A Systematic Review of Agroecology Strategies for Adapting to Climate Change Impacts on Smallholder Crop Farmers’ Livelihoods in South Africa
Abstract
:1. Introduction
2. Materials and Methods
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Study | |
---|---|
Study 1 | Indigenous crop varieties, intercropping, water management |
Study 2 | Conservation agriculture, agroforestry, drought-tolerant crop varieties |
Study 3 | Intercropping, water management, agroforestry |
Study 4 | Conservation agriculture, indigenous crop varieties, water management |
Study 5 | Drought-tolerant crop varieties, agroforestry, water management |
Study 6 | Indigenous crop varieties, conservation agriculture, intercropping |
Study 7 | Agroforestry, water management, drought-tolerant crop varieties |
Study 8 | Conservation agriculture, intercropping, indigenous crop varieties |
Study 9 | Water management, agroforestry, drought-tolerant crop varieties |
Study 10 | Intercropping, indigenous crop varieties, conservation agriculture |
Study 11 | Drought-tolerant crop varieties, water management, agroforestry |
Study 12 | Conservation agriculture, intercropping, drought-tolerant crop varieties |
Study 13 | Indigenous crop varieties, water management, agroforestry |
Study 14 | Intercropping, agroforestry, conservation agriculture |
Study 15 | Drought-tolerant crop varieties, water management, indigenous crop varieties |
Study 16 | Planting of improved seed, application of chemical fertilizer, changing planting date, application of pesticide/herbicides, mixed cropping, nulching, rainwater harvesting, irrigation, planting of trees |
Study 17 | Alterations to soil and crop management, crop rotations, and water conservation techniques. |
Study 18 | Drought-tolerant seeds, shorter cycle crops, diversification of crops, changing planting dates, small-scale irrigation |
Study 19 | Planting early-maturing plants and drought-tolerant crops, altering planting dates, crop diversification, and irrigating |
Study 20 | Early maturing variety, soil and water conservation, tree planting, migration, varying planting dates, mulching, improved variety |
Study 21 | Water harvesting, change of crop variety, soil conservation, improved soil fertility, crop diversification and changing of crop type |
Study 22 | Improved crop varieties, varying planting dates, soil and water conservation, tree planting |
Study 23 | Soil and water management |
Study 24 | Changing crop types, planting schedule and crop rotation, water management and zero tillage |
Study 25 | Changing planting dates, planted drought resistant or short season crops, soil conservation, diversification, planting trees and irrigation |
Study 26 | Drought tolerant varieties, shifting planting dates, irrigation, conservation agriculture |
Study 27 | Drought resistant crops, changing planting dates, planting crop varieties, mixed cropping, conservation agriculture, adjusting fertilise inputs, irrigation systems, rain harvesting and drilling boreholes |
Study 28 | Planting drought tolerant variety and changing of planting time |
Study 29 | Shifting planting dates, reduced cultivated area, drought-resistant varieties, crop diversification, and intercropping |
Study 30 | Changing fertilizer, water harvesting and planting drought resistant varieties |
Study | Indigenous Crop Varieties | Conservation Agriculture | Intercropping | Agroforestry | Drought-Tolerant Crop Varieties | Water Management |
---|---|---|---|---|---|---|
1 | Yes | No | Yes | No | No | Yes |
2 | No | Yes | No | Yes | Yes | No |
3 | No | No | Yes | Yes | No | Yes |
4 | Yes | Yes | No | No | No | Yes |
5 | No | No | No | Yes | Yes | Yes |
