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Impact, adaptation, and mitigation of climate change in Indian agriculture

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Abstract

Climate change poses serious risks to Indian agriculture as half of the agricultural land of the country is rainfed. Climate change affects crop yield, soil processes, water availability, and pest dynamics. Several adaptation strategies such as heat- and water stress-tolerant crop varieties, stress-tolerant new crops, improved agronomic management practices, improved water use efficiency, conservation agriculture practices and improved pest management, improved weather forecasts, and other climate services are in place to minimize the climatic risks. The agriculture sector contributes 14% of the greenhouse gas (GHG) from the country. Mitigation of GHG emission from agriculture can be achieved by changing land-use management practices and enhancing input-use efficiency. Experiments in India showed that methane emission from lowland rice fields can be reduced by 40–50% with alternate wetting and drying (AWD), growing shorter duration varieties, and using neem-coated urea according to soil health card (SHC) and leaf color chart (LCC). Dry direct-seeding of rice, which does not require continuous soil submergence, can reduce methane emission by 70–75%. Sequestration of carbon (C) in agricultural soil can be promoted with the application of organic manure, crop residues, and balanced nutrients. India has taken several proactive steps for addressing the issues of climate change in agriculture. Recently, it has also committed for reducing GHG emission intensity by 45% by 2030 and achieving net zero emission by 2070. The paper discusses the major impacts of climate change, potential adaptation, and mitigation options and the initiatives of Govt. of India in making Indian agriculture climate-smart.

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References

  • Aggarwal, P. K. (2003). Impact of climate change on Indian agriculture. Journal of Plant Biology, 30(2), 189–198.

    Google Scholar 

  • Aggarwal, P. K., Roy, J., Pathak, H., Kumar, S. N., Venkateswarlu, B., Ghosh, A. & Ghosh, D. (2021) Managing climatic risks in agriculture. In Discussion Paper Indian Agriculture Towards 2030. Food and Agricultural Organization, Rome (in press).

  • Anand, A., Singh M. P., & Nagarajan, S. (2012). Quantification of climate change impacts on crops: field experimentation. In Pathak, H., Aggarwal, P. K. and Singh, S. D. (Eds), Climate change impact, adaptation and mitigation in agriculture: methodology for assessment and applications (pp. xix + 302). Indian Agricultural Research Institute.

  • Anant, B., Rai, N., & Rajesh, K. (2015). Grafting tomato on eggplant as a potential tool to improve waterlogging tolerance in hybrid tomato. Vegetable Science, 42(2), 82–87.

    Google Scholar 

  • Aryal, J. P., Sapkota, T. B., Stirling, C. M., Jat, M. L., Jat, H. S., Rai, M., Mittal, S., Sutaliya, J. M. (2016). Conservation agriculture-based wheat production better copes with extreme climate events than conventional tillage-based systems A case of untimely excess rainfall in Haryana, India. Agric. Ecosyst. Environ. 233, 325–335.

  • Bhatia, A., Pathak, H., Jain, N., Singh, P. K., & Tomer, R. (2012). Greenhouse gas mitigation in rice-wheat system with leaf colour chart-based urea application. Environmental Monitoring and Assessment, 184, 3095–3107.

    Article  CAS  Google Scholar 

  • Bisen, J., Priyadarsani, S., Meena, R. P., Pathak, H., Mondal, B., Mishra, S. K., & Tiwari, U. (2022). Socioeconomic implications of climate change on rice farming. In Climate Resilient Technologies for Rice based Production Systems in Eastern India (Bhattacharyya P., Chakraborty K., Molla KA, Poonam A., Bhaduri D., Sah RP., Paul S., Hanjagi PS., Gowda B., Swain P, Eds.), ICAR-National Rice Research Institute, Cuttack, Odisha, India. pp. 340–362.

  • Boraiah, K. M., Basavaraj, P. S., Harisha, C. B., Kochewad, S. A., Khapte, P. S., Bhendarkar, M. P., Kakade, V. D., Rane, J., Kulshreshtha, N., & Pathak, H. (2021). Abiotic stress tolerant crop varieties, livestock breeds and fish species. Technical Bulletin No. 32. (p 83.) ICAR-National Institute of Abiotic Stress Management.

