Title :
4-D ultrafast shear-wave imaging
Author :
Gennisson, Jean-Luc ; Provost, Jean ; Deffieux, Thomas ; Papadacci, CleÌment ; Imbault, Marion ; Pernot, Mathieu ; Tanter, Mickael
Author_Institution :
Inst. Langevin-Waves & Images, Paris Sci. et Lettre (PSL) Res. Univ., Paris, France
Abstract :
Over the last ten years, shear wave elastography (SWE) has seen considerable development and is now routinely used in clinics to provide mechanical characterization of tissues to improve diagnosis. The most advanced technique relies on the use of an ultrafast scanner to generate and image shear waves in real time in a 2-D plane at several thousands of frames per second. We have recently introduced 3-D ultrafast ultrasound imaging to acquire with matrix probes the 3-D propagation of shear waves generated by a dedicated radiation pressure transducer in a single acquisition. In this study, we demonstrate 3-D SWE based on ultrafast volumetric imaging in a clinically applicable configuration. A 32 × 32 matrix phased array driven by a customized, programmable, 1024-channel ultrasound system was designed to perform 4-D shear-wave imaging. A matrix phased array was used to generate and control in 3-D the shear waves inside the medium using the acoustic radiation force. The same matrix array was used with 3-D coherent plane wave compounding to perform high-quality ultrafast imaging of the shear wave propagation. Volumetric ultrafast acquisitions were then beamformed in 3-D using a delay-and-sum algorithm. 3-D volumetric maps of the shear modulus were reconstructed using a time-of-flight algorithm based on local multiscale cross-correlation of shear wave profiles in the three main directions using directional filters. Results are first presented in an isotropic homogeneous and elastic breast phantom. Then, a full 3-D stiffness reconstruction of the breast was performed in vivo on healthy volunteers. This new full 3-D ultrafast ultrasound system paves the way toward real-time 3-D SWE.
Keywords :
biological tissues; biomechanics; biomedical ultrasonics; elasticity; phantoms; shear modulus; ultrasonic arrays; ultrasonic propagation; 3D coherent plane wave compounding; 3D shear wave elastography; 3D stiffness reconstruction; 3D ultrafast ultrasound system; 3D volumetric maps; 4D ultrafast shear-wave imaging; acoustic radiation force; beamforming; biological tissues; delay-and-sum algorithm; directional filters; elastic breast phantom; isotropic homogeneous phantom; local multiscale cross-correlation; matrix phased array; programmable 1024-channel ultrasound system; shear modulus; shear wave elastography; shear wave profiles; shear wave propagation; time-of-flight algorithm; ultrafast volumetric imaging; volumetric ultrafast acquisitions; Acoustics; Arrays; Breast; Imaging; Probes; Propagation; Ultrasonic imaging;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2014.006936