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SYMBOLICAL REASONING ABOUT NUMERICAL DATA - A HYBRID APPROACH

机译:关于数值数据的符号推理-混合方法

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By combining methods from artificial intelligence and signal analysis, we have developed a hybrid system for medical diagnosis. The core of the system is a fuzzy expert system with a dual source knowledge base. Two sets of rules are acquired, automatically from given examples and indirectly formulated by the physician. A fuzzy neural network serves to learn from sample data and allows to extract fuzzy rules for the knowledge base. A complex signal transformation preprocesses the digital data a priori to the symbolic representation. Results demonstrate the high accuracy of the system in the field of diagnosing electroencephalograms where it outperforms the visual diagnosis by a human expert for some phenomena. [References: 36]
机译:通过结合人工智能和信号分析方法,我们开发了一种用于医疗诊断的混合系统。系统的核心是具有双源知识库的模糊专家系统。从给定的示例中自动获取两组规则,并由医生间接制定。模糊神经网络用于从样本数据中学习,并允许提取知识库的模糊规则。复杂的信号转换先于符号表示对数字数据进行预处理。结果表明,该系统在脑电图诊断领域中具有很高的准确性,在某些现象方面其性能优于人类专家的视觉诊断。 [参考:36]

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