23. Allen, J., & Bard, L. R. F. (2000). Electrochemical methods: Fundamentals and applications.
Wiley, p. 864, ISBN: 978-0-471-04372-0.
24. Eggins, B. R. (2002). Chemical sensors and biosensors. Chichester, United Kingdom: Wiley.
25. Harvey, D. (2000). Modern analytical chemistry. New York: McGraw-Hill Higher Education.
26. Langhus, D. L. (2002). In P. M. S. Monk (Eds.), Fundamentals of electroanalytical chemistry.
Journal of Chemical Education, 79, 1207.
27. Beilby, A. L. (1977). In R. L. Pecsok, L. D. Shields, T. Cairns, I. G. McWilliam (Eds.),
Modern methods of chemical analysis (2nd ed.). Journal of Chemical Education, 54, A463.
28. Moini, M. (1998). GC/MS: A practical user’s guide by Christopher McMaster and Marvin
McMaster (University of Missouri, St. Louis). Wiley: New York. 1998, ISBN
0-471-24826-6. Journal of the American Chemical Society, 121, 4931.
29. De Levie, R. (1997). Principles of quantitative chemical analysis. New York: McGraw-Hill.
30. Patnaik, P. (2004). Dean’s analytical chemistry handbook (Vol. 1143). New York:
McGraw-Hill.
31. Khopkar, S. M. (2009). Basic concepts of analytical chemistry. New Delhi: New Age
International (P) Limited Publishers.
32. Conde, E. F. (2011). Environmental sensor anomaly detection using learning machines,
Master of science. Logan, Utah: Utah State University.
33. Dahlén, J., Karlsson, S., Bäckström, M., Hagberg, J., & Pettersson, H. (2000). Determination
of nitrate and other water quality parameters in groundwater from UV/Vis spectra employing
partial least squares regression. Chemosphere, 40(1), 71–77.
34. Bourgeois, W., Burgess, J. E., & Stuetz, R. (2001). On-line monitoring of wastewater quality:
A review. Journal of Chemical Technology and Biotechnology, 76(4), 337–348.
35. Hou, D., Liu, S., Zhang, J., Chen, F., Huang, P., & Zhang, G. (2014). Online monitoring of
water-quality anomaly in water distribution systems based on probabilistic principal
component analysis by UV-Vis absorption spectroscopy. Journal of Spectroscopy, 2014,
1–9.
36. Hou, D., Zhang, J., Yang, Z., Liu, S., Huang, P., & Zhang, G. (2015). Distribution water
quality anomaly detection from UV optical sensor monitoring data by integrating principal
component analysis with chi-square distribution. Optics Express, 23, 17487–17510.
37. Foley, J., Batstone, D., & Keller, J. (2019). The R & D challenges of water
recycling-technical and environmental horizons. In Advanced wastewater management
centre.
38. Yu, H. B., Wang, Y. Y., & Song, C. Y. (2011). Study of three-dimensional fluorescence
spectra for measuring chlorobenzene in water. Guang Pu Xue Yu Guang Pu Fen Xi, 31(7),
1823–1827.
39. Frankowski, M., Ziola-Frankowska, A., Kurzyca, I., Novotny, K., Vaculovic, T., Kanicky, V.,
et al. (2011). Determination of aluminium in groundwater samples by GF-AAS, ICP-AES,
ICP-MS and modelling of inorganic aluminium complexes. Environmental Monitoring and
Assessment, 182, 71–84.
40. Hołyńska, B., Ostachowicz, B., & Wȩgrzynek, D. (1996). Simple method of determination of
copper, mercury and lead in potable water with preliminary pre-concentration by total
reflection X-ray fluorescence spectrometry. Spectrochimica Acta, Part B: Atomic
Spectroscopy, 51, 769–773.
41. Liang, P., Liu, Y., Guo, L., Zeng, J., & Lu, H. (2004). Multiwalled carbon nanotubes as
solid-phase extraction adsorbent for the preconcentration of trace metal ions and their
determination by inductively coupled plasma atomic emission spectrometry. Journal of
Analytical Atomic Spectrometry, 19, 1489–1492.
42. Nie, Z., Nijhuis, C. A., Gong, J., Chen, X., Kumachev, A., Martinez, A. W., et al. (2010).
Electrochemical sensing in paper-based microfluidic devices. Lab on a Chip, 10, 477–483.
43. Mancy, K. H., Okun, D. A., & Reilley, C. N. (1962). A galvanic cell oxygen analyzer.
Journal of Electroanalytical Chemistry, 4(2), 65–92.
