References

  1. C.N. Mgbenu, J.C. Egbueri, The hydrogeochemical signatures, quality indices and health risk assessment of water resources in Umunya district, southeast Nigeria, Appl. Water Sci., 9 (2019) 1–19.
  2. F. Bostanmaneshrad, S. Partani, R. Noori, H.P. Nachtnebel, R. Berndtsson, J.F. Adamowski, Relationship between water quality and macro-scale parameters (land use, erosion, geology, and population density) in the Siminehrood River Basin, Sci. Total Environ., 639 (2018) 1588–1600.
  3. K. Kozak, M. Ruman, K. Kosek, G. Karasiński, Ł. Stachnik, Ż. Polkowska, Impact of volcanic eruptions on the occurrence of PAHs compounds in the aquatic ecosystem of the Southern Part of West Spitsbergen (Hornsund Fjord, Svalbard), Water, 9 (2017) 42.
  4. A. Korjenić, S. Herenda, The influence of geological field structure on water quality in the selected source of the Ljubija Area, B&H, J. Int. Environ. Appl. Sci., 11 (2016) 180–185.
  5. S. Yu, Z. Xu, W. Wu, D. Zuo, Effect of land use types on stream water quality under seasonal variation and topographic characteristics in the Wei River basin, China, Ecol. Indic., 60 (2016) 202–212.
  6. W. Halecki, T. Stachura, W. Fudała, M. Rusnak, Evaluating the applicability of MESS (matrix exponential spatial specification) model to assess water quality using GIS technique in agricultural mountain catchment (Western Carpathian), Environ. Monit. Assess., 191 (2019) 1–22.
  7. F. Hamzaoui-Azaza, R. Trabelsi, R. Bouhlila, Groundwater management of Skhira aquifer (center east of Tunisia): flow modelıng and planning under climate and anthropogenic constraints, Desal. Water Treat., 168 (2019) 155–164.
  8. M. Mulhim, S. Ahmad, Hydrochemical evolution and quality assessments of streams water in Alaknanda basin, Garhwal Himalaya, India, Desal. Water Treat., 185 (2020) 384–394.
  9. J. Murphy, L. Sprague, Water-quality trends in US rivers: exploring effects from streamflow trends and changes in watershed management, Sci. Total Environ., 656 (2019) 645–658.
  10. L.A. Lomova, K.V. Epifancev, N.S. Zhminko, T.I. Romanova, P.V. Bolshanik, I.A. Goneev, Use of underground water resources in regions with intensive human management activities, Int. J. Mech. Eng. Technol., 9 (2018) 595–607.
  11. K. Kozak, K. Kozioł, B. Luks, S. Chmiel, M. Ruman, M. Marć, J. Namieśnik, Ż. Polkowska, The role of atmospheric precipitation in introducing contaminants to the surface waters of the fuglebekken catchment, Spitsbergen, Polar Res., 34 (2015) 24207.
  12. J. Kanclerz, S. Murat-Błażejewska, K. Dragon, S. Birk, Impact of urbanization of suburban area on water relation in the small catchments (in Polish), Inżynieria Ekol., 46 (2016) 94–99.
  13. P. Shi, Y. Zhang, J. Song, P. Li, Y. Wang, X. Zhang, Z. Li, Z. Bi, X. Zhang, Y. Qin, T. Zhu, Response of nitrogen pollution in surface water to land use and social-economic factors in the Weihe River watershed, northwest China, Sustainable Cities Soc., 50 (2019) 101658.
  14. S.F. Duan, P.J. Han, Q.M. Wang, W.Q. Liu, J.Y. Shi, K. Li, X.L. Zhang, F.Y. Bai, The origin and adaptive evolution of domesticated populations of yeast from Far East Asia, Nat. Commun., 9 (2018) 1–13.
  15. W. Kanownik, A. Policht-Latawiec, W. Fudała, Nutrient pollutants in surface water—assessing trends in drinking water resource quality for a regional city in Central Europe, Sustainability, 11 (2019) 1988.
