IP Library Granted Patent US 12,347,558
Granted Patent B2
US 12,347,558 · App. 17/556,458 · Granted Jul 1, 2025

Method and system for using artificial intelligence and machine learning to provide recommendations to a healthcare provider in or near real-time during a telemedicine session

Inventors: Steven Mason (Las Vegas, NV); Daniel Posnack (Fort Lauderdale, FL); Peter Arn (Roxbury, CT); Wendy Para (Las Vegas, NV); S. Adam Hacking (Nashua, NH); Micheal Mueller (Oil City, PA); Joseph Guaneri (Merrick, NY); Jonathan Greene (Denver, CO)
Assignee: ROM Technologies, Inc.
G16H50/20A61B5/02055A61B5/7267A61B5/7465G16H20/70G16H80/00A61B5/0022A61B5/021A61B5/02438A61B5/0816A61B5/14542A61B5/222A61B2505/09
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Quick Facts
Patent No.
US 12,347,558
App. No.
17/556,458
Granted
Jul 1, 2025
Kind
B2
Abstract

A computer-implemented system includes a treatment device configured to be manipulated by a user while the user performs a treatment plan, a patient interface, and a computing device configured to: receive treatment; write to an associated memory, configured to be accessed by an artificial intelligence engine, treatment data, the artificial intelligence engine being configured to use at least one machine learning model to, using the treatment data, generate at least one of a treatment scheduling output prediction and an appointment output; receive, from the artificial intelligence engine, the at least one of the treatment scheduling output prediction and the appointment output; and selectively modify, using the at least one of the treatment scheduling output prediction and the appointment output, the at least one aspect of the treatment plan.

Claims (32)

1. A computer-implemented system, comprising:

an electromechanical machine comprising at least one pedal, wherein the electromechanical machine is configured to be manipulated by a user while the user performs a treatment plan;

a patient interface comprising an output device; and

a computing device configured to:

receive treatment data pertaining to a user who uses the electromechanical machine to perform the treatment plan, wherein the treatment data comprises at least one aspect of the treatment plan, wherein the at least one aspect of the treatment plan includes at least one of a treatment schedule and at least one appointment, wherein an artificial intelligence engine is configured to use at least one machine learning model to generate, using the treatment data, at least one of a treatment scheduling output prediction and an appointment output;

receive, from the artificial intelligence engine, the at least one of the treatment scheduling output prediction and the appointment output; and

selectively modify, using the at least one of the treatment scheduling output prediction and the appointment output, the at least one aspect of the treatment plan.

2. The computer-implemented system of claim 1 , wherein at least some of the treatment data corresponds to at least some sensor data from a sensor associated with the electromechanical device.

3. The computer-implemented system of claim 1 , wherein at least some of the treatment data corresponds to at least some sensor data from a sensor associated with a wearable device worn by the user while the user uses the electromechanical device.

4. The computer-implemented system of claim 1 , wherein the treatment data comprises measurement information including, while the user uses the electromechanical device, at least one of a vital sign of the user, a respiration rate of the user, a heartrate of the user, a temperature of the user, a blood pressure of the user, a blood oxygen level (e.g., SpO2) of the user, and microbiome information of the user.

5. The computer-implemented system of claim 1 , wherein the at least one machine learning model includes a deep network comprising multiple levels of non-linear operations.

6. The computer-implemented system of claim 1 , wherein the computing device is further configured to receive other treatment data pertaining to at least one other user who uses at least one of the electromechanical device or another electromechanical device to perform another treatment plan, wherein the other treatment data comprises at least one of characteristics of the at least one other user, measurement information pertaining to the at least one other user, characteristics of the at least one of the electromechanical device and the other electromechanical device, and at least one aspect of the other treatment plan, wherein the at least one aspect of the other treatment plan corresponds to the at least one aspect of the treatment plan, and wherein the at least one aspect of the other treatment plan includes at least one of a treatment schedule and at least one appointment.

7. A method comprising:

receiving treatment data pertaining to a user who uses an electromechanical device to perform a treatment plan, wherein the electromechanical machine comprises at least one pedal, wherein the treatment data comprises at least one aspect of the treatment plan, wherein the at least one aspect of the treatment plan includes at least one of a treatment schedule and at least one appointment, and wherein an artificial intelligence engine is configured to use at least one machine learning model to generate, using the treatment data, at least one of a treatment scheduling output prediction and an appointment output;

receiving, from the artificial intelligence engine, the at least one of the treatment scheduling output prediction and the appointment output; and

selectively modifying, using the at least one of the treatment scheduling output prediction and the appointment output, the at least one aspect of the treatment plan.

8. The method of claim 7 , wherein at least some of the treatment data corresponds to at least some sensor data from a sensor associated with the electromechanical device.

9. The method of claim 7 , wherein at least some of the treatment data corresponds to at least some sensor data from a sensor associated with a wearable device worn by the user while the user uses the electromechanical device.

