Zhu, P. et al. Warming reduces global agricultural production by decreasing cropping frequency and yields. Nat. Clim. Change 12, 1016–1023 (2022).
Caparas, M., Zobel, Z., Castanho, A. D. A. & Schwalm, C. R. Increasing risks of crop failure and water scarcity in global breadbaskets by 2030. Environ. Res. Lett. 16, 104013 (2021).
The United Nations World Water Development Report 3: Water in a Changing World (World Water Assessment Programme, 2009).
Hayashi, K., Llorca, L., Rustini, S., Setyanto, P. & Zaini, Z. Reducing vulnerability of rainfed agriculture through seasonal climate predictions: a case study on the rainfed rice production in Southeast Asia. Agric. Syst. 162, 66–76 (2018).
Renard, D. & Tilman, D. National food production stabilized by crop diversity. Nature 571, 257–260 (2019).
Climate Change and Food Security: Risks and Responses (Food and Agriculture Organization of the United Nations, 2015).
Anderson, W. B., Seager, R., Baethgen, W., Cane, M. & You, L. Synchronous crop failures and climate-forced production variability. Sci. Adv. 5, eaaw1976 (2019).
Zhao, C. et al. Temperature increase reduces global yields of major crops in four independent estimates. Proc. Natl Acad. Sci. USA 114, 9326–9331 (2017).
Pörtner, H. et al. Climate Change 2022: Impacts, Adaptation and Vulnerability (IPCC, Cambridge Univ. Press, 2022).
Kates, R. W., Travis, W. R. & Wilbanks, T. J. Transformational adaptation when incremental adaptations to climate change are insufficient. Proc. Natl Acad. Sci. USA 109, 7156–7161 (2012).
Whitworth-Hulse, J. I. et al. The expansion of rainfed grain production can generate spontaneous hydrological changes that reduce climate sensitivity. Agric. Ecosyst. Environ. 349, 108440 (2023).
Rost, S. et al. Global potential to increase crop production through water management in rainfed agriculture. Environ. Res. Lett. 4, 044002 (2009).
Rosa, L., Chiarelli, D. D., Rulli, M. C., Dell’Angelo, J. & Paolo, D. Global agricultural economic water scarcity. Sci. Adv. 6, eaaz6031 (2020).
Strokal, M. et al. Alarming nutrient pollution of Chinese rivers as a result of agricultural transitions. Environ. Res. Lett. 11, 024014 (2016).
Beyer, R. M., Hua, F., Martin, P. A., Manica, A. & Rademacher, T. Relocating croplands could drastically reduce the environmental impacts of global food production. Commun. Earth Environ. 3, 49 (2022).
Siderius, C. et al. The role of rainfed agriculture in securing food production in the Nile Basin. Environ. Sci. Policy 61, 14–23 (2016).
Xie, W. et al. Crop switching can enhance environmental sustainability and farmer incomes in China. Nature 616, 300–305 (2023).
Davis, K. F., Rulli, M. C., Seveso, A. & D’Odorico, P. Increased food production and reduced water use through optimized crop distribution. Nat. Geosci. 10, 919–924 (2017).
Senapati, N. et al. Global wheat production could benefit from closing the genetic yield gap. Nat. Food 3, 532–541 (2022).
Devineni, N., Perveen, S. & Lall, U. Solving groundwater depletion in India while achieving food security. Nat. Commun. 13, 3374 (2022).
Zampieri, M. et al. Estimating resilience of crop production systems: from theory to practice. Sci. Total Environ. 735, 139378 (2020).
Ben-Ari, T. & Makowski, D. Analysis of the trade-off between high crop yield and low yield instability at the global scale. Environ. Res. Lett. 11, 104005 (2016).
Mitter, H., Heumesser, C. & Schmid, E. Spatial modeling of robust crop production portfolios to assess agricultural vulnerability and adaptation to climate change. Land Use Policy 46, 75–90 (2015).
Kahiluoto, H. et al. Decline in climate resilience of European wheat. Proc. Natl Acad. Sci. USA 116, 123–128 (2019).
Müller C. et al. ISIMIP2b Simulation Data from the Agriculture Sector (v1.0). (ISIMIP Repository, 2023).
FAO Methodology for the Measurement of Food Deprivation (Food and Agriculture Organization of the United Nations, 2008).
