Rainfall Variability and its Implications for Rice Production andFarmer Adaptation in Southern Plateau State, Nigeria, Between 2000and 2024

Authors

  • Ponsah Gwamzhi Zonal Advanced Space Technology Application Laboratory (ZASTAL), Langtang Author
  • Dr. Henry Nanlok Zonal Advanced Space Technology Application Laboratory (ZASTAL), Langtang Author
  • Dr. Omomoh Emmanuel Zonal Advanced Space Technology Application Laboratory (ZASTAL), Langtang Author
  • Dr. Gujahar Rogers Rengje Danlami Zonal Advanced Space Technology Application Laboratory (ZASTAL), Langtang Author
  • Zubairu Monica Zonal Advanced Space Technology Application Laboratory (ZASTAL), Langtang Author
  • Donald Uzoma Nmega Zonal Advanced Space Technology Application Laboratory (ZASTAL), Langtang Author

Keywords:

Rainfall variability, Rice production, Southern Plateau State, Climate-smart adaptation, Farmer perceptions, Precipitation Concentration Index, Agricultural resilience

Abstract

Rainfall variability is a major challenge to rainfed rice production in sub-Saharan Africa, yet local-scale evidence linking climate trends with agricultural performance remains limited. This study examined the effects of rainfall variability on rice production across six Local Government Areas (LGAs) in southern Plateau State, Nigeria, using 25 years (2000–2024) of rainfall and production records, complemented by surveys of 180 rice farmers, 12 focus group discussions, and key informant interviews. Mean annual rainfall ranged from 1,002.08 mm in Langtang South to 1,065.25 mm in Langtang North. Rainfall variability (CV = 7.81–10.44%) was considerably lower than rice production variability (CV = 20.19–26.22%), indicating the influence of both climatic and non-climatic factors. Langtang South recorded the only significant declining rainfall trend (−9.30 mm year⁻¹; p = 0.015), the highest drought frequency, and the shortest growing season (153 days). Significant rainfall–production relationships were observed in Qua'an Pan (r = 0.612; = 0.452), Langtang South (r = 0.498; = 0.341), and Wase (r = 0.444; = 0.307), while weak relationships in Langtang North and Shendam suggested that management and institutional factors were more important production constraints. Both annual rainfall and rainfall concentration significantly influenced rice production. Farmer perceptions closely matched meteorological observations, while limited access to finance, irrigation, improved seed, climate information, and extension services constrained adaptation. These findings highlight the need for location-specific climate-smart interventions to strengthen the resilience of rice-based farming systems in southern Plateau State.

30 11

References

1. Baffour‐Ata, F., Antwi‐Agyei, P., Ashiadey, K. S., Kwakye, S. O., & Boakye, L. (2025). Effect of Rainfall Variability on Rice Production in the Ketu North Municipality, Ghana. Climate Resilience and

Sustainability, 4(2). https://doi.org/10.1002/cli2.70019

2. Bouman, B. A. M., Humphreys, E., Tuong, T. P., & Barker, R. (2007). Rice and Water (pp. 187–237). https://doi.org/10.1016/S0065-2113(04)92004-4

3. Bryan, E., Deressa, T. T., Gbetibouo, G. A., & Ringler, C. (2009). Adaptation to climate change in Ethiopia and South Africa: options and constraints. Environmental Science & Policy, 12(4), 413–426.

https://doi.org/10.1016/j.envsci.2008.11.002

4. Challinor, A. J., Watson, J., Lobell, D. B., Howden, S. M., Smith, D. R., & Chhetri, N. (2014). A metaanalysis of crop yield under climate change and adaptation. Nature Climate Change, 4(4), 287–291.

https://doi.org/10.1038/nclimate2153

5. Dai, A. (2013). Increasing drought under global warming in observations and models. Nature Climate Change, 3(1), 52–58. https://doi.org/10.1038/nclimate1633

6. DERESSA, T. T., HASSAN, R. M., & RINGLER, C. (2011). Perception of and adaptation to climate change by farmers in the Nile basin of Ethiopia. The Journal of Agricultural Science, 149(1), 23–31.

https://doi.org/10.1017/S0021859610000687

7. Diagne, A., Amovin-Assagba, E., Futakuchi, K., & Wopereis, M. C. S. (2013). Current status and future prospects. In Realizing Africa’s Rice Promise (D. E. J. N. A. E. T. and A. J. Marco C.S.

