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1. framework for predicting variable-length epitopes of human-adapted viruses using machine learning methods.

2. Predicting binding affinities of emerging variants of SARS-CoV-2 using spike protein sequencing data: observations, caveats and recommendations.

3. Deep-AFPpred: identifying novel antifungal peptides using pretrained embeddings from seq2vec with 1DCNN-BiLSTM.

4. Application of artificial intelligence and machine learning for COVID-19 drug discovery and vaccine design.

5. Discovering trends and hotspots of biosafety and biosecurity research via machine learning.

6. Impact of computational approaches in the fight against COVID-19: an AI guided review of 17 000 studies.

7. Benchmarking of analytical combinations for COVID-19 outcome prediction using single-cell RNA sequencing data.

8. COVID-19 vaccine design using reverse and structural vaccinology, ontology-based literature mining and machine learning.

9. Comparative analysis of machine learning-based approaches for identifying therapeutic peptides targeting SARS-CoV-2.

10. multi-modal data harmonisation approach for discovery of COVID-19 drug targets.

11. A framework for predicting variable-length epitopes of human-adapted viruses using machine learning methods