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Decomposition analysis of the change of energy intensity of manufacturing industries in Thailand. (2014). Buddhivanich, Atinat ; Wiboonchutikula, Paitoon ; Chontanawat, Jaruwan .
In: Energy.
RePEc:eee:energy:v:77:y:2014:i:c:p:171-182.

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  2. Factors Determining the Farmers’ Decision for Adoption and Non-Adoption of Oil Palm Cultivation in Northeast Thailand. (2023). Saqib, Shahab E ; Ali, Shoukat ; Visetnoi, Supawan ; Thapa, Neha ; Yaseen, Muhammad.
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  3. Demand side management for electricity in Iran: cost and emission analysis using LEAP modeling framework. (2022). Samadi, Reza ; Panahi, Mostafa ; Masoomi, Mina.
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  4. Building a top-down method based on machine learning for evaluating energy intensity at a fine scale. (2022). Guo, Jinyu ; Ma, Jinji ; Li, Zhengqiang ; Hong, Jin.
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  5. Study on the industrial structure optimization under constraint of energy intensity. (2021). Xu, Haitao ; Pu, Chenxi ; Li, Mengna ; Pan, Xiongfeng.
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  6. Examining the Dynamics and Determinants of Energy Consumption in China’s Megacity Based on Industrial and Residential Perspectives. (2021). Huang, Gengzhi ; Wang, Fei ; Zhang, Zhongwu ; Lin, Xiaojie ; Ye, Yuyao.
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  7. Global impacts of the topological structure of industrial driving networks on energy intensity. (2021). Zhao, Yiran ; Liu, Donghui ; Gao, Xiangyun ; Zhou, Jinsheng ; Zheng, Huiling.
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  8. Modelling the Non-Linear Energy Intensity Effect Based on a Quantile-on-Quantile Approach: The Case of Textiles Manufacturing in Asian Countries. (2020). Ww, Leonardus ; Kot, Sebastian ; Haseeb, Muhammad ; Sauga, Piotr.
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  9. Decomposition Analysis of the Carbon Emissions of the Manufacturing and Industrial Sector in Thailand. (2020). Buddhivanich, Atinat ; Wiboonchutikula, Paitoon ; Chontanawat, Jaruwan.
    In: Energies.
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  10. Examining the Driving Forces Affecting Energy Intensity during Financial Crisis: Evidence from ASEAN-6 Countries. (2020). Tenrini, Rita ; Setiawan, Hadi ; Damayanty, Sofia Arie ; Dyarto, Rakhmin ; Setyawan, Dhani.
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  11. Uncovering Variations, Determinants, and Disparities of Multisector-Level Final Energy Use of Industries Across Cities. (2019). Wang, Yichen ; Yang, Wei ; Liao, Xianrui ; Song, Junnian.
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  12. Energy intensity and its differences across China’s regions: Combining econometric and decomposition analysis. (2019). He, Yongxiu ; Guang, Fengtao ; Sharp, Basil ; Wen, LE.
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  13. Analysis of regional difference decomposition of changes in energy consumption in China during 1995–2015. (2019). Wen, Fenghua ; Tian, Meiyu ; Wang, Chang ; Liu, Hong.
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  14. Understanding the energy intensity change in Chinas food industry: A comprehensive decomposition method. (2019). Lin, Boqiang ; Xie, Xuan.
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  15. Driving factors of carbon emissions in China: A joint decomposition approach based on meta-frontier. (2019). Zhou, Peng ; Su, Xuelin ; Wang, Hui ; Shi, Junxue ; Liu, Bingquan.
    In: Applied Energy.
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  16. Structural Change and Its Impact on the Energy Intensity of Agricultural Sector in China. (2018). han, hongyun ; Wu, Shu.
    In: Sustainability.
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  17. Energy savings in Nigeria. Is there a way of escape from energy inefficiency?. (2018). ADOM, PHILIP ; Adams, Samuel.
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  18. Context sensitive production planning and energy management approach in energy intensive industries. (2016). Sucic, Boris ; Vuk, Tomaz ; Pusnik, Matevz ; Al-Mansour, Fouad .
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  19. Gap analysis of industrial energy management systems in Slovenia. (2016). Pusnik, Matevz ; Gubina, A F ; Sucic, Boris ; Al-Mansour, Fouad .
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  20. Has energy conservation been an effective policy for Thailand? An input–output structural decomposition analysis from 1995 to 2010. (2016). Supasa, Tharinya ; Wongsapai, Wongkot ; Lin, Shih-Mo ; Hsiau, Shu-San ; Wu, Jiunn-Chi .
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  21. Energy security in ASEAN: A quantitative approach for sustainable energy policy. (2016). Chang, Youngho ; Tongsopit, Sopitsuda ; Aksornkij, Apinya ; Wangjiraniran, Weerin ; Kittner, Noah.
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  22. Energy efficiency and CO2 mitigation potential of the Turkish iron and steel industry using the LEAP (long-range energy alternatives planning) system. (2015). Ates, Seyithan A.
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  23. Determinants of energy intensity in South Africa: Testing for structural effects in parameters. (2015). ADOM, PHILIP.
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  24. Logarithmic mean Divisia index (LMDI) decomposition of coal consumption in China based on the energy allocation diagram of coal flows. (2015). Chong, Chinhao ; Song, Shizhong ; Ni, Weidou ; Li, Zheng ; Ma, Linwei.
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  25. Measuring energy efficiency: Is energy intensity a good evidence base?. (2015). Proskuryakova, Liliana ; Kovalev, A..
    In: Applied Energy.
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  42. Economic growth, energy consumption and CO2 emissions in Gulf Cooperation Council countries. (2014). Gow, Jeff ; Salahuddin, Mohammad.
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  43. Are structural change and modernisation leading to convergence in the CO2 economy? Decomposition analysis of China, EU and USA. (2014). Kaivo-oja, Jari ; Auffermann, B. ; Chen, Y. ; Mikkonen, S. ; Vehmas, J. ; Panula-Ontto, J. ; Luukkanen, J..
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  44. A multi-sectoral decomposition analysis of city-level greenhouse gas emissions: Case study of Tianjin, China. (2014). Kang, Jidong ; Zhang, Xin ; Zhao, Tao ; Lin, Tao ; Liu, Nan.
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  45. Determinants of greenhouse gas emissions from Swedish private consumption: Time-series and cross-sectional analyses. (2014). Nassen, Jonas .
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    RePEc:eee:energy:v:66:y:2014:i:c:p:98-106.

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  46. Economic growth, energy consumption and CO2 emissions in OECD (Organization for Economic Co-operation and Development)s transport sector: A fully modified bi-directional relationship approach. (2014). Saboori, Behnaz ; Baba, Maizan bin ; Sapri, Maimunah .
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  47. Changes of energy-related GHG emissions in China: An empirical analysis from sectoral perspective. (2014). Kang, Jidong ; Zhao, Tao ; Liu, Nan.
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  49. Differential output growth across regions and carbon dioxide emissions: Evidence from U.S. and China. (2013). Wang, Chunhua.
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