VISUALIZATION OF EPICARDIAL AND ENDOCARDIAL ELECTROANATOMICAL MAPS
20230172516 · 2023-06-08
Inventors
Cpc classification
A61B5/367
HUMAN NECESSITIES
A61B5/287
HUMAN NECESSITIES
G06T7/30
PHYSICS
G06T19/00
PHYSICS
A61B5/7425
HUMAN NECESSITIES
International classification
A61B5/367
HUMAN NECESSITIES
Abstract
A method includes receiving a first representation of an internal surface of at least a portion of a wall of an organ of a patient, and a second representation of an external surface of at least the portion of the wall of the organ. The first and second representations are registered with one another. An exploded representation is generated from the first and second representations, that shows both the internal surface and the external surface. The exploded representation is presented to a user.
Claims
1. A method, comprising: receiving a first representation of an internal surface of at least a portion of a wall of an organ of a patient, and a second representation of an external surface of at least the portion of the wall of the organ; registering the first and second representations with one another; generating from the first and second representations an exploded representation that shows both the internal surface and the external surface; and presenting the exploded representation to a user.
2. The method according to claim 1, wherein generating the exploded representation comprises generating first and second clipped views of the respective first and second representations, and displacing the first and second clipped views from one another along a predefined direction.
3. The method according to claim 2, wherein displacing the first and second clipped views from one another comprises causing the first and second clipped views to not overlap one another.
4. The method according to claim 1, wherein the internal surface is an endocardium and the external surface is an epicardium.
5. The method according to claim 4, wherein the first and second representations are electroanatomical (EA) maps.
6. The method according to claim 5, wherein the EA maps comprise color coded EA maps.
7. The method according to claim 5, wherein the EA maps are local activation time (LAT) maps.
8. The method according to claim 1, wherein presenting the exploded representation comprises generating a draggable overlay, and using the draggable overlay to display a side-by-side view of a corresponding region of the internal surface and the external surface.
9. The method according to claim 1, wherein the overlay has a circular shape.
10. The method according to claim 1, and comprising selecting the region in response to positioning of the draggable overlay by a user.
11. A system, comprising: a memory configured to store representations of surfaces of a wall of an organ of a patient; and a processor, which is configured to: receive a first representation of an internal surface of at least a portion of the wall of the organ of the patient, and a second representation of an external surface of at least the portion of the wall of the organ; register the first and second representations with one another; generate from the first and second representations an exploded representation that shows both the internal surface and the external surface; and present the exploded representation to a user.
12. The system according to claim 11, wherein the processor is configured to generate the exploded representation by generating first and second clipped views of the respective first and second representations, and displacing the first and second clipped views from one another along a predefined direction.
13. The system according to claim 12, wherein the processor is configured to displace the first and second clipped views from one another by causing the first and second clipped views to not overlap one another.
14. The system according to claim 11, wherein the internal surface is an endocardium and the external surface is an epicardium.
15. The system according to claim 14, wherein the first and second representations are electroanatomical (EA) maps.
16. The system according to claim 15, wherein the EA maps comprise color coded EA maps.
17. The system according to claim 15, wherein the EA maps are local activation time (LAT) maps.
18. The system according to claim 11, wherein the processor is configured to present the exploded representation by generating a draggable overlay, and using the draggable overlay to display a side-by-side view of a corresponding region of the internal surface and the external surface.
19. The system according to claim 11, wherein the overlay has a circular shape.
20. The system according to claim 11, wherein the processor is further configured to selecting the region in response to positioning of the draggable overlay by a user.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0004] The present disclosure will be more fully understood from the following detailed description of the examples thereof, taken together with the drawings in which:
[0005]
[0006]
[0007]
DETAILED DESCRIPTION OF EXAMPLES
Overview
[0008] Catheter-based electroanatomical (EA) mapping techniques may produce various EA maps of an organ, such as a left atrium of a heart. In some cases, to interpret the EA maps, a physician needs to compare two different EA maps. For example, during or after a cardiac EA mapping of a cardiac chamber, a physician may want to view EA maps of both the epicardial and endocardial surfaces of the cardiac chamber. However, the analysis task is difficult because, when both EA maps are presented to the physician overlaid on one another, one map obscures the other.
[0009] Some examples of the present disclosure that are described hereinafter provide a processor that receives a first representation of an internal surface of at least a portion of a wall of an organ of a patient, and a second representation of an external surface of at least the portion of the wall of the organ. The processor registers each representation with the other and generates an exploded representation to show both surfaces.
