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1. An Attention-Guided Complex-Valued Transformer for Intra-Pulse Retransmission Interference Suppression.

2. SSAformer: Spatial–Spectral Aggregation Transformer for Hyperspectral Image Super-Resolution.

3. MEA-EFFormer: Multiscale Efficient Attention with Enhanced Feature Transformer for Hyperspectral Image Classification.

4. Ship Detection with Deep Learning in Optical Remote-Sensing Images: A Survey of Challenges and Advances.

5. LinkNet-Spectral-Spatial-Temporal Transformer Based on Few-Shot Learning for Mangrove Loss Detection with Small Dataset.

6. Spatial-Spectral BERT for Hyperspectral Image Classification.

7. HyperSFormer: A Transformer-Based End-to-End Hyperspectral Image Classification Method for Crop Classification.

8. The MS-RadarFormer: A Transformer-Based Multi-Scale Deep Learning Model for Radar Echo Extrapolation.

9. MTU 2 -Net: Extracting Internal Solitary Waves from SAR Images.

10. Super Resolution of Satellite-Derived Sea Surface Temperature Using a Transformer-Based Model.

11. LRTransDet: A Real-Time SAR Ship-Detection Network with Lightweight ViT and Multi-Scale Feature Fusion.

12. MeViT: A Medium-Resolution Vision Transformer for Semantic Segmentation on Landsat Satellite Imagery for Agriculture in Thailand.

13. Mapping of Rubber Forest Growth Models Based on Point Cloud Data.

14. MosReformer: Reconstruction and Separation of Multiple Moving Targets for Staggered SAR Imaging.

15. Regional-to-Local Point-Voxel Transformer for Large-Scale Indoor 3D Point Cloud Semantic Segmentation.

16. Deep Learning for Remote Sensing Image Scene Classification: A Review and Meta-Analysis.

17. CNN and Transformer Fusion for Remote Sensing Image Semantic Segmentation.

18. Imitation Learning through Image Augmentation Using Enhanced Swin Transformer Model in Remote Sensing.

19. Spectral Swin Transformer Network for Hyperspectral Image Classification.

20. Unmixing-Guided Convolutional Transformer for Spectral Reconstruction.

21. Deep Learning Approaches for Wildland Fires Remote Sensing: Classification, Detection, and Segmentation.

22. Evaluation and Comparison of Semantic Segmentation Networks for Rice Identification Based on Sentinel-2 Imagery.