• Journal of Innovative Optical Health Sciences
  • Vol. 10, Issue 1, 1650033 (2017)
Younessi Heravi Mohamad Amin1、*, Golmakani Ebrahim2, and Joharinia Sima3
Author Affiliations
  • 1Department of Basic Sciences, North Khorasan University, of Medical Sciences, Bojnurd, Iran
  • 2Department of Anesthesiology and Critical Care, Mashhad University of Medical Sciences, Mashhad, Iran
  • 3Department of Electrical Engineering, Young Researchers and Elite Club, Bojnourd Branch, Islamic Azad University, Bojnourd, Iran
  • show less
    DOI: 10.1142/s1793545816500334 Cite this Article
    Younessi Heravi Mohamad Amin, Golmakani Ebrahim, Joharinia Sima. A new approach for detecting sudden hypotension in hemodialysis by using dual-channel optical system[J]. Journal of Innovative Optical Health Sciences, 2017, 10(1): 1650033 Copy Citation Text show less
    References

    [1] J. T. Augirdas, “Pathophysiology of dialysis hypotension: An update," Am. J. kidney Dis. 38(4), S11–S17 (2001).

    [2] C. Ronco, “The haemodialysis system: Basic mechanisms of water and solute transport in extra-corporeal renal replacement therapies," Nephrol. Dial. Transplant. 13(90006) 3–9 (1998).

    [3] R. Nette et al., “Hypotension during hemodialysis results from an impairment of arteriolar tone and left ventricular function," Clin. Nephrol. 63(4), 276–283 (2005).

    [4] J. Passauer, E. Bussemaker, P. Gross, “Dialysis hy-potension: Do we see light at the end of the tunnelff " Nephrol. Dial. Transplant. 13, 3024–3029 (1998).

    [5] F. M. Vander Sande, J. P. Kooman, K. M. Leu-nissen, “Intradialytic hypotension—new concepts on an old problem," Nephrol. Dial. Transplant. 15(11), 1746–1748 (2000).

    [6] G. Ligtenberg, P. J. Blankestijn, H. A. Koomans, “Presyncope during progressive hypovolaemia simulated by lower body negative pressure is not prevented by high-dose naloxone," Nephrol. Dial. Transplant. 13, 398–403 (1998).

    [7] H. Gesche, “Continuous blood pressure measure-ment by using the pulse transit time: Comparison to a cuff-based method," Europ. J. Appl. Physiol. 112(1), 309–315 (2012).

    [8] M. A. Younessi Heravi, M. A. Khalilzadeh, S. Joharinia, “Continous and cuffless blood pressure monitoring using ECG and SpO2 signals," J. Biomed. Phys. Eng. 4(1), 27–32 (2014).

    [9] R. A. Payne, C. N. Symeonides, D. J, Webb, S. R. Maxwell “Pulsetransit time measured from the ECG: An unreliable marker of beat-to-beat blood pressure," J. Appl Physiol. 100: 136–141 (2006).

    [10] M. Y.- M. Wong, C. C.-Y. Poon, Y.-T. Zhang, “An evaluation of the cuffless blood pressure estimation based on pulse transit time technique: A half year study on normotensive subjects," Cardiovasc. Eng. 9(1), 32–38 (2009).

    [11] R. Maggi, V. Viscardi, T. Furukawa, M. Brignole, “Non-invasive continuous blood pressure monitor-ing of tachycardic episodes during interventional electrophysiology," Europace 12(11), 1616–1622 (2010).

    [12] M. Saban, Two methods for determination of dia-stolic and systolic pressures in fingers, IEEE 17th Annu. Conf. Engineering in Medicine and Biology Society, IEEE, Montreal, Que (1995).

    [13] P. Zurek, O. Krejcar, M. Penhaker, M. Cerny, R. Frischer, Continuous Noninvasive Blood Pressure Measurement by Near Infra Red CCD Camera and Pulse Transmit Time Systems, Second Int. Conf. Computer Engineering and Applications (ICCEA), Bali Island, pp. 19–21 March (2010).

