Economy-Wide Effects of Climate Change in Benin: An Applied General Equilibrium Analysis
Abstract
:1. Introduction
2. Reviews of CGE Models and Economy-Wide Effects of Climate Change
3. Methods
3.1. The CGE Model
3.2. Household Welfare Analysis
3.3. Scenario Considerations
3.4. Data Sources for the CGE Model
4. Results
4.1. Changes in Sectoral Output Related to Climate Change
4.2. Changes in Sectoral Exports and Imports under Climate Change Scenarios
4.3. Changes in Factor Prices under Climate Change Scenarios
4.4. Changes in Households Consumption, Income and Welfare
5. Discussion
5.1. Economic Sectoral Effects of Climate Change
5.2. Economic Distributional Effects of Climate Change on Households’ Wealth Level and According to the Living Areas
5.3. Implications for the Dynamic Computable General Equilibrium Model and the Economic Theory
6. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Appendix A
2025 | 2035 | 2045 | |
---|---|---|---|
Maize | −4.4 | −10.0 | −13.9 |
Rice | −9.6 | −20.9 | −28.2 |
Cassava | −7.4 | −16.3 | −22.3 |
Cowpea | −7.6 | −16.8 | −22.9 |
Sorghum | −3.9 | −9.0 | −12.5 |
Yam | −1.8 | −4.3 | 6.0 |
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Authors | Country | Method | Results |
---|---|---|---|
Bezabih et al. [19] | Tanzania 2020–2080 | A recursive dynamic CGE Model | In spite of agricultural productivity losses due to climate change effects, the authors found that the negative effects were limited and could be justified by substitution effects in the factor markets. |
Arndt et al. [18] | Ghana 2007–2050 | Recursive dynamic CGE Model | According to the authors, climate change was projected to reduce national welfare. Poor and urban households and the northern Savannah zone could be negatively affected. An equal distribution of climate effects in terms of size, sectors, and scenarios was also observed. |
Ananda and Widodo [20] | Indonesia | Dynamic CGE Model | According to these authors, GDP and wealth were negatively affected in the different scenarios. The more intense the climate change effects are, the more GDP, welfare, and other macroeconomic variables decline. They added that the effects were unequal among households. |
Boccanfuso et al. [21] | Senegal 2013 | Integrated CGE Model with a Microsimultion Model | The authors claimed that an increase in the world price of fossil fuels will lead to an increase in poverty rates. Addingland productivity losses to increases in the world price of fossil fuels leads to higher increases in poverty rates. |
Thurlow et al. [22] | Zambia 2025 | Hydro-crop (HC) Models and Dynamic CGE Model | The authors found that GDP declined by 4% and 2% of the households fall under the poverty line because of the climate change effects. |
Gebreegziabher et al. [23] | Ethiopia 2010–2016 | Dynamic CGE Model | The authors showed that agricultural productivity losses resulting from the climate change effects lead to income drops. |
Juana et al. [24] | South Africa | Static CGE model | The authors demonstrated that precipitation shortage due to climate change led to a general deterioration in households’ welfare, with the poor more adversely affected. |
Vista [25] | Philippines | Static CGE model | The authors found that climate change negatively affects the real GDP, export quantity, import quantity, and employment. |
Sector | 2025 | 2035 | 2045 |
---|---|---|---|
Maize | −6.807 | −6.831 | −6.872 |
Rice | −6.699 | −6.717 | −6.855 |
