Forecasting CO2 Emission with Machine Learning Methods

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info:eu-repo/semantics/closedAccess

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The amount of CO2 emission has significantly increased because of the increase in industrial production, usage of fossil fuels such as petroleum and coal which is a danger for global warming. The countries measure CO2 emissions and make plan for the future. In this study, Turkey's CO2 emissions are estimated using random forest and support vector machine methods. Not only time, but also attributes such as fuel consumption and population are also employed for forecasting. It has been observed that the support vector machine method produces better forecasting results.

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International Conference on Artificial Intelligence and Data Processing (IDAP) -- SEP 28-30, 2018 -- Inonu Univ, Malatya, TURKEY

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CO2 emission, machine learning, random forest, support vector machines

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2018 International Conference On Artificial Intelligence and Data Processing (Idap)

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