  • Chakrabarti, B., Jain, N., Bhatia, A., Gupta, S. K., & Pathak, H. (2012a). Impact of climate change on soil fertility. In Pathak, H., Aggarwal, P. K. and Singh, S. D. (Eds), Climate change impact, adaptation and mitigation in agriculture: methodology for assessment and applications (pp. xix + 302). Indian Agricultural Research Institute.

  • Chakrabarti, B., Singh, S. D., Anand, A., Madan Pal Singh, Pathak, H., & Nagarajan, S. (2012b). Impact of High Temperature on Crop and Soil. In Pathak, H., Aggarwal, P. K. and Singh, S. D. (Eds), Climate change impact, adaptation and mitigation in agriculture: methodology for assessment and applications (pp. xix + 302). Indian Agricultural Research Institute.

  • Choudhary, B. B. (2017). Climate sensitivity of agricultural production system in trans and upper Gangatic plains of India: potential economic impact and vulnerability. Ph.D. thesis, National Dairy Research Institute, Karnal, India.

  • Das, D. (2015). Changing climate and its impacts on Assam, Northeast India. Bandung Journal of the Global South, 2, 26. https://doi.org/10.1186/s40728-015-0028-4

    Article  Google Scholar 

  • Das, T. K., Sharma, A. R., & Pathak, H. (2012). Crop-Weed Balance Studies under Climate Change. In Pathak, H., Aggarwal, P. K. and Singh, S. D. (Eds), Climate change impact, adaptation and mitigation in agriculture: methodology for assessment and applications (pp. xix + 302). Indian Agricultural Research Institute

  • Drake, B., Gonzalez-Meler, M., & Long, S. (1997). More efficient plants: A consequence of rising atmospheric CO2? Annual Review of Plant Physiology and Plant Molecular Biology, 48, 609–639.

    Article  CAS  Google Scholar 

  • FAO. (2013). Climate-smart agriculture-sourcebook. Food and Agriculture Organization of the United Nations, E-ISBN978–92–5–107721–4.

  • GoI. (2011). Report of North East Climate Change Adaptation Programme. Ministry of Development of North East Region, Government of India.

  • GoI. (2017). Climate, Climate change and agriculture. Economic Survey 2017–18, Government of India. Retrieved January 27, 2022, from https://mofapp.nic.in/economicsurvey/economicsurvey/pdf

  • Gupta, A., & Pathak, H. (2016). Climate change and agriculture in India: a thematic report of National Mission on Strategic Knowledge for Climate Change (NMSKCC) under National Action Plan on Climate Change (p. 68). Department of Science and Technology, Ministry of Science & Technology, Government of India.

  • Gupta, A., Singh, C., Kumar, V., Tyagi, B. S., Tiwari, V., Chatrath, R., & Singh, G. P. (2018). Wheat varieties notified in India since 1965 (p. 101). ICAR-Indian Institute of Wheat & Barley Research.

    Google Scholar 

  • Indoria, A. K., Srinivasarao, Ch., Sharma, K. L., & Sammi Reddy, K. (2017). Conservation agriculture – a panacea to improve soil physical health. Current Science, 112(1), 52–61.

    Article  Google Scholar 

  • IPCC. (2014). Summary for policymakers. Climate Change 2014: impacts, adaptation, and vulnerability. Part A: global and sectoral aspects. contribution of working group II to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change (pp. 1–32). Cambridge University Press

  • IPCC. (2021). Summary for Policymakers. In: Climate Change 2021: the physical science basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. In Masson- Delmotte, V., P. Zhai, A., Pirani, S. L., Connors, C., Péan, S., Berger, N., Caud, Y., Chen, L., Goldfarb, M. I., Gomis, M., Huang, K., Leitzell, E., Lonnoy, J. B. R., Matthews, T. K., Maycock, T., Waterfield, O., Yelekçi, R., Yu. & B. Zhou (Eds.). Cambridge University Press. In Press.

