IP Library Granted Patent US 12,246,222
Granted Patent B2
US 12,246,222 · App. 17/750,771 · Granted Mar 11, 2025

Method and system for using artificial intelligence to assign patients to cohorts and dynamically controlling a treatment apparatus based on the assignment during an adaptive telemedical session

Inventor: Steven Mason (Las Vegas, NV)
Assignee: ROM Technologies, Inc.
A63B24/0075A63B21/0058A63B24/0062G06N20/00G16H10/60G16H20/30A63B2022/0094A63B22/0605A63B2024/0093
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Quick Facts
Patent No.
US 12,246,222
App. No.
17/750,771
Granted
Mar 11, 2025
Kind
B2
Abstract

A method includes receiving data pertaining to a user that uses a treatment apparatus to perform a treatment plan. The data includes characteristics of the user, the treatment plan, and a result of the treatment plan. The method includes assigning the user to a cohort representing people having similarities to the characteristics of the user. The method includes receiving second data pertaining to a second user, the second data comprises characteristics of the second user. The method includes determining whether at least some of the characteristics of the second user match with at least some of the characteristics of the user, assigning the second user to the first cohort, and selecting, via a trained machine learning model, the treatment plan for the second user, and controlling, based on the treatment plan, the treatment apparatus while the second user uses the treatment apparatus.

Claims (79)

1. A method comprising:

receiving first data pertaining to a first user that uses an electromechanical machine to perform a treatment plan, wherein the first data comprises characteristics of the first user, the treatment plan, and a result of the treatment plan;

assigning, via one or more machine learning models and based on the first data, the first user to a first cohort of a plurality of cohorts, wherein the one or more machine learning models are trained to assign the first user to the first cohort by comparing the first data of the first user to other data of people previously assigned to the plurality of cohorts, and wherein the first cohort represents the people having an at least one similarity to the characteristics of the first user;

receiving second data pertaining to a second user, wherein the second data comprises characteristics of the second user;

determining whether at least some of the characteristics of the second user match with at least some of the characteristics of the first user assigned to the first cohort;

responsive to determining at least some of the characteristics of the second user match at least some of the characteristics of the first user,

assigning, via the one or more machine learning models, the second user to the first cohort, and

selecting, via the one or more machine learning models, the treatment plan for the second user;

transmitting, from one or more processing devices, a first control instruction to the electromechanical machine, wherein the second user uses the electromechanical machine, and wherein the first control instruction electronically adjusts a pedal radius setting of the electromechanical machine, such adjustment to be in compliance with at least a first range of motion specified in the treatment plan;

receiving third data pertaining to the second user, wherein the third data comprises the first range of motion achieved by the second user performing the treatment plan; and

transmitting, based on the first range of motion achieved by the second user, a second control instruction to the electromechanical machine, wherein the second control instruction electronically adjusts the pedal radius setting of the electromechanical machine, such adjustment to be in compliance with at least a second range of motion specified in the treatment plan.

2. The method of claim 1 , further comprising controlling, based on the treatment plan, the electromechanical machine while the second user uses the electromechanical machine.

3. The method of claim 2 , further comprising:

prior to controlling the electromechanically machine while the second user uses the electromechanical machine, providing to a computing device of a medical professional, during a telemedicine session, a recommendation pertaining to the treatment plan;

receiving, from the computing device, a selection of the treatment plan; and

controlling, based on the treatment plan, the electromechanical machine while the second user uses the electromechanical machine.

4. The method of claim 1 , further comprising:

receiving, from the electromechanical machine, fourth data pertaining to at least some of second characteristics of the second user while the second user uses the electromechanical machine to perform the treatment plan; and

adjusting, via the one or more machine learning models, based at least in part upon the third data and the treatment plan, a parameter of the electromechanical machine.

5. The method of claim 1 , further comprising:

receiving, from the electromechanical machine, fourth data pertaining to at least some of second characteristics of the second user while the second user uses the electromechanical machine to perform the treatment plan;

determining that the at least some of second characteristics of the second user match at least some of characteristics of a third user assigned to a second cohort;

responsive to determining the at least some of second characteristics of the second user match the at least some of characteristics of the third user, assigning the second user to the second cohort and selecting, via the one or more machine learning models, a second treatment plan for the second user, wherein the second treatment plan was performed by the third user; and

controlling, based on the second treatment plan, the electromechanical machine while the second user uses the electromechanical machine.

