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Probabilistic neural network model based on wavelet and partical swarm optimization

机译:基于小波和粒子群算法的概率神经网络模型

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摘要

Foreign exchange market is a complex market, with a high degree of volatility characteristics. Exchange rate formation mechanism and the factors affecting exchange rate volatility are also very complex, which is a nonlinear system. It is difficult to accurately forecast. Probabilistic neural network is applied to the frontiers of forecast, and aimed at the characteristics of probabilistic neural network to pretreat the exchange of data and forecast the tendency. And by changing the vector dimensionality experiment we obtain the best entry to embed dimensionality, tested and improved the precise prediction and valuable.
机译:外汇市场是一个复杂的市场,具有高度波动的特征。汇率形成机制和影响汇率波动性的因素也非常复杂,这是一个非线性系统。很难准确预测。概率神经网络被应用于预测领域,并针对概率神经网络的特点来预处理数据交换和预测趋势。并且通过更改向量维数实验,我们获得了嵌入维数的最佳入口,测试并提高了精确预测的价值。

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