JOURNAL ARTICLE

Remote Sensing Image Land Classification Based on Deep Learning

Kai ZhangChengquan HuHang Yu

Year: 2021 Journal:   Scientific Programming Vol: 2021 Pages: 1-12   Publisher: Hindawi Publishing Corporation

Abstract

Aiming at the problems of high-resolution remote sensing images with many features and low classification accuracy using a single feature description, a remote sensing image land classification model based on deep learning from the perspective of ecological resource utilization is proposed. Firstly, the remote sensing image obtained by Gaofen-1 satellite is preprocessed, including multispectral data and panchromatic data. Then, the color, texture, shape, and local features are extracted from the image data, and the feature-level image fusion method is used to associate these features to realize the fusion of remote sensing image features. Finally, the fused image features are input into the trained depth belief network (DBN) for processing, and the land type is obtained by the Softmax classifier. Based on the Keras and TensorFlow platform, the experimental analysis of the proposed model shows that it can clearly classify all land types, and the overall accuracy, F1 value, and reasoning time of the classification results are 97.86%, 87.25%, and 128 ms, respectively, which are better than other comparative models.

Keywords:
Softmax function Panchromatic film Artificial intelligence Computer science Remote sensing Pattern recognition (psychology) Image fusion Classifier (UML) Multispectral image Contextual image classification Feature (linguistics) Convolutional neural network Computer vision Image (mathematics) Geography

Metrics

6
Cited By
0.41
FWCI (Field Weighted Citation Impact)
24
Refs
0.64
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Remote Sensing and Land Use
Physical Sciences →  Earth and Planetary Sciences →  Atmospheric Science
Remote-Sensing Image Classification
Physical Sciences →  Engineering →  Media Technology
Land Use and Ecosystem Services
Physical Sciences →  Environmental Science →  Global and Planetary Change

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