  • Jain, N., Dubey, R., Dubey, D. S., Singh, J., Khanna, M., Pathak, H., & Bhatia, A. (2014). Mitigation of greenhouse gas emission with system of rice intensification in the Indo-Gangetic Plains. Paddy and Water Environment, 12, 355–363.

    Article  Google Scholar 

  • Jarvis, A., Lane, A., & Hijmans, R. (2008). The effect of climate change on crop wild relatives. Agriculture, Ecosystems & Environment, 126, 13–23.

    Article  Google Scholar 

  • Jat, M. L., Chakraborty, D., Ladha, J. K., Rana, D. S., Gathala, M. K., McDonald, A., & Gerard, B. (2020). Conservation agriculture for sustainable intensification in South Asia. Nature Sustainability. 3, 336–343.

  • Jat, M. L., Dagar, J. C., Sapkota, T. B., Yadvinder-Singh, Govaerts, B., Ridaura, S. L., Saharawat, Y. S., Sharma, R. K., Tetarwal, J. P., Hobbs, H., & Stirling, C. (2016). Climate change and agriculture: adaptation strategies and mitigation opportunities for food security in South Asia and Latin America. Advances in Agronomy, 137, 127–236.

  • Jenny, H. (1994). Factors of soil formation: A system of quantitative pedology (p. 191). Dover Publications.

    Google Scholar 

  • Kavi Kumar, K. S., & Parikh, J. (2001). Socio-economic impacts of climate change on indian agriculture. International Review for Environmental Strategies, 2(2), 38-45.

  • Kumar, S., & Sidana, B. K. (2019). Impact of climate change on the productivity of rice and wheat crops in Punjab. Economic and Political Weekly, 54(46), 38–44.

  • Kundu, S., Srinivasarao, C. h., Mallick, R. B., Satyanarayana, T., Prakash Naik, R., Johnston, A., & Venkateswarlu, B. (2013). Conservation agriculture in maize (Zea mays L.)-horsegram (Macrotyloma uniflorum L.) system in rainfed Alfisols for carbon sequestration and climate change mitigation. Journal of Agrometeorology, 15(1):144–149.

  • Ladha, J. K., Jat, M. L., Stirling, C. M., Chakraborty, D., Pradhan, P., Krupnik, T. J., Sapkota, T. B., Pathak, H., Rana, D. S., Tesfaye, K., & Gerard, B. (2020). Achieving the sustainable development goals in agriculture: The crucial role of nitrogen in cereal-based systems. Advances in Agronomy, 163, 39–116.

    Article  Google Scholar 

  • Lal, B., & Ahamad, S. (2016). Impacts of climatic variability on agriculture. Early Times, New Delhi. Retrieved January 19, 2022. http://www.earlytimes.in/newsdet.aspx

  • Lal, M., Singh, K. K., Rathor, L. S., Srinivasan, G., & Saseendran, S. A. (1996). Vulnerability of rice and wheat yields in northwest India to future changes in climate. Technical Report No. A/TR/1–96, Centre for Atmospheric Sciences. Indian Institute of Technology.

  • Maheswari, M., Sarkar, B., Vanaja, M., Srinivasa Rao, M., Prasad, J. V. N. S., Prabhakar, M., Ravindra Chary, G., Venkateswarlu, B., Ray Choudhury, P., Yadava, D. K., Bhaskar, S., & Alagusundaram, K. (2019). Climate resilient crop varieties for sustainable food production under aberrant weather conditions (p. 64). ICAR-Central Research Institute for Dryland Agriculture.

    Google Scholar 

  • Merga, W., & Alemayehu, D. (2019). Effects of climate change on global arabica coffee (Coffea arabica L) production. Greener Journal of Plant Breeding and Crop Science, 7(1), 23–30.

    Google Scholar 

  • MoEFCC. (2021). India: Third Biennial Update Report to the United Nations Framework Convention on Climate Change. Ministry of Environment, Forest and Climate Change, Government of India.

