• DocumentCode
    1395249
  • Title

    Comparison of RootMUSIC and Discrete Wavelet Transform Analysis of Doppler Ultrasound Blood Flow Waveforms to Detect Microvascular Abnormalities in Type I Diabetes

  • Author

    Agnew, C.E. ; McCann, A.J. ; Lockhart, C.J. ; Hamilton, P.K. ; McVeigh, G.E. ; McGivern, R.C.

  • Author_Institution
    Regional Med. Phys. Service, NICC, Belfast, UK
  • Volume
    58
  • Issue
    4
  • fYear
    2011
  • fDate
    4/1/2011 12:00:00 AM
  • Firstpage
    861
  • Lastpage
    867
  • Abstract
    The earliest signs of cardiovascular disease occur in microcirculations. Changes to mechanical and structural properties of these small resistive vessels alter the impedance to flow, subsequent reflected waves, and consequently, flow waveform morphology. In this paper, we compare two frequency analysis techniques: 1) rootMUSIC and 2) the discrete wavelet transform (DWT) to extract features of flow velocity waveform morphology captured using Doppler ultrasound from the ophthalmic artery (OA) in 30 controls and 38 age and sex matched Type I diabetics. Conventional techniques for characterizing Doppler velocity waveforms, such as mean velocity, resistive index, and pulsatility index, revealed no significant differences between the groups. However, rootMUSIC and the DWT provided highly correlated results with the spectral con tent in bands 2-7 (30-0.8 Hz) significantly elevated in the diabetic group (p <; 0.05). The spectral distinction between the groups may be attributable to manifestations of underlying pathophysiological processes in vascular impedance and consequent wave reflections, with bands 5 and 7 related to age. Spectral descriptors of OA blood velocity waveforms are better indicators of preclinical microvascular abnormalities in Type I diabetes than conventional measures. Although highly correlated DWT proved slightly more discriminatory than rootMUSIC and has the advantage of extending to subheart rate frequencies, which may be of interest.
  • Keywords
    Doppler measurement; biomedical ultrasonics; blood flow measurement; blood vessels; discrete wavelet transforms; diseases; eye; feature extraction; medical signal processing; ultrasonic measurement; DWT analysis; Doppler ultrasound blood flow waveforms; OA blood velocity waveforms; Type I diabetes; blood vessel mechanical properties; blood vessel structural properties; cardiovascular disease; discrete wavelet transform; feature extraction; flow velocity waveform morphology; frequency 30 Hz to 0.8 Hz; frequency analysis techniques; mean velocity; microcirculations; microvascular abnormality detection; ophthalmic artery; pathophysiological processes; pulsatility index; resistive index; rootMUSIC; vascular impedance; Blood; Correlation; Diabetes; Discrete wavelet transforms; Doppler effect; Signal resolution; Time frequency analysis; Discrete wavelet transform (DWT); Doppler ultrasound; resistive index (RI); rootMUSIC; wave reflection; wavelet selection; Adult; Algorithms; Blood Flow Velocity; Diabetes Mellitus, Type 1; Diabetic Angiopathies; Female; Humans; Image Interpretation, Computer-Assisted; Male; Microcirculation; Microvessels; Signal Processing, Computer-Assisted; Ultrasonography, Doppler; Wavelet Analysis;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2010.2097263
  • Filename
    5658123