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15 results on '"Wei, Dong-Qing"'

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1. CELA-MFP: a contrast-enhanced and label-adaptive framework for multi-functional therapeutic peptides prediction.

2. De novo generation of dual-target ligands for the treatment of SARS-CoV-2 using deep learning, virtual screening, and molecular dynamic simulations.

3. TEPCAM: Prediction of T-cell receptor-epitope binding specificity via interpretable deep learning.

4. A Multimodal Deep Learning Framework for Predicting PPI-Modulator Interactions.

5. Deep6mAPred: A CNN and Bi-LSTM-based deep learning method for predicting DNA N6-methyladenosine sites across plant species.

6. Enhancer-LSTMAtt: A Bi-LSTM and Attention-Based Deep Learning Method for Enhancer Recognition.

7. MLCDForest: multi-label classification with deep forest in disease prediction for long non-coding RNAs.

8. Bringing Structural Implications and Deep Learning-Based Drug Identification for KRAS Mutants.

9. LMI-DForest: A deep forest model towards the prediction of lncRNA-miRNA interactions.

10. An end-to-end method for predicting compound-protein interactions based on simplified homogeneous graph convolutional network and pre-trained language model.

11. STGIC: A graph and image convolution-based method for spatial transcriptomic clustering.

12. TEPCAM: Prediction of T‐cell receptor–epitope binding specificity via interpretable deep learning.

13. AFP-MFL: accurate identification of antifungal peptides using multi-view feature learning.

14. Identifying the kind behind SMILES—anatomical therapeutic chemical classification using structure-only representations.

15. Prediction of Recombination Spots Using Novel Hybrid Feature Extraction Method via Deep Learning Approach.

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