Grammar-Based Feature Generation for Time-Series Prediction

Categorie

Artificial intelligence

Winkel

Wordery

Merk

Springer nature singapore

Grammar-Based Feature Generation for Time-Series Prediction : Springer : 9789812874108 : 9812874100 : 17 Mar 2015 : This book proposes a novel approach for time-series prediction using machine learning techniques with automatic feature generation. Application of machine learning techniques to predict time-series continues to attract considerable attention due to the difficulty of the prediction problems compounded by the non-linear and non-stationary nature of the real world time-series. The performance of machine learning techniques, among other things, depends on suitable engineering of features. This book proposes a systematic way for generating suitable features using context-free grammar. A number of feature selection criteria are investigated and a hybrid feature generation and selection algorithm using grammatical evolution is proposed. The book contains graphical illustrations to explain the feature generation process. The proposed approaches are demonstrated by predicting the

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