Ahmed | Sustainable Cropping Systems Under a Changing Climate | Buch | 978-0-443-34252-3 | www.sack.de

Buch, Englisch, 550 Seiten, Format (B × H): 191 mm x 235 mm, Gewicht: 450 g

Ahmed

Sustainable Cropping Systems Under a Changing Climate


Erscheinungsjahr 2026
ISBN: 978-0-443-34252-3
Verlag: Elsevier Science

Buch, Englisch, 550 Seiten, Format (B × H): 191 mm x 235 mm, Gewicht: 450 g

ISBN: 978-0-443-34252-3
Verlag: Elsevier Science


Sustainable Cropping Systems Under a Changing Climate explores how climate change is reshaping agriculture and highlights the urgent need for resilient, adaptive, and sustainable cropping systems. As extreme weather, rising temperatures, and resource pressures threaten global food security, this volume offers practical pathways to transform agricultural practices.
The book brings together leading research, real-world case studies, and innovative strategies to address the vulnerabilities and opportunities facing cropping systems. It covers sustainability principles, climate-smart practices, and the roles of soil health, biodiversity, conservation agriculture, organic farming, agroforestry, regenerative practices, and plant-microbe interactions in enhancing system resilience. Special attention is given to intensive systems like rice-wheat and rainfed agriculture, particularly in the Global South.
With its interdisciplinary approach and emphasis on both scientific evidence and practical implementation, this volume bridges a critical gap by supporting informed decision-making at farm, institutional, and policy levels. It is a timely and essential resource for researchers, agronomists, extension professionals, and others seeking to future-proof agriculture through nature-based and technological solutions for climate adaptation and mitigation.

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Autoren/Hrsg.


Weitere Infos & Material


1. Climate Change and global cropping system
2. Principles of Sustainable Cropping Systems
3. Rainfed Intensive Cropping Systems
4. Climate Sensitivity of Intensive Rice-Wheat Systems
5. Energy and carbon footprint of diversified rainfed cropping systems
6. Productivity, profitability and energy use efficiency of cropping systems under different tillage systems
7. Impact of Climate Change on Soil Activity (Nitrifying, Denitrifying) and Other Interactions under different cropping systems
8. Modeling soil carbon accumulation in different cropping systems
9. A yield gap analysis to assess vulnerability of different cropping systems to climatic extremes
10. Challenges and prospects for weed management in different cropping systems: A review
11. Organic farming for Mitigation of Climate Change Impact
12. Designing of innovative Cropping systems and Sustainable development goals
13. Diversified cropping systems with complementary root growth strategies improve crop adaptation to Climate Change
14. Evaluation of climate resilient agricultural practices in different cropping systems of subcontinent 15. Potential of strip cropping systems as climate resilient cropping systems
16. Water food energy nexus of different cropping systems
17. Importance of soil health for climate-resilient cropping systems
18. Regenerative Agriculture
19. Climate resilient technologies for Sustainable Cropping Systems
20. Transformative adaptation: from climate-smart to climate-resilient cropping systems
21. Identification of low-water-demand cropping systems for water resources conservation
22. Carbon sequestration potential of different cropping systems
23. Evaluation of agronomic Interventions for the adaptation and Mitigation of Climate Change under different cropping systems
24. Biochar use for climate change mitigation in different cropping systems: A case study of rice wheat system
25. Building Resilience for Food and Nutrition Security: Focusing on low input cropping systems
26. Unlocking the potential of plant growth-promoting rhizobacteria on different cropping systems
27. Revisiting cropping systems research: An ecological framework towards long-term weed management
28. Investigation of diversified cropping systems for climate resilience
29. Models evaluation under diversified cropping systems
30. Integrated pest management in different cropping systems
31. Integrated disease management in different cropping systems
32. Robust cropping system to tackle biotic stress under climate change
33. Harnessing soil carbon sequestration to address climate change challenges in different cropping systems
34. Sustainability, productivity, profitability and nutritional diversity of different cropping systems: case study
35. Studying role of long fallow as Adaptation strategy to climate change into dry land cropping cropping system
36. Beneficial microbes for climate-resilient cropping system
37. Integrating intensive livestock and cropping systems: Sustainable design and location
38. Enhancing Climate Resilience of Cropping Systems
39. The Role of Modelling in Adapting and Building the Climate Resilience of Cropping Systems
40. Buffering action of conservation agriculture to climate change
41. Application of conservation agriculture as an adaption strategy to climate change: Case study of Mediterranean farmers
42. Application of Biochar as circular economy practices for improving resilient agroecosystems
43. Agroforestry Solutions for Buffering Climate Variability and Adapting to Change
44. Channel\ling the Future? The Use of Seasonal Climate Forecasts in Climate Adaptation
45. Agricultural Adaptation to Climate Change: New Approaches to Knowledge and Learning
46. What are the Factors that Dictate the Choice of Coping Strategies for Extreme Climate Events? The Case of Farmers in the Nile Basin of Ethiopia


Ahmed, Mukhtar
Mukhtar Ahmed's research focuses on the application of IoT in agriculture and the impact of climate change on crop ecology, crop physiology, cropping systems, and rain-fed ecosystem management. He specializes in environmental sciences, precision agriculture, agro-ecosystem modeling, and climate variability, with extensive teaching and research experience. In 2022, he was recognized among the top 2% of researchers worldwide, as noted in Mendeley Data. He has conducted research at Sydney University (Australia), the Swedish University of Agricultural Sciences, and the Asia-Pacific Climate Change Center (APCC) in South Korea, where he applied process-based modeling and remote sensing techniques. Dr. Ahmed also contributed to the Regional Approaches for Climate Change (REACCH) project in the USA, working at Washington State University to develop multi-model ensemble approaches aimed at minimizing uncertainties in modeling. Currently, he serves as a Project Co-leader in the Model Calibration Group of the Agricultural Model Intercomparison and Improvement Project (AgMIP), focusing on wheat, maize evapotranspiration, and CO? modeling.



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