DOAJ Open Access 2025

Efficient One-Dimensional Network Design Method for Underwater Acoustic Target Recognition

Qing Huang Xiaoyan Zhang Anqi Jin Menghui Lei Mingmin Zeng +3 lainnya

Abstrak

Many studies have used various time-frequency feature extraction methods to convert ship-radiated noise into three-dimensional (3D) data suitable for computer vision (CV) models, which have shown good results in public datasets. However, traditional feature engineering (FE) has been enhanced to interface matching–feature engineering (IM-FE). This approach requires considerable effort in feature design, larger sample duration, or a higher upper limit of frequency. In this context, this paper proposes a one-dimensional network design for underwater acoustic target recognition (UATR-ND1D), only combined with fast Fourier transform (FFT), which can effectively alleviate the problem of IM-FE. This method is abbreviated as FFT-UATR-ND1D. FFT-UATR-ND1D was applied to the design of a one-dimensional network, named ResNet1D. Experiments were conducted on two mainstream datasets, using ResNet1D in 4320 and 360 tests, respectively. The lightweight model ResNet1D_S, with only 0.17 M parameters and 3.4 M floating point operations (FLOPs), achieved average accuracies were 97.2% and 95.20%. The larger model, ResNet1D_B, with 2.1 M parameters and 5.0 M FLOPs, both reached optimal accuracies, 98.81% and 98.42%, respectively. Compared to existing methods, those with similar parameter sizes performed 3–5% worse than the methods proposed in this paper. Additionally, methods achieving similar recognition rates require more parameters of 1 to 2 orders of magnitude and FLOPs.

Penulis (8)

Q

Qing Huang

X

Xiaoyan Zhang

A

Anqi Jin

M

Menghui Lei

M

Mingmin Zeng

P

Peilin Cao

Z

Zihan Na

X

Xiangyang Zeng

Format Sitasi

Huang, Q., Zhang, X., Jin, A., Lei, M., Zeng, M., Cao, P. et al. (2025). Efficient One-Dimensional Network Design Method for Underwater Acoustic Target Recognition. https://doi.org/10.3390/jmse13030599

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Informasi Jurnal
Tahun Terbit
2025
Sumber Database
DOAJ
DOI
10.3390/jmse13030599
Akses
Open Access ✓