The LIFDC Classification—An Exploration Table (Food and Agriculture Organization of the United Nations, 2002).
The Future of Food and Agriculture: Alternative Pathways to 2050 (Food and Agriculture Organization of the United Nations, 2018).
Forslund, A. et al. Can healthy diets be achieved worldwide in 2050 without farmland expansion?. Glob. Food Secur. 39, 100711 (2023).
Folberth, C. et al. The global cropland-sparing potential of high-yield farming. Nat. Sustain. 3, 281–289 (2020).
Han, T., Lu, H., Lü, Y., Zhu, Y. & Fu, B. Crop switching could be a win-win solution for improving both the productivity and sustainability in a typical dryland farming region—Loess Plateau, China. J. Clean. Prod. 384, 135456 (2023).
Davis, K. F., Downs, S. & Gephart, J. A. Towards food supply chain resilience to environmental shocks. Nat. Food 2, 54–65 (2021).
Wood, A. et al. Reframing the local–global food systems debate through a resilience lens. Nat. Food 4, 22–29 (2023).
Strategic Framework 2022–31 (Food and Agriculture Organization of the United Nations, 2021).
Hadjikakou, M., Dumas, P., Zhang, X. & Bryan, B. A. Ambitious food system interventions required to mitigate the risk of exceeding Earth’ s environmental limits. One Earth 8, 101351 (2025).
Geyik, Ö, Hadjikakou, M. & Bryan, B. A. Climate-friendly and nutrition-sensitive interventions can close the global dietary nutrient gap while reducing GHG emissions. Nat. Food 4, 61–73 (2023).
Mueller, N. D. et al. Closing yield gaps through nutrient and water management. Nature 490, 254–257 (2012).
Wu, F., Wang, Y., Liu, Y., Liu, Y. & Zhang, Y. Simulated responses of global rice trade to variations in yield under climate change: evidence from main rice-producing countries. J. Clean. Prod. 281, 124690 (2021).
Gaupp, F., Hall, J., Mitchell, D. & Dadson, S. Increasing risks of multiple breadbasket failure under 1.5 and 2 °C global warming. Agric. Syst. 175, 34–45 (2019).
Gaupp, F., Hall, J., Hochrainer-Stigler, S. & Dadson, S. Changing risks of simultaneous global breadbasket failure. Nat. Clim. Change 10, 54–57 (2020).
Hertel, T., Elouafi, I., Tanticharoen, M. & Ewert, F. Diversification for enhanced food systems resilience. Nat. Food 2, 832–834 (2021).
Lipper, L. et al. Climate-smart agriculture for food security. Nat. Clim. Change 4, 1068–1072 (2014).
Ando, A. W. & Mallory, M. L. Optimal portfolio design to reduce climate-related conservation uncertainty in the Prairie Pothole Region. Proc. Natl Acad. Ssci. USA 109, 6484–6489 (2012).
Runting, R. K. et al. Reducing risk in reserve selection using modern portfolio theory: coastal planning under sea-level rise. J. Appl. Ecol. 55, 2193–2203 (2018).
FAO and IIASA. Global Agro Ecological Zones Version 4 (GAEZ V4). (Food and Agriculture Organization of the United Nations and the International Institute for Applied Systems Analysis, 2023).
Wang, Z. et al. Integrating crop redistribution and improved management towards meeting China’s food demand with lower environmental costs. Nat. Food 3, 1031–1039 (2022).
Agriculture, Trade and Food Security: Issues and Options in the WTO Negotiations from the Perspective of Developing Countries (Food and Agriculture Organization of the United Nations, 2000).
van Zeist, W. J. et al. Are scenario projections overly optimistic about future yield progress?. Glob. Environ. Change 64, 102120 (2020).
Jagermeyr, J. et al. Climate impacts on global agriculture emerge earlier in new generation of climate and crop models. Nat. Food 2, 873–885 (2021).
Chen, M. et al. Global land use for 2015–2100 at 0.05° resolution under diverse socioeconomic and climate scenarios. Sci. Data 7, 320 (2020).
Li, C. et al. Code for “Global Reallocation of Rainfed Crops Can Boost Production and Reduce Climate Risk”. figshare https://doi.org/10.6084/m9.figshare.27050401 (2026).