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Bayesian optimization algorithm for multi-objective solutions: application to electric equipment configuration problems in a power plant

机译:多目标解决方案的贝叶斯优化算法:在电厂电气设备配置问题中的应用

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We apply Bayesian optimization algorithm with tabu search (tabu-BOA) to electric equipment configuration problems in a power plant. Tabu-BOA is a hybrid evolutionary computation algorithm with competent GAs and metaheuristics. The configuration problems we consider have complex combinatorial properties with multiple objectives, therefore, they are hard to solve via conventional techniques. First, we investigate the performance of the proposed algorithm using simple test functions, Next, using the method, we solve the following practical problems: both (1) minimize the cost of implementation and operation, and (2) maximize the marginal supply capacity in operation.
机译:我们将带有禁忌搜索(tabu-BOA)的贝叶斯优化算法应用于发电厂中的电气设备配置问题。 Tabu-BOA是一种混合进化计算算法,具有出色的GA和元启发式算法。我们认为的配置问题具有多个目标的复杂组合属性,因此,很难通过常规技术来解决。首先,我们使用简单的测试函数研究所提出算法的性能,其次,使用该方法,我们解决了以下实际问题:(1)最大限度地降低实施和运营成本,以及(2)最大限度地提高边际供应能力手术。

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