Title :
Quantitative blood speed imaging with intravascular ultrasound
Author :
Crowe, John R. ; O´Donnell, Matthew
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Michigan Univ., Ann Arbor, MI, USA
fDate :
3/1/2001 12:00:00 AM
Abstract :
Previously, we presented a method of real-time arterial color flow imaging using an intravascular ultrasound (IVUS) imaging system, where real-time RF A-scans were processed with an FIR (finite-impulse response) filter bank to estimate relative blood speed. Although qualitative flow measurements are clinically valuable, realizing the full potential of blood flow imaging requires quantitative flow speed and volume measurements in real time. Unfortunately, the rate of RF echo-to-echo decorrelation is not directly related to scatterer speed in a side-looking IVUS system because the elevational extent of the imaging slice varies with range. Consequently, flow imaging methods using any type of decorrelation processing to estimate blood speed without accounting for spatial variation of the radiation pattern will have estimation errors that prohibit accurate comparison of speed estimates from different depths. The FIR filter bank approach measures the rate of change of the ultrasound signal by estimating the slow-time spectrum of RF echoes. A filter bank of M bandpass filters is applied in parallel to estimate M components of the slow-time DFT (discrete Fourier transform). The relationship between the slow-time spectrum, aperture diffraction pattern, and scatterer speed is derived for a simplified target. Because the ultimate goal of this work is to make quantitative speed measurements, we present a method to map slow time spectral characteristics to a quantitative estimate. Results of the speed estimator are shown for a simulated circumferential catheter array insonifying blood moving uniformly past the array (i.e., plug flow) and blood moving with a parabolic profile (i.e., laminar flow).
Keywords :
FIR filters; acoustic signal processing; band-pass filters; biomedical ultrasonics; blood flow measurement; medical signal processing; patient diagnosis; FIR; FIR filter bank approach; M bandpass filters; aperture diffraction pattern; blood speed; circumferential catheter array; discrete Fourier transform; finite-impulse response filter bank; flow imaging methods; intravascular ultrasound; quantitative blood speed imaging; real-time RF A-scans; real-time arterial color flow imaging; scatterer speed; slow-time spectrum; time spectral characteristics; Blood; Decorrelation; Filter bank; Finite impulse response filter; Radio frequency; Real time systems; Ultrasonic imaging; Ultrasonic variables measurement; Velocity measurement; Volume measurement; Animals; Biomedical Engineering; Blood Flow Velocity; Blood Vessels; Femoral Artery; Humans; Radio Waves; Swine; Ultrasonography;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on