Original Article

Economic Impact of Climate Change on Fisheries: Evidence from Multi-country Using ARDL Approach

Year: 2025 | Month: June | Volume 70 | Issue 2

References (73)

Adom, P.K., Bekoe, W.and Akoena, S.K.K. 2012. Modelling aggregate domestic electricity demand in Ghana: An autoregressive distributed lag bounds cointegration approach. Energy Policy, 42: 530–537.

View at Google Scholar

Ahmed, M. and Saha, P. 2023. Economic Impact of Climate Change on Agriculture: A Study of India and its Neighbouring Countries Using ARDL Approach. Nature Environment and Pollution Technology, 22(4): 2173–2179.

View at Google Scholar

Allison, E.H., Perry, A.L., Badjeck, M., Neil Adger, W., Brown, K., Conway, D., … Dulvy, N.K. 2009. Vulnerability of national economies to the impacts of climate change on fisheries. Fish and Fisheries, 10(2): 173–196.

View at Google Scholar

Ayub, Z. 2010. Effect of temperature and rainfall as a component of climate change on fish and shrimp catch in Pakistan. The Journal of Transdisciplinary Environmental Studies, 9(1): 1–9.

View at Google Scholar

Badjeck, M.-C., Allison, E.H., Halls, A.S. and Dulvy, N.K. 2010. Impacts of climate variability and change on fishery-based livelihoods. Marine Policy, 34(3): 375–383.

View at Google Scholar

Barange, M., Bahri, T., Beveridge, M.C., Cochrane, K.L., Funge-Smith, S. and Poulain, F. 2018. Impacts of climate change on fisheries and aquaculture. United Nations’ Food and Agriculture Organization, 12(4): 628–635.

View at Google Scholar

Begum, M., Masud, M.M., Alam, L., Mokhtar, M.B. and Amir, A.A. 2022. The impact of climate variables on marine fish production: An empirical evidence from Bangladesh based on autoregressive distributed lag (ARDL) approach. Environmental Science and Pollution Research, 29(58): 87923–87937.

View at Google Scholar

Brander, K. 2010. Impacts of climate change on fisheries. Journal of Marine Systems, 79(3–4): 389–402.

View at Google Scholar

Brander, K.M. 2007. Global fish production and climate change. Proceedings of the National Academy of Sciences, 104(50): 19709–19714.

View at Google Scholar

Breusch, T.S. 1978. Testing for autocorrelation in dynamic linear models. Australian Economic Papers, 17(31).

View at Google Scholar

Breusch, T.S. and Pagan, A.R. 1979. A simple test for heteroscedasticity and random coefficient variation. Econometrica: Journal of the Econometric Society, pp. 1287–1294.

View at Google Scholar

Britten, G.L. and Sibert, E.C. 2020. Enhanced fish production during a period of extreme global warmth. Nature Communications, 11(1): 5636.

View at Google Scholar

Brown, C.J., Fulton, E.A., Hobday, A.J., Matear, R.J., Possingham, H.P., Bulman, C., … Richardson, A.J. 2010. Effects of climate-driven primary production change on marine food webs: Implications for fisheries and conservation. Global Change Biology, 16(4): 1194–1212.

View at Google Scholar

Brown, R.L., Durbin, J. and Evans, J.M. 1975. Techniques for testing the constancy of regression relationships over time. Journal of the Royal Statistical Society Series B: Statistical Methodology, 37(2): 149–163.

View at Google Scholar

Chandio, A.A., Jiang, Y., Akram, W., Adeel, S., Irfan, M. and Jan, I. 2021. Addressing the effect of climate change in the framework of financial and technological development on cereal production in Pakistan. Journal of Cleaner Production, 288: 125637.

View at Google Scholar

CMFRI. 2023. cmfri 2023 annual report—Google Search.

View at Google Scholar

Dickey, D.A. and Fuller, W.A. 1979. Distribution of the Estimators for Autoregressive Time Series with a Unit Root. Journal of the American Statistical Association, 74(366a): 427–431.

View at Google Scholar

Do, V.Q., Phung, M.L., Truong, D.T., Pham, T.T.T., Dang, V.T. and Nguyen, T.K. 2021. The impact of extreme events and climate change on agricultural and fishery enterprises in Central Vietnam. Sustainability, 13(13): 7121.

View at Google Scholar

FAO. 2024. The State of World Fisheries and Aquaculture.

View at Google Scholar View at CrossRef

Ficke, A.D., Myrick, C.A. and Hansen, L.J. 2007. Potential impacts of global climate change on freshwater fisheries. Reviews in Fish Biology and Fisheries, 17(4): 581–613.