[0010] To this end, the processor generates first and second clipped views of the first and second representations, respectively, and displaces the clipped views along a predefined direction. The displacement causes the first and second clipped views to not overlap one another.
[0011] In some examples, the received first and second representations are EA maps of epicardial and endocardial surfaces, respectively, of a same portion of a cardiac chamber. In an example, a processor generates one surface 3D reconstruction (usually representing the endocardial anatomy). The epicardial surface is colored according to the epicardial electrical information projected from the mapping catheter position at the endocardial surface. The internal side of the map is colored according to the endocardial electrical signals. The displaced clipping views for visualization prevents either EA map being obscured at a selected portion.
[0012] In another example, the processor uses a colored scale, with a draggable threshold value, to differentiate between endocardial and epicardial electrical properties in a same region.
[0013] In another example, the processor visualizes the endocardial and the respective epicardial surfaces by placing a virtual camera internally to the map to display the endocardial information.
[0014] In an implementation, the processor uses only the outer surface and displays epicardial information in one texture and the endocardial in another texture. In this way, the correlated activation and the non-correlated activation is immediately visualized.
[0015] Typically, the processor is programmed in software containing a particular algorithm that enables the processor to conduct each of the processor-related steps and functions outlined above.
[0016] The disclosed techniques may assist the physician in the interpretation of epicardial and endocardial EA maps. The disclosed technique may thus expedite and improve the quality of complicated diagnostic tasks, such as those required in diagnostic catheterizations.
System Description
[0017]
[0018] In some examples, exploded EA map 31 comprises a draggable circular overlay region, in order to display a side-by-side view of endocardium and epicardium surfaces of a same region of exploded EA map 31, as shown in
[0019] During the procedure, a tracking system is used to track the respective locations of sensing-electrodes 22, such that each of the signals may be associated with the location at which the signal was acquired. For example, the Active Current Location (ACL) system, made by Biosense-Webster (Irvine Calif.), which is described in U.S. Pat. No. 8,456,182, whose disclosure is incorporated herein by reference, may be used. In the ACL system, a processor estimates the respective locations of the electrodes based on impedances measured between each of the sensing-electrodes 22, and a plurality of surface-electrodes 24, that are coupled to the skin of patient 25. For example, three surface-electrodes 24 may be coupled to the patient's chest, and another three surface electrodes may be coupled to the patient's back. For ease of illustration, only one surface-electrode is shown in
[0020] The example illustration shown in
[0021] Processor 28 typically comprises a general-purpose computer with software programmed to carry out the functions described herein. In particular, processor 28 runs a dedicated algorithm as disclosed herein, including in
Epicardial and Endocardial View on One 3D Electroanatomical Map
[0022]
[0023] As seen, the processor has generated rendered clipped views of the endocardial and epicardial surfaces 216 and 218. Furthermore, the processor having displaced each of the clipped views along one predefined direction 215, and along a second predefined direction 217. Direction 215 is named in
[0024] In another example, the processor receives first and second representations 216 and 218, in the form of the endocardial and epicardial surfaces 216 and 218, respectively.
[0025] As further seen,
[0026] While
[0027]
[0028] The algorithm, according to the presented example, carries out a process that begins with processor 28 receiving EA data of endocardium and epicardium surfaces of a same region of a cardiac chamber, such as of left atrium 40, at EA data receiving step 70. In an example, the processor receives via interface circuits 35 EA mapping data acquired by catheter 29, as shown in
[0029] Next, at EA maps generation step 72, processor 28 generates separate endocardium and epicardium EA maps from the EA data. In alternative embodiment, the processor receives first and second surfaces that are, respectively, separate endocardium and epicardium EA maps.
[0030] Next, processor 28 derives an exploded EA map that shows both endocardium and epicardium EA map portions, at an exploded EA map derivation step 74. The processor may generate the exploded map by the method described in
[0031] At a map presentation step 76, processor 28 presents the exploded map on a display to a user, such as in views 202.
[0032] In an overlay generation step 78, processor 28 puts a draggable overlay 210 on the exploded EA map, to display on a window 204 side-by-side view of clipped views (216, 218) of a same region of the endocardium and epicardium EA maps.
[0033] Finally, at step 80, in response to a user moving marker 225, processor 28 drags side-by-side window 204 on view 202 to allow the user to zoom in on different regions of view 202, as shown in window 204.