    [14] W. Chen, T. Kobayashi, S. Ichikawa, Y. Takeuchi, T. Togawa, “Continuous estimation of systolic blood pressure using the pulse arrival time and in-termittent calibration," Med. Biol Eng. Comput. 38(5), 569–574 (2000).

    [15] M. Nitzan, B. Khanokh, Y. Slovik, “The difference in pulse transit time to the toe and finger measured by photoplethysmography," Physiol. Meas. 23(1), 85–93 (2002).

    [16] D. Zheng, A. Murray, “Non-invasive quantification of peripheral arterial volume distensibility and its non-linear relationship with arterial pressure," J. Biomech. 42(8), 1032–1037 (2009).

    [17] M. A. Younessi Heravi, M. A. Khalilzadeh, De-signing and Constructing an Optical System to measure Continuous and Cuffless Blood Pressure Using Two Pulse Signals," Iran. J. Med. Phys. 10(4), 204–212 (2014).

    [18] F. J. Callaghan, C. F. Babbs, J. D. Bourland, L. A. Geddes, “The relationship between arterial pulse-wave velocity and pulse frequency at different pressures," J. Med Eng Technol. 8(1), 15–18 (1984).

    [19] W. Nichols, M. O'Rourke, C. Vlachopoulos, Mcdo-nald's Blood Flow In Arteries: Theoretical, Experi-mental and Clinical Principles, CRC Press Boca Raton (2011).

    [20] P. Shaltis, A. Reisner et al. (2004). A hydrostatic pressure approach to cuffless blood pressure moni-toring, Annu. Int. Conf. IEEE Engineering in Medicine and Biology Society, IEMBS'04, IEEE, San Francisco, CA (2004).

    [21] J. M. Bland, D. G. Altman, “Statistical methods for assessing agreement between two methods of clinical measurement," Lancet 327, 307–310, 1986.

    [22] D. Franchi, R. Bedini, F. Manfredini, S. Berti, G. Palagi, S. Ghione, A. Ripoli, “Blood pressure eval-uation based on arterial pulse wave velocity," Comput. Cardiol. 23, 108–111 (1996).

    [23] D. B. Newlin, “Relationships of pulse transmission times to pre-ejection period and blood pressure," Psychophysiology 18, 316–321 (1981).

    [24] M. H. Pollak, P. A. Obrist, “Aortic-radial pulse transit time and ECG qwave to radial pulse wave interval as indices of beat-by-beat blood pressure change," Psychophysiology 20, 21–28 (1983).

    [25] C. F. Wippermann, D. Schranz, R. G. Huth, “Evaluation of the pulse wave arrival time as a marker for blood pressure changes in critically ill infants and children," J. Clin. Monit. 11, 324–328 (1995).

    [26] C. Ahlstrom, A. Johansson et al. “Noninvasive in-vestigation of blood pressure changes using the pulse wave transit time: A novel approach in the moni-toring of hemodialysis patients," J. Artif. Organs 8(3), 192–197 (2005).

    [27] D.-K. Jung, G.-R. Kim et al., Changes of pulse wave velocity in arm according to characteristic points of pulse wave, Int. Conf. Convergence Information Technology, Gyongju, South Korea (2007).

    [28] Y. Kim, J. Lee, Cuffless and non-invasive estimation of a continuous blood pressure based on ptt, 2nd Int. Conf. IEEE Information Technology Convergence and Services (ITCS), Cebu (2010).

    [29] Zakaria, N. A., N. Sharifmuddin et al., Pulse wave transit time and its relationship with systolic blood pressure, 6th World Congress of Biomechanics (WCB 2010), August 1–6, Springer Singapore, (2010), pp. 15–18.

    Younessi Heravi Mohamad Amin, Golmakani Ebrahim, Joharinia Sima. A new approach for detecting sudden hypotension in hemodialysis by using dual-channel optical system[J]. Journal of Innovative Optical Health Sciences, 2017, 10(1): 1650033
    Download Citation