View at Google Scholar

Gamito, R., Teixeira, C.M., Costa, M.J. and Cabral, H.N. 2015. Are regional fisheries’ catches changing with climate? Fisheries Research, 161: 207–216.

View at Google Scholar

Ghosh, B.C., Eyasmin, F. and Adeleye, B.N. 2023. Climate change and agriculture nexus in Bangladesh: Evidence from ARDL and ECM techniques. PLOS Climate, 2(7): e0000244.

View at Google Scholar

Gobler, C.J., Merlo, L.R., Morrell, B.K. and Griffith, A.W. 2018. Temperature, acidification, and food supply interact to negatively affect the growth and survival of the forage fish, Menidia beryllina (Inland Silverside), and Cyprinodon variegatus (Sheepshead Minnow). Frontiers in Marine Science, 5: 86.

View at Google Scholar

Godfrey, L.G. 1978. Testing against general autoregressive and moving average error models when the regressors include lagged dependent variables. Econometrica: Journal of the Econometric Society, pp. 1293–1301.

View at Google Scholar

Greer, K., Zeller, D., Woroniak, J., Coulter, A., Winchester, M., Palomares, M.D. and Pauly, D. 2019. Global trends in carbon dioxide (CO2) emissions from fuel combustion in marine fisheries from 1950 to 2016. Marine Policy, 107: 103382.

View at Google Scholar

Ho, D.J., Maryam, D.S., Jafar-Sidik, M. and Aung, T. 2013. Influence of weather condition on pelagic fish landings in Kota Kinabalu, Sabah, Malaysia. Journal of Tropical Biology & Conservation (JTBC), 10.

View at Google Scholar

Hussain, M., Butt, A.R., Uzma, F., Ahmed, R., Irshad, S., Rehman, A. and Yousaf, B. 2020. A comprehensive review of climate change impacts, adaptation, and mitigation on environmental and natural calamities in Pakistan. Environmental Monitoring and Assessment, 192(1): 48.

View at Google Scholar

IPCC. 2022. Climate Change 2022: Impacts, Adaptation and Vulnerability. Contribution of Working Group II to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change.

View at Google Scholar

Islam, S., Hossain, P.R., Braun, M., Amjath-Babu, T.S., Mohammed, E.Y., Krupnik, T.J., … Mauerman, M. 2024. Economic valuation of climate induced losses to aquaculture for evaluating climate information services in Bangladesh. Climate Risk Management, 43: 100582.

View at Google Scholar

Jarque, C.M. and Bera, A.K. 1987. A test for normality of observations and regression residuals. International Statistical Review/Revue Internationale de Statistique, pp. 163–172.

View at Google Scholar

Jatuporn, C. and Takeuchi, K. 2023. Assessing the impact of climate change on the agricultural economy in Thailand: An empirical study using panel data analysis. Environmental Science and Pollution Research, 30(3): 8123–8132.

View at Google Scholar

khoshnevis Yazdi, S. and Shakouri, B. 2010. The effects of climate change on aquaculture. International Journal of Environmental Science and Development, 1(5): 378.

View at Google Scholar

K?l?çarslan, Z. and Dumrul, Y. 2017. Foreign direct investments and CO2 emissions relationship: The case of Turkey. Business and Economics Research Journal, 8(4): 647–660.

View at Google Scholar

Kristofersson, D., Gunnlaugsson, S. and Valtysson, H. 2021. Factors affecting greenhouse gas emissions in fisheries: Evidence from Iceland’s demersal fisheries. ICES Journal of Marine Science, 78(7): 2385–2394.

View at Google Scholar

Lal, M. 2005. Climate change—Implications for India’s water resources. Clim. Chang. Water Resour. South Asia. AA Balkema Publishers (Taylor & Francis Group), Lieden, The Netherlands, pp. 155–193.

View at Google Scholar

Lavell, A., Oppenheimer, M., Diop, C., Hess, J., Lempert, R., Li, J. and Myeong, S. 2012. Managing the risks of extreme events and disasters to advance climate change adaptation. A Special Report of Working Groups I and II of the Intergovernmental Panel on Climate Change (IPCC), 3: 25–64.

View at Google Scholar

Lee, H., Calvin, K., Dasgupta, D., Krinner, G., Mukherji, A., Thorne, P., … Barret, K. (2023). IPCC, 2023: Climate Change 2023: Synthesis Report, Summary for Policymakers. Contribution of Working Groups I, II and III to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change [Core Writing Team, H. Lee and J. Romero (eds.)]. IPCC, Geneva, Switzerland. Retrieved from https://mural. maynoothuniversity.ie/17886/

View at Google Scholar

Li, X., Cui, P., Zhang, X.-Q. and Zhang, F. 2024. Intensified warming suppressed the snowmelt in the Tibetan Plateau. Advances in Climate Change Research. Retrieved from https://www.sciencedirect.com/science/article/pii/ S1674927824000819

View at Google Scholar

Lv, C., Huang, Y., Sun, W., Yu, L. and Zhu, J. 2020. Response of rice yield and yield components to elevated [CO2]: A synthesis of updated data from FACE experiments. European Journal of Agronomy, 112: 125961.

