Literature DB >> 9670525

Ultrasonic focusing through inhomogeneous media by application of the inverse scattering problem.

O S Haddadin1, E S Ebbini.   

Abstract

A new approach is introduced for self-focusing phased arrays through inhomogeneous media for therapeutic and imaging applications. This algorithm utilizes solutions to the inverse scattering problem to estimate the impulse response (Green's function) of the desired focal point(s) at the elements of the array. This approach is a two-stage procedure, where in the first stage the Green's functions is estimated from measurements of the scattered field taken outside the region of interest. In the second stage, these estimates are used in the pseudoinverse method to compute excitation weights satisfying predefined set of constraints on the structure of the field at the focus points. These scalar, complex valued excitation weights are used to modulate the incident field for retransmission. The pseudoinverse pattern synthesis method requires knowing the Green's function between the focus points and the array, which is difficult to attain for an unknown inhomogeneous medium. However, the solution to the inverse scattering problem, the scattering function, can be used directly to compute the required inhomogeneous Green's function. This inverse scattering based self-focusing is noninvasive and does not require a strong point scatterer at or near the desired focus point. It simply requires measurements of the scattered field outside the region of interest. It can be used for high resolution imaging and enhanced therapeutic effects through inhomogeneous media without making any assumptions on the shape, size, or location of the inhomogeneity. This technique is outlined and numerical simulations are shown which validate this technique for single and multiple focusing using a circular array.

Mesh:

Year:  1998        PMID: 9670525      PMCID: PMC2848721          DOI: 10.1121/1.423291

Source DB:  PubMed          Journal:  J Acoust Soc Am        ISSN: 0001-4966            Impact factor:   1.840


  11 in total

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5.  Time reversal of ultrasonic fields. I. Basic principles.

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6.  Reconstruction of two-dimensional permittivity distribution using the distorted Born iterative method.

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7.  Therapeutic applications of ultrasound: a review.

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Authors:  L Nock; G E Trahey; S W Smith
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9.  Design and experimental evaluation of an intracavitary ultrasound phased array system for hyperthermia.

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10.  A cylindrical-section ultrasound phased-array applicator for hyperthermia cancer therapy.

Authors:  E S Ebbini; S I Umemura; M Ibbini; C A Cain
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  1988       Impact factor: 2.725

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