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16 results

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

2. Transient crosslinking kinetics optimize gene cluster interactions.

3. PrediTALE: A novel model learned from quantitative data allows for new perspectives on TALE targeting.

4. A data-driven interactome of synergistic genes improves network-based cancer outcome prediction.

5. SFPEL-LPI: Sequence-based feature projection ensemble learning for predicting LncRNA-protein interactions.

6. Efficient pedigree recording for fast population genetics simulation.

7. A marginalized two-part Beta regression model for microbiome compositional data.

8. A phylogenetic method to perform genome-wide association studies in microbes that accounts for population structure and recombination.

9. Leveraging functional annotations in genetic risk prediction for human complex diseases.

10. Fast and general tests of genetic interaction for genome-wide association studies.

11. graph-GPA: A graphical model for prioritizing GWAS results and investigating pleiotropic architecture.

12. Genome composition and phylogeny of microbes predict their co-occurrence in the environment.

13. A Graph-Centric Approach for Metagenome-Guided Peptide and Protein Identification in Metaproteomics.

14. Accuracy of Answers to Cell Lineage Questions Depends on Single-Cell Genomics Data Quality and Quantity.

15. A Scalable Computational Framework for Establishing Long-Term Behavior of Stochastic Reaction Networks.

16. Modeling Mutual Exclusivity of Cancer Mutations.