Title :
Microvascular Flow Estimation by Contrast-Assisted Ultrasound B-Scan and Statistical Parametric Images
Author :
Tsui, Po-Hsiang ; Yeh, Chih-Kuang ; Chang, Chien-Cheng
Author_Institution :
Res. Center for Appl. Sci., Acad. Sinica, Taipei
fDate :
5/1/2009 12:00:00 AM
Abstract :
The microbubbles destruction/replenishment technique has been previously applied to estimating blood flow in the microcirculation. The rate of increase of the time-intensity curve (TIC) due to microbubbles flowing into the region of interest (ROI), as measured from B-mode images, closely reflects the flow velocity. In previous studies, we proposed a new approach called the time-Nakagami-parameter curve (TNC) obtained from Nakagami images to monitor microbubble replenishment for quantifying the microvascular flow velocity. This study aimed to further explore some effects that may affect the TNC to estimate the microflow, including microbubble concentration, ultrasound transmitting energy, attenuation, intrinsic noise, and tissue clutter. In order to well control each effect production, we applied a typical simulation method to investigate the TIC and TNC. The rates of increase of the TIC and TNC were expressed by the rate constants betaI and betaN, respectively, of a monoexponential model. The results show that betaN quantifies the microvascular flow velocity similarly to the conventional betaI. Moreover, the measures of betaI and betaN are not influenced by microbubble concentration, transducer excitation energy, and attenuation effect. Although the effect of intrinsic signals contributed by noise and blood would influence the TNC behavior, the TNC method has a better tolerance of tissue clutter than the TIC does, allowing the presence of some clutter components in the ROI. The results suggest that the TNC method can be used as a complementary tool for the conventional TIC to reduce the wall filter requirements for blood flow measurement in the microcirculation.
Keywords :
bioacoustics; biomedical ultrasonics; blood flow measurement; blood vessels; medical image processing; ultrasonic imaging; velocity measurement; B-mode images; Nakagami images; contrast assisted ultrasound B-scan; intrinsic noise; microbubble concentration; microbubble destruction technique; microbubble replenishment technique; microvascular flow estimation; microvascular flow velocity; statistical parametric images; time-Nakagami parameter curve; time-intensity curve increase rate; tissue clutter; transducer excitation energy; ultrasound attenuation; ultrasound transmission energy; Blood flow; Nakagami parameter; contrast agent; microbubble; Algorithms; Animals; Blood Flow Velocity; Computer Simulation; Contrast Media; Eye; Image Processing, Computer-Assisted; Microbubbles; Microcirculation; Microvessels; Models, Cardiovascular; Models, Statistical; Rabbits; Signal Processing, Computer-Assisted;
Journal_Title :
Information Technology in Biomedicine, IEEE Transactions on
DOI :
10.1109/TITB.2009.2013249