Assessing the Impact of Climate Variability on Smallholder Farmers' Household Income and Agricultural Investment Decisions in Eastern Province, Zambia

Authors

DOI:

https://doi.org/10.59413/ajocs/v7.i4.14

Keywords:

Climate Variability, Smallholder Farmers, Agricultural Investment, Household Income, Climate Risk, Climate-Smart Agriculture, Regression Analysis, Zambia

Abstract

Climate variability poses significant challenges to agricultural production and rural livelihoods, particularly among smallholder farmers who depend largely on rain-fed agriculture. This study examined the impact of climate variability on agricultural investment decisions and household income among smallholder farmers in Eastern Province, Zambia. The study adopted a quantitative cross-sectional research design guided by the positivist research paradigm. Primary data were collected from 345 smallholder farming households selected from seven districts using structured questionnaires. Descriptive statistics and simple linear regression analysis were employed to analyse the data. The findings revealed widespread perceptions of increasing climate variability, with 99.1% of respondents reporting changes in rainfall patterns over the past decade. Conservation farming, improved seed varieties, and drought-resistant crops were identified as the principal adaptation strategies adopted by farmers. However, regression analysis showed that climate variability was not a statistically significant predictor of agricultural investment decisions (β = -0.015, p = 0.421) and explained only a negligible proportion of the variation in investment decisions (R² = 0.002). Similarly, the relationship between climate variability and household income was found to be very weak (R² = 0.001, p = 0.574), indicating that household income is influenced by a wider range of socioeconomic and institutional factors beyond climate variability alone. The study concludes that although climate variability remains a major concern for smallholder farmers, it does not independently determine agricultural investment decisions or household income in Eastern Province. The study recommends strengthening access to climate information, extension services, affordable agricultural credit, irrigation development, and improved seed varieties to enhance the resilience and productivity of smallholder farming households.

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References

Adjei, V. and Amaning, E.F. (2021). Low adaptive capacity in Africa and climate change crises. Journal of Atmospheric Science Research, 4(04). DOI: https://doi.org/10.30564/jasr.v4i4.3723

Arslan, A., McCarthy, N., Lipper, L., Asfaw, S., Cattaneo, A. and Kokwe, M. (2015). Climate smart agriculture? Assessing the adaptation implications in Zambia. Journal of Agricultural Economics, 66(3), pp.753-780. DOI: https://doi.org/10.1111/1477-9552.12107

Arslan, A., Belotti, F. and Lipper, L. (2017). Diversification as Part of a CSA Strategy: The Cases of Zambia and Malawi. In: Lipper, L., McCarthy, N., Zilberman, D., Asfaw, S., Branca, G. (eds) Climate Smart Agriculture. Springer. DOI: https://doi.org/10.1007/978-3-319-61194-5_22

Binswanger, H.P. (1980). Attitudes toward risk: Experimental measurement in rural India. American Journal of Agricultural Economics, 62(3), pp.395-407. DOI: https://doi.org/10.2307/1240194

Birthal, P.S., Khan, M.T., Negi, D.S. and Agarwal, S. (2014). Impact of climate change on yields of major food crops in India. Agricultural Economics Research Review, 27(2), pp.145-155. DOI: https://doi.org/10.5958/0974-0279.2014.00019.6

Boros, A., Szolik, E., Desalegn, G. and Tőzsér, D. (2025). A systematic review of opportunities and limitations of innovative practices in sustainable agriculture. Agronomy, 15(1), p.76. DOI: https://doi.org/10.3390/agronomy15010076

Bryan, E., Ringler, C., Okoba, B., Roncoli, C., Silvestri, S. and Herrero, M. (2013). Adapting agriculture to climate change in Kenya. Journal of Environmental Management, 114, pp.26-35. DOI: https://doi.org/10.1016/j.jenvman.2012.10.036

Bwalya, B. and Mwanza, K. (2025). Co-production of knowledge on climate change. PLOS Climate, 4(8), e0000531. DOI: https://doi.org/10.1371/journal.pclm.0000531

Carter, M.R., Little, P.D., Mogues, T. and Negatu, W. (2007). Poverty traps and natural disasters in Ethiopia and Honduras. World Development, 35(5), pp.835-856. DOI: https://doi.org/10.1016/j.worlddev.2006.09.010

Chilambwe, A. (2021). Modelling climate change impacts on maize and soybean yields in Central and Eastern Provinces of Zambia.

CIMMYT et al. (2019). Conservation Agriculture Mother Trials in Chipata, Lundazi, and Sinda, Zambia. Harvard Dataverse.

Creswell, J.W. (2014). Research Design. 4th Edition. SAGE Publications.

Day, R. et al. (2021). Global crop impacts of fall armyworm. Crop Protection, 145, p.105641. DOI: https://doi.org/10.1016/j.cropro.2021.105641

Dercon, S. (2008). Fate and fear: Risk and its consequences in Africa. Journal of African Economies, 17(suppl_2), pp.ii97-ii127. DOI: https://doi.org/10.1093/jae/ejn019

Di Falco, S., Veronesi, M. and Yesuf, M. (2011). Does adaptation to climate change provide food security? American Journal of Agricultural Economics, 93(3), pp.829-846. DOI: https://doi.org/10.1093/ajae/aar006

Fosu-Mensah, B.Y., Vlek, P.L. and MacCarthy, D.S. (2012). Farmers' perception and adaptation to climate change in Ghana. Environment, Development and Sustainability, 14(4), pp.495-505. DOI: https://doi.org/10.1007/s10668-012-9339-7

Gamoyo, M. et al. (2024). Technical report on E-PICSA training for senior lead farmers in Eastern Province. Alliance of Bioversity International and CIAT.

