Leveraging cluster and PCA analysis to uncover key soil and environmental drivers for groundnut cultivation in the Kharif and Rabi seasons
DOI:
https://doi.org/10.14719/pst.4810Keywords:
groundnut, Kharif, Rabi, soil moisture, satellite, sensor, meteorology factorsAbstract
The cultivation of groundnut, which is crucial for its protein-rich kernels and edible oil, is highly sensitive to variations in soil moisture, particularly under rainfed conditions. The objective of the present study is to improve the accuracy of soil moisture monitoring by using principal component analysis (PCA) and clustering to analyze data from sensor and satellite sources. In addition to the use of satellite images from SMAP, ERA5 and Sentinel 1A in addition to in situ sensor data, this study was carried out at the Oil Seed Research Station in Tindivanam. Important factors, such as soil moisture, potential evaporation (PET) and volumetric water content (VWC) were examined at various crop stages. According to PCA, VWC at different depths and soil moisture data clustered closely during the Kharif season, indicating substantial relationships. A significant loading on the first component (PC1) explained 51.26 % of the variance. The significance of soil moisture and PET was highlighted by cluster analysis, which revealed four major clusters with strong intracluster relationships. On the other hand, PCA for the Rabi season revealed that ERA5-SM, WS and ST were crucial, with PC1 accounting for 67.53 % of the variation. Three clusters were found in the cluster analysis for Rabi, highlighting the significance of ST and WS in crop development. A study of the seasons revealed that during Kharif, soil moisture and evaporation were crucial, whereas during Rabi, soil temperature and wind speed had greater impacts. This emphasizes how vital it is to apply season-appropriate agronomic techniques to maximize crop productivity and resource efficiency.
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Priya KV, Latha P, Kumari SR, Kumar PR, Srividhya A. Effect of mid-season moisture stress on fatty acid composition of groundnut (Arachis hypogaea L.) genotypes. Int J Environ Clim Change. 2024;14(6):374-85. DOI: https://doi.org/10.9734/ijecc/2024/v14i64237
Roja M, Deepthi C, Devender Reddy M. Estimation of crop water requirement of maize crop using FAO CROPWAT 8.0 model. Indian J Pure Appl Biosci. 2020;8:222-28. DOI: http://dx.doi.org/10.18782/2582-2845.8148
Yuan X, Li S, Chen J, Yu H, Yang T, Wang C, et al. Impacts of global climate change on agricultural production: a comprehensive review. Agronomy. 2024;14(7):1360. DOI: https://doi.org/10.3390/agronomy14071360
Kavithamani D, Yuvaraja A, Selvi B. Principal component analysis and grouping of sorghum (Sorghum bicolor L. Moench) gene pool for genetic diversity. Electronic Journal of Plant Breeding. 2019;10(4):1426-34. DOI: 10.5958/0975-928X.2019.00182.0
Maionchi DDO, Silva JGD, Balista FA, Junior WAM, Paulo SRD, Paulo IJD, Biudes MS. Estimating hourly air temperature in an Amazon-Cerrado transitional forest in Brazil using machine learning regression models. Theor Appl Climatol. 2024;1-17. DOI: https://doi.org/10.21203/rs.3.rs-3414339/v1
Barboza TOC, Ferraz MAJ, Pilon C, Vellidis G, Valeriano TTB, dos Santos AF. Advanced farming strategies using NASA POWER data in peanut-producing regions without surface meteorological stations. AgriEngineering. 2024;6(1):438-54. DOI: https://doi.org/10.3390/agriengineering6010027
Akuraju VR, Ryu D, George B, Ryu Y, Dassanayake K. Seasonal and inter-annual variability of soil moisture stress function in dryland wheat field, Australia. Agric For Meteorol. 2017;232:489-99. DOI:10.1016/J.AGRFORMET.2016.10.007
Ghasempour R, Aalami MT, Kirca VO. SM2RAIN-ASCAT satellite-based spatiotemporal drought monitoring using multiscale WT-VMD-ENERGY method. Geocarto Int. 2022;37(27):17713-41. DOI: https://doi.org/10.1080/10106049.2022.2134463
Parker R, Barker C. An introduction to spectral data analysis with functional data explorer in JMP® Pro 17. Discovery Summit. Europe. JMP User Community; 2023.