6. The method of claim 1 , wherein the electromechanical machine used by the first user and the electromechanical machine used by the second user are the same, or the electromechanical machine used by the first user and the electromechanical machine used by the second user are different.

7. The method of claim 2 , wherein the controlling is performed by a server distal from the electromechanical machine.

8. The method of claim 1 , wherein the characteristics of the first user and the second user comprises personal information, performance information, measurement information, or some combination thereof, wherein:

the personal information comprises an age, a weight, a gender, a height, a body mass index, a medical condition, a familial medication history, an injury, a medical procedure, or some combination thereof, the performance information comprises an elapsed time of using the electromechanical machine, an amount of force exerted on a portion of the electromechanical machine, a range of motion achieved on the electromechanical machine, a movement speed of a portion of the electromechanical machine, an indication of a plurality of pain levels using the electromechanical machine, or some combination thereof, and

the measurement information comprises a vital sign, a respiration rate, a heartrate, a temperature, or some combination thereof.

9. The method of claim 1 , wherein the one or more machine learning models are trained, using at least the first data, to compare, in real-time, the second data of the second user to a plurality of data stored in the plurality of cohorts and select the treatment plan that leads to a desired result and that includes characteristics that match at least some of the characteristics of the second user, wherein the plurality of cohorts includes the first cohort.

10. The method of claim 2 , wherein controlling, based on the treatment plan, the electromechanical machine while the second user uses the electromechanical machine further comprises:

transmitting, based on the treatment plan, a control instruction to change a parameter of the electromechanical machine at a particular time to increase a likelihood of a positive effect of continuing to use the electromechanical machine or to decrease a likelihood of a negative effect of continuing to use the electromechanical machine.

11. The method of claim 1 , further comprising:

responsive to determining the at least some of the characteristics of the second user do not match with the at least some of the characteristics of the first user, determining whether at least the at least some of the characteristics of the second user match at least some of the characteristics of a third user assigned to a second cohort;

responsive to determining the at least some of the characteristics of the second user match the at least some of the characteristics of the third user, assigning the second user to the second cohort and selecting, via the one or more machine learning models, a second treatment plan for the second user, wherein the second treatment plan was performed by the third user; and

controlling, based on the second treatment plan, the electromechanical machine while the second user uses the electromechanical machine.

12. A tangible, non-transitory computer-readable medium storing instructions that, when executed, cause one or more processing devices to:

receive first data pertaining to a first user that uses an electromechanical machine to perform a treatment plan, wherein the first data comprises characteristics of the first user, the treatment plan, and a result of the treatment plan;

assign, via one or more machine learning models and based on the first data, the first user to a first cohort of a plurality of cohorts, wherein the one or more machine learning models are trained to assign the first user to the first cohort by comparing the first data of the first user to other data of people previously assigned to the plurality of cohorts, and wherein the first cohort represents the people having an at least one similarity to the characteristics of the first user;

receive second data pertaining to a second user, wherein the second data comprises characteristics of the second user;

determine whether at least some of the characteristics of the second user match with at least some of the characteristics of the first user assigned to the first cohort;

responsive to determining at least some of the characteristics of the second user match at least some of the characteristics of the first user,

assign, via the one or more machine learning models, the second user to the first cohort, and

select, via the one or more machine learning models, the treatment plan for the second user;

transmit, from at least one of the one or more processing devices, a first control instruction to the electromechanical machine, wherein the second user uses the electromechanical machine, and the first control instruction electronically adjusts a pedal radius setting of the electromechanical machine, such adjustment to be in compliance with at least a first range of motion specified in the treatment plan;

receive third data pertaining to the second user, wherein the third data comprises the first range of motion achieved by the second user performing the treatment plan; and

transmit, based on the first range of motion achieved by the second user, a second control instruction to the electromechanical machine, wherein the second control instruction electronically adjusts the pedal radius setting of the electromechanical machine, such adjustment to be in compliance with at least a second range of motion specified in the treatment plan.

13. The computer-readable medium of claim 12 , wherein the instructions further cause the one or more processing devices to control, based on the treatment plan, the electromechanical machine while the second user uses the electromechanical machine.