View at Google Scholar

Mall, R.K., Gupta, A., Singh, R., Singh, R.S. and Rathore, L.S. 2006. Water resources and climate change: An Indian perspective. Current Science, pp. 1610–1626.

View at Google Scholar

Mariani, G., Cheung, W.W.L., Lyet, A., Sala, E., Mayorga, J., Velez, L., … Mouillot, D. 2020. Let more big fish sink: Fisheries prevent blue carbon sequestration—half in unprofitable areas. Science Advances, 6(44): eabb4848.

View at Google Scholar

Maulu, S., Hasimuna, O.J., Chibesa, M., Bbole, I., Mphande, J., Mwanachingwala, M., … Mbewe, J. 2024. Perceived effects of climate change on aquaculture production in Zambia: Status, vulnerability factors, and adaptation strategies. Frontiers in Sustainable Food Systems, 8: 1348984.

View at Google Scholar

Maulu, S., Hasimuna, O.J., Haambiya, L.H., Monde, C., Musuka, C.G., Makorwa, T.H., … Nsekanabo, J.D. 2021. Climate change effects on aquaculture production: Sustainability implications, mitigation, and adaptations. Frontiers in Sustainable Food Systems, 5: 609097.

View at Google Scholar

Mendenhall, E., Hendrix, C., Nyman, E., Roberts, P.M., Hoopes, J.R., Watson, J.R., … Sumaila, U.R. 2020. Climate change increases the risk of fisheries conflict. Marine Policy, 117: 103954.

View at Google Scholar

Mohammed, E.Y. and Uraguchi, Z.B. 2013. Impacts of climate change on fisheries: Implications for food security in Sub-Saharan Africa. Global Food Security, Nova Science Publishers, Inc, pp. 114–135.

View at Google Scholar

Muringai, Rodney, T., Mafongoya, Paramu. L. and Lottering, R. 2021. Climate Change and Variability Impacts on Sub- Saharan African Fisheries: A Review. Reviews in Fisheries Science & Aquaculture, 29(4): 706–720.

View at Google Scholar

Murshed, M., Nurmakhanova, M., Al-Tal, R., Mahmood, H., Elheddad, M. and Ahmed, R. 2022. Can intra-regional trade, renewable energy use, foreign direct investments, and economic growth mitigate ecological footprints in South Asia? Energy Sources, Part B: Economics, Planning, and Policy, 17(1): 2038730.

View at Google Scholar

Nasrullah, M., Rizwanullah, M., Yu, X., Jo, H., Sohail, M. T. and Liang, L. 2021. Autoregressive distributed lag (ARDL) approach to study the impact of climate change and other factors on rice production in South Korea. Journal of Water and Climate Change, 12(6): 2256–2270.

View at Google Scholar

Ng’onga, M., Kalaba, F.K., Mwitwa, J. and Nyimbiri, B. 2019. The interactive effects of rainfall, temperature and water level on fish yield in Lake Bangweulu fishery, Zambia. Journal of Thermal Biology, 84: 45–52.c

View at Google Scholar

Pankhurst, N.W. and Munday, P.L. 2011. Effects of climate change on fish reproduction and early life history stages. Marine and Freshwater Research, 62(9): 1015–1026.

View at Google Scholar

Parker, R.W., Blanchard, J.L., Gardner, C., Green, B.S., Hartmann, K., Tyedmers, P.H. and Watson, R.A. 2018. Fuel use and greenhouse gas emissions of world fisheries. Nature Climate Change, 8(4): 333–337.

View at Google Scholar

Patrick, A.E.S. 2016. Influence of rainfall and water level on inland fisheries production: A review. Arch. Appl. Sci. Res., 8(16): 44–51.

View at Google Scholar

Pesaran, M.H., Shin, Y. and Smith, R.J. 2001. Bounds testing approaches to the analysis of level relationships. Journal of Applied Econometrics, 16(3): 289–326.

View at Google Scholar

Phillips, P.C.B. 1988. Testing for a Unit Root in Time Series Regression. Biometrika. Retrieved from https://www.jstor. org/stable/pdf/2336182

View at Google Scholar

Piao, S., Ciais, P., Huang, Y., Shen, Z., Peng, S., Li, J., … Ding, Y. 2010. The impacts of climate change on water resources and agriculture in China. Nature, 467(7311): 43–51.