  16. J. Kubicz, A. Pawełczyk, P. Lochyński, Environmental health risk posed by contamination of the individual water wells, Chemosphere, 208 (2018) 247–256.
  17. R. Othman, W. Syibrah Hanisah Wan Sulaiman, Z. Mukrim Baharuddin, L. Hakim Mahamod, K. Syakirin Has-Yun Hashim, Impact of sandy soil physico-chemical properties towards urban lakes eutrophication and inorganic pollutant status, Desal. Water Treat. ,163 (2019) 404–408.
  18. P. Wang, J. Yao, G. Wang, F. Hao, S. Shrestha, B. Xue, G. Xie, Y. Peng, Exploring the application of artificial intelligence technology for identification of water pollution characteristics and tracing the source of water quality pollutants, Sci. Total Environ., 693 (2019) 133440.
  19. M.C. Sudha, S. Ravichandran, R. Sakthivadivel, Water bodies protection index for assessing the sustainability status of lakes under the influence of urbanization: a case study of south Chennai, India, Environ. Dev. Sustainablity, 15 (2013) 1157–1171.
  20. M. Kändler, K. Blechinger, C. Seidler, V. Pavlů, M. Šanda, T. Dostál, J. Krása, T. Vitvar, M. Štich, Impact of land use on water quality in the upper Nisa catchment in the Czech Republic and in Germany, Sci. Total Environ., 586 (2017) 1316–1325.
  21. A. Lintern, J.A. Webb, D. Ryu, S. Liu, U. Bende-Michl, D. Waters, P. Leahy, P. Wilson, A.W. Western, Key factors influencing differences in stream water quality across space, Wiley Interdiscip. Rev., 5 (2018) e1260.
  22. S. Giri, Z. Qiu, Understanding the relationship of land uses and water quality in twenty first century: a review, J. Environ. Manage., 173 (2016) 41–48.
  23. J. Dabrowska, K. Paweska, P.B. Dabek, R. Stodolak, The implications of economic development, climate change and European water policy on surface water quality threats, Acta Sci. Polonorum Formatio Circumiectus, 16 (2017) 111–123.
  24. J. Rolighed, E. Jeppesen, M. Søndergaard, R. Bjerring, J. Janse, W. Mooij, D. Trolle, Climate change will make recovery from eutrophication more difficult in shallow Danish Lake Søbygaard, Water, 8 (2016) 459.
  25. C. Pahl-Wostl, Transitions towards adaptive management of water facing climate and global change, Water Resour. Manage., 21 (2007) 49–62.
  26. H. Tao, A.M. Bobaker, M.M. Ramal, Z.M. Yaseen, M.S. Hossain, S. Shahid, Determination of biochemical oxygen demand and dissolved oxygen for semi-arid river environment: application of soft computing models, Environ. Sci. Pollut. Res., 26 (2019) 923–937.
  27. L. Posthuma, J. Munthe, J. van Gils, R. Altenburger, C. Müller, J. Slobodnik, W. Brack, A holistic approach is key to protect water quality and monitor, assess and manage chemical pollution of European surface waters, Environ. Sci. Eur., 31 (2019) 1–5.
  28. J. Dąbrowska, P. Dąbek, I. Lejcuś, Identifying surface runoff pathways for cost-effective mitigation of pollutant inputs to drinking water reservoir, Water, 10 (2018) 1300.
  29. M. Sojka, M. Kozłowski, B. Kęsicka, R. Wróżyński, R. Stasik, M. Napierała, J. Jaskuła, D. Liberacki, The effect of climate change on controlled drainage effectiveness in the context of groundwater dynamics, surface, and drainage outflows. Central-Western poland case study, Agronomy, 10 (2020) 625.
  30. K. Adhikari, C.B. Fedler, Pond-in-pond: an alternative system for wastewater treatment for reuse, J. Environ. Chem. Eng., 8 (2020) 103523.
  31. S. Balqis, A. Razak, Z. Sharip, The potential of phycoremediation in controlling eutrophication in tropical lake and reservoir: a review, Desal. Water Treat., 180 (2020) 164–173.
