IP Library Granted Patent US 12,437,405
Granted Patent B2
US 12,437,405 · App. 17/939,014 · Granted Oct 7, 2025

Medical image processing apparatus and medical image processing method

Inventors: Takuma Igarashi (Nasushiobara, JP); Satoshi Wakai (Nasushiobara, JP); Kazumasa Arakita (Nasushiobara, JP); Hideaki Ishii (Nasushiobara, JP); Yasuko Fujisawa (Nasushiobara, JP); Shigeo Kaminaga (Otawara, JP); Kenji Hirohata (Tokyo, JP); Junichiro Ooga (Tokyo, JP)
Assignee: CANON MEDICAL SYSTEMS CORPORATION
G06T7/0014A61B6/032A61B6/463A61B6/486A61B6/504A61B6/5211A61B6/5217G06T7/0016G06T11/003A61B6/503A61B6/507G06T2200/04G06T2207/10016G06T2207/10076G06T2207/10081G06T2207/30048G06T2207/30104
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Quick Facts
Patent No.
US 12,437,405
App. No.
17/939,014
Granted
Oct 7, 2025
Kind
B2
Abstract

There is provided a medical image processing apparatus which includes a first extraction unit configured to extract coronary arteries depicted in images of a plurality of time phases relating to the heart, and to extract at least one stenosed part depicted in each coronary artery; a calculation unit configured to calculate a pressure gradient of each of the extracted coronary arteries, based on tissue blood flow volumes of the coronary arteries; a second extraction unit configured to extract an ischemic region depicted in the images; and a specifying unit configured to specify a responsible blood vessel of the ischemic region by referring to a dominance map, in which each of the extracted coronary arteries and a dominance territory are associated, for the extracted ischemic region, and to specify a responsible stenosis, based on the pressure gradient corresponding to a stenosed part in the specified responsible blood vessel.

Claims (33)

1. A medical image processing apparatus, comprising:

processing circuitry configured to

acquire a geometry of a coronary artery depicted in data of images relating to a heart,

calculate a fractional flow reserve (FFR) value of the acquired coronary artery, based on the acquired geometry of the coronary artery, and

specify a target blood vessel from the coronary artery from which the FFR value was calculated; and

a display to display (1) the FFR value on a 2D image that depicts the target blood vessel, wherein a first axis of the 2D image represents a long axis of the specified target blood vessel and a second axis of the 2D image represents a short axis of the specified target blood vessel, (2) a first graph having a third axis representing FFR values of the specified target blood vessel and a fourth axis representing spatial locations for the FFR values, wherein the first and fourth axes are aligned to a scale of the 2D image, and (3) a second graph having a fifth axis representing index values that represent characteristics of a plaque and/or a calcification located in the target vessel, the index values being displayed at spatial locations corresponding to locations of the plaque and/or the calcification.

2. The medical image processing apparatus of claim 1 , wherein the display further displays a lipid amount of the specified target blood vessel.

3. The medical image processing apparatus of claim 1 , wherein the display further displays a serum cholesterol concentration of the specified target blood vessel.

4. The medical image processing apparatus of claim 1 , wherein the display further displays hardness of the specified target blood vessel.

5. The medical image processing apparatus of claim 1 , wherein the display further displays a degree of calcification of the specified target blood vessel.

6. The medical image processing apparatus of claim 1 , wherein the display further displays a thickness of a fibrous capsule of the specified target blood vessel.

7. The medical image processing apparatus of claim 1 , wherein the display further displays the second graph as a bar graph indicating an analysis result of the characteristics of the plaque.

8. The medical image processing apparatus of claim 1 , wherein the processing circuitry is further configured to:

specify a responsible blood vessel of an ischemic region or a myocardial infraction region, and

display the 2D image relating to the specified responsible blood vessel.

9. The medical image processing apparatus of claim 1 , wherein the display further displays properties of a blood as markers.

10. The medical image processing apparatus of claim 1 , wherein the display further displays, as markers, degrees of priority of treatment of stenosed parts, the degrees of the priority of the treatment of the stenosed parts being ranked based on the FFR values, the markers being superimposed on the target blood vessel.

11. The medical image processing apparatus of claim 10 , wherein a size of a marker, of the markers, is proportional to a degree of the priority of the treatment.

12. A medical image processing system comprising:

a medical image diagnosis apparatus; and

a medical image processing apparatus,

the medical image diagnosis apparatus including circuitry configured to acquire data of images relating to a heart,

wherein the medical image processing apparatus comprises:

processing circuitry configured to

acquire a geometry of a coronary artery depicted in the data of images,

calculate a fractional flow reserve (FFR) value of the acquired coronary artery, based on the acquired geometry of the coronary artery, and

specify a target blood vessel from the coronary artery from which the FFR value was calculated; and

a display to display (1) the FFR value on a 2D image that depicts the target blood vessel, wherein a first axis of the 2D image represents a long axis of the specified target blood vessel and a second axis of the 2D image represents a short axis of the specified target blood vessel, (2) a first graph having a third axis representing FFR values of the specified target blood vessel and a fourth axis representing spatial locations for the FFR values, wherein the first and fourth axes are aligned to a scale of the 2D image, and (3) a second graph having a fifth axis representing index values that represent characteristics of a plaque and/or a calcification located in the target vessel, the index values being displayed at spatial locations corresponding to locations of the pique and/or the calcification.

13. A medical image processing method, comprising:

acquiring a geometry of a coronary artery depicted in data of images relating to a heart;

calculating a fractional flow reserve (FFR) value of the acquired coronary artery, based on the acquired geometry of the coronary artery;

specifying a target blood vessel from the coronary artery from which the FFR value was calculated; and

displaying (1) the FFR value on a 2D image that depicts the target blood vessel wherein a first axis of the 2D image represents a long axis of the specified target blood vessel and a second axis of the 2D image represents a short axis of the specified target blood vessel, (2) a first graph having a third axis representing FFR values of the specified target blood vessel and a fourth axis representing spatial locations for the FFR values, wherein the first and fourth axes are aligned to a scale of the 2D image, and (3) a second graph having a fifth axis representing index values that represent characteristics of a plaque and/or a calcification located in the target vessel, the index values being displayed at spatial locations corresponding to locations of the plaque and/or the calcification.

Priority Claims (3)
JP 2012-263565 · Nov 30, 2012 · national
JP 2012-263566 · Nov 30, 2012 · national
JP 2013-248490 · Nov 29, 2013 · national
Continuity (5)
Continuation 16929392 · Jul 15, 2020
Continuation 15715793 · Sep 26, 2017
Continuation 14726158 · May 29, 2015
Continuation PCTJP2013082278 · Nov 29, 2013
Related Publication 20230017788A1 · Jan 19, 2023
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