| Citation: | Imroz M, Akhtar M.P, Alshehri F. 2026. Attenuation of hydroclimatic influence on groundwater dynamics under anthropogenic stress: A decadal spatiotemporal analysis in Jaipur, India. Journal of Groundwater Science and Engineering, 14(3): 288-306 doi: 10.26599/JGSE.2026.9280086 |
|
Ahamad F, Tyagi SK, Singh M, et al. 2023. Groundwater in arid and semi-arid regions of India: A review on the quality, management and challenges. Groundwater in Arid and Semi-Arid Areas. Cham: Springer: 11−52. DOI: 10.1007/978-3-031-43348-1_2.
|
|
Amit D, Jethoo AS, Poonia MP. 2025. Impact of drought on urban water supply: A case study of Jaipur city. Available on https://www.researchgate.net/publication/291994762_Impact_of_drought_on_urban_water_supply_a_case_study_of_Jaipur_city
|
|
Ayadi Y, Gentilucci M, Ncibi K, et al. 2025. Assessment of a groundwater potential zone using geospatial Artificial Intelligence (geo-AI), Remote Sensing (RS), and GIS tools in majerda transboundary basin (North Africa). Water, 17(3): 331. DOI: 10.3390/w17030331.
|
|
Central Ground Water Board (CGWB). 2023. Dynamic ground water resources of Rajasthan (as on 31st March 2023). Government of India, Ministry of Jal Shakti. Available on https://cgwb.gov.in/cgwbpnm/publication-detail/1293
|
|
Cui H, Li W, Kang W. 2022. A study of groundwater recharge under different irrigation conditions in the middle reaches of the Heihe River. Hydrogeology and Engineering Geology, 49(3): 22−28. (in Chinese) DOI: 10.16030/j.cnki.issn.1000-3665.202111019.
|
|
Directorate of Economics and Statistics, Government of Rajasthan. 2022. Area pcstimates of pcrincipal crops, Rajasthan: 21-22. Available on. https://rajas.rajasthan.gov.in/PDF/1302023121405PMAreaEstimateofPrincipalCrops2021_22.pdf
|
|
Dadhich AP, Goyal R, Dadhich PN. 2021. Assessment and prediction of groundwater using geospatial and ANN modeling. Water Resources Management, 35(9): 2879−2893. DOI: 10.1007/s11269-021-02874-8.
|
|
Das K, Mondal M, Mondal NK, et al. 2025. Integrated assessment of fluoride occurrence and groundwater usability: A critical concern for drinking water sustainability and irrigation in semi-arid region of West Bengal, India. Discover Sustainability, 6(1): 602. DOI: 10.1007/s43621-025-01498-x.
|
|
Dey S, Bhatt D, Haq S, et al. 2020. Potential impact of rainfall variability on groundwater resources: A case study in Uttar Pradesh, India. Arabian Journal of Geosciences, 13(3): 114. DOI: 10.1007/s12517-020-5083-8.
|
|
Eftekhari M, Khashei-Siuki A. 2025. Evaluating machine learning methods for predicting groundwater fluctuations using GRACE satellite in arid and semi-arid regions. Journal of Groundwater Science and Engineering, 13(1): 5−21. DOI: 10.26599/jgse.2025.9280035.
|
|
El-Shirbeny MA, Abdellatif B, Ali EM. 2025. Impact of climate classification on evapotranspiration variability in arid regions. Water, 17(2): 231. DOI: 10.3390/w17020231.
|
|
Frommen T, Groeschke M, Nölscher M, et al. 2021. Anthropogenic and geogenic influences on peri-urban aquifers in semi-arid regions: Insights from a case study in northeast Jaipur, Rajasthan, India. Hydrogeology Journal, 29(3): 1261−1278. DOI: 10.1007/s10040-021-02301-7.
