IP Library › Granted Patent US 10,758,122
Granted Patent B2
US 10,758,122 · App. 16/422,890 · Granted Sep 1, 2020

Volume analysis and display of information in optical coherence tomography angiography

Inventor: Richard F. Spaide (New York, NY)
A61B3/1233A61B3/0025A61B3/0041A61B3/102G06T7/0012G06T15/08G06T2200/24G06T2207/10101G06T2207/30041G06T2207/30104G06T2210/41
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Quick Facts
Patent No.
US 10,758,122
App. No.
16/422,890
Granted
Sep 1, 2020
Kind
B2
Abstract

Computer aided visualization and diagnosis by volume analysis of optical coherence tomography (OCT) angiographic data. In one embodiment, such analysis comprises acquiring an OCT dataset using a processor in conjunction with an imaging system; evaluating the dataset, with the processor, for flow information using amplitude or phase information; generating a matrix of voxel values, with the processor, representing flow occurring in vessels in the volume of tissue; performing volume rendering of these values, the volume rendering comprising deriving three dimensional position and vector information of the vessels with the processor; displaying the volume rendering information on a computer monitor; and assessing the vascularity, vascular density, and vascular flow parameters as derived from the volume rendered images.

Claims (19)

1. A non-transitory computer readable medium containing recorded instructions to cause a processor to:

acquire from an imaging system an OCT dataset from a volume of anatomical tissue;

evaluate the dataset for flow information using amplitude or phase information;

generate a matrix of voxel values, representing flow occurring in vessels in the volume of tissue;

perform volume rendering of the matrix of voxel values to create a three dimensional representation of the dataset that retains the three dimensional information therein by deriving three dimensional position and vector information of the vessels; and

display the volume rendering information via virtual reality goggles.

2. A method of computer aided visualization and diagnosis comprising:

acquiring an OCT dataset using a processor in conjunction with an imaging system;

evaluating the dataset, with the processor, for flow information using amplitude or phase information;

generating a matrix of voxel values, with the processor, representing flow occurring in vessels in the volume of tissue;

performing volume rendering of the matrix of voxel values, to create a three dimensional representation of the dataset that retains the three dimensional information therein, the volume rendering comprising deriving three dimensional position and vector information of the vessels with the processor; and

displaying the volume rendering information via virtual reality goggles.

3. A system for computer aided visualization and diagnosis comprising:

an imaging system under the control of at least one processor for acquiring an OCT dataset from a volume of anatomical tissue; and

software stored on a computer-readable medium accessible to the at least one processor, containing instructions to cause the at least one processor to:

evaluate the dataset for flow information using amplitude or phase information;

generate a matrix of voxel values, representing flow occurring in vessels in the volume of tissue;

perform volume rendering of the matrix of voxel values to create a three dimensional representation of the dataset that retains the three dimensional information therein by deriving three dimensional position and vector information of the vessels; and

display the volume rendering via virtual reality goggles.

Continuity (5)
Continuation In Part 15654099 · Jul 19, 2017
Continuation 15016674 · Feb 5, 2016
Provisional Application 62112924 · Feb 6, 2015
Provisional Application 62116313 · Feb 13, 2015
Related Publication 20190343383A1 · Nov 14, 2019