Comparison of temporal disaggregation techniques in the case of export of Bangladesh
Date
2013-11Publisher
© 2013 International Journal of Applied Research and Studies (IJARS)Author
Islam, Dr. Mohammad RafiqulMetadata
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Islam, M. R. (2013). Comparison of Temporal Disaggregation Techniques in the Case of Export of Bangladesh. International Journal of Applied Research and Studies (IJARS), 2(11), 214–218. Retrieved from http://www.ijars.ijarsgroup.com/article.php?aToken=04025959b191f8f9de3f924f0940515fAbstract
Export plays very an import role in the economy of Bangladesh. We have tested four methods of disaggregation of which one is Boot, Feibes and Lisman (BFL) method mathematical based method. Other three are regression based techniques namely Chow-Lin, Fernandez and Litterman. Yearly export is the only available information for Boot, Feibes and Lisman (BFL) method. It is found that for T-4 growth both BFL first difference (FD) and second difference (SD) of BFL generated much better result than T-1 growth. Secondly, we have disaggregated yearly export of Bangladesh to quarterly export data by Chow-Lin, Fernandez and Litterman using Quantum index of Industrial production (QIP) as the indicator series. Based on RMSE (root mean square error) and figures, it is concluded that the Chow-Lin (MinSS and MaxLog) as well as by Fernandez disaggregated better than Litterman (Maximum likelihood) estimates. It is also found that Chow-Lin (MaxLog) and Fernandez forecasting power is slightly better than the Litterman (ML) approach. This a scholastic work, but the results may be a guideline to temporally disaggregate the annual time series data into quarterly series, which will be beneficial for the countries where high frequency (quarterly) GDP are not available.
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This article was published in the International Journal of Applied Research and Studies (IJARS) [© 2013 International Journal of Applied Research and Studies (IJARS) ] and the definite version is available at: www.ijars.inDepartment
Department of Mathematics and Natural Sciences, BRAC UniversityType
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