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Chaotic Time Series Prediction Using a Neuro-Fuzzy System with Time-Delay Coordinates

机译:使用具有时滞坐标的神经模糊系统进行混沌时间序列预测

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This paper presents an investigation into the use of the delay coordinate embedding technique in the multi-input- multioutput-adaptive-network-based fuzzy inference system (MANFIS) for chaotic time series prediction. The inputs to the MANFIS are embedded-phase-space (EPS) vectors preprocessed from the time series under test, while the output time series is extracted from the output EPS vectors from the MANFIS. A moving root-mean-square error is used to monitor the error over the prediction horizon and to tune the membership functions in the MANFIS. With the inclusion of the EPS preprocessing step, the prediction performance of the MANFIS is improved significantly. The proposed method has been tested with one periodic function and two chaotic functions including Mackey-Glass chaotic time series and Duffing forced-oscillation system. The prediction performances with and without EPS preprocessing are statistically compared by using the t-test method. The results show that EPS preprocessing can help improve the prediction performance of a MANFIS significantly.
机译:本文提出了一种在基于多输入多输出自适应网络的模糊推理系统(MANFIS)中用于混沌时间序列预测的延迟坐标嵌入技术的研究。 MANFIS的输入是从被测时间序列预处理的嵌入相空间(EPS)向量,而输出时间序列是从MANFIS的输出EPS向量中提取的。移动的均方根误差用于监视预测范围内的误差并调整MANFIS中的隶属函数。通过包含EPS预处理步骤,可显着提高MANFIS的预测性能。该方法通过一个周期函数和两个混沌函数(包括Mackey-Glass混沌时间序列和Duffing强迫振荡系统)进行了测试。使用t检验方法对具有和不具有EPS预处理的预测性能进行统计比较。结果表明,EPS预处理可以显着提高MANFIS的预测性能。

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