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1. MITNet: a fusion transformer and convolutional neural network architecture approach for T-cell epitope prediction.

2. ACP_MS: prediction of anticancer peptides based on feature extraction.

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

4. PBRpredict-Suite: a suite of models to predict peptide-recognition domain residues from protein sequence.