View at Google Scholar

Raihan, A. and Tuspekova, A. 2022. Nexus between energy use, industrialization, forest area, and carbon dioxide emissions: New insights from Russia. Journal of Environmental Science and Economics, 1(4): 1–11.

View at Google Scholar

Rijnsdorp, A.D., Peck, M.A., Engelhard, G.H., Möllmann, C. and Pinnegar, J.K. 2009. Resolving the effect of climate change on fish populations. ICES Journal of Marine Science, 66(7): 1570–1583.

View at Google Scholar

Seggel, A. and De Young, C. 2016. Climate change implications for fisheries and aquaculture: Summary of the findings of the Intergovernmental Panel on Climate Change Fifth Assessment Report. FAO Fisheries and Aquaculture Circular, (C1122), I.

View at Google Scholar

Sharma, A.P., Naskar, M., Joshi, K.D., Bhattacharjya, B.K., Sahu, S.K., Das, S., … Das, M.K. 2014. Impact of climate variation on breeding of major fish species in inland waters. Central Inland Fisheries Research Institute, Kokata, West Bengal. Bulletin, 185: 32.

View at Google Scholar

Siddique, M.A.B., Ahammad, A.S., Bashar, A., Hasan, N.A., Mahalder, B., Alam, M.M., … Haque, M.M. 2022. Impacts of climate change on fish hatchery productivity in Bangladesh: A critical review. Heliyon, 8(12).

View at Google Scholar

Sovacool, B.K., Griffiths, S., Kim, J. and Bazilian, M. 2021. Climate change and industrial F-gases: A critical and systematic review of developments, sociotechnical systems and policy options for reducing synthetic greenhouse gas emissions. Renewable and Sustainable Energy Reviews, 141: 110759.

View at Google Scholar

Stewart, J., Hughes, J.M., Stanley, C. and Fowler, A.M. 2020. The influence of rainfall on recruitment success and commercial catch for the large sciaenid, Argyrosomus japonicus, in eastern Australia. Marine Environmental Research, 157: 104924.

View at Google Scholar

Subba, S., Ma, Y.-M., Ma, W.-Q. and Han, C.-B. 2024. Extreme precipitation detection ability of four high-resolution precipitation product datasets in hilly area: A case study in Nepal. Advances in Climate Change Research, 15(3): 390–405.

View at Google Scholar

Trenberth, K.E. 2011. Changes in precipitation with climate change. Climate Research, 47(1–2): 123–138.

View at Google Scholar

Usman, M. and Balsalobre-Lorente, D. 2022. Environmental concern in the era of industrialization: Can financial development, renewable energy and natural resources alleviate some load? Energy Policy, 162: 112780.

View at Google Scholar

Vivekanandan, E. 2010. Impact of climate change in the Indian marine fisheries and the potential adaptation options. Retrieved from http://eprints.cmfri.org.in/8754/

View at Google Scholar

Vogelsang, T.J. and Wagner, M. 2013. A fixed-b perspective on the Phillips–Perron unit root tests. Econometric Theory, 29(3): 609–628.

View at Google Scholar

Wang, J., Wang, C., Chen, N., Xiong, Z., Wolfe, D. and Zou, J. 2015. Response of rice production to elevated [CO2] and its interaction with rising temperature or nitrogen supply: A meta-analysis. Climatic Change, 130(4): 529–543.

View at Google Scholar

Xi-Liu, Y.U.E. and Qing-Xian, G.A.O. 2018. Contributions of natural systems and human activity to greenhouse gas emissions. Advances in Climate Change Research, 9(4): 243–252.

View at Google Scholar

Zhai, F. and Zhuang, J. 2009. Agricultural impact of climate change: A general equilibrium analysis with special reference to Southeast Asia. Retrieved from https://ageconsearch. umn.edu/record/331890/

View at Google Scholar

Zhang, Q., Akhtar, R., Saif, A.N.M., Akhter, H., Hossan, D., Alam, S.A. and Bari, M.F. 2023. The symmetric and asymmetric effects of climate change on rice productivity in Malaysia. Heliyon, 9(5).

View at Google Scholar

Zhang, X., Ye, S. and Shen, M. 2023. Driving factors and spatiotemporal characteristics of CO2 emissions from marine fisheries in China: A commonly neglected carbonintensive sector. International Journal of Environmental Research and Public Health, 20(1): 883.

View at Google Scholar

Zhao, J.-T., Su, B.-D., Wang, Y.-J., Tao, H. and Jiang, T. 2021. Population exposure to precipitation extremes in the Indus River Basin at 1.5° C, 2.0° C and 3.0° C warming levels. Advances in Climate Change Research, 12(2): 199–209.

View at Google Scholar

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