Satellite image recognition using ensemble neural networks and difference gradient positive-negative momentum
Тип публикации: Journal Article
Дата публикации: 2024-02-01
scimago Q1
wos Q1
БС1
SJR: 1.184
CiteScore: 9.9
Impact factor: 5.6
ISSN: 09600779, 18732887
General Physics and Astronomy
Statistical and Nonlinear Physics
General Mathematics
Applied Mathematics
Краткое описание
The modern machine learning theory finds application in many areas of human activity. One of the most dispersed tasks is pattern recognition on satellite images. It is difficult for a person to recognize a large number of images in a short time. It made the researchers develop the automation process, such as neural network engagement. The loss function minimization and ensemble learning raise the pattern recognition accuracy. We propose the robust difference gradient positive-negative momentum optimization algorithm that achieves the global minimum of the loss function with higher accuracy and fewer iterations than known analogs. Such an optimization algorithm contains the generalized average moving estimation approach and more effective learning rate control by additional parameters. The proposed optimizer has the regret-bound rate estimation, belonging to OT, and converges to the global minimum. However, the main problems in optimization theory are vanishing and blowing gradient values, where the standard gradient-based algorithms fail to achieve the required objective function value. The vanishing and blowing gradient problems meet in Rastrigin and Rosebrock test functions, where the proposed optimization algorithm attains the global extreme in the shortest number of iterations and has a more stable convergence process than state-of-the-art methods. Afterward, there are trained deep convolutional neural networks with different optimizers on satellite images from the University of California merced dataset containing 21 object classes, where the proposed algorithm gives the highest accuracy. There is a suggested ensemble-learning model consisting of 4 networks with different optimizers. The prediction results receive weight coefficients distributed according to the majority voting and ensemble neural network retrains with the higher pattern recognition accuracy. The suggested ensemble-learning model with the developed optimizer raised the accuracy by 1 %–4 % percentage points.
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Всего цитирований:
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Цитирований c 2024:
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(100%)
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ГОСТ
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Abdulkadirov R. et al. Satellite image recognition using ensemble neural networks and difference gradient positive-negative momentum // Chaos, Solitons and Fractals. 2024. Vol. 179. p. 114432.
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Abdulkadirov R., Lyakhov P., Bergerman M., Reznikov D. Satellite image recognition using ensemble neural networks and difference gradient positive-negative momentum // Chaos, Solitons and Fractals. 2024. Vol. 179. p. 114432.
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TY - JOUR
DO - 10.1016/j.chaos.2023.114432
UR - https://linkinghub.elsevier.com/retrieve/pii/S0960077923013346
TI - Satellite image recognition using ensemble neural networks and difference gradient positive-negative momentum
T2 - Chaos, Solitons and Fractals
AU - Abdulkadirov, Ruslan
AU - Lyakhov, Pavel
AU - Bergerman, M
AU - Reznikov, D
PY - 2024
DA - 2024/02/01
PB - Elsevier
SP - 114432
VL - 179
SN - 0960-0779
SN - 1873-2887
ER -
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BibTex (до 50 авторов)
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@article{2024_Abdulkadirov,
author = {Ruslan Abdulkadirov and Pavel Lyakhov and M Bergerman and D Reznikov},
title = {Satellite image recognition using ensemble neural networks and difference gradient positive-negative momentum},
journal = {Chaos, Solitons and Fractals},
year = {2024},
volume = {179},
publisher = {Elsevier},
month = {feb},
url = {https://linkinghub.elsevier.com/retrieve/pii/S0960077923013346},
pages = {114432},
doi = {10.1016/j.chaos.2023.114432}
}