  32. A. Omarova, K. Tussupova, P. Hjorth, M. Kalishev, R. Dosmagambetova, Water supply challenges in rural areas: a case study from central Kazakhstan, Int. J. Environ. Res. Public Health, 16 (2019) 688.
  33. M. Falencka-Jabłońska, Forest economy versus sustainable development, J. Ecol. Eng., 18 (2017) 30–35.
  34. S. Xiaoqing, B. Jianmin, Z. Chunpeng, W. Yu, W. Hanli, J. Zhuo, Hydrochemistry characteristics and water quality assessment for irrigation along the second Songhua river in the south of the Songnen Plain, Northeast China, Pol. J. Environ. Stud., 29 (2020) 371–395.
  35. M. Świąder, D. Lin, S. Szewrański, J.K. Kazak, K. Iha, J. van Hoof, I. Belčáková, S. Altiok, The application of ecological footprint and biocapacity for environmental carrying capacity assessment: a new approach for European cities, Environ. Sci. Policy, 105 (2020) 56–74.
  36. S. Szewrański, J. Kazak, M. Szkaradkiewicz, J. Sasik, Flood risk factors in suburban area in the context of climate change adaptation policies-case study of Wroclaw, Poland, J. Ecol. Eng., 16 (2015) 13–18.
  37. S. Szewrański, J. Chruściński, J. van Hoof, J.K. Kazak, M. Świader, K. Tokarczyk-Dorociak, R. Zmuda, A location intelligence system for the assessment of pluvial flooding risk and the identification of stormwater pollutant sources from roads in suburbanised areas, Water (Switzerland), 10 (2018) 746.
  38. O. Vigiak, B. Grizzetti, A. Udias-Moinelo, M. Zanni, C. Dorati, F. Bouraoui, A. Pistocchi, Predicting biochemical oxygen demand in European freshwater bodies, Sci. Total Environ., 666 (2019) 1089–1105.
  39. I. Korobiichuk, L. Kuzmych, V. Kvasnikov, P. Nowak, The Use of Remote Ground Sensing Data for Assessment of Environmental and Crop Condition of the Reclaimed Land, In: Advances in Intelligent Systems and Computing, Springer Verlag, Cham, Switzerland, 2017, pp. 418–424.
  40. E. Kilic, N. Yucel, Determination of spatial and temporal changes in water quality at asi river using multivariate statistical techniques, Turk. J. Fish Aquat. Sci., 19 (2019) 727–737.
  41. K. Li, G. Chi, L. Wang, Y. Xie, X. Wang, Z. Fan, Identifying the critical riparian buffer zone with the strongest linkage between landscape characteristics and surface water quality, Ecol. Indic., 93 (2018) 741–752.
  42. NOAA, Deepwater Horizon Oil Spill: Final Programmatic Damage Assessment and Restoration Plan (PDARP) and Final Programmatic Environmental Impact Statement (PEIS), 2016. Available at: https://www.gulfspillrestoration.noaa.gov/ restoration-planning/gulf-plan
  43. G.J. Brierley, K.A. Fryirs, R.J. Hobbs, Eds., River Futures: An Integrative Scientific Approach to River Repair, Island Press, Washington, USA, 2008.
  44. C.R. Allen, A.S. Garmestani, Eds., Adaptive Management of Social- Ecological Systems, Springer, Dordrecht, Netherlands, 2015.
  45. J.A. Webb, R.J. Watts, C. Allan, A.T. Warner, Chapter 25 - Principles for Monitoring, Evaluation, and Adaptive Management of Environmental Water Regimes, A.C. Horne, J.A. Webb, M.J. Stewardson, B. Richter, M.B.T. Acreman, Eds., Water for the Environment from Policy and Science to Implementation and Management, Academic Press, 2017, pp. 599–623.
  46. E. Kiedrzyńska, M. Kiedrzyński, M. Urbaniak, A. Magnuszewski, M. Skłodowski, A. Wyrwicka, M. Zalewski, Point sources of nutrient pollution in the lowland river catchment in the context of the Baltic Sea eutrophication, Ecol. Eng., 70 (2014) 337–348.
