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Parameter analysis of hybrid intelligent model for the prediction of rare earth stock futures

机译:稀土股期货预测混合智能模型的参数分析

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Because of rare earth futures stock variability and uncertainty of the market, many investors hope to be able to predict the price of rare earth futures on the stock market in the future. The neural network does do better than others in short-term forecasting, and there is no need to establish a complex nonlinear mathematical model and relationship. Based on these advantages, this paper uses the neural network based on genetic algorithm to predict the closing price of rare earth stock by analyzing the historical data of rare earth stock. In the genetic algorithm, the parameters such as crossover rate, mutation rate, iterations and population size are analyzed. Based on the parameter analysis results, a hybrid machine learning model which is suitable for the prediction of rare earth stock is established, which provides a reference for the investors.
机译:由于稀土期货股票可变异性和市场不确定性,许多投资者希望能够预测未来股票市场的稀土期货价格。神经网络在短期预测中确实比其他人更好,并且没有必要建立复杂的非线性数学模型和关系。基于这些优点,本文采用了基于遗传算法的神经网络来预测稀土股票历史数据的历史数据来预测稀土股票的关闭。在遗传算法中,分析了诸如交叉速率,突变率,迭代和群体大小的参数。基于参数分析结果,建立了一种适用于预测稀土库存的混合机学习模型,为投资者提供了参考。

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