10. The method of claim 7 , wherein the treatment data comprises measurement information including, while the user uses the electromechanical device, at least one of a vital sign of the user, a respiration rate of the user, a heartrate of the user, a temperature of the user, a blood pressure of the user, a blood oxygen level (e.g., SpO2) of the user, and microbiome information of the user.

11. The method of claim 7 , wherein the at least one machine learning model includes a deep network comprising multiple levels of non-linear operations.

12. The method of claim 7 , further comprising receiving other treatment data pertaining to at least one other user who uses at least one of the electromechanical device or another electromechanical device to perform another treatment plan, wherein the other treatment data comprises at least one of characteristics of the at least one other user, measurement information pertaining to the at least one other user, characteristics of the at least one of the electromechanical device and the other electromechanical device, and at least one aspect of the other treatment plan, wherein the at least one aspect of the other treatment plan corresponds to the at least one aspect of the treatment plan, and wherein the at least one aspect of the other treatment plan includes at least one of a treatment schedule and at least one appointment.

13. The method of claim 12 , further comprising determining, using the artificial intelligence engine using the at least one machine learning model, whether to group the user with the at least one other user.

14. The method of claim 13 , wherein grouping the user with the at least one other user includes at least associating the at least one of the treatment schedule and the at least one appointment of the treatment plan with the at least one of the treatment schedule and the at least one appointment of the other treatment plan.

15. A tangible, non-transitory computer-readable medium storing instructions that, when executed, cause a processing device to:

receive treatment data pertaining to a user who uses an electromechanical device to perform a treatment plan, wherein the electromechanical machine comprises at least one pedal, wherein the treatment data comprises at least one aspect of the treatment plan, wherein the at least one aspect of the treatment plan includes at least one of a treatment schedule and at least one appointment, and wherein an artificial intelligence engine is configured to use at least one machine learning model to generate, using the treatment data, at least one of a treatment scheduling output prediction and an appointment output;

receive, from the artificial intelligence engine, the at least one of the treatment scheduling output prediction and the appointment output; and

selectively modify, using the at least one of the treatment scheduling output prediction and the appointment output, the at least one aspect of the treatment plan.

16. The computer-readable medium of claim 15 , wherein at least some of the treatment data corresponds to at least some sensor data from a sensor associated with the electromechanical device.

17. The computer-readable medium of claim 15 , wherein at least some of the treatment data corresponds to at least some sensor data from a sensor associated with a wearable device worn by the user while the user uses the electromechanical device.

18. The computer-readable medium of claim 15 , wherein the treatment data comprises measurement information including, while the user uses the electromechanical device, at least one of a vital sign of the user, a respiration rate of the user, a heartrate of the user, a temperature of the user, a blood pressure of the user, a blood oxygen level (e.g., SpO2) of the user, and microbiome information of the user.

19. The computer-readable medium of claim 15 , wherein the at least one machine learning model includes a deep network comprising multiple levels of non-linear operations.

20. The computer-readable medium of claim 15 , wherein the processing device is further configured to receive other treatment data pertaining to at least one other user who uses at least one of the electromechanical device or another electromechanical device to perform another treatment plan, wherein the other treatment data comprises at least one of characteristics of the at least one other user, measurement information pertaining to the at least one other user, characteristics of the at least one of the electromechanical device and the other electromechanical device, and at least one aspect of the other treatment plan, wherein the at least one aspect of the other treatment plan corresponds to the at least one aspect of the treatment plan, and wherein the at least one aspect of the other treatment plan includes at least one of a treatment schedule and at least one appointment.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 14, 2025
From: MASON, STEVEN; POSNACK, DANIEL; ARN, PETER; PARA, WENDY; HACKING, S. ADAM
To: ROM TECHNOLOGIES, INC.
Reel/Frame 071112/0720 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 14, 2025
From: GREENE, JONATHAN
To: ROM TECHNOLOGIES, INC.
Reel/Frame 071116/0340 →
CONFIDENTIALITY AND NONDISCLOSURE AGREEMENT (EMPLOYMENT AGREEMENT) Recorded May 14, 2025
From: MUELLER, MICHEAL
To: ROM TECHNOLOGIES, INC.
Reel/Frame 071278/0266 →
CONFIDENTIALITY AND NONDISCLOSURE AGREEMENT (EMPLOYMENT AGREEMENT) Recorded May 14, 2025
From: GUANERI, JOSEPH
To: ROM 3 REHAB, LLC
Reel/Frame 071278/0324 →
CHANGE OF NAME Recorded May 14, 2025
From: ROM 3 REHAB, LLC
To: ROM TECHNOLOGIES, INC.
Reel/Frame 071279/0452 →
Continuity (4)
Continuation 17149695 · Jan 14, 2021
Continuation In Part 17021895 · Sep 15, 2020
Provisional Application 62910232 · Oct 3, 2019
Related Publication 20220115133A1 · Apr 14, 2022
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