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Deep Fusion of Remote Sensing Data for Accurate Classification
- Publication Year :
- 2017
- Publisher :
- IEEE - Institute of Electrical and Electronics Engineers, 2017.
-
Abstract
- The multisensory fusion of remote sensing data has obtained a great attention in recent years. In this letter, we propose a new feature fusion framework based on deep neural networks (DNNs). The proposed framework employs deep convolutional neural networks (CNNs) to effectively extract features of multi-/hyperspectral and light detection and ranging data. Then, a fully connected DNN is designed to fuse the heterogeneous features obtained by the previous CNNs. Through the aforementioned deep networks, one can extract the discriminant and invariant features of remote sensing data, which are useful for further processing. At last, logistic regression is used to produce the final classification results. Dropout and batch normalization strategies are adopted in the deep fusion framework to further improve classification accuracy. The obtained results reveal that the proposed deep fusion model provides competitive results in terms of classification accuracy. Furthermore, the proposed deep learning idea opens a new window for future remote sensing data fusion.
- Subjects :
- Normalization (statistics)
010504 meteorology & atmospheric sciences
Computer science
Feature extraction
Computer Science::Neural and Evolutionary Computation
Convolutional neural network (CNN)
0211 other engineering and technologies
Normalization (image processing)
02 engineering and technology
computer.software_genre
01 natural sciences
Convolutional neural network
deep neural network (DNN)
hyperspectral image (HSI)
Electrical and Electronic Engineering
Dropout (neural networks)
021101 geological & geomatics engineering
0105 earth and related environmental sciences
Remote sensing
data fusion
multispectral image (MSI)
business.industry
Deep learning
Hyperspectral imaging
Pattern recognition
Geotechnical Engineering and Engineering Geology
Sensor fusion
light detection and ranging (LiDAR)
Lidar
SAR-Signalverarbeitung
Artificial intelligence
Data mining
business
computer
feature extraction (FE)
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Accession number :
- edsair.doi.dedup.....562796091d070ea12cf5000f9e4597bd