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

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