  47. J. Dąbrowska, A. Bawiec, K. Pawęska, J. Kamińska, R. Stodolak, Assessing the impact of wastewater effluent diversion on water quality, Polish J. Environ. Stud., 26 (2017) 9–16.
  48. A. Lay-Ekuakille, I. Durickovic, A. Lanzolla, R. Morello, C. De Capua, P.S. Girão, O. Postolache, A. Massaro, L. Van Biesen, Effluents, surface and subterranean waters monitoring: review and advances, Measurement, 137 (2019) 566–579.
  49. I.E. Bakhsipoor, S.M. Ashrafi, A. Adib, Water quality effects on the optimal water resources operation in Great Karun River Basin, Pertanika J. Sci. Technol., 27 (2019) 1881–1900.
  50. J. Górski, K. Dragon, P.M.J. Kaczmarek, Nitrate pollution in the Warta River (Poland) between 1958 and 2016: trends and causes, Environ. Sci. Pollut. Res., 26 (2019) 2038–2046.
  51. J.L. Zhang, Y.P. Li, X.T. Zeng, G.H. Huang, Y. Li, Y. Zhu, F.L. Kong, M. Xi, J. Liu, Effluent trading planning and its application in water quality management: a factor-interaction perspective, Environ. Res., 168 (2019) 286–305.
  52. D. Whitall, S. Bricker, D. Cox, J. Baez, J. Stamates, K. Gregg, F. Pagan, Southeast Florida Reef Tract Water Quality Assessment, Silver Spring, National Oceanic and Atmospheric Administration NOAA, Washington, USA, 2019.
  53. W. Kanownik, A. Policht-Latawiec, Changeability of oxygen and biogenic indices in waters flowing through areas under various anthropopressures, Polish J. Environ. Stud., 24 (2015) 1633–1640.
  54. Z. Hanusz, J. Tarasińska, Remarks on approximated tests based on Shapiro-Wilk’s Statistic, Colloqium Biometricum, 38 (2008) 87–93.
  55. O.V. Fadeikina, R.A. Volkova, E.V. Karpova, Statistical analysis of results from the attestation of biological standard samples: use of the Mann-Whitney test, Pharm. Chem. J., 53 (2019) 655–659.
  56. G.W. Snedecor, Iowa State College Division of Industrial Science Monographs: Vol. 1. Calculation and Interpretation of Analysis of Variance and Covariance, Collegiate Press, Ames, 1934.
  57. D.C. Montgomery, Design and Analysis of Experiments, Wiley, Hoboken, USA, 2019.
  58. A.C. Olivieri, Practical guidelines for reporting results in single- and multi-component analytical calibration: a tutorial, Anal. Chim. Acta, 868 (2015) 10–22.
  59. G.M. Calazans, C.C. Pinto, E.P. da Costa, A.F. Perini, S.C. Oliveira, The use of multivariate statistical methods for optimization of the surface water quality network monitoring in the Paraopeba river basin, Brazil, Environ. Monit. Assess., 190 (2018) 491.
  60. H.A. Isiyaka, A. Mustapha, H. Juahir, P. Phil-Eze, Water quality modelling using artificial neural network and multivariate statistical techniques, Model. Earth Syst. Environ., 5 (2019) 583–593.
  61. P. El Najjar, A. Kassouf, A. Probst, J.-L. Probst, N. Ouaini, C. Daou, D. El Azzi, High-frequency monitoring of surface water quality at the outlet of the Ibrahim River (Lebanon): a multivariate assessment, Ecol. Indic., 104 (2019) 13–23.
  62. A. Edet, A. Ukpong, T. Nganje, Hydrochemical studies of Cross River Basin (southeastern Nigeria) river systems using cross plots, statistics and water quality index, Environ. Earth Sci., 70 (2013) 3043–3056.
