Cheometric Analysis
373
An assessment of basin scale variability between 50°N and 50°S. Prog. Oceanogr.,
45, 339–368.
Gurden, S.P., Westerhuis, J.A., Bro, R., and Smilde, A.K. (2001). A comparison of multiway regression and scaling methods. Chemometr. Intell. Lab. Syst., 59, 121–136.
Hall, G.J. and Kenny, J.E. (2007). Estuarine water classification using EEM spectroscopy
and PARAFAC-SIMCA. Anal. Chim. Acta, 581, 118–124.
Hall, G.J., Clow, K.E., and Kenny, J.E. (2005). Estuarial fingerprinting through multidimensional fluorescence and multivariate analysis. Environ. Sci. Technol., 39, 7560–7567.
Harshman, R.A. and Lundy, M.E. (1994). Parafac – parallel factor-analysis. Comput. Stat.
Data Anal., 18, 39–72.
Jaumot, J. and Tauler, R. (2010). MCR-BANDS: A user friendly MATLAB program for the
evaluation of rotation ambiguities in multivariate curve resolution. Chemometr. Intell.
Lab. Syst., 103, 96–107.
Jiang, F., Lee, F.S-C., Wang, X., and Dai, D. (2008). The application of excitation/emission matrix spectroscopy combined with multivariate analysis for the characterization
and source identification of dissolved organic matter in seawater of Bohai Sea, China.
Mar. Chem., 110, 109–119.
Kjeldahla, K. and Bro, R. (2010). Some common misunderstandings in chemometrics. J.
Chemometr., 24, 558–564.
Kowalczuk, P., Durako, M.J., Young, H., Kahn, A.E., Cooper, W.J., and Gonsior, M. (2009).
Characterization of dissolved organic matter fluorescence in the South Atlantic Bight
with use of PARAFAC model: Interannual variability. Mar. Chem., 113, 182–196.
Lakowicz, J.R. (2006). Principles of Fluorescence Spectroscopy, 3rd ed. New York: Plenum
Press.
Lavine, B. and Workman, J. (2010). Chemometrics. Anal. Chem., 82, 4699–4711.
Lu, F., Chang, C-H., Lee, D.-J., He, P-J., Shao, L-M., and Su, A. (2009). Dissolved organic
matter with multi-peak fluorophores in landfill leachate. Chemosphere, 74, 575–582.
Macalady, D.L. and Walton-Day, K. (2009). New light on a dark subject: On the use of
fluorescence data to deduce redox states of natural organic matter (NOM). Aquat. Sci.,
71, 135–143.
Marhaba, T.F., Bengraine, K., Pu, Y., and Arago, J. (2003). Spectral fluorescence signatures
and partial least squares regression: Model to predict dissolved organic carbon in
water. J. Hazard. Mater., 97, 83–97.
Martens, H. and Næs, T. (1989). Multivariate Calibration. Chichester: Wiley & Sons.
McKean, J.W. (2004). Robust analysis of linear models. Stat. Sci., 19, 562–570.
Miano, T.M. and Senesi, N. (1992). Synchronous excitation fluorescence spectroscopy
applied to soil humic substances chemistry. Sci. Total Environ., 117–118, 41–51.
Miller, M.P. and McKnight, D.M. (2010). Comparison of seasonal changes in fluorescent
dissolved organic matter among aquatic lake and stream sites in the Green Lakes
Valley. J. Geophys. Res. Biogeosci., 115. G00F12, doi: 10.1029/2009jg000985.
Miller, M.P., McKnight, D.M., and Chapra, S.C. (2009a). Production of microbiallyderived fulvic acid from photolysis of quinone-containing extracellular products of
phytoplankton. Aquat. Sci., 71, 170–178.
Miller, M.P., McKnight, D.M., Chapra, S.C., and Williams, M.W. (2009b). A model of degradation and production of three pools of dissolved organic matter in an alpine lake.
Limnol. Oceanogr., 54, 2213–2227.
Mladenov, N., Huntsman-Mapila, P., Wolski, P., Masarnba, W.R.L, and McKnight, D.M.
(2008). Dissolved organic matter accumulation, reactivity, and redox state in ground
water of a recharge wetland. Wetlands, 28, 747–759.