Cassava | −6.872 | −6.872 | −6.872 |
Yam | −6.872 | −6.872 | −6.872 |
Pineapple | −1.286 | −1.591 | −1.618 |
Vegetable | −4.958 | −6.131 | −6.234 |
Cowpea | −6.872 | −6.872 | −6.872 |
Sorghum | −6.824 | −6.842 | −6.872 |
Other staple crops | −6.872 | −6.872 | −6.415 |
Cotton | −1.359 | −1.704 | −1.734 |
Cashew nut | −6.872 | −6.872 | −6.872 |
Palm grove | −1.954 | −2.396 | −2.435 |
Other export crops | −4.882 | −5.759 | −5.835 |
Livestock | −2.642 | −3.264 | −3.318 |
Milk processing | −2.345 | −2.883 | −2.93 |
Poultry farming | −2.806 | −3.441 | −3.497 |
Hunting and forestry | −2.688 | −3.343 | −3.4 |
Fishing | −2.19 | −2.701 | −2.746 |
Trade | −2.43 | −2.876 | −2.918 |
Non-agricultural | −0.894 | −1.117 | −1.136 |
Commodities | 2025 | 2035 | 2045 |
---|---|---|---|
Maize | −2.790 | −2.905 | −2.915 |
Rice | −6.699 | −6.717 | −6.855 |
Cassava | −9.037 | −11.528 | −11.73 |
Yam | −4.726 | −4.865 | −4.914 |
Pineapple | −1.286 | −1.591 | −1.618 |
Vegetable | −4.799 | −5.920 | −6.019 |
Cowpea | −5.46 | −5.698 | −5.804 |
Sorghum | −3.529 | −3.71 | −3.721 |
Other staple crops | −4.542 | −5.633 | −5.729 |
Cotton | −1.044 | −1.304 | −1.326 |
Cashew nut | −1.923 | −2.376 | −2.415 |
Palm grove | −1.954 | −2.396 | −2.435 |
Other export crops | −4.882 | −5.759 | −5.835 |
Livestock | −2.212 | −2.715 | −2.759 |
Milk and dairy products | −2.345 | −2.883 | −2.93 |
Poultry products | −2.806 | −3.441 | −3.497 |
Hunting and Forestry products | −1.535 | −1.889 | −1.920 |
Fish products | −2.190 | −2.701 | −2.746 |
Trade products | −2.430 | −2.876 | −2.918 |
Non-agricultural products | −1.069 | −1.313 | −1.335 |
Commodities | 2025 | 2035 | 2045 |
---|---|---|---|
Maize | 2.676 | 2.187 | 2.129 |
Rice | 1.843 | 1.261 | 1.205 |
Cassava | 10.176 | 14.558 | 15.707 |
Yam | 11.9 | 11.245 | 11.324 |
Pineapple | 2.507 | 3.212 | 3.272 |
Vegetable | 2.199 | 2.832 | 2.885 |
Cowpea | 10.425 | 9.792 | 10.001 |
Sorghum | 1.271 | 0.765 | 0.711 |
Other staple crops | 2.441 | 3.13 | 3.188 |
Cotton | 0.517 | 0.736 | 0.753 |
Cashew nut | 0.511 | 0.716 | 0.732 |
Palm grove | 2.194 | 2.827 | 2.881 |
Other export crops | 2.267 | 2.923 | 2.979 |
Livestock | 2.444 | 3.163 | 3.223 |
Milk and dairy products | 2.453 | 3.174 | 3.234 |
Poultry products | 1.886 | 2.45 | 2.497 |
Hunting and forestry products | 1.94 | 2.513 | 2.561 |
Fish products | 1.276 | 1.682 | 1.716 |
Non-agricultural products | −1.817 | −2.173 | −2.206 |
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Hounnou, F.E.; Dedehouanou, H.; Zannou, A.; Agbahey, J.; Biaou, G. Economy-Wide Effects of Climate Change in Benin: An Applied General Equilibrium Analysis. Sustainability 2019, 11, 6569. https://doi.org/10.3390/su11236569
Hounnou FE, Dedehouanou H, Zannou A, Agbahey J, Biaou G. Economy-Wide Effects of Climate Change in Benin: An Applied General Equilibrium Analysis. Sustainability. 2019; 11(23):6569. https://doi.org/10.3390/su11236569
Chicago/Turabian StyleHounnou, Femi E., Houinsou Dedehouanou, Afio Zannou, Johanes Agbahey, and Gauthier Biaou. 2019. "Economy-Wide Effects of Climate Change in Benin: An Applied General Equilibrium Analysis" Sustainability 11, no. 23: 6569. https://doi.org/10.3390/su11236569
APA StyleHounnou, F. E., Dedehouanou, H., Zannou, A., Agbahey, J., & Biaou, G. (2019). Economy-Wide Effects of Climate Change in Benin: An Applied General Equilibrium Analysis. Sustainability, 11(23), 6569. https://doi.org/10.3390/su11236569