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1.北京航空航天大学,化学学院,北京 100191
2.北京航空航天大学,仿生智能界面科学与技术教育部重点实验室,北京 100191
3.北京航空航天大学,软物质物理及其应用中心,北京 100191
4.北京航空航天大学,北京生物医学工程高精尖创新中心,北京 100191
Published:20 November 2022,
Published Online:22 July 2022,
Received:25 March 2022,
Accepted:18 April 2022
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宫祥瑞,蒋滢.机器学习在高分子材料基因组研究中的进展与挑战[J].高分子学报,2022,53(11):1287-1300.
Gong Xiang-rui,Jiang Ying.Advances and Challenges of Machine Learning in Polymer Material Genomes[J].ACTA POLYMERICA SINICA,2022,53(11):1287-1300.
宫祥瑞,蒋滢.机器学习在高分子材料基因组研究中的进展与挑战[J].高分子学报,2022,53(11):1287-1300. DOI: 10.11777/j.issn1000-3304.2022.22094.
Gong Xiang-rui,Jiang Ying.Advances and Challenges of Machine Learning in Polymer Material Genomes[J].ACTA POLYMERICA SINICA,2022,53(11):1287-1300. DOI: 10.11777/j.issn1000-3304.2022.22094.
机器学习对高分子材料基因组的研究与发展有着重要作用.它通过对高分子材料结构描述符的设计与筛选、材料数据库的完善以及聚合物分子结构标识符的发展等方法,有效地构建分子链的化学组成、构象与其聚集态结构、宏观性能之间的联系.本文梳理了近几年机器学习方法在高分子材料科学领域的研究进展,总结了一些常用机器学习算法的应用与研究成果,同时,也针对算法所需的数据量较大等问题,特别指出了应对数据量较少或是数据成本昂贵时的解决方案.根据当前研究进展,整理了机器学习方法在高分子材料科学领域中应用的难题与挑战.
Machine learning (ML) plays an important role in the investigation and development of polymer material genomes. The success of ML-based studies strongly depends on the design and selection of feature descriptors
which reasonably portray chemical and structural characteristics of polymer materials. In this review
we elucidate a few of descriptors commonly utilized for effectively constructing the link between polymer structures
chemical compositions and aggregate structures
macroscopic properties. In addition
the database
especial for the polymer materials
is also explicitly listed
although the continuous development of specific database is still in a large demand. The research progress of ML methods in the field of polymer materials in recent years is reviewed
as well as successful applications and achievements. In particular
the solutions to deal with the small amount of data or the high cost of expensive data are also presented. According to the current research progress
the difficulty and challenge of ML applications in the field of polymer materials are discussed as well.
高分子材料基因组机器学习结构与性能关系目标性能预测与优化多目标优化
Polymer material genomesMachine learningRelations between structures and propertiesPrediction and optimization of target propertiesMulti-objective optimization
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