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1. Object-Based Semi-Supervised Spatial Attention Residual UNet for Urban High-Resolution Remote Sensing Image Classification.

2. Research on the Applicability of Transformer Model in Remote-Sensing Image Segmentation.

3. Semantic Segmentation of Remote Sensing Imagery Based on Multiscale Deformable CNN and DenseCRF.

4. SCE-Net: Self- and Cross-Enhancement Network for Single-View Height Estimation and Semantic Segmentation.

5. Edge Guided Context Aggregation Network for Semantic Segmentation of Remote Sensing Imagery.

6. An improved U-Net method for the semantic segmentation of remote sensing images.

7. Data-Efficient Domain Adaptation for Semantic Segmentation of Aerial Imagery Using Generative Adversarial Networks.

8. Wavelet Transform Feature Enhancement for Semantic Segmentation of Remote Sensing Images.

9. Combining max-pooling and wavelet pooling strategies for semantic image segmentation.

10. Memory-Augmented Transformer for Remote Sensing Image Semantic Segmentation.

11. StyHighNet: Semi-Supervised Learning Height Estimation from a Single Aerial Image via Unified Style Transferring.

12. HRCNet: High-Resolution Context Extraction Network for Semantic Segmentation of Remote Sensing Images.

13. Height estimation from single aerial imagery using contrastive learning based multi-scale refinement network.

14. Semantic Segmentation of Remote-Sensing Images Through Fully Convolutional Neural Networks and Hierarchical Probabilistic Graphical Models.

15. Semantic Segmentation of Very-High-Resolution Remote Sensing Images via Deep Multi-Feature Learning.

16. Hybridizing Cross-Level Contextual and Attentive Representations for Remote Sensing Imagery Semantic Segmentation.

17. Semantic Segmentation of Aerial Imagery via Split-Attention Networks with Disentangled Nonlocal and Edge Supervision.

18. EANet: Edge-Aware Network for the Extraction of Buildings from Aerial Images.

19. Real-Time Dense Semantic Labeling with Dual-Path Framework for High-Resolution Remote Sensing Image.

20. A Dual-Path and Lightweight Convolutional Neural Network for High-Resolution Aerial Image Segmentation.

21. 2D Image-To-3D Model: Knowledge-Based 3D Building Reconstruction (3DBR) Using Single Aerial Images and Convolutional Neural Networks (CNNs).