[0034] The example flow chart shown in
EXAMPLE 1
[0035] A method includes receiving a first representation of an internal surface of at least a portion of a wall of an organ of a patient, and a second representation of an external surface of at least the portion of the wall of the organ. The first and second representations are registered with one another. An exploded representation (202) is generated from the first and second representations, that shows both the internal surface and the external surface. The exploded representation is presented to a user.
EXAMPLE 2
[0036] The method according to example 1, wherein generating the exploded representation (202) comprises generating first and second clipped views (216, 218) of the respective first and second representations, and displacing the first and second clipped views from one another along a predefined direction.
EXAMPLE 3
[0037] The method according to example 1 or example 2, wherein displacing the first and second clipped views (216, 218) from one another comprises causing the first and second clipped views to not overlap one another.
EXAMPLE 4
[0038] The method according to any one of examples 1 through 3, wherein the internal surface is an endocardium and the external surface is an epicardium.
EXAMPLE 5
[0039] The method according to any one of examples 1 through 4, wherein the first and second representations are electroanatomical (EA) maps.
EXAMPLE 6
[0040] The method according to any one of examples 1 through 5, wherein the EA maps comprise color coded EA maps.
EXAMPLE 7
[0041] The method according to any one of examples 1 through 5, wherein the EA maps are local activation time (LAT) maps.
EXAMPLE 8
[0042] The method according to example 1, wherein presenting the exploded representation (202) comprises generating a draggable overlay (210), and using the draggable overlay to display a side-by-side view of a corresponding region of the internal surface and the external surface.
EXAMPLE 9
[0043] The method according to example 1, wherein the overlay (210) has a circular shape.
EXAMPLE 10
[0044] The method according to example 1, and comprising selecting the region in response to positioning of the draggable overlay (210) by a user.
EXAMPLE 11
[0045] A system (21) including a memory (33) and a processor (28). The memory is configured to store representations of surfaces of a wall of an organ of a patient. The processor is configured to (i) receive a first representation of an internal surface of at least a portion of the wall of the organ of the patient, and a second representation of an external surface of at least the portion of the wall of the organ, (ii) register the first and second representations with one another, (iii) generate from the first and second representations an exploded representation (202) that shows both the internal surface and the external surface, and (iv) present the exploded representation to a user.
EXAMPLE 12
[0046] The system (21) according to example 11, wherein the processor is configured to generate the exploded representation (202) by generating first and second clipped views (216, 218) of the respective first and second representations, and displacing the first and second clipped views (216, 218) from one another along a predefined direction.
EXAMPLE 13
[0047] The system (21) according to example 11 or example 12, wherein the processor (28) is configured to displace the first and second clipped views (216, 218) from one another by causing the first and second clipped views to not overlap one another.
EXAMPLE 14
[0048] The system (21) according to any one of examples 1 through 13, wherein the internal surface is an endocardium and the external surface is an epicardium.
EXAMPLE 15
[0049] The system (21) according to any one of examples 1 through 14, wherein the first and second representations are electroanatomical (EA) maps.
EXAMPLE 16
[0050] The system (21) according to any one of examples 1 through 15, wherein the EA maps comprise color coded EA maps.
EXAMPLE 17
[0051] The system (21) according to any one of examples 1 through 15, wherein the EA maps are local activation time (LAT) maps.
EXAMPLE 18
[0052] The system (21) according to example 11, wherein the processor (28) is configured to present the exploded representation (202) by generating a draggable overlay (210), and using the draggable overlay to display a side-by-side view of a corresponding region of the internal surface and the external surface.
EXAMPLE 19
[0053] The system (21) according to example 11, wherein the overlay (210) has a circular shape.
EXAMPLE 20
[0054] The system (21) according to claim 11, wherein the processor (28) is further configured to selecting the region in response to positioning of the draggable overlay (210) by a user.
[0055] Although the examples described herein mainly address cardiac applications, the methods and systems described herein can also be used in other applications, such as in electroanatomical mapping of a brain.
[0056] It will thus be appreciated that the examples described above are cited by way of example, and that the present disclosure is not limited to what has been particularly shown and described hereinabove. Rather, the scope of the present disclosure includes both combinations and sub-combinations of the various features described hereinabove, as well as variations and modifications thereof which would occur to persons skilled in the art upon reading the foregoing description and which are not disclosed in the prior art. Documents incorporated by reference in the present patent application are to be considered an integral part of the application except that to the extent any terms are defined in these incorporated documents in a manner that conflicts with the definitions made explicitly or implicitly in the present specification, only the definitions in the present specification should be considered.