Gajbhiye046 / Bioinformatics-project-for-Drug-Discovery-chEMBL-Database-

Using Machine Learning for computational drug discovery.

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Application of Machine Learning in Drug Discovery and development .

Read more about it here. url : https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6552674/

Drug discovery and development pipelines are long, complex and depend on numerous factors. Machine learning (ML) approaches provide a set of tools that can improve discovery and decision making for well-specified questions with abundant, high-quality data. Opportunities to apply ML occur in all stages of drug discovery. Applications have ranged in context and methodology, with some approaches yielding accurate predictions and insights. In all areas, systematic and comprehensive high-dimensional data still need to be generated. With ongoing efforts to tackle these issues, as well as increasing awareness of the factors needed to validate ML approaches, the application of ML can promote data-driven decision making and has the potential to speed up the process and reduce failure rates in drug discovery and development.

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Using Machine Learning for computational drug discovery.


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