IP Library › Granted Patent US 9,510,799
Granted Patent B2
US 9,510,799 · App. 14/406,565 · Granted Dec 6, 2016

Medical imaging system and medical image processing apparatus

Inventors: Chiho Makifuchi (Hino, JP); Kazuhiro Kido (Hino, JP); Junko Kiyohara (Hino, JP)
Assignee: KONICA MINOLTA, INC.
A61B6/5217A61B6/4291A61B6/463A61B6/483A61B6/484A61B6/5235G06T11/00A61B6/502A61B6/505
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Quick Facts
Patent No.
US 9,510,799
App. No.
14/406,565
Granted
Dec 6, 2016
Kind
B2
Abstract

A medical imaging system creates three kinds of reconstructed images of a diagnosis target site in a subject through X-ray imaging of the diagnosis target site with a Talbot or Talbot-Lau imaging apparatus, the three kinds of reconstructed images being an absorption image, a differential phase image, and a small-angle scattering image. The medical imaging system includes: an input unit to receive an input of diagnosis target information for specifying the diagnosis target site, or the diagnosis target site and a disease to be diagnosed in the diagnosis target site; and a control unit to create a combined image of two kinds of reconstructed images among the three kinds of reconstructed images on the basis of the diagnosis target information input through the input unit, and to control a displaying unit to display the combined image.

Claims (27)

1. A medical imaging system to create three kinds of reconstructed images of a diagnosis target site in a subject through X-ray imaging of the diagnosis target site with a Talbot or Talbot-Lau imaging apparatus, the three kinds of reconstructed images being an absorption image, a differential phase image, and a small-angle scattering image, the medical imaging system comprising:

an input unit to receive an input of diagnosis target information for specifying the diagnosis target site, or the diagnosis target site and a disease to be diagnosed in the diagnosis target site; and

a control unit to create a combined image of two kinds of reconstructed images among the three kinds of reconstructed images on the basis of the diagnosis target information input through the input unit, and to control a displaying unit to display the combined image.

2. The medical imaging system according to claim 1 , wherein one of the two kinds of reconstructed images is the absorption image.

3. The medical imaging system according to claim 1 , wherein the control unit processes at least one of the two kinds of reconstructed images and then creates the combined image.

4. The medical imaging system according to claim 3 , wherein the control unit creates a combined image in which a signal representing a structure common to the differential phase image and the absorption image is removed or attenuated through the following process:

processing the absorption image into a differential absorption image, multiplying the differential absorption image by a factor for adjusting an intensity of a signal representing a structure in the differential absorption image to an intensity of a signal representing the structure in the differential phase image, the structure being common to the differential phase image and the differential absorption image, and subtracting the differential absorption image multiplied by the factor from the differential phase image, or

processing the differential phase image into a phase image, multiplying the absorption image by a factor for adjusting an intensity of a signal representing a structure in the absorption image to an intensity of a signal representing the structure in the phase image, the structure being common to the phase image and the absorption image, and subtracting the absorption image multiplied by the factor from the phase image.

5. The medical imaging system according to claim 1 , wherein the control unit creates two or more combined images and controls the displaying unit to simultaneously or alternately display the two or more combined images.

6. The medical imaging system according to claim 1 , wherein the control unit controls the displaying unit to simultaneously or alternately display the combined image and at least one of the three kinds of reconstructed images.

7. The medical imaging system according to claim 1 , wherein the control unit further creates a combined image of the three kinds of reconstructed images, and controls the displaying unit to simultaneously or alternately display the combined image of the two kinds of reconstructed images and the combined image of the three kinds of reconstructed images.

8. The medical imaging system according to claim 5 , wherein the diagnosis target site is breasts.

9. A medical image processing apparatus comprising:

a reconstructed-image creating unit to at least create a differential phase image and an absorption image of three kinds of reconstructed images on the basis of an image signal of a subject acquired with an X-ray imaging apparatus including a Talbot or Talbot-Lau interferometer, the three kinds of reconstructed images being the absorption image, the differential phase image, and a small-angle scattering image; and

a combining unit to create a combined image in which a signal representing a structure common to the differential phase image and the absorption image is removed or attenuated through the following process:

processing the absorption image into a differential absorption image, multiplying the differential absorption image by a factor for adjusting an intensity of a signal representing a structure in the differential absorption image to an intensity of a signal representing the structure in the differential phase image, the structure being common to the differential phase image and the differential absorption image, and subtracting the differential absorption image multiplied by the factor from the differential phase image, or

processing the differential phase image into a phase image, multiplying the absorption image by a factor for adjusting an intensity of a signal representing a structure in the absorption image to an intensity of a signal representing the structure in the phase image, the structure being common to the phase image and the absorption image, and subtracting the absorption image multiplied by the factor from the phase image.

10. The medical image processing apparatus according to claim 9 , wherein the combining unit calculates a ratio of the signals representing the common structure between the two images used for the subtraction, and uses the ratio as the factor.

11. The medical image processing apparatus according to claim 9 , further comprising a storage unit to store a threshold corresponding to at least one of the absorption image, the differential absorption image, the phase image, the differential phase image, and the small-angle scattering image, wherein

the combining unit compares a pixel value or an absolute pixel value of a corresponding one of the images created by the reconstructed-image creating unit with the threshold, reduces the factor for a region having a pixel value not exceeding the threshold, and then creates the combined image.

12. The medical image processing apparatus according to claim 11 , further comprising:

a displaying unit to display the combined image; and

an operating unit used for changing the factor and/or the threshold, wherein

the combining unit changes the factor and/or the threshold in response to an operation to the operating unit and then re-creates a combined image, and

the displaying unit displays the combined image re-created based on the changed factor and/or threshold.

13. The medical image processing apparatus according to claim 9 , further comprising a correcting unit to correct an artifact in the differential phase image caused by an imaging condition in the X-ray imaging apparatus, wherein

the combining unit creates the combined image with the differential phase image corrected by the correcting unit.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 9, 2014
From: MAKIFUCHI, CHIHO; KIDO, KAZUHIRO; KIYOHARA, JUNKO
To: KONICA MINOLTA, INC.
Reel/Frame 034435/0295 →
Priority Claims (1)
JP 2012-131596 · Jun 11, 2012 · national
Continuity (1)
Related Publication 20150131777A1 · May 14, 2015