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Non Linear Hebbian Learning techniques and Fuzzy Cognitive Maps in modeling the Parkinson's disease

机译:帕金森氏病建模的非线性Hebbian学习技术和模糊认知图

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摘要

A new soft computing method using Fuzzy Cognitive Maps for modeling and predicting Parkinson's disease has been proposed. A decision support system based on human knowledge and experience, with a Fuzzy Cognitive Map trained using unsupervised Nonlinear Hebbian Leanring algorithm are proposed. The basic theories of this learning method are reviewed and presented. The initial values of concepts are represented as fuzzy membership values and trained to get new updated weight matrix and new concept values. Simulations are performed and very interesting results are obtained and discussed. A comparison between the results with and without a learning algorithm is considered.
机译:提出了一种新的基于模糊认知图的软计算方法,对帕金森氏病进行建模和预测。提出了一种基于人类知识和经验的决策支持系统,该决策支持系统采用无监督非线性Hebbian Leanring算法训练的模糊认知图。审查和介绍了这种学习方法的基本理论。概念的初始值表示为模糊隶属度值,并经过训练以获得新的更新权重矩阵和新概念值。进行了仿真,获得并讨论了非常有趣的结果。考虑使用和不使用学习算法的结果之间的比较。

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