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材料研究中文本挖掘的机遇与挑战。 (注:原英文中“aterials”有误,正确应为“materials”)

Opportunities and challenges of text mining in aterials research.

作者信息

Kononova Olga, He Tanjin, Huo Haoyan, Trewartha Amalie, Olivetti Elsa A, Ceder Gerbrand

机构信息

Department of Materials Science & Engineering, University of California, Berkeley, CA 94720, USA.

Materials Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA.

出版信息

iScience. 2021 Feb 6;24(3):102155. doi: 10.1016/j.isci.2021.102155. eCollection 2021 Mar 19.

Abstract

Research publications are the major repository of scientific knowledge. However, their unstructured and highly heterogenous format creates a significant obstacle to large-scale analysis of the information contained within. Recent progress in natural language processing (NLP) has provided a variety of tools for high-quality information extraction from unstructured text. These tools are primarily trained on non-technical text and struggle to produce accurate results when applied to scientific text, involving specific technical terminology. During the last years, significant efforts in information retrieval have been made for biomedical and biochemical publications. For materials science, text mining (TM) methodology is still at the dawn of its development. In this review, we survey the recent progress in creating and applying TM and NLP approaches to materials science field. This review is directed at the broad class of researchers aiming to learn the fundamentals of TM as applied to the materials science publications.

摘要

研究出版物是科学知识的主要宝库。然而,其非结构化和高度异质的格式给大规模分析其中包含的信息造成了重大障碍。自然语言处理(NLP)的最新进展提供了各种从非结构化文本中提取高质量信息的工具。这些工具主要是在非技术文本上进行训练的,当应用于包含特定技术术语的科学文本时,很难产生准确的结果。在过去几年中,在生物医学和生化出版物的信息检索方面已经做出了重大努力。对于材料科学而言,文本挖掘(TM)方法仍处于发展初期。在本综述中,我们考察了在材料科学领域创建和应用文本挖掘及自然语言处理方法的最新进展。本综述面向广大旨在学习应用于材料科学出版物的文本挖掘基础知识的研究人员。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/46ed/7905448/0a997e34083b/fx1.jpg

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