IP Library Granted Patent US 11,696,732
Granted Patent B2
US 11,696,732 · App. 16/222,419 · Granted Jul 11, 2023

System and method for subject shape estimation

Inventors: Ilan Levin (Alone Abba, IL); Yaron Hefetz (Kibbutz Alonim, IL); Avi Bar-Shalev (Haifa, IL); Avishai Ofan (Rehovot, IL)
Assignee: GENERAL ELECTRIC COMPANY
A61B6/04A61B5/0037A61B5/0077A61B5/1079A61B6/037A61B6/0407A61B6/4258A61B6/4417A61B6/461A61B6/488A61B6/544A61B6/58G01T1/1644A61B6/0487A61B6/4266A61B6/503A61B6/5205A61B6/545A61B6/547A61B6/588A61B8/08G06T11/005
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Quick Facts
Patent No.
US 11,696,732
App. No.
16/222,419
Granted
Jul 11, 2023
Kind
B2
Abstract

A medical imaging system is provided. Imaging detector columns are installed in a gantry to receive imaging information about a subject. Imaging detector columns can extend and retract radially as well as be rotated orbitally around the gantry. The system can automatically adjust setup configuration and an imaging operation based on subject shape estimation information.

Claims (33)

1. A detector system comprising:

a nuclear medicine imaging detector; and

at least one processor operably coupled to the nuclear medicine imaging detector, the at least one processor configured to:

operate the nuclear medicine imaging detector to perform a preliminary imaging with the nuclear medicine imaging detector at least partially retracted,

identify direct radiation acquired with the nuclear medicine imaging detector using a first energy window for the preliminary imaging,

identify scattered radiation acquired with the nuclear medicine imaging detector using a second energy window for the preliminary imaging,

determine a patient border using at least the scattered radiation for the preliminary imaging; and

operate the nuclear medicine imaging detector to perform a subsequent imaging with the nuclear medicine imaging detector extended more closely to the patient than during the preliminary imaging, wherein the nuclear medicine imaging detector is positioned to perform the subsequent imaging based on the determined patient border.

2. The detector system of claim 1 , wherein the patient border is determined based on a detection footprint defined by identified scattered radiation.

3. The detector system of claim 1 , wherein the second energy window includes lower energies than the first energy window.

4. The detector system of claim 1 , wherein the at least one processor is configured to concurrently acquire the direct radiation and scattered radiation, and store the direct radiation and scattered radiation in different datasets.

5. The detector system of claim 1 , wherein the at least one processor is configured to determine the patient border using the scattered radiation and the direct radiation.

6. The detector system of claim 1 , wherein the nuclear medicine imaging detector is mounted to a gantry and movable relative to the gantry to position the imaging detector with respect to a subject.

7. A method comprising:

performing a preliminary imaging with a nuclear medicine imaging detector with the nuclear medicine imaging detector at least partially retracted;

acquiring radiation including both direct radiation and scattered radiation from an object with the nuclear medicine imaging detector for the preliminary imaging;

identifying the direct radiation acquired with the nuclear medicine imaging detector using a first energy window for the preliminary imaging,

identifying the scattered radiation acquired with the nuclear medicine imaging detector using a second energy window for the preliminary imaging,

determining a patient border using at least the scattered radiation for the preliminary imaging; and

operating the nuclear medicine imaging detector to perform a subsequent imaging with the nuclear medicine imaging detector extended more closely to the patient than during the preliminary imaging, wherein the nuclear medicine imaging detector is positioned to perform the subsequent imaging based on the determined patient border.

8. The method of claim 7 , wherein the second energy window includes lower energies than the first energy window.

9. The method of claim 7 , wherein the direct radiation and scattered radiation are concurrently acquired, the method further comprising storing the direct radiation and scattered radiation in different datasets.

10. The method of claim 7 , wherein the patient border is determined using the scattered radiation and the direct radiation.

11. A non-transitory computer readable storage medium having stored thereon a computer program comprising instructions, which, when executed by a computer, cause the computer to:

perform a preliminary imaging with a nuclear medicine imaging detector with the nuclear medicine imaging detector at least partially retracted,

acquire radiation including both direct radiation and scattered radiation from an object with the nuclear medicine imaging detector for the preliminary imaging,

identify the direct radiation acquired with the nuclear medicine imaging detector using a first energy window for the preliminary imaging,

identify the scattered radiation acquired with the nuclear medicine imaging detector using a second energy window for the preliminary imaging,

determine a patient border using at least the scattered radiation for the preliminary imaging; and

operate the nuclear medicine imaging detector to perform a subsequent imaging with the nuclear medicine imaging detector extended more closely to the patient than during the preliminary imaging, wherein the nuclear medicine imaging detector is positioned to perform the subsequent imaging based on the determined patient border.

12. The computer readable storage medium of claim 11 , wherein the second energy window includes lower energies than the first energy window.

13. The computer readable storage medium of claim 11 , wherein the direct radiation and scattered radiation are concurrently acquired, wherein the instructions cause the computer to store the direct radiation and scattered radiation in different datasets.

14. The computer readable storage medium of claim 11 , wherein the patient border is determined using the scattered radiation and the direct radiation.

Assignments (2)
NUNC PRO TUNC ASSIGNMENT Recorded May 8, 2025
From: GENERAL ELECTRIC COMPANY
To: GE PRECISION HEALTHCARE LLC
Reel/Frame 071225/0218 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 17, 2018
From: LEVIN, ILAN; HEFETZ, YARON; BAR-SHALEV, AVI; OFAN, AVISHAI
To: GENERAL ELECTRIC COMPANY
Reel/Frame 047797/0757 →
Continuity (2)
Continuation 14278091 · May 15, 2014
Related Publication 20190117173A1 · Apr 25, 2019