Architecture design of artificial neural networks based on Box & Jenkins models for time series prediction

H. Diniz, L. de Andrade, A. de Carvalho, M. de Andrade
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引用次数: 2

Abstract

This paper reports the results of a neural architecture design approach for time series prediction. This approach applies some concepts of the Box-Jenkins (1970) method for data preprocessing and network design. The data used to verify the performance of these approaches were stock market time series of the Brazilian telecommunication company TELEBRAS.
基于 Box & Jenkins 模型的人工神经网络架构设计,用于时间序列预测
本文报道了一种用于时间序列预测的神经结构设计方法的结果。这种方法将Box-Jenkins(1970)方法中的一些概念应用于数据预处理和网络设计。用于验证这些方法的性能的数据是巴西电信公司TELEBRAS的股票市场时间序列。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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