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Using machine learning to explore formulations recipes with new ingredients

机译:使用机器学习探索配方配方与新成分

摘要

A system and a method are disclosed that, in an embodiment, receive first input from a user of a candidate formulation recipe, and second input from the user of target properties and target property constraints. The system inputs the first input into a machine learning model, the model having been trained using historical training data, each element of the historical training data corresponding to a known formulation having a known feature representation, each known formulation having associated properties and statistical representations of each feature of the known formulation that form the known feature representation. The system receives as output from the model a predicted property of a candidate formulation derived using the first input and the likelihood that the candidate formulation satisfies the target property constraints using the second input. The system generates for display to the user a predicted likelihood that the predicted property satisfies the second input.
机译:公开了一种系统和方法,在一个实施例中,从候选配方配方的用户接收第一输入,以及来自目标属性的用户的第二输入和目标属性约束。系统将第一输入输入到机器学习模型中,该模型已经使用历史训练数据进行了训练,历史训练数据的每个元素对应于具有已知特征表示的已知配方,每个已知的配方具有相关性和统计表示形成已知特征表示的已知配方的每个特征。系统从模型从模型的输出接收使用第一输入导出的候选制构的预测属性以及使用第二输入满足目标属性约束的可能性。系统生成用于向用户显示预测属性满足第二输入的预测可能性。

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