METHOD AND SYSTEM FOR COMBINING AUTOMATED DETECTIONS FROMDIGITAL MAMMOGRAMS WITH OBSERVED DETECTIONS OF A HUMANINTERPRETER

Patent №

US 6,115,488

Granted

2000-09-05

Filed 1999

Owner

QUALIA COMPUTING, INC.

Lab

AI components

3

ml · vision · kr

Assignment

Recorded

Dataset

AIPD

2023_r1 edition

Application

09418382

A method and system for detecting and displaying clustered microcalcifications in a digital mammogram, wherein a single digital mammogram is first automatically cropped to a breast area sub-image which is then processed by means of an optimized Difference of Gaussians filter to enhance the appearance of potential microcalcifications in the sub-image. The potential microcalcifications are thresholded, clusters are detected, features are computed for the detected clusters, and the clusters are classified as either suspicious or not suspicious by means of a neural network. Thresholding is preferably by sloping local thresholding, but may also be performed by global and dual-local thresholding. The locations in the original digital mammogram of the suspicious detected clustered microcalcifications are indicated. Parameters for use in the detection and thresholding portions of the system are computer-optimized by means of a genetic algorithm. The results of the system are optimally combined with a radiologist's observation of the original mammogram by combining the observations with the results, after the radiologist has first accepted or rejected individual detections reported by the system.

Machine learningVisionKnowledge representationB25J 15/04G06F 18/41G06T 5/20G06T 7/0012G06V 10/28G06V 10/443A61B 6/502B29C 2791/006+4 more

AI classification

Vision1.00
Machine learning0.93
Knowledge representation0.69
Natural language0.00
AI hardware0.00
Planning0.00
Speech0.00
Evolutionary computation0.00

Ownership

QUALIA COMPUTING, INC.

assignment · 134670386

Assignors

ROGERS, STEVEN K., BROUSSARD, RANDY P., OCHOA, EDWARD M., RATHBUN, THOMAS F., ROSENSTENGEL, JOHN E., AMBURN, PHILIP, BERKEY, TELFORD, DESIMIO, MARTIN P., HOFFMEISTER, JEFFREY W.

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

From the same owner

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