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Remote Sensing • Vol 10 • No 3
Hyperspectral Classification Based on Texture Feature Enhancement and Deep Belief Networks
March 2018 • Jiaojiao Li, Bobo Xi, Yunsong Li, Qian Du, Keyan Wang
With success of Deep Belief Networks (DBNs) in computer vision, DBN has attracted great attention in hyperspectral classification. Many deep learning based algorithms have been focused on deep feature extraction for classification improvement. Multi-features, such as texture feature, are widely utilized in classification process to enhance classification accuracy greatly. In this paper, a novel hyperspectral classification framework based on an optimal DBN and a novel texture feature enhancement (TFE) is proposed.…
Artificial Intelligence
Computer Science
Feature Selection
Deep Learning
Philosophy