Wopereis, Ed.). CABI .

8. Elizabeth Ojo, I., A. Ogunmola, M., Ayorinde Kolawole, E., & Chike, I. (2025). Climate-Smart Agriculture for Sustainable Rice Production: Innovations and Practices. https://doi.org/10.5772/intechopen.1011582

9. Emegha PhD, K. N., Bosah PhD, P. C., Chugo Idigo, B., & Ofobuike, P. C. L. (2025). The Effects of Climate Change on Food Security in Nigeria: A Review. International Journal of Research and

Scientific Innovation, XII(IV), 904–914. https://doi.org/10.51244/IJRSI.2025.12040076

10. Food and Agriculture Organization (FAO). (2020). The State of Food and Agriculture 2020. https://doi.org/10.4060/cb1447en

11. Francis, G., & Sena, A. (2022). CLIMATE CHANGE AND RAINFALL VARIABILITY IN WEST AFRICA: FOOD SECURITY AND FARMER COPING STRATE-GIES: A REVIEW. www.globalscientificjournal.com

12. Fu, J., Jian, Y., Wang, X., Li, L., Ciais, P., Zscheischler, J., Wang, Y., Tang, Y., Müller, C., Webber, H., Yang, B., Wu, Y., Wang, Q., Cui, X., Huang, W., Liu, Y., Zhao, P., Piao, S., & Zhou, F. (2023).

Extreme rainfall reduces one-twelfth of China’s rice yield over the last two decades. Nature Food, 4(5), 416–426. https://doi.org/10.1038/s43016-023-00753-6

13. Intergovernmental Panel on Climate Change (IPCC). (2023). Climate Change 2022 – Impacts, Adaptation and Vulnerability. Cambridge University Press. https://doi.org/10.1017/9781009325844

14. International Rice Research Institute (IRRI). (2013). Rice Almanac (Global Rice Science Partnership (GRiSP), Ed.; 4th ed.). International Rice Research Institute (IRRI).

15. IPCC. (2021). Climate Change 2021: The Physical Science Basis.

16. James O. Adejuwon. (2005). Food crop production in Nigeria. I. Present effects of climate variability. Climate Research, 30, 53–60.

17. Juana, J. S., Kahaka, Z., & Okurut, F. N. (2013). Farmers’ Perceptions and Adaptations to Climate Change in Sub-Sahara Africa: A Synthesis of Empirical Studies and Implications for Public Policy in

African Agriculture. Journal of Agricultural Science, 5(4). https://doi.org/10.5539/jas.v5n4p121

18. Lesk, C., Rowhani, P., & Ramankutty, N. (2016). Influence of extreme weather disasters on global crop production. Nature, 529(7584), 84–87. https://doi.org/10.1038/nature16467

19. Lipper, L., Thornton, P., Campbell, B. M., Baedeker, T., Braimoh, A., Bwalya, M., Caron, P., Cattaneo, A., Garrity, D., Henry, K., Hottle, R., Jackson, L., Jarvis, A., Kossam, F., Mann, W., McCarthy, N., Meybeck, A., Neufeldt, H., Remington, T., … Torquebiau, E. F. (2014). Climate-smart agriculture for food security. Nature Climate Change, 4(12), 1068–1072. https://doi.org/10.1038/nclimate2437

20. Lobell, D. B., & Gourdji, S. M. (2012). The Influence of Climate Change on Global Crop Productivity. Plant Physiology, 160(4), 1686–1697. https://doi.org/10.1104/pp.112.208298

21. Lobell, D. B., Schlenker, W., & Costa-Roberts, J. (2011). Climate Trends and Global Crop Production Since 1980. Science, 333(6042), 616–620. https://doi.org/10.1126/science.1204531

22. Mendes, O., Correia, E., & Fragoso, M. (2025). Variability and trends of the rainy season in WestAfrica with a special focus on Guinea-Bissau. Theoretical and Applied Climatology, 156(5), 242.

https://doi.org/10.1007/s00704-025-05471-6

23. Nicholson, S. E. (2018). The ITCZ and the Seasonal Cycle over Equatorial Africa. Bulletin of the American Meteorological Society, 99(2), 337–348. https://doi.org/10.1175/BAMS-D-16-0287.1

