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A neuro-fuzzy model of the residuary resistance of sailing yachts

机译:游艇残余阻力的神经模糊模型

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The estimation of residuary resistance in sailing yachts is very important for the initial stage of their design, because of its influence on the yacht performance and the assessment of the required propulsive power. This is why substantial efforts have been made during the past to produce an accurate model for its prediction. However, the models of residuary resistance presented in the literature are exclusively based on regression analysis and represent polynomial formulas, which suffer from great involvement with too many parameters and their coefficients depend heavily on the Froude number. The paper presents an alternative approach to modeling the residuary resistance of sailing yachts based on fuzzy logic and neural network techniques. The neuro-fuzzy model developed for prediction of the residuary resistance in sailing yachts is a fuzzy inference system with a learning mechanism based on statistical learning theory and extended relevance vector machines. To evaluate its performance, the model is compared to other unconventional models based on fuzzy logic and neural network techniques. The simulation results show that the built neuro-fuzzy model solves very elegantly the problem of modeling the residuary resistance of sailing yachts and shows superior performance compared to the conventional regression models as well as the other fuzzy and neural models.
机译:帆船游艇的残余阻力估计对于其设计的初始阶段非常重要,因为它会影响游艇性能并评估所需的推进力。这就是为什么在过去为做出准确的预测模型而做出巨大努力的原因。但是,文献中提出的剩余电阻模型仅基于回归分析,并代表多项式公式,该公式公式涉及过多的参数,其系数在很大程度上取决于Froude数。本文提出了一种基于模糊逻辑和神经网络技术的帆船游艇剩余阻力建模方法。用于预测帆船残余阻力的神经模糊模型是一种模糊推理系统,具有基于统计学习理论和扩展的相关矢量机的学习机制。为了评估其性能,将模型与基于模糊逻辑和神经网络技术的其他非常规模型进行了比较。仿真结果表明,所建立的神经模糊模型非常优雅地解决了帆船游艇残余阻力建模问题,并且与传统的回归模型以及其他模糊和神经模型相比,其性能优越。

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