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SHIP INTELLIGENT ANTI-COLLISION USING SELF-LEARNING NEUROFUZZY

机译:使用自学习神经新罗来船智能防撞

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摘要

A novel anti-collision procedure (involving three stages) is addressed in this paper. To obtain a precise Last Minute Action (LMA) capability, in the anti-collision model, an innovative neurofuzzy network is proposed and applied. A fuzzy set interpretation is incorporated into the network design to handle imprecise information. A neural network architecture is used to train the parameters of the Fuzzy Inference System (FIS). The learning process is based on a hybrid learning algorithm and off-line training data. This network can be considered to be a self-learning system with the ability to learn new information adaptively without forgetting old knowledge.
机译:本文解决了一种新的防碰撞程序(涉及三个阶段)。为了获得精确的最后一分钟动作(LMA)能力,在防碰撞模型中,提出了一种创新的神经舒张网络和应用。模糊集解释被纳入网络设计以处理不精确的信息。神经网络架构用于训练模糊推理系统(FIS)的参数。学习过程基于混合学习算法和离线训练数据。该网络可以被认为是一个自学系统,能够在毫无遗忘的情况下自适应地学习新信息。

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