In this paper a system based on Genetic Programming for forecasting nonlinear time series is outlined. Our system is endowed with two features. Firstly, at any given time t, it performs a ?-steps ahead prediction (i.e. it forecasts the value at time t +?) based on the set of input values for the n time steps preceding t. Secondly, the system automatically finds among the past n input variables the most useful ones to estimate future values. The effectiveness of our approach is evaluated on El Niño 3.4 time series on the basis of a 12-month-ahead forecast.

A Genetic Programming System for Time Series Prediction and its Application to El Niño Forecast

I De Falco;E Tarantino
2003

Abstract

In this paper a system based on Genetic Programming for forecasting nonlinear time series is outlined. Our system is endowed with two features. Firstly, at any given time t, it performs a ?-steps ahead prediction (i.e. it forecasts the value at time t +?) based on the set of input values for the n time steps preceding t. Secondly, the system automatically finds among the past n input variables the most useful ones to estimate future values. The effectiveness of our approach is evaluated on El Niño 3.4 time series on the basis of a 12-month-ahead forecast.
2003
Istituto di Calcolo e Reti ad Alte Prestazioni - ICAR
Inglese
Hoffmann, F.; Köppen, M.; Klawonn, F.; Roy, R.
Soft Computing: Methodologies and Applications
8th World Conference on Soft Computing in Industrial Applications
119
130
12
3-540-25726-8
Springer Heidelberg
Heidelberg
GERMANIA
Sì, ma tipo non specificato
18-20/12/2003
forecast
3
none
DE FALCO, Ivanoe; Della Cioppa, A; Tarantino, E
273
info:eu-repo/semantics/conferenceObject
04 Contributo in convegno::04.01 Contributo in Atti di convegno
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/66528
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