• Journal of the European Optical Society-Rapid Publications
  • Vol. 19, Issue 1, 2023005 (2023)
Mohamed Shalaby* and Fawzi S. Alorifi*
Author Affiliations
  • Electrical Engineering Department, Faculty of Engineering, Imam Mohammad Ibn Saud Islamic University, Riyadh 11432, KSA
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    DOI: 10.1051/jeos/2023005 Cite this Article
    Mohamed Shalaby, Fawzi S. Alorifi. Environmental pollution detection: A novel chirped spectral modulation algorithm for a more accurate monitoring of gas pollutants in the atmosphere[J]. Journal of the European Optical Society-Rapid Publications, 2023, 19(1): 2023005 Copy Citation Text show less
    References

    [1] E. Baszanowska, Z. Otremba. Spectral signatures of fluorescence and light absorption to identify crude oils found in the marine environment. J. Eur. Opt. Soc., 9, 14029(2014).

    [2] K. Haule, M. Darecki, H. Toczek. Light penetration in seawater polluted by dispersed oil: results of radiative transfer modelling. J. Eur. Opt. Soc., 10, 15052(2015).

    [3] B. Troia, V.M.N. Passaro. Investigation of a novel silicon-on-insulator Rib-Slot photonic sensor based on the vernier effect and operating at 3.8 mm. J. Eur. Opt. Soc., 9, 14005(2014).

    [4] Y.J. Kim, U. Platt. Advanced environmental monitoring(2008).

    [5] A. Jantrania. Dealing with oil and grease in restaurant wastewater. Small Flows J., 5(1991).

    [6] M.B. Hadley, R. Vedanthan, V. Fuster. Air pollution and cardiovascular disease: a window of opportunity. Nat. Rev. Cardiol., 15, 193-194(2018).

    [7] A.R.M. Shalaby, K.A. AlMuhanna, M. Shalaby. Environmental pollution monitoring: a novel vectorial algorithm technique for oil detection in wastewater. Spectrosc. Lett., 53, 737-744(2020).

    [9] T. Holloway, D. Miller, S. Anenberg, M. Diao, B. Duncan, A.M. Fiore, D.K. Henze, J. Hess, P.L. Kinney, Y. Liu, J.L. Neu, S.M. O’Neill, M.T. Odman, R.B. Pierce, A.G. Russell, D. Tong, J.J. West, M.A. Zondlo. Satellite monitoring for air quality and health. Annu. Rev. Biomed. Data Sci., 4, 417-447(2021).

    [10] J.F. Martínez-Trinidad, J.A. Carrasco-Ochoa, C. Brants, E.R. Hancock. Pattern Recognition, Third Mexican Conference, MCPR 2011, June 29–July 2, 2011.

    [11] P.R. Griffiths. Recent applications of Fourier transform infrared spectrometry in chemical and environmental analysis. Appl. Spectrosc., 31, 497-505(1977).

    [12] G. Yoon, Y.-J. Kim, S. Hahn. Determination of glucose in whole blood samples by mid-infrared spectroscopy. Appl. Opt., 42(2003).

    [13] T. Yano, T. Funatsu, K.-I. Suehara, Y. Nakano. Measurement of the concentrations of glucose and citric acid in the aqueous solution of a blood anticoagulant using near infrared spectroscopy. J. Near Infrared Spectrosc., 9, 43-48(2001).

    [14] R. Vonach, J. Buschmann, R. Falkowski, R. Schindler, B. Lendl, R. Kellner. Application of mid-infrared transmission spectrometry to the direct determination of glucose in whole blood. Appl. Spectrosc., 52, 820-822(1999).

    [15] P. Bhandare, Y. Mendelson, R.A. Peura, G. Janantsch, J.D. Kruse-Jarres, R. Marbach, M.H. Heise. Multivariate determination of glucose in whole blood using partial least-squares and artificial neural networks based on mid-infrared spectroscopy. Appl. Spectrosc., 47, 1214-1221(1993).

    [16] H. Zeller, P. Novak, P. Landgraf. Blood glucose measurement by infrared spectroscopy. Int. J. Artif. Organs, 12, 129-135(1989).

    [17] I. Cirne, J. Boaventura, Y. Guedes, E. Lucas. Methods for determination of oil and grease contents in wastewater from the petroleum industry. Chem. Chem. Technol., 10, 437-444(2016).

    [18] C.S. Goldenstein, V.A. Miller, R. Mitchell Spearrin, C.L. Strand. SpectraPlot.com: integrated spectroscopic modelling of atomic and molecular gases. J. Quant. Spectrosc. Radiat. Transf., 200, 249(2017).

    [19] D. Haaland, R. Easterling, D. Vopicka. Multivariate least-squares methods applied to the quantitative spectral analysis of multicomponent samples. Appl. Spectrosc., 39, 73-84(1985).

    [20] P.R. Griffiths, B.T. Bowie. Measurement of the sensitivity and photometric accuracy of FT-IR spectrometers. Appl. Spectrosc., 54, 1192-1202(2000).

    [21] D.A. Burns, E.W. Ciurczak. Handbook of near-infrared analysis(2001).

    [22] E. Oran Brigham. The fast Fourier transform and its applications(1988).

    [23] P.R. Griffiths, J.A. de Haseth. Fourier transform infrared spectrometry(2007).

    [24] T. Hirschfeld. Dynamic range improvement in Fourier transform infrared spectrometry. Anal. Chem., 50, 1225-1226(1978).

    [25] M.K. Antoon, J.H. Koenig, J.L. Koenig. Least-squares curve-fitting of Fourier transform infrared spectra with applications to polymer systems. Appl. Spectrosc., 31, 518-524(1977).

    [26] H. Martens, T. Naes. Multivariate calibration, 180-202(1992).

    [27] M.A. Arnold, L. Geng, X. Zhou, G.W. Small. Multivariate calibration models based on the direct analysis of near-infrared single-beam spectra. Appl. Spectrosc., 51, 1330-1339(1997).

    Mohamed Shalaby, Fawzi S. Alorifi. Environmental pollution detection: A novel chirped spectral modulation algorithm for a more accurate monitoring of gas pollutants in the atmosphere[J]. Journal of the European Optical Society-Rapid Publications, 2023, 19(1): 2023005
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