Harvey, C.A. et al. (2014). Extreme vulnerability of smallholder farmers to agricultural risks and climate change in Madagascar. Philosophical Transactions of the Royal Society B, 369(1639). DOI: https://doi.org/10.1098/rstb.2013.0089

IPCC (2021). Climate change 2021: The physical science basis. Interaction, 49(4), pp.44-45.

Kato, M.P. and Kratzer, J. (2013). Empowering women through microfinance. ACRN Journal of Entrepreneurship Perspectives, 2(1), pp.31-59.

Kothari, C.R. (2004). Research Methodology. 2nd Edition. New Age International.

Legg, S. (2021). IPCC, 2021: Climate change 2021-the physical science basis. Interaction, 49(4), pp.44-45.

Lobell, D.B. et al. (2008). Prioritizing climate change adaptation needs for food security in 2030. Science, 319(5863), pp.607-610. DOI: https://doi.org/10.1126/science.1152339

Lobell, D.B., Schlenker, W. and Costa-Roberts, J. (2011). Climate trends and global crop production since 1980. Science, 333(6042), pp.616-620. DOI: https://doi.org/10.1126/science.1204531

Manoti, D. et al. (2024). Empowering Smallholder Farmers in Zambia's Climate Hotspots through Climate-Smart Innovations. AICCRA.

Matchaya, G.C., Kasoma-Pele, W. and Mutenje, M.J. (2025). Cost-benefit analysis of drought risk reduction anticipatory action in Zambia. IWMI.

MCII (2025). Adaptation Roadmap for the Agricultural Sector - Eastern Province, Zambia.

Mendelsohn, R., Dinar, A. and Williams, L. (2006). The distributional impact of climate change on rich and poor countries. Environment and Development Economics, 11(2), pp.159-178. DOI: https://doi.org/10.1017/S1355770X05002755

Mudenda, S., Chomba, C. and Banda, M. (2024). Effects of seasonal climate forecasts on livelihood outcomes in Zambia. Discover Sustainability, 5, 442. DOI: https://doi.org/10.1007/s43621-024-00536-4

Mulenga, B.P. and Kabisa, M. (2021). Building Back Better: Vulnerability and Climate Resilience in Rural Zambia.

Mulenga, B.P., Wineman, A. and Sitko, N.J. (2017). Climate trends and farmers' perceptions of climate change in Zambia. Environmental Management, 59(2), pp.291-306. DOI: https://doi.org/10.1007/s00267-016-0780-5

Nanyangwe, V. and Tembo, R. (2024). Effects of Climate-Smart Agriculture on Smallholder Farmers in Eastern Province. International Journal of Applied Agricultural Sciences, 10(3), pp.83-99. DOI: https://doi.org/10.11648/j.ijaas.20241003.12

Ngoma, H. et al. (2021). Climate-smart agriculture, cropland expansion and deforestation in Zambia. Land Use Policy, 107, p.105482. DOI: https://doi.org/10.1016/j.landusepol.2021.105482

Ngoma, H., Lupiya, P., Kabisa, M. and Hartley, F. (2021). Impacts of climate change on agriculture and household welfare in Zambia. Climatic Change, 167(3), p.55. DOI: https://doi.org/10.1007/s10584-021-03168-z

Rawlins, J. and Kalaba, F.K. (2020). Adaptation to climate change in Zambia. African Handbook of Climate Change Adaptation, pp.1-20. DOI: https://doi.org/10.1007/978-3-030-42091-8_167-1

Rosenzweig, M.R. and Binswanger, H.P. (1993). Wealth, weather risk and agricultural investments. The Economic Journal, 103(416), pp.56-78. DOI: https://doi.org/10.2307/2234337

Schlenker, W. and Lobell, D.B. (2010). Robust negative impacts of climate change on African agriculture. Environmental Research Letters, 5(1), p.014010. DOI: https://doi.org/10.1088/1748-9326/5/1/014010

Sitko, N.J. and Jayne, T.S. (2014). Structural transformation or elite land capture? Food Policy, 48, pp.194-202. DOI: https://doi.org/10.1016/j.foodpol.2014.05.006

Terhoeven-Urselmans, T. et al. (2025). Enhancing yields and climate resilience through conservation agriculture in Zambia. Plant and Soil, 513, pp.489-505. DOI: https://doi.org/10.1007/s11104-024-07191-8

UNDP (2024). From Dust to Plenty: The Power of Conservation Agriculture.

UNDP (2025). Financing Climate Resilience: An Option or a Priority?

Wheeler, D. (2011). Quantifying Vulnerability to Climate Change. Center for Global Development Working Paper 240.

World Bank (2023). Zambia Economic Brief: Climate Change and Economic Growth.

Yesuf, M. and Bluffstone, R.A. (2009). Poverty, risk aversion, and path dependence in Ethiopia. American Journal of Agricultural Economics, 91(4), pp.1022-1037. DOI: https://doi.org/10.1111/j.1467-8276.2009.01307.x

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Published

2026-07-15

How to Cite

Chalwe, G., & Phiri, A. (2026). Assessing the Impact of Climate Variability on Smallholder Farmers’ Household Income and Agricultural Investment Decisions in Eastern Province, Zambia . African Journal of Commercial Studies, 7(4), 110-123. https://doi.org/10.59413/ajocs/v7.i4.14

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