JOURNAL ARTICLE

Semisupervised Hyperspectral Image Classification via Neighborhood Graph Learning

Daniel Jiwoong ImGraham W. Taylor

Year: 2015 Journal:   IEEE Geoscience and Remote Sensing Letters Vol: 12 (9)Pages: 1913-1917   Publisher: Institute of Electrical and Electronics Engineers

Abstract

In problems where labeled data are scarce, semisupervised learning (SSL) techniques are an attractive framework that can exploit both labeled and unlabeled data. These approaches typically rely on a smoothness assumption such that examples that are similar in input space should also be similar in label space. In many domains, such as remotely sensed hyperspectral image (HSI) classification, the data violate this assumption. In response, we propose a general method by which a neighborhood graph used in SSL is learned using binary classifiers that are trained to predict whether a pair of pixels shares the same label. Working within the framework of semisupervised neural networks (SSNNs), we show that our approach improves on the performance of the SSNN on two HSI data sets.

Keywords:
Hyperspectral imaging Artificial intelligence Computer science Pattern recognition (psychology) Exploit Pixel Graph Labeled data Binary classification Contextual image classification Image (mathematics) Machine learning Support vector machine Theoretical computer science

Metrics

21
Cited By
2.37
FWCI (Field Weighted Citation Impact)
16
Refs
0.91
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Remote-Sensing Image Classification
Physical Sciences →  Engineering →  Media Technology
Remote Sensing and Land Use
Physical Sciences →  Earth and Planetary Sciences →  Atmospheric Science
Advanced Image Fusion Techniques
Physical Sciences →  Engineering →  Media Technology

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