IP Library › Granted Patent US 11,995,785
Granted Patent B2
US 11,995,785 · App. 17/639,661 · Granted May 28, 2024

Computer-implemented method for providing a standardized position for anatomic structural data of a patient scan

Inventors: Khoi Lam (Munich, DE); Max Thalmeier (Munich, DE)
Assignee: Ottobock SE & Co. KGaA
G06T19/20G06T7/0012G06T17/10G06T2219/2004
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Quick Facts
Patent No.
US 11,995,785
App. No.
17/639,661
Granted
May 28, 2024
Kind
B2
Abstract

The invention relates to a computer-implemented method for providing a standardized position for anatomic structural data (ASD) of a patient scan, in particular as a basis for individually fitting an orthosis or prosthesis to a first patient. The method comprises the steps of receiving anatomic structural data (ASD) of a body part of the first patient, receiving and/or selecting template structural data (TSD) corresponding to the body part and adapting the orientation and/or the pose of the anatomic structural data (ASD) using the armature of the template structural data (TSD). Further, the invention refers to a computer-implemented method for providing standardized measurement on anatomic structural data (ASD) of a patient scan, a data processing system and a computer-readable medium.

Claims (71)

1. A method for performing standardized measurement on anatomic structural data (ASD) of a patient scan, in particular as a basis for individually fitting an orthosis or prosthesis to a first patient,

comprising:

a) receiving anatomic structural data (ASD) of a body part of the first patient wherein the anatomic structural data (ASD) comprise surface data of the body part from the patient scan;

b) receiving and/or selecting template structural data (TSD) corresponding to the body part, wherein the template structural data (TSD) comprise surface data and an armature to define mechanical deformation of the surface data;

c) adapting an orientation and/or a pose of the anatomic structural data (ASD) to a standardized spatial orientation and pose using the armature of the template structural data (TSD), by:

providing a mechanical deformation to the template structural data (TSD) to achieve a maximum similarity with the pose of the anatomic structural data (ASD), by applying a rigid point cloud registration algorithm to landmark points of the anatomic structural data (ASD) such that a distance between corresponding landmark points of the anatomic structural data (ASD) and of the template structural data (TSD) is minimized,

determining a transfer element between a second characteristic part (CP 2 -ASD) of the anatomic structural data (ASD) and a second characteristic part (CP 2 -TSD) of the template structural data (TSD), and

coupling the surface data of the anatomic structural data (ASD) with the armature of the mechanically deformed template structural data (TSD), such that the pose of the anatomic structural data (ASD) can be adapted using the armature by applying the transfer element as an inverse transfer element to the armature being coupled with the anatomic structural data (ASD),

wherein the anatomic structural data (ASD) is rotated in combination with the armature, such that the anatomic structural data (ASD) of the first patient is provided in the standardized spatial orientation and pose;

d) identifying at least one intersection between the anatomic structural data (ASD) and at least one pre-determined section plane (SP 1 ; SP 2 ; SP 3 ; SP 4 ; SP 5 , SP 6 ) of the template structural data (TSD); and

e) processing at least one standardized measurement along the at least one intersection to receive at least one measurement value of the anatomic structural data (ASD) of the first patient.

2. The method according to claim 1 ,

characterized in that

the method further comprises:

providing a measurement form (MF) which identifies at least one measurement parameter,

wherein the at least one received measurement value of the anatomic structural data (ASD) of the first patient corresponds to the at least one measurement parameter.

3. The method according to claim 2 ,

characterized in that

the at least one pre-determined section plane (SP 1 ; SP 2 ; SP 3 ; SP 4 ; SP 5 , SP 6 ) of the template structural data (TSD) is pre-determined on the basis of the measurement form (MF).

4. The method according to claim 3 , characterized in that the at least one pre-determined section plane (SP 1 ; SP 2 ; SP 3 ; SP 4 ; SP 5 , SP 6 ) of the template structural data (TSD) is pre-determined on the basis of the at least one measurement parameter as provided by the measurement form (MF).

5. The method according to claim 2 , characterized in that the measurement form (MF) is a measurement sheet.

6. A data processing system comprising means for carrying out the method of claim 1 .

7. The data processing system according to claim 6 ,

characterized in that

at least one client and at least one server is provided,

wherein the client is configured to send the anatomic structural data (ASD) of the first patient to the server and receive the at least one measurement value of the anatomic structural data (ASD) of the first patient from the server, and

wherein the at least one server is configured to:

receive the anatomic structural data (ASD) of the first patient from the client,

adapt the orientation and/or the pose of the anatomic structural data (ASD) in relation to the template structural data (TSD),

process at least one standardized measurement along the anatomic structural data (ASD) of the first patient, and

provide the at least one measurement value of the anatomic structural data (ASD) of the first patient to the client.