|
|
Goteti G, Famiglietti J. 2024. Extent of gross underestimation of precipitation in India. Hydrology and Earth System Sciences, 28(14): 3435−3455. DOI: 10.5194/hess-28-3435-2024.
|
|
Hou XL, Yang H, Cao JS, et al. 2023. A review of advances in groundwater evapotranspiration research. Water, 15(5): 969. DOI: 10.3390/w15050969.
|
|
Khatami S, Khazaei B. 2025. Benefits of GIS Application in Hydrological Modeling: A Brief Summary. ResearchGate. Available on https://www.researchgate.net/publication/292263816_Benefits_of_GIS_Application_in_Hydrological_Modeling_A_Brief_Summary
|
|
Kumar M, Sen S, Kulkarni H, et al. 2024. Ecohydrological and hydrogeological dynamics of groundwater springs in Eastern Himalaya, India. Groundwater for Sustainable Development, 27: 101311. DOI: 10.1016/j.gsd.2024.101311.
|
|
Kumar V, Jain SK, Singh Y. 2010. Analysis of long-term rainfall trends in India. Hydrological Sciences Journal, 55(4): 484-496. DOI: 10.1080//02626667.2010.481373
|
|
Li MY, Li CZ, Dong F, et al. 2024. Groundwater level thresholds for maintaining groundwater-dependent ecosystems in northwest China: Current developments and future challenges. Journal of Groundwater Science and Engineering, 12(4): 453−462. DOI: 10.26599/jgse.2024.9280032.
|
|
Meng RF, Yang HF, Bao XL, et al. 2023. Optimizing groundwater recharge plan in North China Plain to repair shallow groundwater depression zone, China. Journal of Groundwater Science and Engineering, 11(2): 133−145. DOI: 10.26599/jgse.2023.9280012.
|
|
Mondal M, Mukherjee A, Das K, et al. 2024. Understanding the susceptibility of groundwater of Sundarbans with hydroclimatic variability and anthropogenic influences. Groundwater for Sustainable Development, 25: 101135. DOI: 10.1016/j.gsd.2024.101135.
|
|
Monir MM, Sarker SC. 2024. Analyzing post-2000 groundwater level and rainfall changes in Rajasthan, India, using well observations and GRACE data. Heliyon, 10(2): e24481. DOI: 10.1016/j.heliyon.2024.e24481.
|
|
Panda DK, Tiwari VM, Rodell M. 2022. Groundwater variability across India, under contrasting human and natural conditions. Earth's Future, 10(4): e2021EF002513. DOI: 10.1029/2021ef002513.
|
|
Pandey S, Mohapatra G, Arora R. 2023. Groundwater quality, human health risks and major driving factors in arid and semi-arid regions of Rajasthan, India. Journal of Cleaner Production, 427: 139149. DOI: 10.1016/j.jclepro.2023.139149.
|
|
Pandey S, Mohapatra G, Arora R. 2024. Spatio-temporal variation of depth to groundwater level and its driving factors in arid and semi-arid regions of India. Regional Sustainability, 5(2): 100143. DOI: 10.1016/j.regsus.2024.100143.
|
|
Raju BA, Rao PV, Subrahmanyam M. 2023. Estimating aquifer transmissivity using Dar-Zarrouk parameters to delineate groundwater potential zones in Alluri Seetharama Raju District, Andhra Pradesh, India. Journal of Groundwater Science and Engineering, 11(2): 116−132. DOI: 10.26599/jgse.2023.9280011.
|
|
Saha D, Dwivedi SN, Ali S. 2024. Research on groundwater science and management in India. Proceedings of the Indian National Science Academy, 90(2): 468−481. DOI: 10.1007/s43538-024-00259-0.
|
|
Sammen SS, Mohamed TA, El-Shafie A. 2023. Estimation of reference evapotranspiration in semi-arid regions with limited climatic inputs. Water, 15(3): 572. DOI: 10.3390/w15030572.
