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28 results

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

2. LMTRDA: Using logistic model tree to predict MiRNA-disease associations by fusing multi-source information of sequences and similarities.

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

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

5. Predicting B cell receptor substitution profiles using public repertoire data.

6. Correcting for batch effects in case-control microbiome studies.

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

8. Machine Learning Meta-analysis of Large Metagenomic Datasets: Tools and Biological Insights.

9. Disease gene prediction for molecularly uncharacterized diseases.

10. Modeling the temporal dynamics of the gut microbial community in adults and infants.

11. Ten simple rules for carrying out and writing meta-analyses.

12. Exon level machine learning analyses elucidate novel candidate miRNA targets in an avian model of fetal alcohol spectrum disorder.

13. A computational framework To assess genome-wide distribution Of polymorphic human endogenous retrovirus-K In human populations.

14. PAIRUP-MS: Pathway analysis and imputation to relate unknowns in profiles from mass spectrometry-based metabolite data.

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

16. SILGGM: An extensive R package for efficient statistical inference in large-scale gene networks.

17. miRAW: A deep learning-based approach to predict microRNA targets by analyzing whole microRNA transcripts.

18. beachmat: A Bioconductor C++ API for accessing high-throughput biological data from a variety of R matrix types.

19. Cox-nnet: An artificial neural network method for prognosis prediction of high-throughput omics data.

20. mixOmics: An R package for ‘omics feature selection and multiple data integration.

21. A quadratically regularized functional canonical correlation analysis for identifying the global structure of pleiotropy with NGS data.

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

23. ROTS: An R package for reproducibility-optimized statistical testing.

24. Variable habitat conditions drive species covariation in the human microbiota.

25. Two dynamic regimes in the human gut microbiome.

26. Bipartite Community Structure of eQTLs.

27. Learning to Predict miRNA-mRNA Interactions from AGO CLIP Sequencing and CLASH Data.

28. Emergence of cooperative bistability and robustness of gene regulatory networks