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The Modified Self-organizing Fuzzy Neural Network Model for Adaptability Evaluation

机译:改进的自组织模糊神经网络适应性评价模型

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The author proposed a novel approach for evolving the architecture of a multi-layer neural network based on neural network and fuzzy logic technologies. The model is front-network which comprised with five layers architecture which composed of dynamic inference of fuzzy rules where the consequent sub-models are implemented by recurrent neural networks with internal feedback paths and dynamic neuron synapses. An optimal learning scheme with the evaluation guide line which error data embed is applied for training of LF-DFNN models. The results of experiment demonstrate that new model have superior performance.
机译:作者提出了一种基于神经网络和模糊逻辑技术发展多层神经网络体系结构的新颖方法。该模型是由五层体系结构组成的前端网络,该体系结构由模糊规则的动态推理组成,其中随后的子模型由具有内部反馈路径和动态神经元突触的递归神经网络实现。具有评估准则的最佳学习方案是嵌入错误数据,用于评估LF-DFNN模型。实验结果表明,新模型具有优越的性能。

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