2021
DOI: 10.26434/chemrxiv.14643360
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Actively Searching: Inverse Design of Novel Molecules with Simultaneously Optimized Properties

Abstract: <p>Combining quantum chemistry characterizations with generative machine learning models has the potential to accelerate molecular searches in chemical space. In this paradigm, quantum chemistry acts as a relatively cost-effective oracle for evaluating the properties of particular molecules while generative models provide a means of sampling chemical space based on learned structure-function relationships. For practical applications, multiple potentially orthogonal properties must be optimized in tandem … Show more

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