29 results on '"Subramanian, Vigneshwari"'
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2. Towards Explainable Anticancer Compound Sensitivity Prediction via Multimodal Attention-based Convolutional Encoders
3. PaccMann: Prediction of anticancer compound sensitivity with multi-modal attention-based neural networks
4. Interpretation of multi-task clearance models from molecular images supported by experimental design
5. Multi-task convolutional neural networks for predicting in vitro clearance endpoints from molecular images
6. PKSmart: An Open-Source Computational Model to Predictin vivoPharmacokinetics of Small Molecules
7. Perspectives on the use of machine learning for ADME prediction at AstraZeneca.
8. Blinded Predictions and Post Hoc Analysis of the Second Solubility Challenge Data: Exploring Training Data and Feature Set Selection for Machine and Deep Learning Models
9. Patient-specific Boolean models of signalling networks guide personalised treatments
10. Patient-specific Boolean models of signalling networks guide personalised treatments
11. Patient-specific Boolean models of signalling networks guide personalised treatments
12. Author response: Patient-specific Boolean models of signalling networks guide personalised treatments
13. Patient-specific Boolean models of signaling networks guide personalized treatments
14. Multisolvent Models for Solvation Free Energy Predictions Using 3D-RISM Hydration Thermodynamic Descriptors
15. Multi-Solvent Models for Solvation Free Energy Predictions Using 3D-RISM Hydration Thermodynamic Descriptors
16. Toward Explainable Anticancer Compound Sensitivity Prediction via Multimodal Attention-Based Convolutional Encoders
17. Signatures of cell death and proliferation in perturbation transcriptomics data—from confounding factor to effective prediction
18. Signatures of cell death and proliferation in perturbation transcriptomics data - from confounding factor to effective prediction
19. Application of network diffusion approaches to drug screenings: A perspective on multilayered networks derived from drugs and cell lines
20. Field-based Proteochemometric Models Derived from 3D Protein Structures : A Novel Approach to Visualize Affinity and Selectivity Features
21. Application of network diffusion approaches to drug screenings: A perspective on multilayered networks derived from cell lines and drugs
22. 3D proteochemometrics: using three-dimensional information of proteins and ligands to address aspects of the selectivity of serine proteases
23. Field-based Proteochemometric Models Derived from 3D Protein Structures: A Novel Approach to Visualize Affinity and Selectivity Features
24. Visually Interpretable Models of Kinase Selectivity Related Features Derived from Field-Based Proteochemometrics
25. Predictive proteochemometric models for kinases derived from 3D protein field-based descriptors
26. Polypharmacology modelling using proteochemometrics (PCM): recent methodological developments, applications to target families, and future prospects
27. Visually Interpretable Models of Kinase Selectivity Related Features Derived from Field-Based Proteochemometrics
28. Toward Explainable Anticancer Compound Sensitivity Prediction via Multimodal Attention-Based Convolutional Encoders
29. Using attention-based neural networks to enable explainable drug sensitivity prediction on multimodal data
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