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Property Prediction

Property prediction involves forecasting or estimating a molecule's inherent physical and chemical properties based on information derived from its structural characteristics. It facilitates high-throughput evaluation of an extensive array of molecular properties, enabling the virtual screening of compounds. Additionally, it provides the means to predict the unknown attributes of new molecules, thereby bolstering research efficiency and reducing development times.

Papers

Showing 391400 of 691 papers

TitleStatusHype
Heat Kernel Goes Topological0
HELM: Hierarchical Encoding for mRNA Language Modeling0
HeMeNet: Heterogeneous Multichannel Equivariant Network for Protein Multitask Learning0
Hybrid machine-learned homogenization: Bayesian data mining and convolutional neural networks0
Hybrid Quantum Graph Neural Network for Molecular Property Prediction0
Image-Like Graph Representations for Improved Molecular Property Prediction0
Improving Counterfactual Truthfulness for Molecular Property Prediction through Uncertainty Quantification0
Improving Performance Prediction of Electrolyte Formulations with Transformer-based Molecular Representation Model0
In-Context Learning for Few-Shot Molecular Property Prediction0
In-Context Learning of Physical Properties: Few-Shot Adaptation to Out-of-Distribution Molecular Graphs0
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