STNet: Prediction of Underwater Sound Speed Profiles with an Advanced Semi-Transformer Neural Network Article Swipe
YOU?
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· 2025
· Open Access
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· DOI: https://doi.org/10.3390/jmse13071370
The real-time acquisition of an accurate underwater sound velocity profile (SSP) is crucial for tracking the propagation trajectory of underwater acoustic signals, making it play a key role in ocean communication positioning. SSPs can be directly measured by instruments or inverted leveraging sound field data. Although measurement techniques provide a good accuracy, they are constrained by limited spatial coverage and require a substantial time investment. The inversion method based on the real-time measurement of acoustic field data improves operational efficiency but loses the accuracy of SSP estimation and suffers from limited spatial applicability due to its stringent requirements for ocean observation infrastructures. To achieve accurate long-term ocean SSP estimation independent of real-time underwater data measurements, we propose a semi-transformer neural network (STNet) specifically designed for simulating sound velocity distribution patterns from the perspective of time series prediction. The proposed network architecture incorporates an optimized self-attention mechanism to effectively capture long-range temporal dependencies within historical sound velocity time-series data, facilitating an accurate estimation of current SSPs or prediction of future SSPs. Through the architectural optimization of the transformer framework and integration of a time encoding mechanism, STNet could effectively improve computational efficiency. For long-term forecasting (using the Pacific Ocean as a case study), STNet achieved an annual average RMSE of 0.5811 m/s, outperforming the best baseline model, H-LSTM, by 26%. In short-term forecasting for the South China Sea, STNet further reduced the RMSE to 0.1385 m/s, demonstrating a 51% improvement over H-LSTM. Comparative experimental results revealed that STNet outperformed state-of-the-art models in predictive accuracy and maintained good computational efficiency, demonstrating its potential for enabling accurate long-term full-depth ocean SSP forecasting.
Related Topics
- Type
- article
- Language
- en
- Landing Page
- https://doi.org/10.3390/jmse13071370
- OA Status
- gold
- References
- 30
- Related Works
- 10
- OpenAlex ID
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Raw OpenAlex JSON
- OpenAlex ID
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https://openalex.org/W4412873129Canonical identifier for this work in OpenAlex
- DOI
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https://doi.org/10.3390/jmse13071370Digital Object Identifier
- Title
-
STNet: Prediction of Underwater Sound Speed Profiles with an Advanced Semi-Transformer Neural NetworkWork title
- Type
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articleOpenAlex work type
- Language
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enPrimary language
- Publication year
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2025Year of publication
- Publication date
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2025-07-18Full publication date if available
- Authors
-
Wei Huang, Junpeng Lü, Jiajun Lu, Yanan Wu, Hao Zhang, Tianhe XuList of authors in order
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https://doi.org/10.3390/jmse13071370Publisher landing page
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YesWhether a free full text is available
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goldOpen access status per OpenAlex
- OA URL
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https://doi.org/10.3390/jmse13071370Direct OA link when available
- Concepts
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Underwater, Artificial neural network, Transformer, Environmental science, Acoustics, Computer science, Sound (geography), Marine engineering, Geology, Engineering, Artificial intelligence, Electrical engineering, Oceanography, Physics, VoltageTop concepts (fields/topics) attached by OpenAlex
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0Total citation count in OpenAlex
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