on the duration of the control interval. The analysis of the convergence of the optimization process directly on the simulation model is practically impossible due to the nonstationary nature of all ongoing processes. In this regard, the article introduces a class of conditionally non-stationary Gaussian processes, on which the efficiency of a controlled simulation model is evaluated. It is assumed that a symmetric design is used to choose the direction, and all realizations of the nonstationary process at the current point have the same initial state. As a result of the analysis of such a model, analytical expressions were obtained for estimating the accuracy of the position of the extremum depending on the duration of the control interval. The results obtained make it possible, with a general limitation of the time for conducting experiments with a simulation model, to construct a sequential analysis plan, which improves the accuracy of solving the optimization problem.
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