14. The computer-readable medium of claim 13 , wherein the instructions further cause the one or more processing devices to:

prior to controlling the electromechanical machine while the second user uses the electromechanical machine, provide to a computing device of a medical professional, during a telemedicine session, a recommendation pertaining to the treatment plan;

receive, from the computing device, a selection of the treatment plan; and

control, based on the treatment plan, the electromechanical machine while the second user uses the electromechanical machine.

15. The computer-readable medium of claim 12 , wherein the instructions further cause the one or more processing devices to:

receive, from the electromechanical machine, fourth data pertaining to at least some of second characteristics of the second user while the second user uses the electromechanical machine to perform the treatment plan; and

adjust, via the one or more machine learning models, based at least in part upon the third data and the treatment plan, a parameter of the electromechanical machine.

16. The computer-readable medium of claim 12 , wherein the instructions further cause the one or more processing devices to:

receive, from the electromechanical machine, fourth data pertaining to at least some of second characteristics of the second user while the second user uses the electromechanical machine to perform the treatment plan;

determine that the at least some of second characteristics of the second user match at least some of characteristics of a third user assigned to a second cohort;

responsive to determining the at least some of second characteristics of the second user match the at least some of characteristics of the third user, assign the second user to the second cohort and select, via the one or more machine learning models, a second treatment plan for the second user, wherein the second treatment plan was performed by the third user; and

control, based on the second treatment plan, the electromechanical machine while the second user uses the electromechanical machine.

17. The computer-readable medium of claim 12 , wherein the electromechanical machine used by the first user and the electromechanical machine used by the second user are the same, or the electromechanical machine used by the first user and the electromechanical machine used by the second user are different.

18. A system comprising:

a memory device storing instructions; and

one or more processing devices communicatively coupled to the memory device, the one or more processing devices execute the instructions to:

receive first data pertaining to a first user that uses an electromechanical machine to perform a treatment plan, wherein the first data comprises characteristics of the first user, the treatment plan, and a result of the treatment plan;

assign, via one or more machine learning models and based on the first data, the first user to a first cohort of a plurality of cohorts, wherein the one or more machine learning models are trained to assign the first user to the first cohort by comparing the first data of the first user to other data of people previously assigned to the plurality of cohorts, and wherein the first cohort represents the people having an at least one similarity to the characteristics of the first user;

receive second data pertaining to a second user, wherein the second data comprises characteristics of the second user;

determine whether at least some of the characteristics of the second user match with at least some of the characteristics of the first user assigned to the first cohort;

responsive to determining at least some of the characteristics of the second user match at least some of the characteristics of the first user,

assign, via the one or more machine learning models the second user to the first cohort, and

select, via the one or more machine learning models, the treatment plan for the second user;

transmit a first control instruction to the electromechanical machine, wherein the second user uses the electromechanical machine, and wherein the first control instruction electronically adjusts a pedal radius setting of the electromechanical machine, such adjustment to be in compliance with at least a first range of motion specified in the treatment plan;

receive third data pertaining to the second user, wherein the third data comprises the first range of motion achieved by the second user performing the treatment plan; and

transmit, based on the first range of motion achieved by the second user, a second control instruction to the electromechanical machine, wherein the second control instruction electronically adjusts the pedal radius setting of the electromechanical machine, such adjustment to be in compliance with at least a second range of motion specified in the treatment plan.

19. The system of claim 18 , wherein the one or more processing devices further execute the instructions to control, based on the treatment plan, the electromechanical machine while the second user uses the electromechanical machine.

20. The system of claim 19 , wherein the one or more processing devices further execute the instructions to:

prior to controlling the electromechanical machine while the second user uses the electromechanical machine, provide to a computing device of a medical professional, during a telemedicine session, a recommendation pertaining to the treatment plan;

receive, from the computing device, a selection of the treatment plan; and

control, based on the treatment plan, the electromechanical machine while the second user uses the electromechanical machine.

Assignments (1)
CHANGE OF NAME Recorded Mar 10, 2025
From: MASON, STEVEN
To: ROM TECHNOLOGIES, INC.
Reel/Frame 070458/0275 →
Continuity (6)
Continuation In Part 17739906 · May 9, 2022
Continuation 17150938 · Jan 15, 2021
Continuation In Part 17021895 · Sep 15, 2020
Continuation 16876472 · May 18, 2020
Provisional Application 62910232 · Oct 3, 2019
Related Publication 20220288460A1 · Sep 15, 2022
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