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Multiple regression analysis in modelling of carbon dioxide emissions by energy consumption use in Malaysia

Authors :
Mohd Zubir Mat Jafri
Beh Boon Chun
Lim Hwee San
Sim Chong Keat
Source :
AIP Conference Proceedings.
Publication Year :
2015
Publisher :
AIP Publishing LLC, 2015.

Abstract

Climate change due to carbon dioxide (CO2) emissions is one of the most complex challenges threatening our planet. This issue considered as a great and international concern that primary attributed from different fossil fuels. In this paper, regression model is used for analyzing the causal relationship among CO2 emissions based on the energy consumption in Malaysia using time series data for the period of 1980-2010. The equations were developed using regression model based on the eight major sources that contribute to the CO2 emissions such as non energy, Liquefied Petroleum Gas (LPG), diesel, kerosene, refinery gas, Aviation Turbine Fuel (ATF) and Aviation Gasoline (AV Gas), fuel oil and motor petrol. The related data partly used for predict the regression model (1980-2000) and partly used for validate the regression model (2001-2010). The results of the prediction model with the measured data showed a high correlation coefficient (R2=0.9544), indicating the model’s accuracy and efficiency. These results are accurate and can be used in early warning of the population to comply with air quality standards.

Details

ISSN :
0094243X
Database :
OpenAIRE
Journal :
AIP Conference Proceedings
Accession number :
edsair.doi...........546ee355e6161f28ad06daba3d5987d3