8. The data processing system according to claim 7 , characterized in that the at least one server is configured to provide the at least one measurement value of the anatomic structural data (ASD) of the first patient to the client as a completed measurement form (cMF) comprising the at least one measurement value.

9. A method for providing a standardized spatial orientation and pose for anatomic structural data (ASD) of a patient scan, in particular as a basis for individually fitting an orthosis or prosthesis to a first patient, the method comprising:

a) receiving anatomic structural data (ASD) of a body part of the first patient, wherein the anatomic structural data (ASD) comprise surface data of the body part from the patient scan;

b) receiving and/or selecting template structural data (TSD) corresponding to the body part,

wherein the template structural data (TSD) comprise surface data and an armature to define mechanical deformation of the surface data; and

c) adapting an orientation and/or a pose of the anatomic structural data (ASD) to the standardized spatial orientation and pose using the armature of the template structural data (TSD), by:

providing a mechanical deformation to the template structural data (TSD) to achieve a maximum similarity with the pose of the anatomic structural data (ASD), by applying a rigid point cloud registration algorithm to landmark points of the anatomic structural data (ASD) such that a distance between corresponding landmark points of the anatomic structural data (ASD) and of the template structural data (TSD) is minimized,

determining a transfer element between a second characteristic part (CP 2 -ASD) of the anatomic structural data (ASD) and a second characteristic part (CP 2 -TSD) of the template structural data (TSD), and

coupling the surface data of the anatomic structural data (ASD) with the armature of the mechanically deformed template structural data (TSD), such that the pose of the anatomic structural data (ASD) can be adapted using the armature by applying the transfer element as an inverse transfer element to the armature being coupled with the anatomic structural data (ASD),

wherein the anatomic structural data (ASD) is rotated in combination with the armature, such that the anatomic structural data (ASD) of the first patient is provided in the standardized spatial orientation and pose,

wherein step a) and step b) further comprise defining the corresponding landmark points along the anatomic structural data (ASD) and the template structural data (TSD).

10. The method according to claim 1 , characterized in that the at least one measurement value of the anatomic structural data (ASD) of the first patient is a circumference or a length.

11. A non-transitory computer-readable medium comprising instructions which, when executed by a computer, cause the computer to perform the method of claim 9 .

12. The method according to claim 9 ,

characterized in that

adapting the orientation according to step c) further comprises:

applying an iterative-closest-point algorithm as a first rigid point cloud registration algorithm to the landmark points of the anatomic structural data (ASD), and/or

applying a scaling-iterative-closest-point algorithm as a second non-rigid point cloud registration algorithm to the template structural data (TSD),

such that the distance between corresponding landmark points of the anatomic structural data (ASD) and of the template structural data (TSD) is minimized.

13. The method according to claim 12 ,

characterized in that

step c) further comprises:

identifying a first characteristic part (CP 1 -ASD) of the anatomic structural data (ASD) and a first characteristic part (CP 1 -TSD) of the template structural data (TSD), and

aligning the first characteristic part (CP 1 -ASD) of the anatomic structural data (ASD) with the first characteristic part (CP 1 -TSD) of the template structural data (TSD) by applying the first rigid point cloud registration algorithm,

wherein the first characteristic part (CP 1 -ASD) of the anatomic structural data (ASD) is aligned with the first characteristic part (CP 1 -TSD) of the template structural data (TSD) in advance of an adaptation of the pose of the anatomic structural data (ASD) of the first patient.

14. The method according to claim 13 ,

characterized in that

only the second characteristic part (CP 2 -ASD) of the anatomic structural data (ASD) is rotated by the armature, such that the anatomic structural data (ASD) of the first patient is provided in the standardized pose.

15. The method according to claim 14 ,

characterized in that

the standardized pose of the anatomic structural data (ASD) comprises an angle of 90° between the first and second characteristic parts (CP 1 -ASD; CP 2 -ASD) of the anatomic structural data (ASD) of the first patient.

16. The method according to claim 14 ,

characterized in that

the transfer element is a vector for pose adaption of at least a part of the anatomic structural data (ASD) of the first patient.

17. The method according to claim 13 , characterized in that the adaptation of the pose of the anatomic structural data (ASD) of the first patient comprises a mechanical deformation of the template structural data (TSD) and/or the anatomic structural data (ASD).

18. The method according to claim 9 ,

characterized in that

the method further comprises:

illustrating at least a visualization of a first three-dimensional structure of the anatomic structural data (ASD) of the first patient, and/or

illustrating at least a visualization of a second three-dimensional structure of the template structural data (TSD).

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 25, 2024
From: MECURIS GMBH
To: OTTOBOCK SE & CO. KGAA
Reel/Frame 066881/0493 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 2, 2022
From: LAM, KHOI; THALMEIER, MAX
To: MECURIS GMBH
Reel/Frame 059149/0994 →
Continuity (1)
Related Publication 20220292793A1 · Sep 15, 2022