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The Prediction of Stock Price Based on Improved Wavelet Neural Network

机译:基于改进小波神经网络的股票价格预测

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To improve the accuracy of forecasting stock prices, a new method is proposed, which based on improved Wavelet Neural Network (WNN). Firstly, the Genetic Algorithm (GA) is used to optimize initial weights, stretching parameters and movement parameters. Then, comparing with traditional WNN, the momentum are added in parameters adjusting and learning of network, what’s more, learning rate and the factor of momentum are self-adaptive. The prediction system is tested using Shanghai Index data, simulation result shows that improved WNN performs very well.
机译:为了提高股票价格预测的准确性,提出了一种基于改进的小波神经网络(WNN)的新方法。首先,遗传算法(GA)用于优化初始权重,拉伸参数和运动参数。然后,与传统的WNN相比,在网络参数调整和学习中增加了动量,而且学习率和动量因子都是自适应的。利用上海指数数据对预测系统进行了测试,仿真结果表明改进的WNN具有很好的性能。

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