IP Library › Granted Patent US 12,733,985
Granted Patent B2
US 12,733,985 · App. 19/093,574 · Granted Sep 15, 2026

Automatic placement of reference grids and estimation of anatomical coordinate systems

Inventors: Carolina Dos Santos Raposo (Coimbra, PT); João Pedro De Almeida Barreto (Coimbra, PT); Michel Gonçalves Almeida Antunes (Coimbra, PT)
Assignees: SMITH & NEPHEW, INC.; SMITH & NEPHEW ORTHOPAEDICS AG; SMITH & NEPHEW ASIA PACIFIC PTE. LIMITED
A61B34/10A61B2034/105
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Quick Facts
Patent No.
US 12,733,985
App. No.
19/093,574
Granted
Sep 15, 2026
Kind
B2
Abstract

Disclosed are systems and methods for a computerized framework that provides novel mechanisms for determining the automatic placement of a reference grid and an anatomical reference frame (ARF) of a bone. The disclosed framework is operational for the enablement of computerized mechanisms that, based on a three-dimensional (3D) model of a distal femur, can determine, provide and/or display the anatomically correct positions of femoral tunnels and/or other forms of surgical landmarks surgeons rely on for anterior cruciate ligament (ACL) procedures. The disclosed framework is also operational for the enablement of computerized mechanisms that, based on a three-dimensional (3D) model of a proximal tibia, can determine, provide and/or display the anatomically correct positions of tibial tunnels and/or other forms of surgical landmarks surgeons rely on for ACL procedures.

Claims (68)

1 . A computer-implemented method, comprising:

using one or more computing devices:

receiving a three-dimensional (3D) model of a proximal tibia;

identifying a first approximate tibial axis;

segmenting the 3D model using the first approximate tibial axis to create segmented data;

delineating an exterior perimeter of a tibial plateau from the segmented data;

fitting a tibial plane based on the exterior perimeter of the tibial plateau and at least a portion of the segmented data, wherein a normal to the tibial plane defines a final tibial axis;

finding a bi-tangent line on a posterior based on the exterior perimeter of the tibial plateau and a portion of the segmented data;

forming a tibial grid comprising a rectangle having a first long edge coaxial with the bi-tangent line, a second long edge parallel to the first long edge and identifying an outermost edge of an anterior portion of the exterior perimeter of the tibial plateau, a first short edge perpendicular to the first long edge and identifying a medial-most portion of the exterior perimeter of the tibial plateau, and a second short edge perpendicular to the first long edge and identifying a lateral-most portion of the exterior perimeter of the tibial plateau; and

overlaying and displaying the tibial grid relative to the 3D model.

2 . The computer-implemented method of claim 1 , wherein identifying the first approximate tibial axis further comprises morphing a statistical shape model (SSM) to correspond to the 3D model to create a morphed SSM, and identifying the first approximate tibial axis from the morphed SSM.

3 . The computer-implemented method of claim 2 , further comprising:

identifying a nadir of the tibial plateau from the SSM;

wherein segmenting the 3D model further comprises segmenting the 3D model using the first approximate tibial axis and the nadir to create the segmented data.

4 . The computer-implemented method of claim 3 , wherein segmenting the 3D model further comprises selecting data points from the 3D model that reside in and above a segmentation plane, the segmentation plane perpendicular to the first approximate tibial axis, and the segmentation plane a predetermined distance distal of the nadir of the tibial plateau.

5 . The computer-implemented method of claim 4 , wherein the nadir of the tibial plateau is a distal-most point of a medial plateau.

6 . The computer-implemented method of claim 1 , further comprising:

estimating a sagittal direction of the 3D model;

projecting the 3D model in the sagittal direction, resulting in a sagittal projection; and

finding a posterior-most point of the tibial plateau from the sagittal projection,

wherein segmenting further comprises segmenting the 3D model using the posterior-most point and the first approximate tibial axis.

7 . The computer-implemented method of claim 6 , wherein segmenting the 3D model further comprises selecting data points from the 3D model that reside in and above a segmentation plane, the segmentation plane perpendicular to the first approximate tibial axis, and the segmentation plane a predetermined distance distal of the posterior-most point of the tibial plateau.

8 . The computer-implemented method of claim 1 , wherein delineating the exterior perimeter of the tibial plateau further comprises identifying contour regions within the segmented data, and assigning the exterior perimeter of the tibial plateau based on the contour regions.

9 . The computer-implemented method of claim 1 , wherein finding the bi-tangent line further comprises:

projecting the exterior perimeter of the tibial plateau and data of the segmented data within the exterior perimeter of the tibial plateau onto the tibial plane to create projected data; and

finding the bi-tangent line on the posterior of the projected data.

10 . The computer-implemented method of claim 1 , further comprising identifying a tibial tuberosity within the 3D model and displaying an indication of a location of the tibial tuberosity within the 3D model.

11 . The computer-implemented method of claim 10 , wherein identifying the tibial tuberosity further comprises:

projecting the 3D model onto a sagittal plane;

segmenting the 3D model along a line perpendicular to the second long edge resulting in a tuberosity segmentation; and

identifying an anterior-most portion of the tuberosity segmentation as the tibial tuberosity.

12 . The computer-implemented method of claim 11 , wherein segmenting to create the segmented data further comprises selecting data proximal of a predetermined point distal of a nadir of the tibial plateau.

13 . The computer-implemented method of claim 11 , wherein fitting the tibial plane further comprises fitting based on the exterior perimeter of the tibial plateau and the segmented data that resides within the exterior perimeter of the tibial plateau.

