Academic Publication MvMRL: a multi-view molecular representation learning method for molecular property prediction
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MvMRL: a multi-view molecular representation learning method for molecular property prediction
AbstractEffective molecular representation learning is very important for Artificial Intelligence-driven Drug Design because it affects the accuracy and efficiency of molecular property prediction ...
Generalized biomolecular modeling and design with RoseTTAFold All-Atom
Deep-learning methods have revolutionized protein structure prediction and design but are presently limited to protein-only systems. We describe RoseTTAFold All-Atom (RFAA), which combines a residu...
Boltz-2: Towards Accurate and Efficient Binding Affinity Prediction
Abstract Accurately modeling biomolecular interactions is a central challenge in modern biology. While recent advances, such as AlphaFold3 and Boltz-1, have subst...
Deep-PK: deep learning for small molecule pharmacokinetic and toxicity prediction
Abstract Evaluating pharmacokinetic properties of small molecules is considered a key feature in most drug development and high-throughput screening processes. Generally, pharmacokin...
Testing the predictive power of reverse screening to infer drug targets, with the help of machine learning
AbstractEstimating protein targets of compounds based on the similarity principle—similar molecules are likely to show comparable bioactivity—is a long-standing strategy in drug research. Having pr...
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What is the core focus of the research titled 'MvMRL: a multi-view molecular representation learning method for molecular property prediction'?
This literature focuses on: AbstractEffective molecular representation learning is very important for Artificial Intelligence-driven Drug Design because it affects the accuracy and efficiency of molecular property prediction and other molecular modeling relevant tasks. Howev...
What other academic literature is closely related to 'MvMRL: a multi-view molecular representation learning method for molecular property prediction'?
Yes, highly correlated activity was mapped. An entry titled 'MvMRL: a multi-view molecular representation learning method for molecular property prediction' discusses this: AbstractEffective molecular representation learning is very important for Artificial Intelligence-driven Drug Design because it affects the accurac...
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