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Comb-push ultrasound shear elastography (CUSE): a novel method for two-dimensional shear elasticity imaging of soft tissues.

Publication ,  Journal Article
Song, P; Zhao, H; Manduca, A; Urban, MW; Greenleaf, JF; Chen, S
Published in: IEEE transactions on medical imaging
September 2012

Fast and accurate tissue elasticity imaging is essential in studying dynamic tissue mechanical properties. Various ultrasound shear elasticity imaging techniques have been developed in the last two decades. However, to reconstruct a full field-of-view 2-D shear elasticity map, multiple data acquisitions are typically required. In this paper, a novel shear elasticity imaging technique, comb-push ultrasound shear elastography (CUSE), is introduced in which only one rapid data acquisition (less than 35 ms) is needed to reconstruct a full field-of-view 2-D shear wave speed map (40 × 38 mm). Multiple unfocused ultrasound beams arranged in a comb pattern (comb-push) are used to generate shear waves. A directional filter is then applied upon the shear wave field to extract the left-to-right (LR) and right-to-left (RL) propagating shear waves. Local shear wave speed is recovered using a time-of-flight method based on both LR and RL waves. Finally, a 2-D shear wave speed map is reconstructed by combining the LR and RL speed maps. Smooth and accurate shear wave speed maps are reconstructed using the proposed CUSE method in two calibrated homogeneous phantoms with different moduli. Inclusion phantom experiments demonstrate that CUSE is capable of providing good contrast (contrast-to-noise ratio ≥ 25 dB) between the inclusion and background without artifacts and is insensitive to inclusion positions. Safety measurements demonstrate that all regulated parameters of the ultrasound output level used in CUSE sequence are well below the FDA limits for diagnostic ultrasound.

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Published In

IEEE transactions on medical imaging

DOI

EISSN

1558-254X

ISSN

0278-0062

Publication Date

September 2012

Volume

31

Issue

9

Start / End Page

1821 / 1832

Related Subject Headings

  • Ultrasonography, Mammary
  • Sound
  • Phantoms, Imaging
  • Nuclear Medicine & Medical Imaging
  • Models, Biological
  • Image Processing, Computer-Assisted
  • Humans
  • Female
  • Elasticity Imaging Techniques
  • Elastic Modulus
 

Citation

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Song, P., Zhao, H., Manduca, A., Urban, M. W., Greenleaf, J. F., & Chen, S. (2012). Comb-push ultrasound shear elastography (CUSE): a novel method for two-dimensional shear elasticity imaging of soft tissues. IEEE Transactions on Medical Imaging, 31(9), 1821–1832. https://doi.org/10.1109/tmi.2012.2205586
Song, Pengfei, Heng Zhao, Armando Manduca, Matthew W. Urban, James F. Greenleaf, and Shigao Chen. “Comb-push ultrasound shear elastography (CUSE): a novel method for two-dimensional shear elasticity imaging of soft tissues.IEEE Transactions on Medical Imaging 31, no. 9 (September 2012): 1821–32. https://doi.org/10.1109/tmi.2012.2205586.
Song P, Zhao H, Manduca A, Urban MW, Greenleaf JF, Chen S. Comb-push ultrasound shear elastography (CUSE): a novel method for two-dimensional shear elasticity imaging of soft tissues. IEEE transactions on medical imaging. 2012 Sep;31(9):1821–32.
Song, Pengfei, et al. “Comb-push ultrasound shear elastography (CUSE): a novel method for two-dimensional shear elasticity imaging of soft tissues.IEEE Transactions on Medical Imaging, vol. 31, no. 9, Sept. 2012, pp. 1821–32. Epmc, doi:10.1109/tmi.2012.2205586.
Song P, Zhao H, Manduca A, Urban MW, Greenleaf JF, Chen S. Comb-push ultrasound shear elastography (CUSE): a novel method for two-dimensional shear elasticity imaging of soft tissues. IEEE transactions on medical imaging. 2012 Sep;31(9):1821–1832.

Published In

IEEE transactions on medical imaging

DOI

EISSN

1558-254X

ISSN

0278-0062

Publication Date

September 2012

Volume

31

Issue

9

Start / End Page

1821 / 1832

Related Subject Headings

  • Ultrasonography, Mammary
  • Sound
  • Phantoms, Imaging
  • Nuclear Medicine & Medical Imaging
  • Models, Biological
  • Image Processing, Computer-Assisted
  • Humans
  • Female
  • Elasticity Imaging Techniques
  • Elastic Modulus