IP Library Granted Patent US 11,694,239
Granted Patent B2
US 11,694,239 · App. 17/522,649 · Granted Jul 4, 2023

Method of optimizing patient-related outcomes

Inventors: Shahram Shawn Dastmalchi (San Ramon, CA); Vishnuvyas Sethumadhavan (Mountain View, CA); Mary Ellen Campana (San Mateo, CA); Robert Derward Rogers (Pleasanton, CA); Imran N. Chaudri (Potomac, MD)
Assignee: APIXIO, INC.
G06Q30/0283G06Q40/08G16H10/20G16H10/60G16H50/70
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Quick Facts
Patent No.
US 11,694,239
App. No.
17/522,649
Granted
Jul 4, 2023
Kind
B2
Abstract

A medical information navigation engine (“MINE”) is provided. In some embodiments, the system computes a current patient encounter vector for a current patient encounter, and then an optimal patient encounter vector is computed by assuming a best case patient encounter in accordance with the organizational objectives. The system is then able to compute the difference between the best case encounter and the current patient encounter. This difference is used to compute a corresponding payoff using an intelligent matrix.

Claims (38)

1. A computer-implemented method for knowledge extraction and exchange, the method implemented by a Medical Information Navigation Engine (“MINE”) including at least one processor, the method comprising:

converting, by the at least one processor, medical information formatted in various formats into a format to facilitate search speed for data queried from the medical information, the medical information associated with a plurality of patients;

generating, by the at least one processor and using the converted medical information, a plurality of patient state timelines, wherein each patient state timeline corresponds to a particular patient of the plurality of patients, wherein each patient state timeline is an ordering of individual states in a time order, and wherein a subset of the plurality of patient state timelines includes at least one state of interest;

generating, by the at least one processor, a plurality of impact measures for each of the plurality of patient state timelines, wherein each impact measure is a cost of services provided at a given time to transition from one state to another;

generating, by the at least one processor, a probability distribution of future impacts by summing all impact measures after the at least one state of interest occurs for each of the subset of the plurality of patient state timelines;

generating, by the at least one processor, a suggestion model by analyzing the probability distribution of future impacts to select actions that change a likelihood of a future outcome that maximizes at least one organizational objective; and

applying, by the at least one processor, the suggestion model to one patient state timeline to generate recommendations for the corresponding patient.

2. The computer-implemented method of claim 1 further comprising receiving, by the at least one processor from a plurality of medical data sources, the medical information for the plurality of patients.

3. The computer-implemented method of claim 1 further comprising identifying, by the at least one processor, the at least one state of interest included in the subset of the plurality of patient state timelines.

4. The computer-implemented method of claim 1 further comprising aligning, by the at least one processor, the subset of the plurality of patient state timelines at a time when the state of interest occurs.

5. The computer-implemented method of claim 1 , wherein the at least one organizational objective includes safety, quality of life measure, and reduction of net present cost.

6. The computer-implemented method of claim 1 , wherein the actions include at least one of a healthcare provider action, a care manager action, and a patient action.

7. The computer-implemented method of claim 1 further comprising applying, by the at least one processor, the suggestion model to each of the subset of the plurality of patient state timelines to generate a set of actions for a cohort.

8. A Medical Information Navigation Engine (“MINE”) including at least one hardware processor configured to:

convert medical information formatted in various formats into a format to facilitate search speed for data queried from the medical information, the medical information associated with a plurality of patients;

generate, using the converted medical information, a plurality of patient state timelines, wherein each patient state timeline corresponds to a particular patient of the plurality of patients, wherein each patient state timeline is an ordering of individual states in a time order, and wherein a subset of the plurality of patient state timelines includes at least one state of interest;

generate a plurality of impact measures for each of the plurality of patient state timelines, wherein each impact measure is a cost of services provided at a given time to transition from one state to another;

generate a probability distribution of future impacts by summing all impact measures after the at least one state of interest occurs for each of the subset of the plurality of patient state timelines;

generate a suggestion model by analyzing the probability distribution of future impacts to select actions that change a likelihood of a future outcome that maximizes at least one organizational objective; and

apply the suggestion model to one patient state timeline to generate recommendations for the corresponding patient.

