Search PubMedSearch

PubMed · 9123673

Performance optimization in elastography: multicompression with temporal stretching.

Abstract

A general theoretical framework known as the strain filter has been previously used to evaluate the performance in elastography. The strain filter describes the relationship among the resolution, dynamic range, sensitivity and elastographic SNR (SNRe), and may be plotted as a graph of the upper bound of the SNRe vs. the strain experienced by the tissue, for a desired elastographic axial resolution as determined by the data window length. The ideal strain filter has an infinitely high, flat all-pass characteristic shape in the strain domain, which means that all local tissue strains are displayed in the elastogram with infinite SNRe; it also means that the strain dynamic range in the elastogram is infinite as well. Practical strain filters obtained using a single tissue compression have a bandpass characteristic shape in the strain domain, where the -3 dB width of this bandpass characteristic may be defined as the elastographic dynamic range. In this paper, we present an optimal technique for stretching multicompression elastography, practiced by selecting the optimum incremental applied strain using the strain filter. Two techniques, temporal stretching and multicompression elastography, are combined in this paper to improve elastogram quality. Stretching multicompression elastography using the optimal applied strain increment alters the shape of the strain filter from its bandpass characteristic to a more desirable high-emphasis filter. The dynamic range of optimal stretching multicompress on elastography is limited only by tissue nonlinearities. This optimal applied strain increment minimizes signal decorrelation and achieves the maximum achievable elastographic SNRe.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

T Varghese, J Ophir. 1996. Performance optimization in elastography: multicompression with temporal stretching.. https://doi.org/10.1177/016173469601800303

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Internal deformation of a uniform elastic solid by acoustic radiation force.

Tissue elasticity estimation is a growing area of ultrasound research. One proposed approach would apply acoustic radiation force to displace tissue and use ultrasonic motion tracking techniques to measure the resultant displacement. Such a technique might allow noninvasive imaging of tissue elastic properties. The potential of this method will be limited by the magnitude of displacements which can be generated at reasonable acoustic intensity levels. This paper presents methods for estimating the internal displacements induced in an elastic solid by acoustic radiation force. These methods predict displacements on the order of 400 microns in the human vitreous body, 0.008 micron in human breast, and 0.020 micron in human liver at an acoustic intensity of 1.0 W/cm2 (in water) and an operating frequency of 10 MHz. While the displacement generated in the vitreous should be readily detectable using ultrasonic methods, the displacements generated in the breast and liver will be much more difficult to detect. Methods are also developed for predicting the time dependent temperature increases associated with attenuated acoustic fields in the absence of perfusion. These results indicate promise for radiation force imaging in the vitreous, but potential difficulties in applying these techniques in other parts of the body.

Elastic Tissue

Which type of diffuse emphysema is adequately contracted by the Nd:YAG laser. An ex-vivo experiment.

Diffusely emphysematous lungs are not always effectively contracted by laser therapy; however, which type of diffuse emphysema that responds to laser therapy remains unclear. We macroscopically and histopathologically examined human lung tissue, which was resected from patients with carcinoma, after irradiation with an Nd:YAG laser. Forty-six lung lobes were irradiated with a non-contact mode Nd:YAG laser at a power setting 15 watts. Macroscopically, twenty samples of normal lungs revealed moderate contraction, fourteen samples of predominantly centrilobular diffuse emphysema showed significant contraction, and eight samples of predominantly panlobular diffuse emphysema with a slight elastic network showed slight contraction. Histopathologically, the normal lungs showed amorphous change of the collagen and severely contracted elastic fibers (amorphous degeneration) at the pleura and some parenchymal coagulation; the predominantly centrilobular diffuse emphysema showed contraction of elastic fibers and collagen (coagulative degeneration) in the pleura and adequate contraction of the elastic fibers in the parenchyma and the predominantly panlobular diffuse emphysema showed only slight coagulation of the visceral pleura and very little coagulation of the parenchyma. On ex-vivo lung, panlobular emphysema was inadequately contracted by laser therapy, due to elastic recoil. Centrilobular emphysema responded to laser treatment, due to the severe contraction of the elastic fibers.

Elastic Tissue