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首页> 外文期刊>Journal of Chemical Engineering of Japan >Information Directed Smpling for Combinatorial Material Synthesis and Library Design
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Information Directed Smpling for Combinatorial Material Synthesis and Library Design

机译:用于组合材料合成和库设计的信息导向采样

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Combinatorial techniques have become more and more important in many areas of chemistry and chemical engineering research.It was suggested that simulated annealing can be used to improve the efficiency of sampling in combinatorial methods.However,without priori model estimates of fitness function,true importance sampling cannot be performed.In this case,the efficiency of annealing is only as good as random search.We suggested that a simple prediction model using currently available data can be constructed using a generalzed regression neural network.An index of our uncertainty about a point in the search space can also be established using information entropy.An information free energy combined the two indices to direct the search so that importance sampling is performed.Two benchmark problems were used to model the optimization problem involved in combinatorial synthesis and library design.We showed that when importance sampling is performed,the combinatorial technique became much more effective.The improvement in efficiency over undirected methods is especially significant when the size of the problem becomes very large.
机译:在化学和化学工程研究的许多领域中,组合技术变得越来越重要。有人提出,可以使用模拟退火来提高组合方法中的采样效率。但是,在没有先验模型适合度函数估计的情况下,真实重要性采样在这种情况下,退火的效率仅与随机搜索一样好。我们建议可以使用广义回归神经网络构建一个使用当前可用数据的简单预测模型。我们还可以使用信息熵来建立搜索空间。信息自由能将两个指标结合起来,进行搜索,从而进行重要性抽样。使用两个基准问题对组合综合和库设计中的优化问题进行建模。当执行重要性抽样时,组合技术变得越来越重要当问题的规模变得很大时,与无指导方法相比,效率的提高尤为重要。

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