Multi-frequency PolSAR Image Fusion Classification Based on Semantic Interactive Information and Topological Structure
Yice Cao, Yan Wu, Ming Li, Mingjie Zheng, Peng Zhang, Jili Wang

TL;DR
This paper introduces MF-STFnet, a novel deep learning framework that fuses semantic and topological information for improved multi-frequency PolSAR image land cover classification, addressing local and nonlocal spatial relationships.
Contribution
It proposes a dual-branch network combining semantic interaction and topological structure, explicitly modeling band correlations and nonlocal relations for better classification accuracy.
Findings
MF-STFnet outperforms existing methods in classification accuracy.
The model effectively leverages band complementarity and nonlocal spatial information.
Experimental results demonstrate improved robustness and discrimination in land cover classification.
Abstract
Compared with the rapid development of single-frequency multi-polarization SAR image classification technology, there is less research on the land cover classification of multifrequency polarimetric SAR (MF-PolSAR) images. In addition, the current deep learning methods for MF-PolSAR classification are mainly based on convolutional neural networks (CNNs), only local spatiality is considered but the nonlocal relationship is ignored. Therefore, based on semantic interaction and nonlocal topological structure, this paper proposes the MF semantics and topology fusion network (MF-STFnet) to improve MF-PolSAR classification performance. In MF-STFnet, two kinds of classification are implemented for each band, semantic information-based (SIC) and topological property-based (TPC). They work collaboratively during MF-STFnet training, which can not only fully leverage the complementarity of bands,…
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Taxonomy
TopicsRemote-Sensing Image Classification · Synthetic Aperture Radar (SAR) Applications and Techniques · Geochemistry and Geologic Mapping
