7. REFERENCES
1 A.H. Kuptsov. “Applications of Fourier transform Raman spectroscopy in forensic science.” J. Forensic Sci. 39, pp. 305-318,
1994.
2 B.J. Bulkin. The Raman effect: an introduction. In: Analytical Raman Spectroscopy. Chemical Analysis volume 114. B.J. Bulkin
BJ, and J.G.Grasselli, editors, pp. 1-19, New York: John Wiley and Sons, Inc, 1991.
3 S.M. Angel, J.C. Carter, D.N. Stratis, B.J. Marquardt, and W.E. Brewer. “Some new uses for filtered fiber-optic Raman probes: In
situ drug identification and in situ and remote Raman imaging.” J. Raman Spectrosc. 30, 795-805, 1999.
4 J.C. Carter, W.E. Brewer, and S.M. Angel. “Raman spectroscopy for the in situ identification of cocaine and selected adulterants,”
Appl. Spectrosc. 54, pp. 1876-1881, 2000.
5 J. Akhavan, and C.M Hodges. “The use of Fourier transform Raman spectroscopy in the forensic identification of illicit drugs and
explosives.” Spectrochim. Acta. 46A, pp. 303-307, 1990.
6 S.E.J. Bell, D.T. Burns, A.C. Dennis, and J.S. Speers. “Rapid analysis of ecstasy and related phenethylamines in seized tablets by
Raman spectroscopy.” Analyst 125, pp. 541-544, 2000.
7 H. Tsuchihashi, M. Katagi, M. Nishikawa, M. Tatsuno, H. Nishioka, A. Nara, et al. “Determination of methamphetamine and its
related compounds using Fourier transform Raman spectroscopy.” Appl. Spectrosc. 51, pp. 1796-1799, 1997.
8 J.B. Cooper, K.L. Wise, W.T. Welch, M.B. Sumner, B.K. Wilt, and R.R. Bledsoe. “Comparison of near-IR, Raman and mid-IR
spectroscopies for the determination of btex in petroleum fuels,” Appl. Spectrosc. 51, pp. 1613-1620, 1997.
9 X. Dou, Y. Yamaguchi, H. Yamamoto, S. Doi, and Y. Ozaki. “Quantitative analysis of metabolites in urine using a highly precise,
compact near-infrared Raman spectrometer,” Vib. Spectrosc. 13, pp. 83-89, 1996.
10 A.G. Ryder, G.M. O’Connor, and T.J. Glynn. “Identifications and Quantitative Measurement of Narcotics in Solid Mixtures Using
Near-IR Raman Spectroscopy and Multivariate Analysis.” J. Forensic Sci. 44, pp.1013-1019, 1999.
11 A.G. Ryder, G.M. O’Connor, and T.J. Glynn. “Quantitative analysis of cocaine in solid mixtures using Raman spectroscopy and
chemometric methods,” J. Raman Spectrosc. 31, pp. 221-227, 2000.
12 A. Dolan, “The GA Playground”, http://www.aridolan.com/ga/gaa/gaa.html, 1998.
13 M. Riedmiller, and H. Braun, “A Direct Adaptive Method for Faster Backpropagation Learning: The RPROP Algorithm”, Proc.
International Conference on Neural Networks, 1993.
14 Stuttgart Neural Network Simulator, © University of Stuttgart and University of Tübingen, http://www-ra.informatik.unituebingen.de/SNNS/, 1990-2002.
15 T.M. Mitchell, Machine Learning, McGraw Hill, 1997.
16 M. Mitchell, An Introduction to Genetic Algorithms, MIT Press, 1996.
17 L. Hanson and P. Salamon, “Neural Network Ensembles”, IEEE Trans. Pattern Analysis and Machine Intelligence, 2, pp. 9931001.