14 . A device, comprising:

one or more processors configured to:

receive a three-dimensional model (3D model) of a proximal tibia;

identify a first approximate tibial axis;

segment the 3D model using the first approximate tibial axis to create segmented data;

delineate an exterior perimeter of a tibial plateau from the segmented data;

fit a tibial plane based on the exterior perimeter of the tibial plateau and at least a portion of the segmented data, a normal to the tibial plane defines a final tibial axis;

find a bi-tangent line on a posterior based on the exterior perimeter of the tibial plateau and portion of the segmented data;

form a tibial grid comprising a rectangle having a first long edge coaxial with the bi-tangent line, a second long edge parallel to the first long edge and identifying an outermost edge of an anterior portion of the exterior perimeter of the tibial plateau, a first short edge perpendicular to the first long edge and identifying a medial-most portion of the exterior perimeter of the tibial plateau, and a second short edge perpendicular to the first long edge and identifying a lateral-most portion of the exterior perimeter of the tibial plateau; and

overlay and display the tibial grid relative to the 3D model.

15 . The device of claim 14 , wherein, when the one or more processors identify the first approximate tibial axis and a nadir of the tibial plateau, the one or more processors are further configured to morph a statistical shape model (SSM) to correspond to the 3D model to create a morphed SSM, and identify the first approximate tibial axis from the morphed SSM.

16 . The device of claim 15 , wherein the one or more processors are further configured to identify the nadir of the tibial plateau from the SSM, and wherein when the one or more processors segment the 3D model, the one or more processors are configured to segment the 3D model using the first approximate tibial axis and the nadir of the tibial plateau.

17 . The device of claim 16 , wherein when the one or more processors segment the 3D model, the one or more processors are further configured to select data points from the 3D model that reside in and above a segmentation plane, the segmentation plane perpendicular to the first approximate tibial axis, and the segmentation plane a predetermined distance distal of the nadir of the tibial plateau.

18 . The device of claim 16 , wherein the one or more processors are further configured to:

estimate a sagittal direction of the 3D model;

project the 3D model in the sagittal direction, resulting in a sagittal projection; and

find a posterior-most point of the tibial plateau from the sagittal projection,

wherein, when the one or more processors segment the 3D model, the one or more processors are further configured to segment the 3D model using the posterior-most point and the first approximate tibial axis.

19 . The device of claim 14 , wherein at least one of:

when the one or more processors segment the 3D model, the one or more processors are configured to select data points from the 3D model that reside in and above a segmentation plane, the segmentation plane perpendicular to the first approximate tibial axis, and the segmentation plane a predetermined distance distal of a posterior-most point of the tibial plateau;

when the one or more processors delineate the exterior perimeter of the tibial plateau, the one or more processors are further configured to identify contour regions within the segmented data and assign the exterior perimeter of the tibial plateau based on the contour regions;

when the one or more processors find the bi-tangent line, the one or more processors are further configured to project the exterior perimeter of the tibial plateau and the data points of the segmented data within the exterior perimeter of the tibial plateau onto the tibial plane to create projected data and find the bi-tangent line on the posterior of the projected data;

the one or more processors are further configured to identify a tibial tuberosity within the 3D model and display an indication of a location of the tibial tuberosity within the 3D model;

when the one or more processors identify the tibial tuberosity, the one or more processors are configured to project the 3D model onto a sagittal plane, segment the 3D model along a line perpendicular to the second long edge resulting in a tuberosity segmentation, and identify an anterior-most portion of the tuberosity segmentation as the tibial tuberosity;

when the one or more processors segment to create the segmented data, the one or more processors are further configured to select data proximal of a predetermined point distal of a nadir of the tibial plateau; and

when the one or more processors fit the tibial plane, the one or more processors are configured to fit the tibial plane based on the exterior perimeter of the tibial plateau and the segmented data that resides within the exterior perimeter of the tibial plateau.

20 . A non-transitory computer-readable storage medium tangibly encoded with computer-executable instructions, that when executed by one or more devices, cause the one or more devices to:

receive a three-dimensional (3D) model of a proximal tibia;

identify a first approximate tibial axis;

segment the 3D model using the first approximate tibial axis to create segmented data;

delineate an exterior perimeter of a tibial plateau from the segmented data;

fit a tibial plane based on the exterior perimeter of the tibial plateau and at least a portion of the segmented data, a normal to the tibial plane defines a final tibial axis;

find a bi-tangent line on a posterior based on the exterior perimeter of the tibial plateau and portion of the segmented data;

form a tibial grid comprising a rectangle having a first long edge coaxial with the bi-tangent line, a second long edge parallel to the first long edge and identifying an outermost edge of an anterior portion of the exterior perimeter of the tibial plateau, a first short edge perpendicular to the first long edge and identifying a medial-most portion of the exterior perimeter of the tibial plateau, and a second short edge perpendicular to the first long edge and identifying a lateral-most portion of the exterior perimeter of the tibial plateau; and

overlay and display the tibial grid relative to the 3D model.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 10, 2025
From: DOS SANTOS RAPOSO, CAROLINA; DE ALMEIDA BARRETO, JOÃO PEDRO; ALMEIDA ANTUNES, MICHEL GONÇALVES
To: SMITH & NEPHEW, INC.
Reel/Frame 070800/0726 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 10, 2025
From: SMITH & NEPHEW, INC.
To: SMITH & NEPHEW, INC.; SMITH & NEPHEW ORTHOPAEDICS AG; SMITH & NEPHEW ASIA PACIFIC PTE. LIMITED
Reel/Frame 070800/0815 →
Continuity (3)
Division 18848296 · Jun 22, 2023
Provisional Application 63354953 · Jun 23, 2022
Related Publication 20250221775A1 · Jul 10, 2025
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