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PERFORMANCE MODELLING AND ANALYSIS OF OLYMPIC CLASS SAILING BOATS AND CREWS USING NEURAL NETWORKS

机译:神经网络奥运类帆船和船员的性能建模与分析

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This paper addresses the problem of modelling performance accurately in small high performance boats. The approach taken, which uses neural network modelling to produce a dynamic model of the performance of the boat and crew, is compared to the more conventional quasi static approach. The neural network based model is able to function in not only a single point mode but can also be used for time series comparison in tuning runs. The paper describes the development of the initial neural network model to include further parameters, such as standing rigging loads, allowing further understanding of boat performance. The method, which was used in the training of the Olympic Sailing Team in the build up to the 2008 Olympic Games, allows a novel approach to performance analysis that is more accurate than methods previously used. The paper also explores the combination of neural networks and VPPs to produce a global measure of performance.
机译:本文在小型高性能船上准确地解决了模型性能的问题。与更传统的准静态接近更传统的准静态方法相比,采用神经网络建模来产生动态模型的方法。基于神经网络的模型不仅能够在单点模式中运行,而且还可以用于调整运行中的时间序列比较。本文描述了初始神经网络模型的发展,包括进一步参数,例如站立索引负载,允许进一步了解船舶性能。该方法用于培训奥林匹克帆船团队的建立至2008年奥运会,允许新颖的方法分析,比以前使用的方法更准确。本文还探讨了神经网络和VPP的组合,以产生全球性能度量。

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