|
|
Sandeep P, Obi Reddy GP, Jegankumar R, et al. 2021. Monitoring of agricultural drought in semi-arid ecosystem of Peninsular India through indices derived from time-series CHIRPS and MODIS datasets. Ecological Indicators, 121: 107033. DOI: 10.1016/j.ecolind.2020.107033.
|
|
Saxena A, Chandela AVS. 2025. Sustainable ground water management: A case study of Jaipur district. International Journal of Advanced Academic Studies, 7(3): 12−19. DOI: 10.33545/27068919.2025.v7.i3a.1385.
|
|
Saxena D, Choudhary M, Sharma G. 2024. Spatiotemporal trends and evapotranspiration estimation using an improvised SEBAL convergence method for the semi-arid region of Western Rajasthan, India. AQUA — Water Infrastructure, Ecosystems and Society, 73(3): 407−423. DOI: 10.2166/aqua.2024.220.
|
|
Shiferaw BA, Reddy VR, Sharma B. 2024. Groundwater governance under climate change in India: Lessons based on evaluation of World Bank interventions. International Journal of Water Resources Development, 40(3): 401−424. DOI: 10.1080/07900627.2023.2207694.
|
|
Singh AP, Bhakar P. 2021. Development of groundwater sustainability index: A case study of western arid region of Rajasthan, India. Environment, Development and Sustainability, 23(2): 1844−1868. DOI: 10.1007/s10668-020-00654-9.
|
|
Singh NPJSS, Anand B, Bal SK. 2021. Climate vulnerability assessment in semi-arid and arid regions of Rajasthan, India: An enquiry into the disadvantaged districts. ResearchGate. DOI: 10.54386//jam.v21i2.233
|
|
Siziba NA, Chifamba P. 2023. Using geospatial technologies to delineate Ground Water Potential Zones (GWPZ) in Mberengwa and Zvishavane District, Zimbabwe. Journal of Groundwater Science and Engineering, 11(4): 317−332. DOI: 10.26599/jgse.2023.9280026.
|
|
Song SH, Nie ZL, Geng XX, et al. 2023. Response of runoff to climate change in the area of runoff yield in upstream Shiyang River Basin, Northwest China: A case study of the Xiying River. Journal of Groundwater Science and Engineering, 11(1): 89−96. DOI: 10.26599/jgse.2023.9280009.
|
|
Swain S, Taloor AK, Dhal L, et al. 2022. Impact of climate change on groundwater hydrology: A comprehensive review and current status of the Indian hydrogeology. Applied Water Science, 12(6): 120. DOI: 10.1007/s13201-022-01652-0.
|
|
Tiwari VM, Rao NS. 2025. Impact of climate change on water resources in India. Journal of the Geological Society of India, 101(6): 974−977. DOI: 10.17491/jgsi/2025/174194.
|
|
Turkeltaub T, Bel G. 2024. Changes in mean evapotranspiration dominate groundwater recharge in semi-arid regions. Hydrology and Earth System Sciences, 28(18): 4263−4274. DOI: 10.5194/hess-28-4263-2024.
|
|
Wang Z, Wang LJ, Shen JM, et al. 2021. Groundwater characteristics and climate and ecological evolution in the Badain Jaran Desert in the southwest Mongolian Plateau. China Geology, 4(3): 422−433. DOI: 10.31035/cg2021056.
|
|
Xiao Y, Gu XM, Yin SY, et al. 2016. Geostatistical interpolation model selection based on ArcGIS and spatio-temporal variability analysis of groundwater level in piedmont Plains, Northwest China. SpringerPlus, 5(1): 425. DOI: 10.1186/s40064-016-2073-0.
|
|
Yadav M, Vashisht BB, Jalota S. 2022. Sustainable water management practices for intensified agriculture. ResearchGate. DOI: 10.1007/978-3-031-12059-6_8.
|
2305-7068/© Journal of Groundwater Science and Engineering Editorial Office. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0)
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