18 T.G. Dietterich, “Ensemble Methods in Machine Learning”, Lecture Notes in Computer Science, 1857, pp. 1-15, 2000.
1 A.H. Kuptsov. “Applications of Fourier transform Raman spectroscopy in forensic science.” J. Forensic Sci. 39, pp. 305-318,
1994.
2 B.J. Bulkin. The Raman effect: an introduction. In: Analytical Raman Spectroscopy. Chemical Analysis volume 114. B.J. Bulkin
BJ, and J.G.Grasselli, editors, pp. 1-19, New York: John Wiley and Sons, Inc, 1991.
3 S.M. Angel, J.C. Carter, D.N. Stratis, B.J. Marquardt, and W.E. Brewer. “Some new uses for filtered fiber-optic Raman probes: In
situ drug identification and in situ and remote Raman imaging.” J. Raman Spectrosc. 30, 795-805, 1999.
4 J.C. Carter, W.E. Brewer, and S.M. Angel. “Raman spectroscopy for the in situ identification of cocaine and selected adulterants,”
Appl. Spectrosc. 54, pp. 1876-1881, 2000.
5 J. Akhavan, and C.M Hodges. “The use of Fourier transform Raman spectroscopy in the forensic identification of illicit drugs and
explosives.” Spectrochim. Acta. 46A, pp. 303-307, 1990.
6 S.E.J. Bell, D.T. Burns, A.C. Dennis, and J.S. Speers. “Rapid analysis of ecstasy and related phenethylamines in seized tablets by
Raman spectroscopy.” Analyst 125, pp. 541-544, 2000.
7 H. Tsuchihashi, M. Katagi, M. Nishikawa, M. Tatsuno, H. Nishioka, A. Nara, et al. “Determination of methamphetamine and its
related compounds using Fourier transform Raman spectroscopy.” Appl. Spectrosc. 51, pp. 1796-1799, 1997.
8 J.B. Cooper, K.L. Wise, W.T. Welch, M.B. Sumner, B.K. Wilt, and R.R. Bledsoe. “Comparison of near-IR, Raman and mid-IR
spectroscopies for the determination of btex in petroleum fuels,” Appl. Spectrosc. 51, pp. 1613-1620, 1997.
9 X. Dou, Y. Yamaguchi, H. Yamamoto, S. Doi, and Y. Ozaki. “Quantitative analysis of metabolites in urine using a highly precise,
compact near-infrared Raman spectrometer,” Vib. Spectrosc. 13, pp. 83-89, 1996.
10 A.G. Ryder, G.M. O’Connor, and T.J. Glynn. “Identifications and Quantitative Measurement of Narcotics in Solid Mixtures Using
Near-IR Raman Spectroscopy and Multivariate Analysis.” J. Forensic Sci. 44, pp.1013-1019, 1999.
11 A.G. Ryder, G.M. O’Connor, and T.J. Glynn. “Quantitative analysis of cocaine in solid mixtures using Raman spectroscopy and
chemometric methods,” J. Raman Spectrosc. 31, pp. 221-227, 2000.
12 A. Dolan, “The GA Playground”, http://www.aridolan.com/ga/gaa/gaa.html, 1998.
13 M. Riedmiller, and H. Braun, “A Direct Adaptive Method for Faster Backpropagation Learning: The RPROP Algorithm”, Proc.
International Conference on Neural Networks, 1993.
14 Stuttgart Neural Network Simulator, © University of Stuttgart and University of Tübingen, http://www-ra.informatik.unituebingen.de/SNNS/, 1990-2002.
15 T.M. Mitchell, Machine Learning, McGraw Hill, 1997.
16 M. Mitchell, An Introduction to Genetic Algorithms, MIT Press, 1996.
17 L. Hanson and P. Salamon, “Neural Network Ensembles”, IEEE Trans. Pattern Analysis and Machine Intelligence, 2, pp. 9931001.
18 T.G. Dietterich, “Ensemble Methods in Machine Learning”, Lecture Notes in Computer Science, 1857, pp. 1-15, 2000.
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