9. The MINE of claim 8 , wherein the at least one hardware processor is further configured to receive, from a plurality of medical data sources, the medical information for the plurality of patients.

10. The MINE of claim 8 , wherein the at least one hardware processor is further configured to identify the at least one state of interest included in the subset of the plurality of patient state timelines.

11. The MINE of claim 8 , wherein the at least one hardware processor is further configured to align the subset of the plurality of patient state timelines at a time when the state of interest occurs.

12. The MINE of claim 8 , wherein the at least one organizational objective includes safety, quality of life measure, and reduction of net present cost.

13. The MINE of claim 8 , wherein the actions include at least one of a healthcare provider action, a care manager action, and a patient action.

14. The MINE of claim 8 , wherein the at least one hardware processor is further configured to apply the suggestion model to each of the subset of the plurality of patient state timelines to generate a set of actions for a cohort.

15. At least one non-transitory computer-readable medium including computer-executable instructions that when executed by at least one processor of a Medical Information Navigation Engine (“MINE”) cause the at least one processor to:

convert medical information formatted in various formats into a format to facilitate search speed for data queried from the medical information, the medical information associated with a plurality of patients;

generate, using the converted medical information, a plurality of patient state timelines, wherein each patient state timeline corresponds to a particular patient of the plurality of patients, wherein each patient state timeline is an ordering of individual states in a time order, and wherein a subset of the plurality of patient state timelines includes at least one state of interest;

generate a plurality of impact measures for each of the plurality of patient state timelines, wherein each impact measure is a cost of services provided at a given time to transition from one state to another;

generate a probability distribution of future impacts by summing all impact measures after the at least one state of interest occurs for each of the subset of the plurality of patient state timelines;

generate a suggestion model by analyzing the probability distribution of future impacts to select actions that change a likelihood of a future outcome that maximizes at least one organizational objective; and

apply the suggestion model to one patient state timeline to generate recommendations for the corresponding patient.

16. The at least one non-transitory computer-readable medium of claim 15 , wherein the computer-executable instructions further cause the at least one processor to receive, from a plurality of medical data sources, the medical information for the plurality of patients.

17. The at least one non-transitory computer-readable medium of claim 15 , wherein the computer-executable instructions further cause the at least one processor to identify the at least one state of interest included in the subset of the plurality of patient state timelines.

18. The at least one non-transitory computer-readable medium of claim 15 , wherein the computer-executable instructions further cause the at least one processor to align the subset of the plurality of patient state timelines at a time when the state of interest occurs.

19. The at least one non-transitory computer-readable medium of claim 15 , wherein the at least one organizational objective includes safety, quality of life measure, and reduction of net present cost.

20. The at least one non-transitory computer-readable medium of claim 15 , wherein the actions include at least one of a healthcare provider action, a care manager action, and a patient action.

Assignments (4)
RELEASE OF SECURITY INTEREST Recorded Aug 30, 2024
From: CHURCHILL AGENCY SERVICES LLC
To: APIXIO, LLC (F/K/A APIXIO INC.)
Reel/Frame 068453/0713 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 12, 2023
From: DASTMALCHI, SHAHRAM SHAWN; SETHUMADHAVAN, VISHNUVYAS; CAMPANA, MARY ELLEN; ROGERS, ROBERT DERWARD; CHAUDRI, IMRAN N.
To: APIXIO, INC.
Reel/Frame 064223/0109 →
ENTITY CONVERSION Recorded Jul 12, 2023
From: APIXIO INC.
To: APIXIO, LLC
Reel/Frame 064259/0006 →
SECURITY INTEREST Recorded Jun 13, 2023
From: APIXIO INC.
To: CHURCHILL AGENCY SERVICES LLC
Reel/Frame 063928/0847 →
Continuity (5)
Continuation 13801947 · Mar 13, 2013
Continuation In Part 13223228 · Aug 31, 2011
Provisional Application 61639805 · Apr 27, 2012
Provisional Application 61379228 · Sep 1, 2010
Related Publication 20220101395A1 · Mar 31, 2022