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Fuzzy logic and neural networks in artificial intelligence and pattern recognition

机译:人工智能和模式识别中的模糊逻辑和神经网络

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Abstract: With the use of fuzzy logic techniques, neural computing can be integrated in symbolic reasoning to solve complex real world problems. In fact, artificial neural networks, expert systems, and fuzzy logic systems, in the context of approximate reasoning, share common features and techniques. A model of Fuzzy Connectionist Expert System is introduced, in which an artificial neural network is designed to construct the knowledge base of an expert system from, training examples (this model can also be used for specifications of rules in fuzzy logic control). Two types of weights are associated with the synaptic connections in an AND-OR structure: primary linguistic weights, interpreted as labels of fuzzy sets, and secondary numerical weights. Cell activation is computed through min-max fuzzy equations of the weights. Learning consists in finding the (numerical) weights and the network topology. This feedforward network is described and first illustrated in a biomedical application (medical diagnosis assistance from inflammatory-syndromes/proteins profiles). Then, it is shown how this methodology can be utilized for handwritten pattern recognition (characters play the role of diagnoses): in a fuzzy neuron describing a number for example, the linguistic weights represent fuzzy sets on cross-detecting lines and the numerical weights reflect the importance (or weakness) of connections between cross-detecting lines and characters. !25
机译:摘要:使用模糊逻辑技术,可以将神经计算集成到符号推理中,以解决复杂的现实世界问题。实际上,在近似推理的背景下,人工神经网络,专家系统和模糊逻辑系统具有共同的特征和技术。引入了模糊连接专家系统的模型,在该模型中,设计了一个人工神经网络,通过训练示例来构建专家系统的知识库(该模型也可以用于模糊逻辑控制中的规则说明)。两种类型的权重与AND-OR结构中的突触连接相关联:主要语言权重(被解释为模糊集的标签)和次要数字权重。细胞的激活是通过权重的最小-最大模糊方程来计算的。学习在于找到(数字)权重和网络拓扑。该前馈网络已在生物医学应用程序(炎症综合症/蛋白质谱提供的医学诊断帮助)中进行了描述和说明。然后,说明如何将此方法用于手写模式识别(字符扮演诊断的角色):例如在描述数字的模糊神经元中,语言权重表示交叉检测线上的模糊集,而数值权重反映了交叉检测线和字符之间连接的重要性(或弱点)。 !25

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