PREDICTING RECURRENCE IN EARLY STAGE NON-SMALL CELL LUNG CANCER (NSCLC) WITH INTEGRATED RADIOMIC AND PATHOMIC FEATURES

Patent №

US 10,846,367

Granted

2020-11-24

Filed 2018

Owner

CASE WESTERN RESERVE UNIVERSITY

Lab

AI components

4

ml · vision · kr · hardware

Assignment

Recorded

Dataset

AIPD

2023_r1 edition

Application

16131570

Embodiments predict early stage NSCLC recurrence, and include processors configured to access a pathology image of a region of tissue demonstrating early stage NSCLC; extract a set of pathomic features from the pathology image; access a radiological image of the region of tissue; extract a set of radiomic features from the radiological image; generate a combined feature set that includes at least one member of the set of pathomic features, and at least one member of the set of radiomic features; compute a probability that the region of tissue will experience NSCLC recurrence based, at least in part, on the combined feature set; and classify the region of tissue as recurrent or non-recurrent based, at least in part, on the probability. Embodiments may display the classification, or generate a personalized treatment plan based on the classification.

Machine learningVisionKnowledge representationAI hardwareG16Z 99/00G06F 18/2132G06F 18/2414G06F 18/2415G06F 18/2451G06N 3/045G06N 3/0464G06N 20/00+24 more

AI classification

Vision1.00
AI hardware0.91
Knowledge representation0.90
Machine learning0.66
Natural language0.34
Planning0.10
Evolutionary computation0.09
Speech0.00

Ownership

CASE WESTERN RESERVE UNIVERSITY

assignment · 470650460

Assignors

MADABHUSHI, ANANT, WANG, XIANGXUE, VAIDYA, PRANJAL, VELCHETI, VAMSIDHAR

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

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