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Robustness in Statistical Forecasting

Robustness in Statistical Forecasting

Yuriy Kharin (auth.)
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Traditional procedures in the statistical forecasting of time series, which are proved to be optimal under the hypothetical model, are often not robust under relatively small distortions (misspecification, outliers, missing values, etc.), leading to actual forecast risks (mean square errors of prediction) that are much higher than the theoretical values. This monograph fills a gap in the literature on robustness in statistical forecasting, offering solutions to the following topical problems:

- developing mathematical models and descriptions of typical distortions in applied forecasting problems;

- evaluating the robustness for traditional forecasting procedures under distortions;

- obtaining the maximal distortion levels that allow the “safe” use of the traditional forecasting algorithms;

- creating new robust forecasting procedures to arrive at risks that are less sensitive to definite distortion types.

年:
2013
出版:
1
出版社:
Springer International Publishing
语言:
english
页:
356
ISBN 10:
3319008404
ISBN 13:
9783319008400
文件:
PDF, 3.82 MB
IPFS:
CID , CID Blake2b
english, 2013
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