AI Article Synopsis

  • Computer-aided synthesis planning is about finding ways to make new chemicals using friendly methods for the environment.
  • A new computer algorithm called Monte Carlo Tree Search (MCTS) helps to better explore options for creating these chemicals while avoiding harmful processes.
  • This new method is not only faster at finding eco-friendly routes but also improves the success rate and offers shorter pathways than earlier methods.

Article Abstract

Computer aided synthesis planning of synthetic pathways with green process conditions has become of increasing importance in organic chemistry, but the large search space inherent in synthesis planning and the difficulty in predicting reaction conditions make it a significant challenge. We introduce a new Monte Carlo Tree Search (MCTS) variant that promotes balance between exploration and exploitation across the synthesis space. Together with a value network trained from reinforcement learning and a solvent-prediction neural network, our algorithm is comparable to the best MCTS variant (PUCT, similar to Google's Alpha Go) in finding valid synthesis pathways within a fixed searching time, and superior in identifying shorter routes with greener solvents under the same search conditions. In addition, with the same root compound visit count, our algorithm outperforms the PUCT MCTS by 16% in terms of determining successful routes. Overall the success rate is improved by 19.7% compared to the upper confidence bound applied to trees (UCT) MCTS method. Moreover, we improve 71.4% of the routes proposed by the PUCT MCTS variant in pathway length and choices of green solvents. The approach generally enables including Green Chemistry considerations in computer aided synthesis planning with potential applications in process development for fine chemicals or pharmaceuticals.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8162445PMC
http://dx.doi.org/10.1039/d0sc04184jDOI Listing

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