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Open Access. Powered by Scholars. Published by Universities.®

2014

Monica Adya

Changing Trend

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Automatic Identification Of Time Series Features For Rule-Based Forecasting, Monica Adya, Fred Collopy, J. Scott Armstrong, Miles Kennedy Jul 2014

Automatic Identification Of Time Series Features For Rule-Based Forecasting, Monica Adya, Fred Collopy, J. Scott Armstrong, Miles Kennedy

Monica Adya

Rule-based forecasting (RBF) is an expert system that uses features of time series to select and weight extrapolation techniques. Thus, it is dependent upon the identification of features of the time series. Judgmental coding of these features is expensive and the reliability of the ratings is modest. We developed and automated heuristics to detect six features that had previously been judgmentally identified in RBF: outliers, level shifts, change in basic trend, unstable recent trend, unusual last observation, and functional form. These heuristics rely on simple statistics such as first differences and regression estimates. In general, there was agreement between automated …