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Missing value estimation for database of aluminophosphate (AlPO) syntheses

机译:磷酸铝(AlPO)合成数据库的缺失值估计

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摘要

Database of AlPO syntheses will serve as useful guidance for the rational synthesis of microporous functional materials. But the database contains missing values about 29% of total. In this paper, to deal with the problem of missing values, four missing value estimation methods (back-propagation neural networks imputes, K-nearest neighbor imputes, singular value decomposition imputes and least square imputes) are employed on database of AlPO syntheses for the first time. The efficiency and revise of estimation methods are demonstrated by normalized root mean squared error (NRMSE) and prediction accuracy. A large number of experimental results show that the estimation methods are competent for microporous aluminophosphates and the BPimpute is recommended.
机译:AlPO合成数据库将为合理合成微孔功能材料提供有用的指导。但是数据库包含的缺失值约占总数的29%。在本文中,为解决缺失值的问题,在AlPO合成数据库中采用了四种缺失值估计方法(反向传播神经网络归因,K近邻归因,奇异值分解归因和最小二乘归因)。第一次。通过归一化均方根误差(NRMSE)和预测精度来证明估计方法的效率和改进。大量实验结果表明,估算方法适用于微孔铝磷酸盐,建议使用BPimpute。

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