  • Mohapatra, T., Rout, P. K., & Pathak, H. (2022) Indian agriculture: achievements and aspirations. In: Pathak, H., Mishra, J.P. and Mohaptra, T. (Eds) Indian Agriculture after Independence (pp. 1–26). Indian Council of Agricultural Research.

  • Nangare, D. D., Taware, P. B., & Singh, Y. (2020). Dragon fruit: a potential crop for abiotic stressed areas. Technical Bulletin No. 47 (p. 24). ICAR-National Institute of Abiotic Stress Management.

  • Naresh Kumar, S., Islam, A., Swaroopa Rani, D. N., Panjwani, S., Sharma, K., Lodhi, N. K., Chander, S., Sinha, P., Khanna, M., Singh, D. K., & Bandyopadhyay, S. K. (2019). Seasonal climate change scenarios for India: impacts and adaptation strategies for wheat and rice. ICAR-Indian Agricultural Research Institute, New Delhi, No. TB-ICN: 233/2019 p 56.

  • Naresh Kumar, S., Aggarwal, P. K., Saxena, R., Rani, S., Jain, S., & Chauhan, N. (2013). An assessment of regional vulnerability of rice to climate change in India. Climate Change, 118(3), 683–699. https://doi.org/10.1007/s10584-013-0698-3.

    Article  Google Scholar 

  • Naresh Kumar, S., Chander, S., Sinha, P., & Padaria, R. N. (2020). Climate Change impact, vulnerability and adaptation: Agriculture, A report for India’s Third National Communication to UNFCCC, ICAR-Indian Agricultural Research Institute, New Delhi, p 21.

  • Naresh Kumar, S., Singh, A. K., Aggarwal, P. K., Rao, V. U. M., & Venkateswarlu, B. (2012). Climate change and Indian agriculture: salient achievements from ICAR network project (p. 32). Indian Agricultural Research Institute.

  • Nitin, K. S., Sridhar, V., & Sangya, O. N. (2018). Effect of temperature and CO2 on population growth of south American tomato moth, Tuta absoluta (Meyrick) (Lepidoptera: Gelechiidae) on tomato. Journal of Economical Entomology, 111(4), 1614–1624.

    Article  Google Scholar 

  • Nowogrodzki, A. (2019). How climate change might affect tea: Changes in temperature and rainfall patterns can affect the growing season, flavour and health benefits of tea. Nature, 566, S10–S11. https://doi.org/10.1038/d41586-019-00399-0

    Article  CAS  Google Scholar 

  • Pathak, H., Srinivasarao, C. H., & Jat, M. L. (2021). Conservation agriculture for climate change adaptation and mitigation in India. Journal of Agricultural Physics, 21(1):182–196(in press).

  • Pathak, H. (2015). Greenhouse gas emission from Indian agriculture: Trends, drivers and mitigation strategies. Proceedings of Indian National Science Academy, 81(5), 1133–1149.

    Article  Google Scholar 

  • Pathak, H. (2022). Making Indian agriculture climate smart. Indian Journal of Fertilisers, 18(4), 396–403.

    Google Scholar 

  • Pathak, H., Bhatia, A., & Jain, N. (2014a). Greenhouse gas emission from Indian agriculture: trends, mitigation and policy needs (p. 39). Indian Agricultural Research Institute.

  • Pathak, H., Bisen, J. P., & Pradhan, S. K. (2019a). ICAR-National Rice Research Institute: activities, achievements and aspirations. In H. Pathak, A. K. Nayak, D. Maiti, G. A.K. Kumar, J. N. Reddy, P.C. Rath, P. Swain and R Bhagawati (Eds.) National Rice Research Institute: Activities, Achievements and Aspirations, (pp 21–41). ICAR-National Rice Research Institute.

  • Pathak, H., Gupta, A., Venkateswarlu, B., Goswami, G., & Chakradhar, T. (2019b). Global Technology Watch Group: sustainable agriculture (p. 112). Department of Science and Technology, Ministry of Science and Technology, Government of India and Technology Information, Forecasting and Assessment Council.

