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Selected applications of near infrared optical methods in medical diagnosis

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Języki publikacji
EN
Abstrakty
EN
Optical methods from the near infrared range, in particular the laser-Doppler flowmetry and the near infrared spectroscopy offer a new non-invasive, real-time technique for monitoring of the blood perfusion and oxygenation in a living tissue. In spite of some instrumental problems, e.g., relative calibration and unknown sampling measurement depth, these methods have been already used in clinical studies. In this paper, the principle of the methods and instrumentation have been described. The advantages and limitations of these techniques are also discussed and new trends in technical development of the laser-Doppler flowmetry and the near infrared spectroscopy, especially contactless perfusion scanning and photons time of flight measurement, have been shown. Finally, selected clinical applications of all presented methods have been described.
Twórcy
autor
  • Institute of Biocybernetics and Biomedical Engineering, Polish Academy of Sciences, 4 Trojdena Str., 02-109 Warsaw, Poland
autor
  • Institute of Biocybernetics and Biomedical Engineering, Polish Academy of Sciences, 4 Trojdena Str., 02-109 Warsaw, Poland
autor
  • Institute of Biocybernetics and Biomedical Engineering, Polish Academy of Sciences, 4 Trojdena Str., 02-109 Warsaw, Poland
autor
  • Institute of Biocybernetics and Biomedical Engineering, Polish Academy of Sciences, 4 Trojdena Str., 02-109 Warsaw, Poland
Bibliografia
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  • 8. A. Liebert, and R. Maniewski, “Near infrared spectroscopy for tissue oxygenation monitoring”, in Biocybernetyka i Inżynieria Biomedyczna 2000, pp. 819-842, edited by M. Nałęcz, EXIT, Warszawa, 2001.
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  • 12. A. Liebert, M. Leahy, and R. Maniewski, “A calibration standard for laser-Doppler measurements”, Rev. Sci. Instr. 66, 5169-5173 (1995).
  • 13. A. Liebert, P. Lukasiewicz, D. Boggett, and R. Maniewski, “Optoelectronic standardization of laser Doppler perfusion monitors”, Rev. Sci. Instr. 70, 1352-1354 (1999).
  • 14. P. Lukasiewicz, A. Liebert, A. Zbiec, and R. Maniewski, “Evaluation of integrating probes used in laser-Doppler perfusion measurements”, Biocybernetics and Biomedical Engineering 2001 20, 77-88 (2000).
  • 15. A. Liebert, M. Leahy, and R. Maniewski, “Multichannel laser-Doppler probe for blood perfusion measurements with depth discrimination”, Medical and Biological Engineering and Computing 36, 740-747 (1998).
  • 16. A. Liebert, N. Terajewicz, R. Maniewski, G. Nilsson, and F.F.M De Mul, “Estimation of scattering volume in short distance reflectance measurements by Monte Carlo modelling", Optica Appl. 32, 709-720 (2002).
  • 17. R. Cubeddu, A. Pifferi, P. Taroni, A. Orricelli, and G. Valentini, “Compact tissue oximeter based on dual-wavelength multichannel time-resolved reflectance”, Appl. Optics 38, 3670-3680 (1999).
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  • 22. A. Liebert, M. Leahy, and R. Maniewski, “Evaluation of different signal processing algorithms in laser-Doppler perfusion measurements”, Proc. 4th Int. Conf. Computers in Medicine 2, 12–17, Zakopane (1997).
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  • 25. M. Kacprzak, A. Huzandrow, A. Liebert, and R. Maniewski, “Time-resolved spectroscopy system for determination of optical properties of the tissue - studies on physical phantoms”, Proc. SPIE 2003.
  • 26. W. Karnafel, J. Juskowa, R. Maniewski, A. Liebert, M. Jasik, and A. Zbieæ, “Microcirculation in diabetic foot measured by multichannel laser-Doppler instrument”, Medical Science Monitor 8, 137-144 (2002).
  • 27. P. Leger, R. Maniewski, P. Lewandowski, A. Liebert, and K.O. Möller, “Laser-Doppler study on Raynaud phenomenon during standardised thermal test, Proc. 4th Eur. Conf. Eng. and Med., Warsaw, 29-31 (1997).
  • 28. R. Maniewski, P. Leger, P. Lewandowski, A. Liebert, P. Bendayan, H. Boccalon, L. Bajorski, and K.O. Möller, “Spectral analysis of laser-Doppler perfusion signal measured during thermal test”, Technol. and Health Care 7, 163-169 (1999).
  • 29. H.A.M. Daanen, F.J.G. Van de Linde, T. Romet, and M.B. Ducharme, “The effect of body temperature on the hunting response of the middle finger skin temperature”, Eur. J. Appl. Physiol. 76, 538-543 (1997).
  • 30. M. Kacprzak, A. Skóra, J. Obidziińska, A. Zbieć, W. Staszkiewicz, and R. Maniewski, “Thermal tests for laser Doppler perfusion measurements in Raynaud’s syndrome”, Proc. SPIE, 2003.
  • 31. R. Maniewski, and A. Liebert, “Manifestation of internal organs malfunction by laser-Doppler study on microcirculation”, Frontiers Med. Biol. Eng. 10, 233-238 (2000).
  • 32. M. Kania, W. Staszkiewicz, R. Maniewski, A. Liebert, Z. Kwietniak, and G. Madycki, “Laser-Doppler flowmetry for monitoring microvascular dysfunction caused by acute lower extremity ischemia”, Proc. 20th Euro. Conf. on Microcurculation, 347-351 (1998).
  • 33. K. Witkowski, E. Meyzner-Zawadzka, A. Liebert, and R. Maniewski, “Clinical assessment of microvascular perfusion in regional anaesthesia”, Lecture Notes of the ICB Seminar on Optoelectronics in Medical Diagnosis, 79-82 (1997).
  • 34. W. Staszkiewicz, D. Gawlikowska, R. Maniewski, A. Zbieæ, and A. Gabrusiewicz, “Application of transcranium brain in surgery of cervical artery”, Pol. Przegląd Chirurg. 73, 186-199 (2001).
  • 35. R. Maniewski, D. Gawlikowska, W. Staszkiewicz, A. Liebert, A. Gabrusiewicz, and A. Zbieć, “Near infrared spectroscopy for monitoring of cerebral oxygenation during carotid surgery”, Technology and Health Care 9, 181-183 (2001).
  • 36. D. Gawlikowska, W. Staszkiewicz, A. Gabrusiewicz, A. Zbieć, A. Liebert, and R. Maniewski, “Clinical experience with NIRS in surgical treatment of brain ischemia”, Lecture Notes of 50th Sem. ICB, Optoelectronics in Medical Diagnosis, Warsaw, 78-82 (2000).
  • 37. E. Szufladowicz, D. Kozłowski, E. Koźluk, J. Jurowiecki, A. Zbieć, J. Jakitowicz, W. Krupa, J. Dobrogowska-Kunicka, R. Baranowski, R. Maniewski, J. Kubica, P. Derejko, Z. Nowicki, F. Walczak, and G. świiątecka, “Estimation of brain oxygenation during vasovagal syncope – initial report”, Folia Cardiol. 8, 129-136 (2001).
  • 38. E. Szufladowicz, E. Koźluk, J. Dobrogowska-Kunicka, A. Zbieć, and R. Maniewski, “Brain oxygenation in near infrared spectroscopy (NIRS) during vasovagal syncope”, 67th ICB Seminar on Laser-Doppler Flowmetry and Near Infrared Spectroscopy in Medical Diagnosis, Warsaw, May 2002.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BWA2-0009-0015
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