24. Odekunle, T. O. (2004). Rainfall and the length of the growing season in Nigeria. International Journal of Climatology, 24(4), 467–479. https://doi.org/10.1002/joc.1012

25. Oguntunde, P. G., Abiodun, B. J., & Lischeid, G. (2012). Spatial and temporal temperature trends in Nigeria, 1901–2000. Meteorology and Atmospheric Physics, 118(1–2), 95–105.

https://doi.org/10.1007/s00703-012-0199-3

26. Rockström, J., Williams, J., Daily, G., Noble, A., Matthews, N., Gordon, L., Wetterstrand, H., DeClerck, F., Shah, M., Steduto, P., de Fraiture, C., Hatibu, N., Unver, O., Bird, J., Sibanda, L., & Smith, J. (2017). Sustainable intensification of agriculture for human prosperity and global sustainability. Ambio, 46(1), 4–17. https://doi.org/10.1007/s13280-016-0793-6

27. Ronald Dossou-Yovo, E., Prasad Devkota, K., Akpoti, K., Danvi, A., Duku, C., Zwart, S. J., & author Elliott Ronald Dossou-Yovo, C. (2003). Thirty years of water management research for rice in subSaharan Africa: achievement and perspectives.

28. Rowhani, P., Lobell, D. B., Linderman, M., & Ramankutty, N. (2011). Climate variability and crop production in Tanzania. Agricultural and Forest Meteorology, 151(4), 449–460. https://doi.org/10.1016/j.agrformet.2010.12.002

29. Sivakumar, M. V. K. (1992). Empirical Analysis of Dry Spells for Agricultural Applications in West Africa. Journal of Climate, 5(5), 532–539.

https://doi.org/10.1175/1520-0442(1992)005<0532:EAODSF>2.0.CO;2

30. Tambo, J. A., & Abdoulaye, T. (2013). Smallholder farmers’ perceptions of and adaptations to climate change in the Nigerian savanna. Regional Environmental Change, 13(2), 375–388.

https://doi.org/10.1007/s10113-012-0351-0

31. Tefera, M. L., Giovanna Seddaiu, Alberto Carletti, & Awada, H. (2025). Rainfall variability and drought in West Africa: challenges and implications for rainfed agriculture. Theoretical and Applied

Climatology, 156(1), 41. https://doi.org/10.1007/s00704-024-05251-8

32. Tiamiyu, S. A., Eze, J. N., Yusuf, T. M., Maji, A. T., & Bakare, S. O. (2015). Rainfall Variability and its Effect on Yield of Rice in Nigeria. International Letters of Natural Sciences, 49, 63–68.

https://doi.org/10.56431/p-yk8v53

33. Timité, N., Kouakou, A. T. M., Bamba, I., Barima, Y. S. S., & Bogaert, J. (2022). Climate Variability in the Sudanian Zone of Côte d’Ivoire: Weather Observations, Perceptions, and Adaptation Strategies

of Farmers. Sustainability, 14(16), 10410. https://doi.org/10.3390/su141610410

34. Tschakert, P. (2007). Views from the vulnerable: Understanding climatic and other stressors in the Sahel. Global Environmental Change, 17(3–4), 381–396. https://doi.org/10.1016/j.gloenvcha.2006.11.008

35. Tuong, T. P., & Bouman, B. A. M. (2003). Rice production in water-scarce environments. In Water productivity in agriculture: limits and opportunities for improvement (pp. 53–67). CABI Publishing.

https://doi.org/10.1079/9780851996691.0053

36. Youssefi, F., Javad Valadan Zoej, M., Ali Hanafi-Bojd, A., Borahani Dariane, A., Khaki, M., & Safdarinezhad, A. (2022). Predicting the location of larval habitats of Anopheles mosquitoes using remote sensing and soil type data. International Journal of Applied Earth Observation and Geoinformation, 108. https://doi.org/10.1016/j.jag.2022.102746

Cover Image

Downloads

Published

2026-08-25

How to Cite

Rainfall Variability and its Implications for Rice Production andFarmer Adaptation in Southern Plateau State, Nigeria, Between 2000and 2024. (2026). Journal of Advanced Multidisciplinary Studies (JAMS), 1(1), Page 610-622. https://jamsjournal.org/JAMS/article/view/121

Similar Articles

1-10 of 105

You may also start an advanced similarity search for this article.

Most read articles by the same author(s)