AUGMENTED REALITY DISPLAY FOR FLUORESCENCE GUIDED SURGERY
Embodiments disclose a real-time surgery method and apparatus for displaying a stereoscopic augmented view of a patient from a static or dynamic viewpoint of the surgeon, which employs real-time three-dimensional surface reconstruction for preoperative and intraoperative image registration. Stereoscopic cameras provide real-time images of the scene including the patient. A stereoscopic video display is used by the surgeon, who sees a graphical representation of the preoperative or intraoperative images blended with the video images in a stereoscopic manner through a see-through display.
1 .- 20 . (canceled)
21 . A system for fluorescence guided surgery comprising:
a stereoscopic optical see-through head mounted display;
at least one computing system; and
at least one camera,
wherein the at least one camera is configured to capture video images of an area of fluorescence in a physical anatomic structure, and
wherein the at least one computing system is configured to generate a display, by the stereoscopic optical see-through head mounted display, of the video images of the area of fluorescence in the physical anatomic structure, wherein the at least one computing system is configured to superimpose the display of the video images of the area of fluorescence, by the stereoscopic optical see-through head mounted display, on the physical anatomic structure.
22 . The system of claim 21 , wherein the at least one camera is configured to capture, in the video images, a color change in the area of fluorescence in the physical anatomic structure.
23 . The system of claim 22 , wherein the at least one computing system is configured to detect the color change in the video images of the area of fluorescence.
24 . The system of claim 23 , wherein the computing system is configured to detect the color change in the video images of the area of fluorescence by image processing.
25 . The system of claim 21 , wherein the fluorescence is caused by a fluorescent molecule.
26 . The system of claim 25 , wherein the fluorescent molecule is 5-aminolevulinic acid (5-ALA).
27 . The system of claim 21 , wherein the system comprises two or more cameras configured to capture the video images of the area of fluorescence in the physical anatomic structure, wherein the video images are stereoscopic.
28 . The system of claim 21 , wherein the at least one camera is head mounted with the stereoscopic optical see-through head mounted display.
29 . The system of claim 21 , wherein the at least one camera is separate from the stereoscopic optical see-through head mounted display.
30 . The system of claim 21 , wherein the system comprises at least a second camera, at least one 3D scanner, or a combination thereof.
31 . The system of claim 30 , wherein the at least one computing system is configured to track at least a portion of a physical instrument, at least a portion of a physical implant, at least a portion of the physical anatomic structure of the patient or a combination thereof using the at least second camera, at least one 3D scanner, or the combination thereof.
32 . The system of claim 31 , wherein the at least one computing system is configured to generate a three-dimensional (3D) representation of: at least a portion of a surgical guide, at least a portion of the tracked physical instrument, at least a portion of the tracked physical implant, at least a portion of the tracked physical anatomic structure, at least a portion of an anatomical model, at least one image of the tracked physical anatomic structure, or a combination thereof, wherein the at least one computing system is configured to generate a stereoscopic view, displayed by the stereoscopic optical see-through head mounted display, the stereoscopic view comprising the 3D representation, wherein the at least one computing system is configured to superimpose the stereoscopic view of the 3D representation on the physical anatomic structure.
33 . The system of claim 30 , wherein the at least second camera, the at least one 3D scanner, or the combination thereof is head mounted with the stereoscopic optical see-through head mounted display.
34 . The system of claim 30 , wherein the at least second camera, the at least one 3D scanner, or the combination thereof is separate from the stereoscopic optical see-through head mounted display.
35 . The system of claim 21 , wherein the stereoscopic optical see-through head mounted display comprises at least one display device with at least one data holding subsystem, logic subsystem or combination thereof in a shared enclosure.
36 . The system of claim 21 , wherein the at least one computing system is configured for communicatively coupling with one or more computing devices.
37 . The system of claim 21 , wherein the at least one computing system is configured for wireless coupling with one or more computing devices.
38 . The system of claim 21 , wherein the system further comprises at least one inertial measurement unit, wherein the at least one inertial measurement unit is attached to or integrated into the at least one camera, the stereoscopic optical see-through head mounted display, the at least one computing system, or a combination thereof.
39 . The system of claim 31 , wherein the system further comprises one or more markers, wherein the one or more markers comprise a marker configured to be attached to the physical instrument, a marker configured to be attached to the physical implant, a marker configured to be attached to the physical anatomic structure or a combination thereof, and wherein the at least one computing system is configured to track the one or more markers using the at least second camera, at least one 3D scanner, or the combination thereof.
40 . A method for fluorescence-guided surgery, the method comprising:
capturing video images of an area of fluorescence in a physical anatomic structure of a patient,
generating a display, by a stereoscopic optical see-through head mounted display, of the video images of the area of fluorescence in the physical anatomic structure, and
superimposing the display of the video images of the area of fluorescence, by the stereoscopic optical see-through head mounted display, on the physical anatomic structure.