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The logic of translating chemical knowledge into machine-processable forms: a modern playground for physical-organic chemistry

机译:将化学知识转化为机器加工形式的逻辑:物理有机化学的现代游乐场

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摘要

Recent years have brought renewed interest - and tremendous progress - in computer-assisted synthetic planning. Although the vast majority of the proposed solutions rely on individual reaction rules that are subsequently combined into full synthetic sequences, surprisingly little attention has been paid in the litera- ture to how these rules should be encoded to ensure chemical correctness and applicability to syntheses which organic-synthetic chemists would find of practical interest. This is a dangerous omission since any AI algorithms for synthetic design will be only as good as the basic synthetic “moves” underlying them. This Perspective aims to fill this gap and outline the logic that should be followed when translating organic- synthetic knowledge into reaction rules understandable to the machine. The process entails numerous considerations ranging from careful study of reaction mechanisms, to molecular and quantum mechanics, to AI routines. In this way, the machine is not only taught the reaction “cores” but is also able to account for various effects that, historically, have been studied and quantified by physical-organic chemists. While physical organic chemistry might no longer be at the forefront of modern chemical research, we suggest that it can find a new and useful embodiment though a conjunction with computerized synthetic planning and related AI methods.
机译:近年来带来了重复的兴趣 - 以及巨大的进步 - 在计算机辅助的综合规划中。虽然绝大多数提出的解决方案依赖于随后将其组合成全合成序列的单独反应规则,但在文献中,对于如何编码这些规则来确保化学正确性和合成的合成的合成来说,令人惊讶地注意力的令人惊讶的是。 - 合成化学家会发现实际的兴趣。这是一个危险的遗漏,因为合成设计的任何AI算法都是基本合成“动作”底层的算法。这种观点旨在填补这一差距并概述应遵循的逻辑,这些逻辑将在对机器易于理解的反应规则转化为反应规则时应遵循的逻辑。该过程需要许多考虑因素,从仔细研究反应机制到分子和量子力学,对AI常规。通过这种方式,该机器不仅教导了反应“核心”,而且还能够考虑历史上的各种效果,通过物理 - 有机化学者研究和量化。虽然物理有机化学可能不再处于现代化学研究的最前沿,但我们建议它可以找到一个新的和有用的一个实施例,尽管与计算机化综合规划和相关的AI方法结合。

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