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The application of fuzzy neural networks in stock price forecasting based On Genetic Algorithm discovering fuzzy rules

机译:基于遗传算法发现模糊规则的模糊神经网络在股票价格预测中的应用

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This paper proposes some methods to improve black-box model considering problems existed in its application. The improvement is achieved mainly by applying GA (Genetic Algorithm) in fuzzy systems to discover rules, eliminate errors or invalid rules caused by noisy data, and thus form valid sets of rules. Evaluation of the rule sets, as that of the whole prediction model, is performed through known knowledge and theories. At last, fuzzy reasoning approach is used based on the rule sets to predict price trend of stock market.
机译:针对黑匣子模型在应用中存在的问题,提出了一些改进方法。改进主要是通过在模糊系统中应用遗传算法(GA)来发现规则,消除由噪声数据引起的错误或无效规则,从而形成有效的规则集。与整个预测模型一样,规则集的评估是通过已知的知识和理论进行的。最后,基于规则集采用模糊推理方法对股市价格趋势进行预测。

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