Li L, Zhu Q, Liu Y, Lai X, Liao K. Fusing satellite-based surface soil moisture products over a typical region with complex land surface characteristics. J Hydrol. 2022;612:128158. DOI: https://doi.org/10.1016/j.jhydrol.2022.128158
Vennam RR, Ramamoorthy P, Poudel S, Reddy KR, Henry WB, Bheemanahalli R. Developing functional relationships between soil moisture content and corn early-season physiology, growth and development. Plants. 2023;12(13):2471. DOI: https://doi.org/10.3390/plants12132471
Rodríguez PO, Holzman ME, Aldaya MM, Rivas RE. Water footprint in rainfed summer and winter crops: The role of soil moisture. Agric Water Manag. 2024;296:108787. DOI: https://doi.org/10.1016/j.agwat.2024.108787
Singh J, Sandhu SS, Singh D, Hadda MS. Soil management to optimize water in rice-wheat cropping. Sustainable Agriculture Reviews. 2017;253-79. DOI:10.1007/978-3-319-48006-0_8
Choudhury BU, Singh AK. Estimation of crop coefficient of irrigated transplanted puddled rice by field scale water balance in the semi-arid Indo-Gangetic plains, India. Agric Water Manag. 2016;176:142-50. DOI: https://doi.org/10.1016/j.agwat.2016.05.027
Chakraborty SK, Chakraborty SK. Land-use changes: floodplains, dams and reservoirs–integrated river basins management. In: Riverine Ecology Volume 2: Biodiversity Conservation, Conflicts and Resolution; 2021. p. 531-607. DOI: https://doi.org/10.1007/978-3-030-53941-2_6
Gaddikeri V, Rajput J, Jatav MS, Kumari A, Rana L, Rai A, et al. Estimating crop water requirement in Madhya Pradesh's agro-climatic regions: A CROPWAT and CLIMWAT software case study. Environ Conserv J. 2024;25(1):308-26. DOI: https://doi.org/10.36953/ECJ.26022353
Rahman MN, Hangs R, Schoenau J. Influence of soil temperature and moisture on micronutrient supply, plant uptake and biomass yield of wheat, pea and canola. J Plant Nutr. 2020;43(6):823-33. DOI: https://doi.org/10.1080/01904167.2020.1711941
Mondal S, Saha S, Das SR, Chatterjee D. Impact of conservation agriculture on soil health and environmental sustainability. In: Climate Change Impacts on Soil-Plant-Atmosphere Continuum. Singapore: Springer Nature Singapore; 2024. p. 255-81. DOI: https://doi.org/10.1007/978-981-99-7935-6_10
Rukhsana, Alam A, Mandal I. Impact of microclimate on agriculture in India: Transformation and adaptation. In: Agriculture, Food and Nutrition Security: A Study of Availability and Sustainability in India; 2021. p. 41-59. DOI: https://doi.org/10.1007/978-3-030-69333-6_3
Yadav S, Katoch A, Singh Y, Kulshrestha UC. Abundance and variation of gaseous NH3 in relation with inorganic fertilizers and soil moisture during Kharif and Rabi season. Environ Monit Assess. 2023;195(1):234. DOI: https://doi.org/10.1007/s10661-022-10777-3
Madhukar A, Dashora K, Kumar V. Climate trends in temperature and water variables during wheat growing season and impact on yield. Environ Process. 2021;8:1047-72. DOI: https://doi.org/10.1007/s40710-021-00526-y
Kingra PK, Misra AK. Agricultural input use efficiency and climate change: ways to improve the environment and food security. In: Input Use Efficiency for Food and Environmental Security; 2021. p. 33-67. DOI: https://doi.org/10.1007/978-981-16-5199-1_2
Isobe K, Oka H, Watanabe T, Tateno R, Urakawa R, Liang C, et al. High soil microbial activity in the winter season enhances nitrogen cycling in a cool-temperate deciduous forest. Soil Biol Biochem. 2018;124:90-100. DOI: https://doi.org/10.1016/j.soilbio.2018.05.028
Lu H, Xia Z, Fu Y, Wang Q, Xue J, Chu J. Response of soil temperature, moisture and spring maize (Zea mays L.) root/shoot growth to different mulching materials in semi-arid areas of Northwest China. Agronomy. 2020;10(4):453. DOI: https://doi.org/10.3390/agronomy10040453
Dhayal D, Lal K, Khanna M, Sudhishri S, Brar AS, Sindhu VK, et al. Performance of surface and subsurface drip fertigated wheat-moongbean-maize cropping system under different irrigation schedules and nutrient doses. Agric Water Manag. 2023;284:108338. DOI: https://doi.org/10.1016/j.agwat.2023.108338
Biswakarma N, Pooniya V, Zhiipao RR, Kumar D, Shivay YS, Das TK, et al. Identification of a resource-efficient integrated crop management practice for the rice-wheat rotations in south Asian Indo-Gangetic plains. Agric Ecosyst Environ. 2023;357:108675. DOI: https://doi.org/10.1016/j.agee.2023.108675
Reichle RH, De Lannoy G, Koster RD, Crow WT, Kimball JS, Liu Q, et al. SMAP L4 global 3-hourly 9 km EASE-grid surface and root zone soil moisture analysis update, version 7 (Internet). Boulder, Colorado USA: NASA National Snow and Ice Data Center Distributed Active Archive Center; 2022 (cited 2024 Aug 25). Available from: https://nsidc.org/ DOI: https://doi.org/10.5067/LWJ6TF5SZRG3
European Space Agency (ESA). Sentinel-1 SAR GRD: C-band Synthetic Aperture Radar Ground Range Detected, log scaling (Internet). 2024 (cited 2024 Aug 25). Available from: https://scihub.copernicus.eu/
Muñoz Sabater J. ERA5-Land monthly averaged data from 1981 to present (Internet). Copernicus Climate Change Service (C3S) Climate Data Store (CDS); 2019 (cited 2024 Aug 25). Available from: https://cds.climate.copernicus.eu/ DOI: https://doi.org/10.24381/cds.e2161bac
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