Global Warming: Predicting OPEC Carbon Dioxide Emissions from Petroleum Consumption Using Neural Network and Hybrid Cuckoo Search Algorithm
Global warming is attracting attention from policy makers due to its impacts such as floods, extreme weather, increases in temperature by 0.7°C, heat waves, storms, etc. These disasters result in loss of human life and billions of dollars in property. Global warming is believed to be caused by the e...
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| Published in | PloS one Vol. 10; no. 8; p. e0136140 |
|---|---|
| Main Authors | , , , , , , , , |
| Format | Journal Article |
| Language | English |
| Published |
United States
Public Library of Science
25.08.2015
Public Library of Science (PLoS) |
| Subjects | |
| Online Access | Get full text |
| ISSN | 1932-6203 1932-6203 |
| DOI | 10.1371/journal.pone.0136140 |
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| Abstract | Global warming is attracting attention from policy makers due to its impacts such as floods, extreme weather, increases in temperature by 0.7°C, heat waves, storms, etc. These disasters result in loss of human life and billions of dollars in property. Global warming is believed to be caused by the emissions of greenhouse gases due to human activities including the emissions of carbon dioxide (CO2) from petroleum consumption. Limitations of the previous methods of predicting CO2 emissions and lack of work on the prediction of the Organization of the Petroleum Exporting Countries (OPEC) CO2 emissions from petroleum consumption have motivated this research.
The OPEC CO2 emissions data were collected from the Energy Information Administration. Artificial Neural Network (ANN) adaptability and performance motivated its choice for this study. To improve effectiveness of the ANN, the cuckoo search algorithm was hybridised with accelerated particle swarm optimisation for training the ANN to build a model for the prediction of OPEC CO2 emissions. The proposed model predicts OPEC CO2 emissions for 3, 6, 9, 12 and 16 years with an improved accuracy and speed over the state-of-the-art methods.
An accurate prediction of OPEC CO2 emissions can serve as a reference point for propagating the reorganisation of economic development in OPEC member countries with the view of reducing CO2 emissions to Kyoto benchmarks--hence, reducing global warming. The policy implications are discussed in the paper. |
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| AbstractList | Global warming is attracting attention from policy makers due to its impacts such as floods, extreme weather, increases in temperature by 0.7°C, heat waves, storms, etc. These disasters result in loss of human life and billions of dollars in property. Global warming is believed to be caused by the emissions of greenhouse gases due to human activities including the emissions of carbon dioxide (CO2) from petroleum consumption. Limitations of the previous methods of predicting CO2 emissions and lack of work on the prediction of the Organization of the Petroleum Exporting Countries (OPEC) CO2 emissions from petroleum consumption have motivated this research.
The OPEC CO2 emissions data were collected from the Energy Information Administration. Artificial Neural Network (ANN) adaptability and performance motivated its choice for this study. To improve effectiveness of the ANN, the cuckoo search algorithm was hybridised with accelerated particle swarm optimisation for training the ANN to build a model for the prediction of OPEC CO2 emissions. The proposed model predicts OPEC CO2 emissions for 3, 6, 9, 12 and 16 years with an improved accuracy and speed over the state-of-the-art methods.
An accurate prediction of OPEC CO2 emissions can serve as a reference point for propagating the reorganisation of economic development in OPEC member countries with the view of reducing CO2 emissions to Kyoto benchmarks--hence, reducing global warming. The policy implications are discussed in the paper. Background Global warming is attracting attention from policy makers due to its impacts such as floods, extreme weather, increases in temperature by 0.7°C, heat waves, storms, etc. These disasters result in loss of human life and billions of dollars in property. Global warming is believed to be caused by the emissions of greenhouse gases due to human activities including the emissions of carbon dioxide (CO2) from petroleum consumption. Limitations of the previous methods of predicting CO2 emissions and lack of work on the prediction of the Organization of the Petroleum Exporting Countries (OPEC) CO2 emissions from petroleum consumption have motivated this research. Methods/Findings The OPEC CO2 emissions data were collected from the Energy Information Administration. Artificial Neural Network (ANN) adaptability and performance motivated its choice for this study. To improve effectiveness of the ANN, the cuckoo search algorithm was hybridised with accelerated particle swarm optimisation for training the ANN to build a model for the prediction of OPEC CO2 emissions. The proposed model predicts OPEC CO2 emissions for 3, 6, 9, 12 and 16 years with an improved accuracy and speed over the state-of-the-art methods. Conclusion An accurate prediction of OPEC CO2 emissions can serve as a reference point for propagating the reorganisation of economic development in OPEC member countries with the view of reducing CO2 emissions to Kyoto benchmarks—hence, reducing global warming. The policy implications are discussed in the paper. Global warming is attracting attention from policy makers due to its impacts such as floods, extreme weather, increases in temperature by 0.7°C, heat waves, storms, etc. These disasters result in loss of human life and billions of dollars in property. Global warming is believed to be caused by the emissions of greenhouse gases due to human activities including the emissions of carbon dioxide (CO2) from petroleum consumption. Limitations of the previous methods of predicting CO2 emissions and lack of work on the prediction of the Organization of the Petroleum Exporting Countries (OPEC) CO2 emissions from petroleum consumption have motivated this research.The OPEC CO2 emissions data were collected from the Energy Information Administration. Artificial Neural Network (ANN) adaptability