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Artificial neural network approach for assessing harbor tranquility: The case of Trabzon Yacht Harbor, Turkey

机译:评估港口安宁的人工神经网络方法:以土耳其特拉布宗游艇港为例

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摘要

The basic functions of a harbor are to provide safe anchorage for vessels and to facilitate the smooth and unhindered transfer of passengers and cargo between vessels and land. To perform these functions, harbor basins must be tranquil. Traditionally, the tranquility level can be determined by physical and numerical model studies. In this study, physical and artificial neural network (ANN) models of wave height within a harbor were performed, and their results were compared for Trabzon Yacht Harbor, Turkey. Physical model studies were carried out in the Karadeniz Technical University Civil Engineering Department Hydraulics Laboratory wave basin. Models were simulated for 180 cases with various wave and breakwater conditions. Wave heights were measured at 24 points in the harbor basin. Experimental data were divided into 144 training, 24 testing, and 12 validation patterns in the ANN model. Comparison of the results from the physical and ANN models revealed that the maximum average and average relative errors computed for the validation data set were 19.8% and 15.9%, respectively. The ANN model was separately simulated for artificial input values of different wave and breakwater conditions.
机译:港口的基本功能是为船只提供安全的锚固,并促进船只和陆地之间的旅客和货物顺利无阻地转移。为了执行这些功能,港口盆地必须安静。传统上,可以通过物理和数值模型研究来确定宁静程度。在这项研究中,对港口内波高进行了物理和人工神经网络(ANN)模型,并对土耳其Trabzon游艇港的结果进行了比较。物理模型研究是在Karadeniz技术大学土木工程系水力学实验室的波浪盆地中进行的。针对各种波浪和防波堤情况对180个案例进行了模拟。在港湾盆地的24个点测量了波高。在ANN模型中,实验数据分为144个训练,24个测试和12个验证模式。物理模型和人工神经网络模型的结果比较表明,为验证数据集计算的最大平均误差和平均相对误差分别为19.8%和15.9%。针对不同波浪和防波堤条件的人工输入值,分别对ANN模型进行了仿真。

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