Crystal Structure Representation for Neural Networks using Topological Approach

被引:13
作者
Fedorov, Aleksandr V. [1 ,2 ]
Shamanaev, Ivan V. [1 ]
机构
[1] Boreskov Inst Catalysis, Pr Lavrentieva 5, Novosibirsk 630090, Russia
[2] Novosibirsk State Univ, 2 Pirogova Str, Novosibirsk 630090, Russia
关键词
artificial neural network; ToposPro; entropy; molar heat capacity; lattice energy; MATERIALS INFORMATICS; STRUCTURE PREDICTION; ENERGY ESTIMATION; LATTICE ENERGIES; SPACE; GRAPH;
D O I
10.1002/minf.201600162
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
In the present work we describe a new approach, which uses topology of crystals for physicochemical properties prediction using artificial neural networks (ANN). The topologies of 268 crystal structures were determined using ToposPro software. Quotient graphs were used to identify topological centers and their neighbors. The topological approach was illustrated by training ANN to predict molar heat capacity, standard molar entropy and lattice energy of 268 crystals with different compositions and structures (metals, inorganic salts, oxides, etc.). ANN was trained using Broyden-Fletcher-Goldfarb-Shanno (BFGS) algorithm. Mean absolute percentage error of predicted properties was 8%.
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页数:7
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