INDIVIDUAL AND COHORT PHARMACOLOGICAL PHENOTYPE PREDICTION PLATFORM

Patent №

US 10,553,318

Granted

2020-02-04

Filed 2019

Owner

THE REGENTS OF THE UNIVERSITY OF MICHIGAN

Lab

AI components

6

ml · nlp · vision · planning · evo · hardware

Assignment

Recorded

Dataset

AIPD

2023_r1 edition

Application

16267546

For patients who exhibit or may exhibit primary or comorbid disease, pharmacological phenotypes may be predicted through the collection of panomic data over a period of time. A machine learning engine may generate a statistical model based on training data from training patients to predict pharmacological phenotypes, including drug response and dosing, drug adverse events, disease and comorbid disease risk, drug-gene, drug-drug, and polypharmacy interactions. Then the model may be applied to data for new patients to predict their pharmacological phenotypes, and enable decision making in clinical and research contexts, including drug selection and dosage, changes in drug regimens, polypharmacy optimization, monitoring, etc., to benefit from additional predictive power, resulting in adverse event and substance abuse avoidance, improved drug response, better patient outcomes, lower treatment costs, public health benefits, and increases in the effectiveness of research in pharmacology and other biomedical fields.

Machine learningNatural languageVisionPlanningEvolutionary computationAI hardwareG16H 50/20A61K 31/37G06N 3/09G06N 3/092G06N 3/094G06N 3/096G06N 3/098G16B 20/00+8 more

AI classification

Machine learning1.00
Planning1.00
AI hardware0.99
Natural language0.80
Vision0.74
Evolutionary computation0.69
Knowledge representation0.47
Speech0.00

Ownership

THE REGENTS OF THE UNIVERSITY OF MICHIGAN

assignment · 482370509

Assignors

ATHEY, BRIAN D., ALLYN-FEUER, ARI, HIGGINS, GERALD A., BURNS, JAMES S., KALININ, ALEXANDR, PAULS, BRIAN, ADE, ALEX, REAMAROON, NARATHIP

On an employer assignment, the assignors are typically the inventors.

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