Genetic Algorithms for the Discovery of Homogeneous Catalysts.

Simone Gallarati, Puck Van Gerwen, Alexandre A Schoepfer, Ruben Laplaza, Clemence Corminboeuf
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引用次数: 1

Abstract

In this account, we discuss the use of genetic algorithms in the inverse design process of homogeneous catalysts for chemical transformations. We describe the main components of evolutionary experiments, specifically the nature of the fitness function to optimize, the library of molecular fragments from which potential catalysts are assembled, and the settings of the genetic algorithm itself. While not exhaustive, this review summarizes the key challenges and characteristics of our own (i.e., NaviCatGA) and other GAs for the discovery of new catalysts.

发现均相催化剂的遗传算法。
在本帐户中,我们讨论了遗传算法在化学转化均相催化剂的反设计过程中的应用。我们描述了进化实验的主要组成部分,特别是要优化的适应度函数的性质,组装潜在催化剂的分子片段库,以及遗传算法本身的设置。虽然不是详尽无遗,但本文总结了我们自己的(即NaviCatGA)和其他GAs在发现新催化剂方面的主要挑战和特点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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