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机器学习在有机化学中的应用

本站小编 Free考研考试/2022-02-14

摘要/Abstract



近年来,由于计算能力、大数据和算法的不断进步,人工智能(Artificial intelligence,AI)重新兴起,已成为诸多研究领域变革性发展背后的重要推动力.机器学习(Machine learning,ML)是人工智能一个重要的研究领域.随着化学信息学的发展,机器学习在化学领域展现出巨大的发展潜力,也为有机化学的发展带来了新的机遇.为帮助有机化学家了解这一新兴领域,对如何将机器学习策略应用于有机化学研究做简单介绍,同时,概括总结了机器学习在化合物性质预测、分子从头设计、化学反应预测、逆合成分析和智能合成机器方面的应用实例,分析讨论了当前机器学习在有机化学领域面临的挑战和难题.
关键词: 机器学习, 分子描述符, 算法, 化学性质预测, 分子从头设计, 化学反应预测, 逆合成分析
Driven by nowadays’ computing power, big data technology as well as learning algorithm, artificial intelligence (AI) has gained trenmendous attentions and become a transformative approach in many research areas. One of the most extensively explored AI approaches in chemistry is (deep) machine learning, which provides new twists in the fields of organic chemistry. The workflow of machine learning (ML) study in organic chemistry is briefly introduced. Meanwhile, the application of ML in the accurate prediction of chemical properties, molecular de novo design, chemical reaction prediction, retrosynthetic analysis and artificial intelligence synthetic machine are also summarized. In the end, the current challenges in this field are analyzed and discussed.
Key words: machine learning, molecular descriptor, algorithm, chemical property prediction, de novo design, chemical reaction prediction, retrosynthesis analysis


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