Claims
- 1. A method for determining by tomography the location and value of a discontinuity between a first internal density of an object and a second density of a region within said object, comprising the steps of:
- directing a beam of radiation in a predetermined pattern through said region of said object containing said discontinuity;
- determining relative attenuation data of said beam within said predetermined pattern having a first data component that includes attenuation data through said region;
- inputting said relative attenuation data to a pseudo-local tomography function, where the difference between said first internal density and said pseudo-local tomography function is continuous everywhere and said pseudo-local tomography function is computed across said discontinuity; and
- outputting from said pseudo-local tomography function the location of said discontinuity and the difference in density between said first density and said second density.
- 2. A method according to claim 1, wherein said pseudo-local tomography function is ##EQU17## so that the function .function..sub..sigma.d (x) is computed at a point x using .function.(.theta.,p) for (.theta.,p) satisfying .vertline..THETA..multidot.x-p.vertline..ltoreq.d, wherein integrals of f are taken along only lines passing at a distance not exceeding d from the point x.
- 3. A method according to claim 2, wherein .sigma..sub.d =1 and ##EQU18##
- 4. A method according to claim 3, wherein the step of outputting the location of said discontinuity and the difference in density includes the steps of:
- computing at nodes of a grid (x.sub.ij)=(ih,jh) around the function ##EQU19## arrange the values of f.sub.d.epsilon. is ascending order to define a sequence of values;
- compute .PHI.(x.sub.i.sbsb.0.sub.j.sbsb.0) as the difference between values of local maximum and local minimum of .function..sub.d.epsilon. ; occurring in the neighborhood of x.sub.i.sbsb.0.sub.j.sbsb.0 :
- normalize .PHI.(x.sub.0); and
- locate maxima of .PHI.(x.sub.0) to output the location and value of said discontinuity between said first internal density of said object and said second density of said region within said object.
- 5. A method according to claim 2, further including the steps of determining the constant ##EQU20## determining a gradient .gradient..function..sub..sigma.d,.epsilon. (x) related to the attenuation coefficient f at grid points located on opposite sides of said location of said density discontinuity;
- determining said value of said density discontinuity from said gradient.
BACKGROUND OF THE INVENTION
This invention relates to image reconstruction from tomographic data, and, more particularly, to the definition of discontinuity location and size using limited tomographic data. This invention was made with government support under Contract No. W-7405-ENG-36 awarded by the U.S. Department of Energy. The government has certain rights in the invention.
US Referenced Citations (6)
Non-Patent Literature Citations (3)
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