IP Library Granted Patent US 12,014,491
Granted Patent B2
US 12,014,491 · App. 17/271,651 · Granted Jun 18, 2024

Correcting motion-related distortions in radiographic scans

Inventors: Ron Kimmel (Haifa, IL); Benjamin Groisser (Haifa, IL); Alon Wolf (Haifa, IL); Roger F. Widmann (New York, NY); Howard J. Hillstrom (New York, NY)
Assignees: TECHNION RESEARCH & DEVELOPMENT FOUNDATION LIMITED; NEW YORK SOCIETY FOR THE RELIEF OF THE RUPTURED AND CRIPPLED, MAINTAINING THE HOSPITAL FOR SPECIAL SURGERY
G06T7/0012A61B6/4411A61B6/527G06T7/246G06T7/38G06T11/006G06T2207/10028G06T2207/10084G06T2207/20201G06T2207/30012G06T2211/408
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Quick Facts
Patent No.
US 12,014,491
App. No.
17/271,651
Granted
Jun 18, 2024
Kind
B2
Abstract

A method comprising: receiving a radiographic image dataset representing a sequential radiographic scan of a region of a human subject; receiving three-dimensional (3D) image data representing an optical scan of a surface of said region, wherein said 3D image data is performed simultaneously with said sequential radiographic scan; estimating a time-dependent motion of said subject during said acquisition, relative to a specified position, based, at least in part, on said 3D image data; and using said estimating to determine corrections for said radiographic image dataset, based, at least in part, on a known transformation between corresponding coordinate systems of said radiographic image dataset and said 3D image data.

Claims (35)

1. A method comprising:

receiving a radiographic image dataset representing a radiographic scan of a region of a human subject;

receiving three-dimensional (3D) image data, acquired during said radiographic scan, representing an optical scan of a surface of said region, wherein said 3D image data is acquired simultaneously with said radiographic scan of said human subject;

fitting a surface model of the subject based to the 3D image data

synchronizing said optical scan with said radiographic scan in a time-dependent manner based, at least in part, on a known pixel sampling pitch of said radiographic scan;

tracking a time-dependent motion of said subject during said acquisition within a region, relative to a specified position, based, at least in part, on said 3D image data, by registering said surface model to said optical scan;

and

using said tracking to determine corrections for said radiographic image dataset, based, at least in part, on a known transformation between corresponding coordinate systems of said radiographic image dataset and said surface model.

2. The method of claim 1 , wherein said radiographic image dataset is acquired using a slot-scanning method.

3. The method of claim 2 , wherein said radiographic image dataset is acquired using a biplanar scanning method.

4. The method of claim 1 , wherein said 3D image data comprises at least one of a point cloud, triangulated meshes, and splined surfaces.

5. The method of claim 1 , wherein said motion comprises at least one of vertical motion, lateral motion, translational motion, and rotational motion.

6. A system comprising:

at least one hardware processor; and

a non-transitory computer-readable storage medium having stored thereon program code, the program code executable by the at least one hardware processor to:

receive a radiographic image dataset representing a radiographic scan of a region of a human subject,

receive three-dimensional (3D) image data, acquired during said radiographic 3D scan, representing an optical scan of a surface of said region, wherein said 3D image data is acquired simultaneously with said radiographic scan of said human subject;

fit a surface model of the subject based to the 3D image data;

synchronize said optical scan with said radiographic scan in a time-dependent manner based, at least in part, on a known pixel sampling pitch of said radiographic scan,

track a time-dependent motion of said subject during said acquisition within the region of said human subject, relative to a specified position, based, at least in part, on said 3D image data registered to said surface model of the human subject, and

use said track to determine corrections for said radiographic image dataset, based, at least in part, on a known transformation between corresponding coordinate systems of said radiographic image dataset and said 3D image data.

7. The system of claim 6 , wherein said radiographic image dataset is acquired using a slot-scanning method.

8. The system of claim 7 , wherein said radiographic image dataset is acquired using a biplanar scanning method.

9. The system of claim 6 , wherein said 3D image data comprises at least one of a point cloud, triangulated meshes, and splined surfaces.

10. The system of claim 6 , wherein said motion comprises at least one of vertical motion, lateral motion, translational motion, and rotational motion.

11. A computer program product comprising a non-transitory computer-readable storage medium having program code embodied therewith, the program code executable by at least one hardware processor to:

receive three-dimensional (3D) image data, acquired during said radiographic 3D scan, representing an optical scan of a surface of said region, wherein said 3D image data is acquired simultaneously with said radiographic scan of said human subject;

fit a surface model of the subject based to the 3D image data;

synchronize said optical scan with said radiographic scan in a time-dependent manner based, at least in part, on a known pixel sampling pitch of said radiographic scan,

track a time-dependent motion of said subject during said acquisition within the region of said human subject, relative to a specified position, based, at least in part, on said 3D image data registered to said surface model of the human subject, and

use said tracking to determine corrections for said radiographic image dataset, based, at least in part, on a known transformation between corresponding coordinate systems of said radiographic image dataset and said 3D image data.

12. The computer program product of claim 11 , wherein said radiographic image dataset is acquired using a slot-scanning method.

13. The computer program product of claim 11 , wherein said radiographic image dataset is acquired using a biplanar scanning method.

14. The computer program product of claim 11 , wherein said 3D image data comprises at least one of a point cloud, triangulated meshes, and splined surfaces.

15. The computer program product of claim 11 , wherein said motion comprises at least one of vertical motion, lateral motion, translational motion, and rotational motion.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 26, 2021
From: KIMMEL, RON; GROISSER, BENJAMIN; WOLF, ALON
To: TECHNION RESEARCH & DEVELOPMENT FOUNDATION LIMITED
Reel/Frame 055419/0418 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 26, 2021
From: WIDMANN, ROGER F.; HILLSTROM, HOWARD J.
To: NEW YORK SOCIETY FOR THE RELIEF OF THE RUPTURED AND CRIPPLED, MAINTAINING THE HOSPITAL FOR SPECIAL SURGERY
Reel/Frame 055419/0484 →
Continuity (2)
Provisional Application 62723610 · Aug 28, 2018
Related Publication 20210350532A1 · Nov 11, 2021
Cited By (1)
US 12,502,151