Nonlinear modelling of air pollution time series
نویسندگان
چکیده
An analysis of predictability of a nonlinear and nonstationary ozone time series is provided. For rigour, the DVS analysis is first undertaken to detect and measure inherent nonlinearity of the data. Based upon this, neural and linear adaptive predictors are compared on this time series for various filter orders, hence indicating the embedding dimension. Simulation results confirm the analysis and show that for this class of air pollution data, neural, especially recurrent neural predictors, perform best.
منابع مشابه
بررسی و پیش بینی وضع آلاینده های هوای شهر کرمان با مدل سری های زمانی
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