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Biogeography-based optimization of a variable camshaft timing system

机译:基于生物地理学的可变凸轮轴正时系统优化

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Automotive simulations often prohibit the use of traditional optimization techniques because these simulations are complex and computationally expensive. These two qualities motivate the use of evolutionary algorithms and meta-modeling techniques respectively. In this work, we apply biogeography-based optimization (BBO) to optimize radial basis function (RBF)-based lookup table controls of a variable camshaft timing system for fuel economy. Also, we reduce computational search effort by finding an effective parameterization of the problem, optimizing the parameters of the BBO algorithm for the problem, and estimating the cost of a portion of the candidate solutions in BBO with design and analysis of computer experiments (DACE). We find that we can improve fuel economy by 1.7% over the original control parameters, and we find a tradeoff in population size, and an optimal value for mutation rate. Finally, we find that we can use a small number of samples to construct DACE models, and we can use these models to estimate a significant portion of the candidate solutions each generation to reduce computation effort and still obtain good BBO solutions.
机译:汽车仿真通常禁止使用传统的优化技术,因为这些仿真很复杂且计算量很大。这两种性质分别促使人们使用进化算法和元建模技术。在这项工作中,我们应用基于生物地理的优化(BBO)来优化可变凸轮轴正时系统的基于径向基函数(RBF)的查找表控件,以实现燃油经济性。此外,我们通过查找问题的有效参数化,优化问题的BBO算法参数以及通过设计和计算机实验分析(DACE)估算BBO中部分候选解决方案的成本来减少计算搜索的工作量。我们发现,与原始控制参数相比,我们可以将燃油经济性提高1.7%,并且可以在总体规模和权衡突变率的最佳值之间找到平衡点。最后,我们发现我们可以使用少量样本来构建DACE模型,并且可以使用这些模型来估算每一代候选解决方案的很大一部分,以减少计算量并仍然获得良好的BBO解决方案。

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