Real-time prediction of wave-induced hull girder loads for a large container ship based on the recurrent neural network model and error correction strategy

IF 2.3 3区 工程技术 Q2 ENGINEERING, MARINE International Journal of Naval Architecture and Ocean Engineering Pub Date : 2024-01-01 DOI:10.1016/j.ijnaoe.2024.100587
Qiang Wang , Pengyao Yu , Mingdong Lv , Xiangcheng Wu , Chenfeng Li , Xin Chang , Lihong Wu
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Abstract

Real-time acquisition of wave-induced hull girder loads of a sailing ship will help the captain make reasonable decisions, which is of great significance for improving the safety of the ship's navigation. This paper investigates the real-time prediction method of hull girder loads based on the Recurrent Neural Network (RNN) model and error correction strategy. Firstly, taking the vertical bending moment, horizontal bending moment, and torsional moment at the mid-ship position of a large container ship as examples, corresponding neural network prediction models are established through parameter influence analysis. Secondly, various sea state conditions are used to verify the feasibility of established network prediction models to predict the hull girder loads in real-time. The VBM prediction model performs better than the TM prediction model and HBM prediction model, and the errors of the TM prediction model and HBM prediction model are slightly larger in some cases. Lastly, an improved prediction model based on an error correction strategy is proposed to improve the prediction accuracy of the neural network prediction model, and the adequate performance of the error correction strategy is discussed.

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基于递归神经网络模型和误差修正策略的大型集装箱船波浪诱导船体大梁载荷实时预测
实时获取波浪引起的帆船船体大梁载荷有助于船长做出合理决策,对提高船舶航行安全具有重要意义。本文研究了基于循环神经网络(RNN)模型和误差修正策略的船体大梁载荷实时预测方法。首先,以大型集装箱船船中位置的垂直弯矩、水平弯矩和扭转力矩为例,通过参数影响分析建立了相应的神经网络预测模型。其次,利用各种海况条件来验证所建立的网络预测模型对船体大梁载荷进行实时预测的可行性。VBM 预测模型的性能优于 TM 预测模型和 HBM 预测模型,且在某些情况下 TM 预测模型和 HBM 预测模型的误差略大。最后,提出了基于误差修正策略的改进预测模型,以提高神经网络预测模型的预测精度,并讨论了误差修正策略的适当性能。
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来源期刊
CiteScore
4.90
自引率
4.50%
发文量
62
审稿时长
12 months
期刊介绍: International Journal of Naval Architecture and Ocean Engineering provides a forum for engineers and scientists from a wide range of disciplines to present and discuss various phenomena in the utilization and preservation of ocean environment. Without being limited by the traditional categorization, it is encouraged to present advanced technology development and scientific research, as long as they are aimed for more and better human engagement with ocean environment. Topics include, but not limited to: marine hydrodynamics; structural mechanics; marine propulsion system; design methodology & practice; production technology; system dynamics & control; marine equipment technology; materials science; underwater acoustics; ocean remote sensing; and information technology related to ship and marine systems; ocean energy systems; marine environmental engineering; maritime safety engineering; polar & arctic engineering; coastal & port engineering; subsea engineering; and specialized watercraft engineering.
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