IP Library Granted Patent US 11,636,943
Granted Patent B2
US 11,636,943 · App. 17/495,703 · Granted Apr 25, 2023

Method for manipulating a dental virtual model, method for creating physical entities based on a dental virtual model thus manipulated, and dental models thus created

Inventors: Avi Kopelman (Palo Alto, CA); Eldad Taub (Reut, IL)
Assignee: ALIGN TECHNOLOGY, INC.
G16H30/40A61C5/77A61C9/004A61C13/0004A61C13/34G06F30/00G06T19/20G16H30/20G16H50/50G06T2219/2004Y02P90/02Y10T29/49567
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,636,943
App. No.
17/495,703
Granted
Apr 25, 2023
Kind
B2
Abstract

A system for generating missing data for 3D models of intraoral structures of a patient. The system may include a hand-held intraoral scanner and a computer having instructions that the system to scan the intraoral structure of a patient to generate first 3D data of the surface of a prepared tooth, generate a 3D virtual model of the prepared tooth based on the first 3D data, determine the 3D virtual model is missing a surface associated with the prepared, generate second 3D data approximating the surface that is determined to be missing from the 3D virtual model intraoral structure that is missing, and combine the second 3D data with the 3D virtual model such that the 3D virtual model includes the approximated surface, wherein the approximated surface approximates the prepared tooth associated with the surface determined to be missing from the 3D virtual model.

Claims (34)

1. A system for generating missing data for 3D models of intraoral structures of a patient, the system comprising:

a hand-held intraoral scanner;

a computer having instructions that, when executed, cause the system to:

generate a 3D virtual model of a prepared tooth of a patient based on first 3D data generated from an intraoral scan of focused light on the prepared tooth, the prepared tooth having had dental material removed therefrom;

determine that the 3D virtual model does not include a portion of a surface of the prepared tooth and the 3D virtual model includes obscuring material that obscures a portion of a finish line of the prepared tooth;

generate, in an automated manner, second 3D data including generated data of the obscured portion of the finish line, the generation being based on the 3D virtual model, the second 3D data including an approximated surface of the obscured portion of the finish line that approximates the obscured portion of the surface of the prepared tooth; and

combine the second 3D data with the 3D virtual model such that the 3D virtual model includes the approximated surface.

2. The system of claim 1 , wherein the 3D virtual model that does not include a portion of a surface of the prepared tooth forms an incomplete closed geometrical form.

3. The system of claim 1 , wherein the second 3D data is generated based on a cross-sectional profile of the 3D virtual model.

4. The system of claim 1 , wherein the instructions that cause the system to combine the second 3D data with the 3D virtual model includes instructions that cause the system to create a second 3D virtual model including data representative of an unobscured finish line.

5. The system of claim 1 , wherein the instructions, that when executed, cause the system to generate, in an automated manner, the second 3D data based on the 3D virtual model, case the system to interpolate the second 3D data based on the 3D virtual model.

6. A system for generating missing data for 3D models of intraoral structures of a patient, the system comprising:

a hand-held intraoral scanner;

a computer having instructions that, when executed, cause the system to:

scan, using the hand-held intraoral scanner, the intraoral structure of a patient to generate first 3D data of a prepared tooth of the intraoral structure of the patient, the prepared tooth having had dental material removed therefrom;

generate a 3D virtual model of the prepared tooth of the intraoral structure of the patient based on the first 3D data;

determine the 3D virtual model does not include a portion of a finish line of the prepared tooth of the intraoral structure of the patient, the 3D virtual model including obscuring material that obscures the portion of the finish line of the prepared tooth;

generate second 3D data including generated data of the obscured portion of the finish line, the generation being based on the 3D virtual model, the second 3D data including an approximated surface of the obscured portion of the finish line that approximates the portion of the finish line; and

combine the second 3D data with the 3D virtual model such that the 3D virtual model includes the approximated surface.

7. The system of claim 6 , wherein the instructions that that cause the system to generate the second 3D data, causes the system to generate the second 3D data in an automated matter.

8. The system of claim 6 , wherein the 3D virtual model forms an incomplete closed geometrical form.

9. The system of claim 6 , wherein the instructions that cause the system to determine the 3D virtual model does not include the portion of a finish line of the prepared tooth, includes instruction that cause the system to determine that a portion of the 3D virtual model does not complete a close geometrical form.

10. The system of claim 7 , wherein the instructions that cause the system to combine the second 3D data with the 3D virtual model includes instructions that cause the system to create a second 3D virtual model including data representative of an unobscured finish line.

11. A system for generating missing data for 3D models of intraoral structures of a patient, the system comprising:

a processor; and

memory having instruction that when executed cause the system to:

generate a 3D virtual model of the intraoral structure of the patient based on first 3D data generated from an intraoral scan of focused light on a surface of the intraoral structure of the patient, wherein the first 3D data includes a finish line of a prepared tooth, the prepared tooth having had dental material removed therefrom;

determine of the 3D virtual model does not include an obscured portion of a surface of the finish line of the prepared tooth, the 3D virtual model including obscuring material that obscures a portion of a finish line of the prepared tooth;

generate, in an automated manner, second 3D data based on the 3D virtual model and including generated data of the portion of the surface of the intraoral structure of the patient including an approximated surface of the portion of the surface of the intraoral structure of the patient that approximates the portion of the surface of the finish line of the prepared tooth of the intraoral structure of the patient; and

combine the second 3D data with the 3D virtual model such that the 3D virtual model includes the approximated surface.

12. The system of claim 11 , wherein the 3D virtual model forms an incomplete closed geometrical form.

13. The system of claim 11 , wherein the second 3D data includes a representation of a prepared tooth.

14. The system of claim 11 , wherein the second 3D data is generated based on the 3D virtual model.

15. The system of claim 11 , wherein the second 3D data is generated based on a cross-sectional profile of the 3D virtual model.

Continuity (15)
Continuation 17247815 · Dec 23, 2020
Continuation 16922630 · Jul 7, 2020
Continuation 16798182 · Feb 21, 2020
Continuation 16433885 · Jun 6, 2019
Continuation 16164092 · Oct 18, 2018
Continuation 15388580 · Dec 22, 2016
Continuation 14882312 · Oct 13, 2015
Continuation 14324784 · Jul 7, 2014
Continuation 13716008 · Dec 14, 2012
Continuation 13227435 · Sep 7, 2011
Continuation 12654762 · Dec 31, 2009
Continuation 12222287 · Aug 6, 2008
Continuation 11349124 · Feb 8, 2006
Provisional Application 60699499 · Jul 15, 2005
Related Publication 20220028532A1 · Jan 27, 2022
Cited By (1)
US 12,198,818