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On the rotational variance of the differential evolution algorithm

机译:关于差分进化算法的旋转方差

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In this study we examine the rotational (in)variance of the differential evolution (DE) algorithm. We show that the classic DE/rand/1 /bin algorithm, which uses constant mutation and standard crossover, is rotationally variant. We then study a previously proposed rotationally invariant formulation in which the crossover operation takes place in an orthogonal base constructed using Gramm-Schmidt orthogonalization.We propose two new formulations by firstly considering a very simple rotationally invariant formulation using constant mutation and whole arithmetic crossover. This rudimentary formulation performs badly, due to lack of diversity. We introduce diversity into the formulation using two distinctly different strategies. The first adjusts the crossover step by perturbing the direction of the linear combination between the target vector and the mutant vector. This formulation is invariant in a stochastic sense only. The other formulation adds a self-scaling random vector with a standard normal distribution, sampled uniformly from the surface of an n-dimensional unit sphere to the unaltered whole arithmetic crossover vector. This formulation is strictly invariant, if in a stochastic sense only.We compare the four invariant formulations in terms of numerical efficiency for a modest set of test problems; the intention not being to propose yet another competitive and/or superior DE variant, but rather to present formulations that are both diverse and invariant, in the hope that this will stimulate additional future contributions, since rotational invariance in general is a desirable, salient feature for an optimization algorithm.
机译:在这项研究中,我们研究了差分演化(DE)算法的旋转(不变)性。我们证明了经典的DE / rand / 1 / bin算法(使用恒定变异和标准交叉)是旋转变异的。然后,我们研究了先前提出的旋转不变公式,其中交叉操作在使用Gramm-Schmidt正交化构造的正交基中进行。我们提出了两个新公式,首先考虑了使用常数突变和整个算术交叉的非常简单的旋转不变公式。由于缺乏多样性,这种基本的公式表现不佳。我们使用两种截然不同的策略将多样性引入配方中。第一种通过扰动目标向量和突变向量之间的线性组合方向来调整交叉步骤。该表述仅在随机意义上是不变的。另一种公式是将具有标准正态分布的自缩放随机向量从n维单位球面均匀采样到不变的整个算术交叉向量上。如果仅是随机意义,则该公式严格不变。我们在数值效率方面比较了四个不变公式,以解决一组中等程度的测试问题。目的不是要提出另一种竞争性和/或优越的DE变体,而是要提出多种多样且不变的配方,以期希望这会激发未来的更多贡献,因为旋转不变性通常是理想的显着特征用于优化算法。

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  • 来源
    《Advances in Engineering Software》 |2019年第10期|102691.1-102691.19|共19页
  • 作者单位

    Univ Stellenbosch Prof Albert A Groenwold Dept Mech Engn ZA-7600 Stellenbosch South Africa;

    Univ Stellenbosch Prof Albert A Groenwold Dept Mech Engn ZA-7600 Stellenbosch South Africa|Univ Pretoria Ctr Asset Integr Managements Dept Mech & Aeronaut Engn ZA-0001 Pretoria South Africa;

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