Graph Neural Network for Hyperspectral Image Clustering

£129.50

Graph Neural Network for Hyperspectral Image Clustering

Medical research Mathematical modelling Electronics engineering Machine learning Image processing

Authors: Yao Ding, Zhili Zhang, Haojie Hu, Renxiang Guan, Jie Feng, Zhiyong Lv

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Collection: Intelligent Perception and Information Processing

Language: English

Published by: Springer

Published on: 9th August 2025

Format: LCP-protected ePub

ISBN: 9789819677108


Overview

This book investigates detailed hyperspectral image clustering using graph neural network (graph learning) methods, focusing on the overall construction of the model, design of self-supervised methods, image pre-processing, and feature extraction of graph information.

Proposed Methods

Multiple graph neural network-based clustering methods for hyperspectral images are proposed, effectively improving the clustering accuracy of hyperspectral images and taking an important step towards the practical application of hyperspectral images.

Target Audience and Significance

This book is innovative in content and emphasizes the integration of theory with practice, which can be used as a reference book for graduate students, senior undergraduate students, researchers, and engineering technicians in related majors such as electronic information engineering, computer application technology, automation, instrument science and technology, remote sensing.

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