André, L., Franceschi, M., Pouchan, P., Atteia, O., 2005. Using geochemical data and modelling to enhance the understanding of groundwater flow in a regional deep aquifer, Aquitaine Basin, southwest of France. Journal of Hydrology 305(1-4): 40-62.
Appelo, C. A. J., Postma, D., 2004. Geochemistry, groundwater and pollution. CRC press. Barzegar, R., Moghaddam, A.A., Tziritis, E., Fakhri, M.S., Soltani, S., 2017. Identification of hydrogeochemical processes and pollution sources of groundwater resources in the Marand plain, northwest of Iran. Environmental Earth Sciences 76: 1-16.
Ekramipour, B., Jafari, H., Moradi Nazarpoor, S., Bagheri, R., Zarei Doudaji, S., Jahanshahi, R., 2023. Estimating recharge into the Semnan alluvial aquifer using saturated zone studies. Geopersia, 13(2), 415-425.
Choi, S. B., Yoon, J-H., Lee, W., 2020. The modified international standard classification of occuGeopersia 2024, 14(2): 327-339 339
pations defined by the clustering of occupational characteristics in the korean working conditions survey. Industrial health 58(2): 132-141.
Elumalai, V., Brindha, K., Sithole, B., Lakshmanan, E., 2017. Spatial interpolation methods and geostatistics for mapping groundwater contamination in a coastal area. Environmental Science and Pollution Research 24: 11601-11617.
Gopinath, S., Srinivasamoorthy, K., Vasanthavigar, M., Saravanan, K., Prakash, R., Suma, C.S., Senthilnathan, D., 2018. Hydrochemical characteristics and salinity of groundwater in parts of Nagapattinam district of Tamil Nadu and the Union Territory of Puducherry, India. Carbonates and Evaporites 33: 1-13.
Hounslow, A., 2018. Water quality data: analysis and interpretation. CRC press.
Khaska, M., La Salle, C. L. G., Lancelot, J., Mohamad, A., Verdoux, P., Noret, A., ASTER team., 2013. Origin of groundwater salinity (current seawater vs. saline deep water) in a coastal karst aquifer based on Sr and Cl isotopes. Case study of the La Clape massif (southern France). Applied geochemistry, 37: 212-227.
Liu, W. C., Yu, H. L., Chung, C. E., 2011. Assessment of water quality in a subtropical alpine lake using multivariate statistical techniques and geostatistical mapping: a case study. International journal of environmental research and public health, 8(4): 1126-1140.
Mazor, E., 2004. Chemical and isotopic groundwater hydrogeology. John Wiley and sons Company p450.
Mondal, N., Singh, V., Singh, V., Saxena, V., 2010. Determining the interaction between groundwater and saline water through groundwater major ions chemistry. Journal of Hydrology 388(1-2): 100-111.
Mencio, A., Galan, M., Boix, D., Mas-Pla, J., 2014. Analysis of stream–aquifer relationships: A comparison between mass balance and Darcy’s law approaches. Journal of Hydrology 517: 157-172.
Sanchez-Martos, F., Jimenez-Espinosa, R., Pulido-Bosch, A., 2001. Mapping groundwater quality variables using pca and geostatistics: a case study of bajo andarax, southeastern Spain. Hydrological Sciences Journal 46(2): 227-242.
Schoeller, H., 1977. Geochemistry of groundwater. Groundwater studies, an international guide for research and practice, UNESCO, Paris, 1-18.
Shrestha, S., Kazama, F., 2007. Assessment of surface water quality using multivariate statistical techniques: A case study of the fuji river basin, japan. Environmental Modelling & Software 22(4):464-475.
Schürch, M., Vuataz, F.D., 2000. Groundwater components in the alluvial aquifer of the alpine Rhone River valley Bois de Finges area Wallis Canton Switzerland. Hydrogeology Journal 8:549-563.
Wold, S., Esbensen, K., Geladi, P., 1987. Principal component analysis. Chemometrics and intelligent laboratory systems 2(1-3): 37-52.
Wu, Y., Gibson, C., 1996. Mechanisms controlling the water chemistry of small lakes in northern ireland. Water Research 30(1): 178-182.