6 | Yes | Yes | Yes | No | No | No |
7 | No | No | No | Yes | Yes | Yes |
8 | Yes | Yes | Yes | No | No | No |
9 | No | No | No | Yes | Yes | Yes |
10 | Yes | Yes | Yes | No | No | No |
11 | No | No | No | Yes | Yes | Yes |
12 | No | Yes | Yes | No | Yes | No |
13 | Yes | No | No | Yes | No | Yes |
14 | No | Yes | Yes | Yes | No | No |
15 | Yes | No | No | No | Yes | Yes |
16 | No | No | Yes | Yes | No | Yes |
17 | No | Yes | Yes | No | No | Yes |
18 | Yes | Yes | No | No | Yes | Yes |
19 | Yes | No | Yes | No | Yes | Yes |
20 | No | Yes | No | Yes | No | Yes |
21 | No | Yes | Yes | No | No | Yes |
22 | No | Yes | Yes | Yes | No | Yes |
23 | Yes | Yes | No | No | No | Yes |
24 | Yes | Yes | Yes | No | Yes | Yes |
25 | No | Yes | Yes | Yes | Yes | Yes |
26 | No | Yes | Yes | No | Yes | Yes |
27 | No | Yes | Yes | No | Yes | Yes |
28 | No | No | Yes | No | Yes | No |
29 | No | Yes | Yes | No | No | No |
30 | No | No | Yes | No | Yes | Yes |
Study | Increased Crop Resilience | Improved Soil Fertility | Enhance Water Use Efficiency |
---|---|---|---|
1 | Yes | Yes | Yes |
2 | No | Yes | Yes |
3 | Yes | No | Yes |
4 | Yes | Yes | Yes |
5 | No | No | Yes |
6 | Yes | Yes | No |
7 | No | Yes | Yes |
8 | Yes | Yes | No |
9 | No | Yes | Yes |
10 | Yes | No | Yes |
11 | No | No | Yes |
12 | Yes | Yes | No |
13 | Yes | No | Yes |
14 | No | Yes | No |
15 | No | Yes | Yes |
16 | Yes | Yes | Yes |
17 | Yes | Yes | No |
18 | Yes | Yes | Yes |
19 | No | No | Yes |
20 | No | Yes | Yes |
21 | Yes | Yes | Yes |
22 | Yes | No | Yes |
23 | No | Yes | Yes |
24 | Yes | No | Yes |
25 | Yes | No | No |
26 | No | No | Yes |
27 | Yes | No | Yes |
28 | No | Yes | No |
29 | Yes | Yes | No |
30 | No | Yes | Yes |
Study | Year | Study Design | Sample Size |
---|---|---|---|
1 | 2012 | Case study | 20 |
2 | 2013 | Case study | 30 |
3 | 2014 | Case study | 25 |
4 | 2015 | Field trial | 100 |
5 | 2016 | Case study | 35 |
6 | 2017 | Case study | 22 |
7 | 2017 | Field trial | 50 |
8 | 2018 | Field trial | 60 |
9 | 2019 | Case study | 28 |
10 | 2019 | Field trial | 80 |
11 | 2020 | Field trial | 70 |
12 | 2021 | Field trial | 90 |
13 | 2022 | Field Trial | 45 |
14 | 2022 | Case study | 22 |
15 | 2023 | Field trial | 90 |
16 | 2021 | Field trial | 16 |
17 | 2021 | Field Trial | 120 |
18 | 2020 | Field trial | 224 |
19 | 2022 | Case study | 200 |
20 | 2020 | Case study | 183 |
21 | 2020 | Field trial | 391 |
22 | 2022 | Case study | 183 |
23 | 2012 | Field | 300 |
24 | 2021 | Case study | 90 |
25 | 2021 | Case study | 328 |
26 | 2021 | Field | 160 |
27 | 2022 | Case study | 18 |
28 | 2016 | Case study | 70 |
29 | 2021 | Field | 200 |
30 | 2021 | Case study | 235 |
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Share and Cite
Zenda, M.; Rudolph, M. A Systematic Review of Agroecology Strategies for Adapting to Climate Change Impacts on Smallholder Crop Farmers’ Livelihoods in South Africa. Climate 2024, 12, 33. https://doi.org/10.3390/cli12030033
Zenda M, Rudolph M. A Systematic Review of Agroecology Strategies for Adapting to Climate Change Impacts on Smallholder Crop Farmers’ Livelihoods in South Africa. Climate. 2024; 12(3):33. https://doi.org/10.3390/cli12030033
Chicago/Turabian StyleZenda, Mashford, and Michael Rudolph. 2024. "A Systematic Review of Agroecology Strategies for Adapting to Climate Change Impacts on Smallholder Crop Farmers’ Livelihoods in South Africa" Climate 12, no. 3: 33. https://doi.org/10.3390/cli12030033
APA StyleZenda, M., & Rudolph, M. (2024). A Systematic Review of Agroecology Strategies for Adapting to Climate Change Impacts on Smallholder Crop Farmers’ Livelihoods in South Africa. Climate, 12(3), 33. https://doi.org/10.3390/cli12030033