373
An assessment of basin scale variability between 50°N and 50°S. Prog. Oceanogr.,
45, 339–368.
Gurden, S.P., Westerhuis, J.A., Bro, R., and Smilde, A.K. (2001). A comparison of multiway regression and scaling methods. Chemometr. Intell. Lab. Syst., 59, 121–136.
Hall, G.J. and Kenny, J.E. (2007). Estuarine water classification using EEM spectroscopy
and PARAFAC-SIMCA. Anal. Chim. Acta, 581, 118–124.
Hall, G.J., Clow, K.E., and Kenny, J.E. (2005). Estuarial fingerprinting through multidimensional fluorescence and multivariate analysis. Environ. Sci. Technol., 39, 7560–7567.
Harshman, R.A. and Lundy, M.E. (1994). Parafac – parallel factor-analysis. Comput. Stat.
Data Anal., 18, 39–72.
Jaumot, J. and Tauler, R. (2010). MCR-BANDS: A user friendly MATLAB program for the
evaluation of rotation ambiguities in multivariate curve resolution. Chemometr. Intell.
Lab. Syst., 103, 96–107.
Jiang, F., Lee, F.S-C., Wang, X., and Dai, D. (2008). The application of excitation/emission matrix spectroscopy combined with multivariate analysis for the characterization
and source identification of dissolved organic matter in seawater of Bohai Sea, China.
Mar. Chem., 110, 109–119.
Kjeldahla, K. and Bro, R. (2010). Some common misunderstandings in chemometrics. J.
Chemometr., 24, 558–564.
Kowalczuk, P., Durako, M.J., Young, H., Kahn, A.E., Cooper, W.J., and Gonsior, M. (2009).
Characterization of dissolved organic matter fluorescence in the South Atlantic Bight
with use of PARAFAC model: Interannual variability. Mar. Chem., 113, 182–196.
Lakowicz, J.R. (2006). Principles of Fluorescence Spectroscopy, 3rd ed. New York: Plenum
Press.
Lavine, B. and Workman, J. (2010). Chemometrics. Anal. Chem., 82, 4699–4711.
Lu, F., Chang, C-H., Lee, D.-J., He, P-J., Shao, L-M., and Su, A. (2009). Dissolved organic
matter with multi-peak fluorophores in landfill leachate. Chemosphere, 74, 575–582.
Macalady, D.L. and Walton-Day, K. (2009). New light on a dark subject: On the use of
fluorescence data to deduce redox states of natural organic matter (NOM). Aquat. Sci.,
71, 135–143.
Marhaba, T.F., Bengraine, K., Pu, Y., and Arago, J. (2003). Spectral fluorescence signatures
and partial least squares regression: Model to predict dissolved organic carbon in
water. J. Hazard. Mater., 97, 83–97.
Martens, H. and Næs, T. (1989). Multivariate Calibration. Chichester: Wiley & Sons.
McKean, J.W. (2004). Robust analysis of linear models. Stat. Sci., 19, 562–570.
Miano, T.M. and Senesi, N. (1992). Synchronous excitation fluorescence spectroscopy
applied to soil humic substances chemistry. Sci. Total Environ., 117–118, 41–51.
Miller, M.P. and McKnight, D.M. (2010). Comparison of seasonal changes in fluorescent
dissolved organic matter among aquatic lake and stream sites in the Green Lakes
Valley. J. Geophys. Res. Biogeosci., 115. G00F12, doi: 10.1029/2009jg000985.
Miller, M.P., McKnight, D.M., and Chapra, S.C. (2009a). Production of microbiallyderived fulvic acid from photolysis of quinone-containing extracellular products of
phytoplankton. Aquat. Sci., 71, 170–178.
Miller, M.P., McKnight, D.M., Chapra, S.C., and Williams, M.W. (2009b). A model of degradation and production of three pools of dissolved organic matter in an alpine lake.
Limnol. Oceanogr., 54, 2213–2227.
Mladenov, N., Huntsman-Mapila, P., Wolski, P., Masarnba, W.R.L, and McKnight, D.M.
(2008). Dissolved organic matter accumulation, reactivity, and redox state in ground
water of a recharge wetland. Wetlands, 28, 747–759.
