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计算机辅助合成规划(CASP)与机器学习:优化化学反应条件

Computer-Aided Synthesis Planning (CASP) and Machine Learning: Optimizing Chemical Reaction Conditions.

作者信息

Han Yu, Deng Mingjing, Liu Ke, Chen Jia, Wang Yuting, Xu Yu-Ning, Dian Longyang

机构信息

State Key Laboratory of Microbial Technology, Institute of Microbial Technology, Shandong University, No. 72 Binhai Avenue, Qingdao, 266237, P. R. China.

Suzhou Institute of Shandong University, No. 388 Ruoshui Road, Suzhou Industrial Park, Suzhou, 215123, P. R. China.

出版信息

Chemistry. 2024 Oct 1;30(55):e202401626. doi: 10.1002/chem.202401626. Epub 2024 Sep 17.

Abstract

Computer-aided synthesis planning (CASP) has garnered increasing attention in light of recent advancements in machine learning models. While the focus is on reverse synthesis or forward outcome prediction, optimizing reaction conditions remains a significant challenge. For datasets with multiple variables, the choice of descriptors and models is pivotal. This selection dictates the effective extraction of conditional features and the achievement of higher prediction accuracy. This review delineates the origins of data in conditional optimization, the criteria for descriptor selection, the response models, and the metrics for outcome evaluation, aiming to acquaint readers with the latest research trends and facilitate more informed research in this domain.

摘要

鉴于机器学习模型的最新进展,计算机辅助合成规划(CASP)受到了越来越多的关注。虽然重点在于逆合成或正向结果预测,但优化反应条件仍然是一项重大挑战。对于具有多个变量的数据集,描述符和模型的选择至关重要。这种选择决定了条件特征的有效提取以及更高预测准确性的实现。本综述阐述了条件优化中数据的来源、描述符选择标准、响应模型以及结果评估指标,旨在使读者熟悉最新的研究趋势,并促进该领域更明智的研究。

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