학술논문

Poisson Statistical Model of Ultrasound Super-Resolution Imaging Acquisition Time
Document Type
Periodical
Source
IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control IEEE Trans. Ultrason., Ferroelect., Freq. Contr. Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on. 66(7):1246-1254 Jul, 2019
Subject
Fields, Waves and Electromagnetics
Imaging
Signal resolution
Acoustics
Ultrasonic imaging
Spatial resolution
Blood
Biomedical imaging
microbubbles
microvasculature
Poisson statistics
resolution
ultrasonic imaging
ultrasound (US)
Language
ISSN
0885-3010
1525-8955
Abstract
A number of acoustic super-resolution techniques have recently been developed to visualize microvascular structure and flow beyond the diffraction limit. A crucial aspect of all ultrasound (US) super-resolution (SR) methods using single microbubble localization is time-efficient detection of individual bubble signals. Due to the need for bubbles to circulate through the vasculature during acquisition, slow flows associated with the microcirculation limit the minimum acquisition time needed to obtain adequate spatial information. Here, a model is developed to investigate the combined effects of imaging parameters, bubble signal density, and vascular flow on SR image acquisition time. We find that the estimated minimum time needed for SR increases for slower blood velocities and greater resolution improvement. To improve SR from a resolution of $\lambda $ /10 to $\lambda $ /20 while imaging the microvasculature structure modeled here, the estimated minimum acquisition time increases by a factor of 14. The maximum useful imaging frame rate to provide new spatial information in each image is set by the bubble velocity at low blood flows (