IP Library › Granted Patent US 12,558,014
Granted Patent B2
US 12,558,014 · App. 17/022,941 · Granted Feb 24, 2026

Systems and methods for cardiac chamber visualization

Inventors: Fady Massarwi (Baka Al Gharbiyya, IL); Assaf Cohen (Kiryat Bialik, IL)
Assignee: Biosense Webster (Israel) Ltd.
A61B5/339A61B5/0084A61B5/055A61B5/061A61B5/349G06T7/0012G06T17/20A61B5/0013A61B5/283A61B6/503A61B8/0883G06T2207/30048
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Quick Facts
Patent No.
US 12,558,014
App. No.
17/022,941
Granted
Feb 24, 2026
Kind
B2
Abstract

A system and method for visualizing a cardiac structure of interest including at least one imaging device that obtains image data of a cardiac structure of interest from within the cardiac structure, and a processor comprising a memory The processor is configured to receive and store model data of the cardiac structure of interest, determine at least one location for positioning the at least one imaging device within the cardiac structure of interest to obtain image data of the cardiac structure of interest, receive the image data from the at least one imaging device positioned at the at least one determined location within the cardiac structure of interest, and generate a 3D electrophysiological map of the cardiac structure of interest from within the electrophysiological map.

Claims (52)

1 . A system for visualizing an ablation site for a cardiac structure of interest during a cardiac ablation procedure, the system comprising:

at least one imaging device; and

a processor that is communicatively coupled to a memory and the at least one imaging device, wherein the processor is configured to:

generate an electrophysiological (EP) map based on electrical activity sensed in the cardiac structure of interest;

receive and store model data of the cardiac structure of interest;

determine, based on the model data, a plurality of locations within the EP map for positioning the at least one imaging device to image the cardiac structure of interest, wherein the plurality of the locations comprises a minimal number of locations sufficient to create a complete visualization of the ablation site in 3-dimensional (3D) space;

receive image data from the at least one imaging device positioned at each of the plurality of locations within the cardiac structure of interest during the cardiac ablation procedure;

generate a 3D view of the ablation site for the cardiac structure of interest by combining the image data and the electrical activity, the 3D view displaying electrophysiological features of the cardiac structure of interest as viewed from inside the cardiac structure of interest; and

display the 3D view of the ablation site for the cardiac structure of interest during the cardiac ablation procedure.

2 . The system of claim 1 , wherein the cardiac structure of interest is at least one of:

a cardiac chamber,

vein, or

vein bifurcation.

3 . The system of claim 1 , wherein the 3D view provides the complete visualization of the ablation site for the cardiac structure of interest in a single view.

4 . The system of claim 1 , wherein determining the plurality of locations comprises solving a three-dimensional art gallery fixed-point guard placement on a triangulated model of the cardiac structure of interest and mapping visibility subsets of the ablation site to a minimum set-cover problem.

5 . The system of claim 1 , wherein the plurality of the locations are determined based on a skeleton axis algorithm that generates a skeleton axis of the model data of the cardiac structure of interest.

6 . The system of claim 5 , wherein at least one of the plurality of locations is along a branch of the skeleton axis that intersects an ablation line of the ablation site.

7 . The system of claim 1 , wherein the at least one imaging device is an intracardiac probe.

8 . A method for visualizing an ablation site for a cardiac structure of interest during a cardiac ablation procedure, the method comprising:

generating an electrophysiological (EP) map based on electrical activity sensed in the cardiac structure of interest;

obtaining model data of the cardiac structure of interest;

determining, based on the model data, a plurality of locations within the EP map for positioning at least one imaging device to image the cardiac structure of interest, wherein the plurality of locations comprises a minimal number of locations sufficient to create a complete visualization of the ablation site in 3-dimensional (3D) space;

receiving image data from the at least one imaging device positioned at each of the plurality of locations within the cardiac structure of interest during the cardiac ablation procedure;

generating a 3D view of the ablation site for the cardiac structure of interest by combining the image data and the electrical activity, the 3D view displaying electrophysiological features of the cardiac structure of interest as viewed from inside the cardiac structure of interest; and

displaying the 3D view of the ablation site for the cardiac structure of interest during the cardiac ablation procedure.

9 . The method of claim 8 , wherein the cardiac structure of interest is at least one of:

a cardiac chamber,

vein, or

vein bifurcation.

10 . The method of claim 8 , wherein the 3D view provides the complete visualization of the ablation site for the cardiac structure of interest in a single view.

11 . The method of claim 8 , wherein determining the plurality of the locations comprises solving a three-dimensional art gallery fixed-point guard placement on a triangulated model of the cardiac structure of interest and mapping visibility subsets of the ablation site to a minimum set-cover problem.

12 . The method of claim 8 , wherein the plurality of locations are determined based on a skeleton axis algorithm that generates a skeleton axis of the model data of the cardiac structure of interest.

13 . The method of claim 12 , wherein at least one of the plurality of the locations is positioned along a branch of the skeleton axis that intersects an ablation line of the ablation site.