and performance motivated its choice for this study. To improve effectiveness of the ANN, the cuckoo search algorithm was hybridised with accelerated particle swarm optimisation for training the ANN to build a model for the prediction of OPEC CO2 emissions. The proposed model predicts OPEC CO2 emissions for 3, 6, 9, 12 and 16 years with an improved accuracy and speed over the state-of-the-art methods.An accurate prediction of OPEC CO2 emissions can serve as a reference point for propagating the reorganisation of economic development in OPEC member countries with the view of reducing CO2 emissions to Kyoto benchmarks--hence, reducing global warming. The policy implications are discussed in the paper. Background Global warming is attracting attention from policy makers due to its impacts such as floods, extreme weather, increases in temperature by 0.7°C, heat waves, storms, etc. These disasters result in loss of human life and billions of dollars in property. Global warming is believed to be caused by the emissions of greenhouse gases due to human activities including the emissions of carbon dioxide (CO2) from petroleum consumption. Limitations of the previous methods of predicting CO2 emissions and lack of work on the prediction of the Organization of the Petroleum Exporting Countries (OPEC) CO2 emissions from petroleum consumption have motivated this research. Methods/Findings The OPEC CO2 emissions data were collected from the Energy Information Administration. Artificial Neural Network (ANN) adaptability and performance motivated its choice for this study. To improve effectiveness of the ANN, the cuckoo search algorithm was hybridised with accelerated particle swarm optimisation for training the ANN to build a model for the prediction of OPEC CO2 emissions. The proposed model predicts OPEC CO2 emissions for 3, 6, 9, 12 and 16 years with an improved accuracy and speed over the state-of-the-art methods. Conclusion An accurate prediction of OPEC CO2 emissions can serve as a reference point for propagating the reorganisation of economic development in OPEC member countries with the view of reducing CO2 emissions to Kyoto benchmarks—hence, reducing global warming. The policy implications are discussed in the paper. |
| Author | Gital, Abdulsalam Ya’u Abdul-kareem, Sameem Chiroma, Haruna Khan, Abdullah Rahman, Muhammad Zubair Herawan, Tutut Nawi, Nazri Mohd Shuib, Liyana Abubakar, Adamu I. |
| AuthorAffiliation | 4 Faculty of Information and Communication Technology, International Islamic University Malaysia, Kuala Lumpur, Malaysia 3 Faculty of Computing, University Technology Malaysia, Johor Bahru, Malaysia University of Vermont, UNITED STATES 1 Faculty of Computer Science and IT, University of Malaya, Kuala Lumpur, Malaysia 5 School of Science, Department of Computer Science, Federal College of Education (Technical), Gombe, Nigeria 2 Software and multimedia center faculty of science and computer technology, University Tun Hussein Onn, Johor Bahru, Malaysia |
| AuthorAffiliation_xml | – name: 2 Software and multimedia center faculty of science and computer technology, University Tun Hussein Onn, Johor Bahru, Malaysia – name: 5 School of Science, Department of Computer Science, Federal College of Education (Technical), Gombe, Nigeria – name: University of Vermont, UNITED STATES – name: 1 Faculty of Computer Science and IT, University of Malaya, Kuala Lumpur, Malaysia – name: 4 Faculty of Information and Communication Technology, International Islamic University Malaysia, Kuala Lumpur, Malaysia – name: 3 Faculty of Computing, University Technology Malaysia, Johor Bahru, Malaysia |
| Author_xml | – sequence: 1 givenname: Haruna surname: Chiroma fullname: Chiroma, Haruna – sequence: 2 givenname: Sameem surname: Abdul-kareem fullname: Abdul-kareem, Sameem – sequence: 3 givenname: Abdullah surname: Khan fullname: Khan, Abdullah – sequence: 4 givenname: Nazri Mohd surname: Nawi fullname: Nawi, Nazri Mohd – sequence: 5 givenname: Abdulsalam Ya’u surname: Gital fullname: Gital, Abdulsalam Ya’u – sequence: 6 givenname: Liyana surname: Shuib fullname: Shuib, Liyana – sequence: 7 givenname: Adamu I. surname: Abubakar fullname: Abubakar, Adamu I. – sequence: 8 givenname: Muhammad Zubair surname: Rahman fullname: Rahman, Muhammad Zubair – sequence: 9 givenname: Tutut surname: Herawan fullname: Herawan, Tutut |
| BackLink | https://www.ncbi.nlm.nih.gov/pubmed/26305483$$D View this record in MEDLINE/PubMed |
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| Copyright | 2015 Chiroma et al. This is an open access article distributed under the terms of the Creative Commons Attribution License: http://creativecommons.org/licenses/by/4.0/ (the “License”), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License. 2015 Chiroma et al 2015 Chiroma et al |
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| Notes | ObjectType-Article-1 SourceType-Scholarly Journals-1 ObjectType-Feature-2 content type line 14 Competing Interests: The authors have declared that no competing interests exist. Conceived and designed the experiments: HC SA. Performed the experiments: AK NMN MZR. Analyzed the data: HC SA AYG. Contributed reagents/materials/analysis tools: HC SA AYG. Wrote the paper: HC SA TH AYG. The critical review of the manuscript which significantly contributed to the improvement of the scientific content: TH AYG. Critically addressed the reviewers comments and properly guided in the implementation of the comments as well as approved the manuscript: LMS AIA. |
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| SubjectTerms | Adaptability Algorithms Artificial neural networks Benchmarks Carbon dioxide Carbon Dioxide - analysis Carbon dioxide emissions Climate change Consumption Disasters Economic development Emissions Environmental policy Extreme weather Global Warming Greenhouse effect Greenhouse gases Heat tolerance Heat waves Humans International relations Mathematical models Neural networks Neural Networks (Computer) Petroleum Predictions Search algorithms Storms Weather extremes |
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| Title | Global Warming: Predicting OPEC Carbon Dioxide Emissions from Petroleum Consumption Using Neural Network and Hybrid Cuckoo Search Algorithm |
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