IP Library Granted Patent US 11,581,084
Granted Patent B2
US 11,581,084 · App. 17/136,272 · Granted Feb 14, 2023

Systems and methods for generating an alimentary plan for managing skin disorders

Inventor: Kenneth Neumann (Lakewood, CO)
Assignee: KPN INNOVATIONS, LLC.
G16H20/60A61B5/441A61B5/7264G06N3/08G16B40/00G16B50/00G16H10/40G16H10/60G16H50/20G16H50/30G16H50/70G16H70/60A61B5/0077A61B10/02G06N3/04
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Quick Facts
Patent No.
US 11,581,084
App. No.
17/136,272
Granted
Feb 14, 2023
Kind
B2
Abstract

A system for generating an alimentary plan is disclosed. The system comprises a computing device which is configured to receive an input that includes physiological data related to a skin sample. Computing device is configured to extract a plurality of biological indicators related to disease state from the physiological data. Computing device is configured to determine a biological indicator score for each biological score for each biological indicator of the plurality of biological indicators. Computing device is configured to generate a skin disorder classifier by receiving skin disorder training data. The computing device is configured to classify, using the skin disorder classifier, the at least one biological indicator and the biological indicator score to a positive result for a skin disorder. Computing device is configured to generate an alimentary plan as a function of the positive result. A method for generating an alimentary plan is also disclosed.

Claims (72)

1. A system for generating an alimentary plan, the system comprising:

a computing device configured to:

receive an input from a user client device operated by a user, the input comprising physiological data from a skin sample, wherein physiological data comprises:

at least measures of glucose metabolism;

extract a plurality of biological indicators of a disease state from the physiological data, wherein the plurality of biological indicators comprises:

at least one biological indicator related to a disease state comprising at least one skin disorder;

determine a biological indicator score for each biological indicator of the plurality of biological indicators, wherein the biological indicator score for each biological indicator of the plurality of biological indicators correlates to one of a presence or absence of a biological indicator of the plurality of biological indicators;

generate a skin disorder classifier, wherein generating the skin disorder classifier comprises:

receiving skin disorder training data correlating biological indicators of skin disorders and biological indicator scores to skin disorder labels, wherein the skin disorder labels correspond to a disease state; and

training a skin disorder classifier using the skin disorder training data;

classify, using the skin disorder classifier, the at least one biological indicator and the biological indicator score to a positive result for a skin disorder; and

generate an alimentary plan, wherein generating the alimentary plan further comprises:

receiving alimentary plan training data;

training a machine-learning model using the alimentary plan training data, wherein the alimentary plan training data correlates alimentary compositions to effects on skin disorders;

outputting a plurality of alimentary plans as a function of the machine-learning model; and

generating the alimentary plan as a function of the plurality of alimentary plans and the positive result wherein the alimentary plan comprises:

a plurality of alimentary compositions for consumption to prevent skin disorders;

a list of alimentary compositions substitutes when the plurality of alimentary compositions for consumption is not available;

a list of nutritional supplements for consumption to prevent skin disorders;

a plurality of information on how to safely take the nutritional supplements;

a plurality of information on adverse effects of the nutritional supplements; and

set times for consumption of the alimentary compositions.

2. The system of claim 1 , wherein generating the alimentary plan further comprises:

generating a plurality of alimentary compositions as a function of the positive result; and

ordering the plurality of alimentary compositions in descending order as a function of a change in the biological indicator score to a suitable range, wherein the plurality of alimentary compositions with the highest change to the suitable range receives the highest order.

3. The system of claim 2 , wherein the alimentary plan comprises the plurality of alimentary compositions with the highest order.

4. The system of claim 2 , wherein the plurality of alimentary compositions addresses a plurality of skin disorders.

5. The system of claim 1 , wherein the computing device is further configured to-display, on the user client device operated by a user, the alimentary plan as a function of the positive result.

6. The system of claim 5 , wherein generating an alimentary plan further comprises outputting a message independent of the presence of the plurality of alimentary plans.

7. The system of claim 1 , wherein the plurality of biological indicators comprises a diagnostic indicator.

8. The system of claim 1 , wherein the physiological data comprises results of a patch test.

9. The system of claim 1 , wherein the physiological data comprises results of a culture.

10. The system of claim 1 , wherein the computing device is further configured to:

receive a second input;

reclassify the at least one biological indicator and the biological indicator score from the second input to a positive result of a skin disorder;

update the alimentary plan as a function of the second input.

11. A method for generating an alimentary plan, the method comprising:

receiving an input from a user client device operated by a user, the input comprising

physiological data from a skin sample wherein physiological data comprises at least measures of glucose metabolism;

extracting a plurality of biological indicators of a disease state from the physiological data, wherein the plurality of biological indicators comprises:

at least one biological indicator related to a disease state comprising at least one skin disorder;

determining a biological indicator score for each biological indicator of the plurality of biological indicators, wherein the biological indicator score for each biological indicator of the plurality of biological indicators correlates to one of a presence or absence of a biological indicator of the plurality of biological indicators;

generating a skin disorder classifier, wherein generating the skin disorder classifier comprises:

receiving skin disorder training data correlating biological indicators of skin disorders and biological indicator scores to skin disorder labels, wherein the skin disorder labels correspond to a disease state; and

training a skin disorder classifier using the skin disorder training data;

classifying, using the skin disorder classifier, the at least one biological indicator and the biological indicator score to a positive result for a skin disorder; and

generating an alimentary plan, wherein generating the alimentary plan further comprises:

receiving alimentary plan training data;

training a machine-learning model using the alimentary plan training data, wherein the alimentary plan training data correlates alimentary compositions to effects on skin disorders;

outputting a plurality of alimentary plans as a function of the machine-learning model; and

generating the alimentary plan as a function of the plurality of alimentary plans and the positive result wherein the alimentary plan comprises:

a plurality of alimentary compositions for consumption to prevent skin disorders;

a list of alimentary compositions substitutes when the plurality of alimentary compositions for consumption is not available;

a list of nutritional supplements for consumption to prevent skin disorders;

a plurality of information on how to safely take the nutritional supplements;

a plurality of information on adverse effects of the nutritional supplements; and

set times for consumption of the alimentary compositions.

12. The method of claim 11 , wherein generating the alimentary plan further comprises:

generating a plurality of alimentary compositions as a function of the positive result; and

ordering the plurality of alimentary compositions in descending order as a function of a change in the biological indicator score to a suitable range, wherein the plurality of alimentary compositions with the highest change to the suitable range receives the highest order.

13. The method of claim 12 , wherein the alimentary plan comprises the plurality of alimentary compositions with the highest order.

14. The method of claim 12 , wherein the plurality of alimentary compositions address a plurality of skin disorders.

15. The method of claim 11 , wherein generating an alimentary plan comprises:

displaying on the user client device the alimentary plan as a function of the positive result.

16. The method of claim 15 , wherein generating an alimentary plan further comprises outputting a message independent of the presence of the plurality of alimentary plans.

17. The method of claim 11 , wherein the plurality of biological indicators comprise a diagnostic indicator.

18. The method of claim 11 , wherein the physiological data comprises results of a patch test.

19. The method of claim 11 , wherein the physiological data comprises results of a culture.

20. The method of claim 11 , further comprising:

receiving a second input;

reclassifying the at least one biological indicator and the biological indicator score from the second input to a positive result of a skin disorder;

updating the alimentary plan as a function of the second input.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 3, 2021
From: NEUMANN, KENNETH
To: KPN INNOVATIONS, LLC.
Reel/Frame 055482/0883 →
Continuity (1)
Related Publication 20220208344A1 · Jun 30, 2022