78
G. Tripathi et al.
Wiley, p. 864, ISBN: 978-0-471-04372-0.
24. Eggins, B. R. (2002). Chemical sensors and biosensors. Chichester, United Kingdom: Wiley.
25. Harvey, D. (2000). Modern analytical chemistry. New York: McGraw-Hill Higher Education.
26. Langhus, D. L. (2002). In P. M. S. Monk (Eds.), Fundamentals of electroanalytical chemistry.
Journal of Chemical Education, 79, 1207.
27. Beilby, A. L. (1977). In R. L. Pecsok, L. D. Shields, T. Cairns, I. G. McWilliam (Eds.),
Modern methods of chemical analysis (2nd ed.). Journal of Chemical Education, 54, A463.
28. Moini, M. (1998). GC/MS: A practical user’s guide by Christopher McMaster and Marvin
McMaster (University of Missouri, St. Louis). Wiley: New York. 1998, ISBN
0-471-24826-6. Journal of the American Chemical Society, 121, 4931.
29. De Levie, R. (1997). Principles of quantitative chemical analysis. New York: McGraw-Hill.
30. Patnaik, P. (2004). Dean’s analytical chemistry handbook (Vol. 1143). New York:
McGraw-Hill.
31. Khopkar, S. M. (2009). Basic concepts of analytical chemistry. New Delhi: New Age
International (P) Limited Publishers.
32. Conde, E. F. (2011). Environmental sensor anomaly detection using learning machines,
Master of science. Logan, Utah: Utah State University.
33. Dahlén, J., Karlsson, S., Bäckström, M., Hagberg, J., & Pettersson, H. (2000). Determination
of nitrate and other water quality parameters in groundwater from UV/Vis spectra employing
partial least squares regression. Chemosphere, 40(1), 71–77.
34. Bourgeois, W., Burgess, J. E., & Stuetz, R. (2001). On-line monitoring of wastewater quality:
A review. Journal of Chemical Technology and Biotechnology, 76(4), 337–348.
35. Hou, D., Liu, S., Zhang, J., Chen, F., Huang, P., & Zhang, G. (2014). Online monitoring of
water-quality anomaly in water distribution systems based on probabilistic principal
component analysis by UV-Vis absorption spectroscopy. Journal of Spectroscopy, 2014,
1–9.
36. Hou, D., Zhang, J., Yang, Z., Liu, S., Huang, P., & Zhang, G. (2015). Distribution water
quality anomaly detection from UV optical sensor monitoring data by integrating principal
component analysis with chi-square distribution. Optics Express, 23, 17487–17510.
37. Foley, J., Batstone, D., & Keller, J. (2019). The R & D challenges of water
recycling-technical and environmental horizons. In Advanced wastewater management
centre.
38. Yu, H. B., Wang, Y. Y., & Song, C. Y. (2011). Study of three-dimensional fluorescence
spectra for measuring chlorobenzene in water. Guang Pu Xue Yu Guang Pu Fen Xi, 31(7),
1823–1827.
39. Frankowski, M., Ziola-Frankowska, A., Kurzyca, I., Novotny, K., Vaculovic, T., Kanicky, V.,
et al. (2011). Determination of aluminium in groundwater samples by GF-AAS, ICP-AES,
ICP-MS and modelling of inorganic aluminium complexes. Environmental Monitoring and
Assessment, 182, 71–84.
40. Hołyńska, B., Ostachowicz, B., & Wȩgrzynek, D. (1996). Simple method of determination of
copper, mercury and lead in potable water with preliminary pre-concentration by total
reflection X-ray fluorescence spectrometry. Spectrochimica Acta, Part B: Atomic
Spectroscopy, 51, 769–773.
41. Liang, P., Liu, Y., Guo, L., Zeng, J., & Lu, H. (2004). Multiwalled carbon nanotubes as
solid-phase extraction adsorbent for the preconcentration of trace metal ions and their
determination by inductively coupled plasma atomic emission spectrometry. Journal of
Analytical Atomic Spectrometry, 19, 1489–1492.
42. Nie, Z., Nijhuis, C. A., Gong, J., Chen, X., Kumachev, A., Martinez, A. W., et al. (2010).
Electrochemical sensing in paper-based microfluidic devices. Lab on a Chip, 10, 477–483.
43. Mancy, K. H., Okun, D. A., & Reilley, C. N. (1962). A galvanic cell oxygen analyzer.
Journal of Electroanalytical Chemistry, 4(2), 65–92.
78
G. Tripathi et al.
