Multiscale Superpixel-Guided Weighted Graph Convolutional Network for Polarimetric SAR Image Classification

计算机科学 模式识别(心理学) 人工智能 上下文图像分类 图形 旋光法 卷积神经网络 图像(数学) 物理 理论计算机科学 散射 光学
作者
Ru Wang,Yinju Nie,Jie Geng
出处
期刊:IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing [Institute of Electrical and Electronics Engineers]
卷期号:17: 3727-3741 被引量:2
标识
DOI:10.1109/jstars.2024.3355290
摘要

Polarimetric synthetic aperture radar (PolSAR) has attracted more attentions because of its excellent observation ability, and PolSAR image classification has become one of the significant tasks in remote sensing interpretation. Various types and sizes of land cover objects lead to misclassification, especially in the boundaries of different categories. To solve these issues, a multiscale superpixel-guided weighted graph convolutional network (MSGWGCN) is proposed for classifying PolSAR images. In the proposed MSGWGCN, multiscale superpixel features are imported into the weighted graph convolutional network to obtain higher-level representation, which can make full use of land cover object information in PolSAR images. Moreover, to fuse pixel-level features at different scales, a multiscale feature cascade fusion module is built, which plays an important role in preserving classification details. Experiments on three PolSAR datasets indicate that the proposed MSGWGCN performs better than other advanced methods on PolSAR classification task.
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