14 . A non-transitory computer readable recording medium storing program instructions for visualizing an ablation site for a cardiac structure of interest during a cardiac ablation procedure, the program instructions when executed by a processor, cause the processor to execute a method comprising:

generating an electrophysiological (EP) map based on electrical activity sensed in the cardiac structure of interest;

obtaining model data of the cardiac structure of interest;

determining, based on the model data, a plurality of locations within the EP map for positioning at least one imaging device to image the cardiac structure of interest, wherein the plurality of the locations comprises a minimal number of locations sufficient to create a complete visualization of the ablation site in 3-dimensional (3D) space;

receiving image data from the at least one imaging device positioned at each of the plurality of the locations within the cardiac structure of interest during the cardiac ablation procedure;

generating a 3D view of the ablation site for the cardiac structure of interest by combining the image data and the electrical activity, the 3D view displaying electrophysiological features of the cardiac structure of interest as viewed from inside the cardiac structure of interest; and

displaying the 3D view of the ablation site for the cardiac structure of interest during the cardiac ablation procedure.

15 . The method of claim 8 , further comprising:

positioning the at least one imaging device at each of the plurality of the locations within the cardiac structure of interest.

16 . The non-transitory computer readable recording medium of claim 14 , wherein the method further comprises:

positioning the at least one imaging device at each of the plurality of the locations within the cardiac structure of interest.

17 . The system of claim 1 , wherein:

the cardiac structure of interest comprises a left atrium and pulmonary veins, the ablation site comprises a circumferential lesion set around at least one pulmonary vein ostium, and

the processor is further configured to generate the 3D view such that the entire circumferential lesion set is simultaneously visible in a single view without rotating or zooming the electrophysiological map.

18 . The method of claim 8 , wherein:

the cardiac structure of interest comprises a left atrium and pulmonary veins, the ablation site comprises a circumferential lesion set around at least one pulmonary vein ostium, and

the generating the 3D view comprises generating the 3D view such that the entire circumferential lesion set is simultaneously visible in a single view without rotating or zooming the electrophysiological map.

19 . The system of claim 4 , wherein the fixed-point guard placement is constrained such that candidate guard locations are limited to points along a skeleton (medial) axis of the cardiac structure of interest computed from the model data.

20 . The method of claim 11 , wherein the fixed-point guard placement is constrained such that candidate guard locations are limited to points along a skeleton (medial) axis of the cardiac structure of interest computed from the model data.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 16, 2020
From: COHEN, ASSAF; MASSARWI, FADY
To: BIOSENSE WEBSTER (ISRAEL) LTD.
Reel/Frame 054792/0419 →
Continuity (1)
Related Publication 20220079462A1 · Mar 17, 2022
References Cited (23)
US 6556695B1 · Packer · 2003 [cited by examiner]
US 11406845B2 · Robinson · 2022 [cited by examiner]
US 20050014995A1 · Amundson · 2005 [cited by applicant]
US 20060159323A1 · Sun et al. · 2006 [cited by applicant]
US 20120039526A1 · Garaas · 2012 [cited by applicant]
US 20130079645A1 · Amirana · 2013 [cited by applicant]
US 20140343408A1 · Tolkowsky · 2014 [cited by applicant]
US 20170238807A9 · Vertikov · 2017 [cited by applicant]
US 20180256056A1 · Lu · 2018 [cited by examiner]
US 20180279954A1 · Hayam · 2018 [cited by examiner]
AU 2007237321A1 · 2008 [cited by examiner]
EP 3102141A1 · 2016 [cited by examiner]
WO 2016210437A1 · 2016 [cited by applicant]
WO WO2019055115A1 · 2019 [cited by examiner]
William R. Scott, Gerhard Roth, and Jean-François Rivest. 2003. View planning for automated three-dimensional object reconstruction and inspection. ACM Comput. Surv. 35, 1 (Mar. 2003), 64-96. https://doi.org/10.1145/641… [cited by examiner]
@inproceedings{Marzal2012TheTA, title={The three-dimensional art gallery problem and its solutions}, author={Jefri Marzal}, year={2012} (Year: 2012). [cited by examiner]
O'Rourke, Joseph, “Art Gallery Theorems And Algorithms,” New York, Oxford University Press, Inc. (1987). [cited by applicant]
Csizmadia, et al., “Note On Art Gallery Problem,” Computational Geometry, vol. 10, p. 47-55 (1998). [cited by applicant]
Marzal, Jefri, “The Three-Dimensional Art Gallery Problem And Its Solutions,” Murdoch University School of Information Technology (2012). [cited by applicant]
Tagliasacchi, et al., “Mean Curvature Skeletons,” Computer Graphics Forum (Proceedings of the Symposium on Geometry Processing), 31(5):1735-1744 (2012). [cited by applicant]
European Search Report for corresponding EPA No. 21196741.9 dated Jan. 2, 2022. [cited by applicant]
Communication pursuant to Article 94(3) EPC issued on Dec. 2, 2024 for European Patent Application No. 1 21196741.9. [cited by applicant]
Japanese Office Action dated Jul. 15, 2025 for Japanese Patent Application No. 2021-149986. [cited by applicant]