Data Science Statistics
ARMA models, which stands for AutoRegressive Moving Average models, are a class of statistical models used for analyzing and forecasting time series data. These models combine two key components: the autoregressive part, which uses past values to predict future values, and the moving average part, which uses past forecast errors to improve predictions. ARMA models are particularly useful when dealing with stationary time series data, where the statistical properties do not change over time.
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