IP Library Granted Patent US 7,409,033
Granted Patent B2
US 7,409,033 · App. 11/557,441 · Granted Aug 5, 2008

Tomographic reconstruction for x-ray cone-beam scan data

Assignee: The Board of Trustees of the Leland Stanford Junior University
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Quick Facts
Patent No.
US 7,409,033
App. No.
11/557,441
Granted
Aug 5, 2008
Kind
B2
Abstract

Disclosed is x-ray cone beam scan data reconstruction of an imaged object with a reconstruction algorithm using shift invariant filtering and backprojection with the maximum tomographic capability of a circular scan larger than p plus cone angle, when CB data is not truncated and data extrapolation is not allowed. The reconstruction scheme includes a conventional FDK reconstruction and a parallel reconstruction using differential back projection and 1D Hilbert transform to suppress the CB artifacts.

Claims (30)

1. A method of reconstructing an image from detected data using an x-ray cone beam through a real object to be imaged to a real planar detector, the x-ray cone beam emanating from a source rotated less than a circle around the object, comprising the steps of:

a) detecting x-ray data at a plurality of positions of the source in a path of rotation around the object,

b) weighting the detected x-ray data according to position in the detector,

c) convolving the weighted x-ray data with a ramp filter kernal and backprojecting the convolved weighted data to form a first reconstructed three dimensional image,

d) convolving the weighted x-ray data with a ramp filter kernal and a Hilbert kernal and backprojecting the convolved weighted data to form a second reconstructed three dimensional image,

e) taking a 1D Hilbert transform of the second three dimensional image, and

f) combining the first reconstructed image and the Hilbert transformed second three dimensional image to form the reconstructed image.

2. The method of claim 1 wherein step c) is a Feldkamp reconstruction of the detected data.

3. The method of claim 1 wherein in steps d) a one dimensional Hilbert transform is employed in the reconstruction algorithm.

4. The method of claim 1 wherein the source is rotated at least 180 degrees plus beam angle.

5. The method of claim 1 wherein detected projection data is not truncated and with no extrapolated data.

6. A method of reconstructing an image from detected data using an x-ray cone beam through a real object to be imaged to a real planar detector, the x-ray cone beam emanating from a source rotated less than a circle around the object, comprising the steps of:

a) detecting x-ray data at a plurality of positions of the source in a path of rotation around the object,

b) weighting the detected x-ray data according to position in the detector,

c) convolving the weighted x-ray data with a ramp filter kernal and backprojecting the convolved weighted data to form a first reconstructed three dimensional image,

d) taking the first derivative of the weighted x-ray data and backprojecting the first derivative weighted x-ray data to form a second reconstructed three dimensional image,

e) taking a 1D Hubert transform of the second three dimensional image, and

f) combining the first reconstructed image and the Hubert transformed second three dimensional image to form the reconstructed image.

7. A method of reconstructing an image from detected data using an x-ray cone beam through a real object to be imaged to a real planar detector, the x-ray cone beam emanating from a source rotated less than a circle around the object, using a reconstruction algorithm based on the steps of:

a) detecting projection x-ray data at a plurality of positions of the source in the path of rotation around the object,

b) from detected projection data at each position, finding equivalent cone beam projection image data from a lower half of the real object on a hypothetical detector below and parallel to a mid-plane through the planar detector,

c) converting the equivalent cone beam projection image data for each position into a tilted parallel projection for each position,

d) reconstructing a hypothetical object by backprojecting the tilted parallel projections,

e) converting the reconstructed hypothetical object back to the real object,

f) repeating steps b) through e) for an upper half of the real object, and

g) combining the converted real object from steps e) in reconstructing an image of the real object.

8. The method of claim 7 wherein step g) includes combining a reconstruction of a mid-plane from the source through the real object.

9. The method of claim 8 wherein in steps d) a one dimensional Hilbert transform is employed in the reconstruction algorithm.

10. The method of claim 9 wherein the source is rotated at least 180 degrees plus beam angle.

11. The method of claim 10 wherein detected projection data is not truncated and with no extrapolated data.

Assignments (2)
CONFIRMATORY LICENSE Recorded May 4, 2011
From: THE BOARD OF TRUSTEES OF THE LELAND STANFORD JUNIOR UNIVERSITY
To: NATIONAL INSTITUTES OF HEALTH (NIH), U.S. DEPT. OF HEALTH AND HUMAN SERVICES (DHHS), U.S. GOVERNMENT
Reel/Frame 026216/0629 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 11, 2006
From: ZHU, LEI; FAHRIG, REBECCA
To: THE BOARD OF TRUSTEES OF THE LELAND STANFORD JUNIOR UNIVERSITY
Reel/Frame 018508/0680 →
Continuity (2)
Provisional Application 6081008700 · May 31, 2006
Related Publication 20070297661A1 · Dec 27, 2007