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1. LOTUS: A single- and multitask machine learning algorithm for the prediction of cancer driver genes.

2. Scaling up data curation using deep learning: An application to literature triage in genomic variation resources.

3. Systematically benchmarking peptide-MHC binding predictors: From synthetic to naturally processed epitopes.

4. Solving the RNA design problem with reinforcement learning.

5. A machine learning approach for predicting CRISPR-Cas9 cleavage efficiencies and patterns underlying its mechanism of action.

6. DeepPep: Deep proteome inference from peptide profiles.

7. Learning from Heterogeneous Data Sources: An Application in Spatial Proteomics.

8. Improved Contact Predictions Using the Recognition of Protein Like Contact Patterns.