  63. A.C. Weide, A. Beauducel, Varimax rotation based on gradient projection is a feasible alternative to SPSS, Front. Psychol., 10 (2019) 645.
  64. S.P. Washington, M.G. Karlaftis, F. Mannering, P. Anastasopoulos, Statistical and Econometric Methods for Transportation Data Analysis, Chapman and Hall/CRC, New York, USA, 2020.
  65. H.F. Kaiser, The application of electronic computers to factor analysis, Educ. Psychol. Meas., 20 (1960) 141–151.
  66. H.F. Kaiser, The varimax criterion for analytic rotation in factor analysis, Psychometrika, 23 (1958) 187–200.
  67. U.C. Panda, S.K. Sundaray, P. Rath, B.B. Nayak, D. Bhatta, Application of factor and cluster analysis for characterization of river and estuarine water systems – a case study: Mahanadi River (India), J. Hydrol., 331 (2006) 434–445.
  68. E.P. Tziritis, P.S. Datta, R. Barzegar, Characterization and assessment of groundwater resources in a complex hydrological basin of Central Greece (Kopaida basin) with the joint use of hydrogeochemical analysis, multivariate statistics and stable isotopes, Aquat. Geochem., 23 (2017) 271–298.
  69. J. Kondracki, Regional Geography of Poland (in Polish), PWN, Warsaw, Poland, 2011.
  70. A. Kownacki, E. Szarek-Gwiazda, M. Ligaszewski, J. Urban, Communities of Freshwater Macroinvertebrate and Fish in Mountain Streams and Rivers of the Upper Dunajec Catchment (Western Carpathians) Including Long-Term Human Impact, In: Handbook of Environmental Chemistry, Springer Verlag, Cham, Switzerland, 2020, pp. 269–294.
  71. M. Debnath, C. Mahanta, A.K. Sarma, Nutrient Fluxes from Agriculture: Reducing Environmental Impact Through Optimum Application, Springer, Cham, 2020, pp. 37–51.
  72. A. Kowalczyk, S. Smoroń, M. Kopacz, Influence of runoff of suspended solids on quality of surface water: case study of the Szreniawa River, J. Water Land Dev., 41 (2019) 83–90.
  73. A. Ziemińska-Stolarska, M. Imbierowicz, M. Jaskulski, A. Szmidt, I. Zbiciński, Continuous and periodic monitoring system of surface water quality of an impounding reservoir: Sulejow reservoir, Poland, Int. J. Environ. Res. Public Health, 16 (2019) 301.
  74. M. Sojka, J. Jaskuła, J. Wicher-Dysarz, Assessment of biogenic compounds elution from the główna river catchment in the years 1996–2009, Rocz. Ochr. Sr., 18 (2016) 815–830.
  75. J. Fito, N. Tefera, H. Kloos, S.W.H. Van Hulle, Physicochemical properties of the sugar industry and ethanol distillery wastewater and their impact on the environment, Sugar Tech, 21 (2019) 265–277.
  76. A.L.C. Soares, C.C. Pinto, S.C. Oliveira, Impacts of anthropogenic activities and calculation of the relative risk of violating surface water quality standards established by environmental legislation: a case study from the Piracicaba and Paraopeba river basins, Brazil, Environ. Sci. Pollut. Res., 27 (2020) 14085–14099.
  77. Z. Odnorih, R. Manko, M. Malovanyy, K. Soloviy, Results of surface water quality monitoring of the Western Bug River basin in Lviv Region, J. Ecol. Eng., 21 (2020) 18–26.
  78. P.N. Linnik, V.A. Zhezherya, R.P. Linnik, Hydrochemical Regime of the Kiliya Delta of the Danube River in Retrospective and Modern Conditions: II. Metal Content and Speciation, Russ. J. Gen. Chem., 89 (2019) 2865–2874.
