2022
DOI: 10.1016/j.marstruc.2022.103159
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Directional wave spectrum estimation with ship motion responses using adversarial networks

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Cited by 13 publications
(16 citation statements)
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“…Scholcz and Mak [22] extend the work of Düz et al [20] and present a deep learning methodology for the non-parametric estimation of the directional wave spectrum based on wave radar data using a convolutional encoder-decoder network applied to in-service time series data. Lastly, Han et al [23] provide an investigation for non-parametric SSE and establish an approach based on a generative adversarial network, in which the generator predicts the 2D spectrum relying on cross response spectra, and the discriminator classifies the validity of the prediction. This iterative approach is then compared to a traditional model-based approach and shows satisfactory accuracy in non-forward speed scenarios; emphasizing that simulated time series data has been considered exclusively.…”
Section: Literature Reviewmentioning
confidence: 99%
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“…Scholcz and Mak [22] extend the work of Düz et al [20] and present a deep learning methodology for the non-parametric estimation of the directional wave spectrum based on wave radar data using a convolutional encoder-decoder network applied to in-service time series data. Lastly, Han et al [23] provide an investigation for non-parametric SSE and establish an approach based on a generative adversarial network, in which the generator predicts the 2D spectrum relying on cross response spectra, and the discriminator classifies the validity of the prediction. This iterative approach is then compared to a traditional model-based approach and shows satisfactory accuracy in non-forward speed scenarios; emphasizing that simulated time series data has been considered exclusively.…”
Section: Literature Reviewmentioning
confidence: 99%
“…It is noted that 25 min are chosen as the maximum sample length since recordings close to the 30 min threshold were frequently missing. In addition, the focus of the herein presented work is on using smaller time frames, noting that other studies use longer durations, say, from 30 min in [23] to 60 min in [21]. The synchronization step decreased the size of the dataset further to 5182 samples.…”
Section: 𝛽 = Arctan(𝑑∕𝑐)mentioning
confidence: 99%
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