  • Pathak, H., Jain, N., & Bhatia, A. (2015). Enhancing resilience of Indian agriculture to climate change. Indian Journal of Fertilisers, 11(4), 102–115.

    Google Scholar 

  • Pathak, H., Jain, N., Bhatia, A., Kumar, A., & Chatterjee, D. (2016). Improved nitrogen management: A key to climate change adaptation and mitigation. Indian Journal of Fertilisers, 12(11), 151–162.

    Google Scholar 

  • Pathak, H., Nayak, A. K., & Jena, M. (2018). Rice research for enhancing productivity, profitability and climate resilience. ICAR-National Rice Research Institute, Cuttack, Odisha, India, p 527.

  • Pathak, H., Parameswaran, H. N., Subudhi, S. R., Prabhukarthikeyan, Pradhan, S. K., Anandan, A., Yadav, M. K., Aravindan, S., Pirasanna Pandi, G., Basana Gowda, G., Raghu, S., Keerthana, U., Meena, S. K., Lenka, S., Kumar, A., & Sarkar, R.K. (2019c). Rice Varieties of NRRI: yield, quality, special traits and tolerance to biotic and abiotic stresses (p. 68). NRRI Research Bulletin No. 20, ICAR-National Rice Research Institute.

  • Pathak, H., Pramanik, P., Khanna, M., & Kumar, A. (2014b). Climate change and water availability in Indian agriculture: Impacts and adaptation. Indian Journal of Agricultural Sciences, 84(6), 671–679.

    Google Scholar 

  • Pathak, H., Tripathi, R., Jambhulkar, N. N., Bisen J. P., & Panda B. B. (2020a). Eco-regional rice farming for enhancing productivity, profitability and sustainability (p. 28). NRRI Research Bulletin No. 22, ICAR-National Rice Research Institute.

  • Pathak, H., Rane, J., Kurade, N. P., Nangare, D. D., & Kochewad, S. A. (2022). Abiotic stresses in agriculture: Impacts and management (p. 620). ICAR-National Institute of Abiotic Stress Management.

    Google Scholar 

  • Pathak, H., Sankhyan, S., Dubey, D. S., Bhatia, A., & Jain, N. (2013). Dry direct-seeding of rice for mitigating greenhouse gas emission: field experimentation and simulation. Paddy and Water Environment, 11(1), 593–601. https://doi.org/10.1007/s10333-012-0352-0

    Article  Google Scholar 

  • Pathak, H., Tripathi, R., Jambhulkar, N. N., Bisen, J. P. & Panda, B. B. (2020b). Eco-regional rice farming for enhancing productivity, profitability and sustainability. (p. 28). NRRI Research Bulletin No. 22, ICAR-National Rice Research Institute.

  • Prasad, Y. G., Srinivasa Rao, C. h., Prasad, J. V. N. S., Rao, K. V., Ramana, D. B. V., Gopinath, K. A., Srinivas, I., Reddy, B. S., Adake, R., Rao, V. U. M., Maheswari, M., Singh, A. K., & Sikka, A. K. (2015). Technology demonstrations: enhancing resilience and adaptive capacity of farmers to climate variability. (p. 109). National Innovations in Climate Resilient Agriculture (NICRA) Project, ICAR-Central Research Institute for Dryland Agriculture.

  • Pratibha, G., Srinivas, I., Rao, K. V., Shanker, A. K., Raju, B. M. K., Choudhary, Deepak K., Srinivas Rao, K., Srinivasarao, Ch., & Maheswari, M. (2016). Net global warming potential and greenhouse gas intensity of conventional and conservation agriculture system in rainfed semi-arid tropics of India. Atmospheric Environment, 145, 239–250.

    Article  CAS  Google Scholar 

  • Rama Rao, C. A., Raju, B. M. K., Islam, A., Subba Rao, A. V. M., Rao, K. V., Ravindra Chary, G., Nagarjuna Kumar, R., Prabhakar, M., Sammi Reddy, K., Bhaskar, S., & Chaudhari, S. K. (2019). Risk and Vulnerability Assessment of Indian Agriculture to Climate Change (p. 124). ICAR-Central Research Institute for Dryland Agriculture.