  79. D. Breitburg, L.A. Levin, A. Oschlies, M. Grégoire, F.P. Chavez, D.J. Conley, V. Garçon, D. Gilbert, D. Gutiérrez, K. Isensee, G.S. Jacinto, K.E. Limburg, I. Montes, S.W.A. Naqvi, G.C. Pitcher, N.N. Rabalais, M.R. Roman, K.A. Rose, B.A. Seibel, M. Telszewski, M. Yasuhara, J. Zhang, Declining oxygen in the global ocean and coastal waters, Science, 359 (2018) eaam7240.
  80. J. Yan, J. Sui, Y. Xu, X. Li, H. Wang, B. Zhang, Relationship between mild seasonal oxygen deficiency and seasonal variations of macrozoobenthic community: a case study in the Yangtze River estuary and its adjacent area, China, Mar. Pollut. Bull., 144 (2019) 11–19.
  81. A. Rajwa-Kuligiewicz, R.J. Bialik, P.M. Rowiński, Dissolved oxygen and water temperature dynamics in lowland rivers over various timescales, J. Hydrol. Hydromech., 63 (2015) 353–363.
  82. J. Dąbrowska, A. Moryl, E. Kucharczak-Moryl, R. Żmuda, Content of nitrogen compounds in the waters of the Strzegomka River above the Dobromierz Reservoir (in Polish), Acta Sci. Polonorum Formatio Circumiectus, 15 (2016) 57–69.
  83. A.M. Macdonald, A.C. Edwards, K.B. Pugh, P.W. Balls, Soluble nitrogen and phosphorus in the River Ythan system, U.K.: annual and seasonal trends, Water Res., 29 (1995) 837–846.
  84. M. Skorbiłowicz, P. Ofman, Seasonal changes of nitrogen and phosphorus concentration in Supraśl River, J. Ecol. Eng., 15 (2014) 26–31.
  85. J. Kaniuczak, Ł. Augustyn, The content of nitrogen compounds and phosphates in surface water intended for supply in drinking water (in Polish), Inżynieria Ekol., 27 (2011) 46–59.
  86. T. Solovey, Evaluation of potential eutrophication in running waters of the central Vistula catchment basin (in Polish), Woda-Środowisko-Obszary Wiejskie, 8 (2008) 323–336.
  87. R. Quirós, The relationship between nitrate and ammonia concentrations in the pelagic zone of lakes, Limnetica, 22 (2003) 37–50.
  88. N. Melvin, R.H. Gardner, The BOD5/DO Ratio, A New Analytical Tool for Water Quality Evaluation, BiblioGov, USA, 2012.
  89. T.G. Kazi, M.B. Arain, M.K. Jamali, N. Jalbani, H.I. Afridi, R.A. Sarfraz, J.A. Baig, A.Q. Shah, Assessment of water quality of polluted lake using multivariate statistical techniques: a case study, Ecotoxicol. Environ. Saf., 72 (2009) 301–309.
  90. I.M. Adekunle, M.T. Adetunji, A.M. Gbadebo, O.B. Banjoko, Assessment of groundwater quality in a typical rural settlement in southwest Nigeria, Int. J. Environ. Res. Public Health, 4 (2007) 307–318.
  91. M. Sojka, M. Siepak, A. Zioła, M. Frankowski, S. Murat- Błaźejewska, J. Siepak, Application of multivariate statistical techniques to evaluation of water quality in the Mała Wełna River (Western Poland), Environ. Monit. Assess., 147 (2008) 159–170.
  92. J. Wang, G. Liu, H. Liu, P.K.S. Lam, Multivariate statistical evaluation of dissolved trace elements and a water quality assessment in the middle reaches of Huaihe River, Anhui, China, Sci. Total Environ., 583 (2017) 421–431.
  93. K.P. Singh, A. Malik, D. Mohan, S. Sinha, Multivariate statistical techniques for the evaluation of spatial and temporal variations in water quality of Gomti River (India) - a case study, Water Res., 38 (2004) 3980–3992.
  94. C. Gao, J. Yan, S. Yang, G. Tan, Applying Factor Analysis to Water Quality Assessment: A Study Case of Wenyu River, In: Advances in Intelligent and Soft Computing, Springer, Berlin, Heidelberg, 2011, pp. 541–547.