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Classification of multispectral imagery using dynamic learning neural network
K. S. Chen, Y. C. Tzeng,
C. F. Chen
, W. L. Kao, C. L. Ni
太空及遙測研究中心
土木工程學系
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引文 斯高帕斯(Scopus)
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Keyphrases
Dynamic Learning
100%
Learning Neural Network
100%
Multispectral Imagery
100%
Classification Accuracy
66%
Training Time
66%
Neural Network Training
33%
Multilayer Perceptron
33%
Kalman Filter Algorithm
33%
High-resolution
33%
Land Cover
33%
Northern Taiwan
33%
Simulated Images
33%
Neural Network
33%
Backpropagation
33%
Training Data
33%
Network Architecture
33%
Classification Performance
33%
Man-made
33%
Classification Results
33%
Land Cover Classification
33%
Training Process
33%
Three-band
33%
Real Image
33%
Neural Nets
33%
Bare Soil
33%
Adaptation Rules
33%
Taoyuan County
33%
Timing Accuracy
33%
Learning Networks
33%
Agriculture Area
33%
Feed Forward Net
33%
Pond Soil
33%
Barren Soil
33%
Small Ponds
33%
Soil-vegetation
33%
Built-up Land
33%
Engineering
Classification Accuracy
100%
Deep Learning Method
100%
Land Cover
100%
High Resolution
50%
Nodes
50%
Input Node
50%
Kalman Filter
50%
Feedforward
50%
Test Site
50%
Classification Performance
50%
Real Image
50%
Output Node
50%
Perceptron
50%
Earth and Planetary Sciences
Land Cover
100%
Taiwan
50%
Vegetation
50%
SPOT
50%
Self Organizing Systems
50%
Neural Net
50%
Kalman Filter
50%