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Original Articles

On evaluating the performance of different forecasters

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Pages 542-555 | Received 16 Feb 2016, Accepted 24 Jan 2017, Published online: 05 Jun 2017
 

ABSTRACT

In this article, we have evaluated the performance of different forecasters and tested association between their performances for different pairs of variables. We have used three data sets of track records of professional U.S. economic forecasters participating in the Blue Chip consensus forecasting service (the data sets contain the root mean square errors (RMSE) of different forecasters for different years). To evaluate the performance of forecasters we have covered three well-known tests, namely the usual F test (cf. Fisher (Citation1923)), Kruskal Wallis test (cf. Kruskal and Wallis (Citation1952)), and Extension of Median test (cf. Daniel (Citation1990)). To test the association between the forecaster's performances for different pairs of variables, we have considered Gini mean correlation coefficient rg1 (cf. Yitzhaki, S., and Olkin, I. (Citation1991) and Yitzhaki (Citation2003)), Modified rank correlation coefficient (cf. Zimmerman (Citation1994)) and three modifications of Spearman rank correlation coefficient. We have observed that different forecasters do not necessarily offer same average performance. Moreover, an evidence of association between two criteria does not always lead us reaching at the same decision. The outcomes of the study may help the practitioners in selecting the best forecaster(s) for policymaking purposes.

MATHEMATICS SUBJECT CLASSIFICATION:

Acknowledgments

The authors are thankful to the anonymous reviewers for their constructive comments that helped in improving the last version of the paper. The author Muhammad Riaz is also indebted to King Fahd University of Petroleum and Minerals, Dhahran, Saudi Arabia for providing excellent research facilities and a dynamic research environment.

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