Paper
19 July 2024 Target incremental fusion recognition method based on network ensemble
Jingming Sun, Shiguo Li, Qiang Zhang, Yuhao Yang
Author Affiliations +
Proceedings Volume 13181, Third International Conference on Electronic Information Engineering, Big Data, and Computer Technology (EIBDCT 2024); 131811F (2024) https://doi.org/10.1117/12.3031155
Event: Third International Conference on Electronic Information Engineering, Big Data, and Computer Technology (EIBDCT 2024), 2024, Beijing, China
Abstract
The multiple uncertainties in real radar detection scenarios require that radar automatic target recognition systems must have efficient dynamic learning capabilities. And current deep learning methods are inefficient and impractical for incremental update learning of data. To address the problem of data incremental learning in radar target recognition, a network ensemble-based target incremental fusion recognition method is proposed by combining lightweight incremental learning with neural network fusion. Multiple convolutional neural networks are constructed to be trained and tested in the split-angle domains, and then integrated and fused to obtain a robust recognition performance close to that of large data volumes with significantly reduced data requirements. The experimental results based on the measured radar data show that the proposed method can efficiently accomplish the target incremental recognition task, and has strong engineering practicality.
(2024) Published by SPIE. Downloading of the abstract is permitted for personal use only.
Jingming Sun, Shiguo Li, Qiang Zhang, and Yuhao Yang "Target incremental fusion recognition method based on network ensemble", Proc. SPIE 13181, Third International Conference on Electronic Information Engineering, Big Data, and Computer Technology (EIBDCT 2024), 131811F (19 July 2024); https://doi.org/10.1117/12.3031155
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KEYWORDS
Target recognition

Machine learning

Neural networks

Data modeling

Data fusion

Deep learning

Radar

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