Quantifying the Impact of Imaging Through Body Walls on Shear Wave Elasticity Measurements.

Ultrasound Med Biol

Department of Biomedical Engineering, Duke University, Durham, North Carolina, USA.

Published: March 2023

AI Article Synopsis

  • Ultrasonic hepatic shear wave elasticity imaging (SWEI) success improves with higher acoustic output pressures due to better shear wave amplitude and tracking.
  • The study utilized an experimental setup to evaluate how body wall effects influence the SWEI operations (pushing and tracking) independently, using porcine body walls.
  • Results showed shear wave speed increased with higher mechanical indexes (MI) for both pushing and tracking, with some body wall samples experiencing signal limitations that could be alleviated by boosting the electronic signal-to-noise ratio.

Article Abstract

In the context of ultrasonic hepatic shear wave elasticity imaging (SWEI), measurement success has been determined to increase when using elevated acoustic output pressures. As SWEI sequences consist of two distinct operations (pushing and tracking), acquisition failures could be attributed to (i) insufficient acoustic radiation force generation resulting in inadequate shear wave amplitude and/or (ii) distorted ultrasonic tissue motion tracking. In the study described here, an opposing window experimental setup that isolated body wall effects separately between the push and track SWEI operations was implemented. A commonly employed commercial track configuration was used, harmonic multiple-track-location SWEI. The effects of imaging through body walls on the pushing and tracking operations of SWEI as a function of mechanical index (MI), spanning 5 different push beam MIs and 10 track beam MIs, were independently assessed using porcine body walls. Shear wave speed yield was found to increase with both increasing push and track MI. Although not consistent across all samples, measurements in a subset of body walls were found to be signal limited during tracking and to increase yield by up to 35% when increasing electronic signal-to-noise ratio by increasing harmonic track transmit pressure.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9908830PMC
http://dx.doi.org/10.1016/j.ultrasmedbio.2022.10.005DOI Listing

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