  • Rolaniya, L. K. (2019). Developing water and energy smart portfolio for sustainable cereal based systems under conservation agriculture practices in north-west Indo Gangetic plains. PhD Thesis, Department of Agronomy, Punjab Agricultural University, Ludhiana, Punjab, India, p 145.

  • Saseendran, S. A., Singh, K. K., Rathore, L. S., Singh, S. V., & Sinha, S. K. (2000). Effects of climate change on rice production in the tropical humid climate of Kerala, India. Climatic Change, 44, 495–514.

    Article  Google Scholar 

  • Sehgal, V. K., Singh, M., Chaudhary, A., Jain, N., & Pathak, H. (2013). Vulnerability of agriculture to climate change: district level assessment in the Indo-Gangetic Plains (p. xiv + 74) Indian Agricultural Research Institute.

  • Singh, N. P., Anand, B., & Khan, M. A. (2018). Micro-level perception to climate change and adaptation issues: A prelude to mainstreaming climate adaptation into the developmental landscape in India. Nat Hazards. Journal of theInternational Society for the Prevention and Mitigation of Natural Hazards, Springer;International Society for the Prevention and Mitigation of Natural Hazards, 92(3), 1287–1304. https://doi.org/10.1007/s11069-018-3250-y

  • Singh, N. P., Anand, B., Singh, S., & Khan, A. (2019). Mainstreaming climate adaptation in Indian rural development agenda-a micro –macro convergence. Climate Risk Management, 24, 30–41.

    Article  Google Scholar 

  • Somasundaram, J., Sinha, N. K., Dalal, R. C., Lal, R., Mohanty, M., Naorem, A. K., Hati, K. M., Chaudhary, R. S., Biswas, A. K., Patra, A. K., & Chaudhari, S. K. (2020). No-till farming and conservation agriculture in South Asia–Issues, challenges, prospects and benefits. Critical Reviews in Plant Sciences pp. 1–44.

  • Srinivasa Rao, M., Shaila, O., & Vennila, S. (2017). Impact of eCO2 and temperature on Aphis craccivora Koch. on groundnut and future pest status during climate change scenarios. Journal of Plant Physiology Pathology. https://doi.org/10.4172/2329-955X.1000171

  • St. Clair, S. B., & Lynch, J. P. (2010). The opening of Pandora’s Box: Climate change impacts on soil fertility and crop nutrition in developing countries. Plant and Soil, 335, 101–115. https://doi.org/10.1007/s11104-010-0328-z

    Article  CAS  Google Scholar 

  • Subhash Chander. (2012). Impact of Climate Change on Insects. In H. Pathak, P. K. Aggarwal, S. D. Singh (Eds), Climate change impact, adaptation and mitigation in agriculture: methodology for assessment and applications (pp. xix + 302). Indian Agricultural Research Institute.

  • Sutton, M. A., Bleeker, A., Howard, C. M., Bekunda, M. & Grizzetti, B. (2013). Our nutrient world: the challenge to produce more food and energy with less pollution. Global Overview of Nutrient Management. Centre for Ecology and Hydrology, Edinburgh on behalf of the Global Partnership on Nutrient Management and the International Nitrogen Initiative, p 128.

  • The World Bank. (2013). Warming climate in India to pose significant risk to agriculture, World Bank, Press Release, 19 June 2013.

  • Vennila, S., Jitender, S., & Srinivasa Rao, M. (2018). Impact of climate change on pest scenario in India. In C. Chattopadhyay, R. K. Tanwar, M. Sehgal, Birah, A., Bhagat, S., Ahmad, N. and Mehta, N. (Eds). Handbook of Integrated Pest Management (pp. 219–225). Indian Council of Agricultural Research (ICAR).

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Pathak, H. Impact, adaptation, and mitigation of climate change in Indian agriculture. Environ Monit Assess 195, 52 (2023). https://doi.org/10.1007/s10661-022-10537-3

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