GENERALIZED MULTI-CHANNEL MRI RECONSTRUCTION USING DEEP NEURAL NETWORKS

Patent №

US 10,692,250

Granted

2020-06-23

Filed 2019

Owner

THE BOARD OF TRUSTEES OF THE LELAND STANFORD JUNIOR UNIVERSITY

AI components

2

ml · vision

Assignment

Recorded

Dataset

AIPD

2023_r1 edition

Application

16260921

A method for magnetic resonance imaging acquires multi-channel subsampled k-space data using multiple receiver coils; performs singular-value-decomposition on the multi-channel subsampled k-space data to produce compressed multi-channel k-space data which normalizes the multi-channel subsampled k-space data; applies a first center block of the compressed multi-channel k-space data as input to a first convolutional neural network to produce a first estimated k-space center block that includes estimates of k-space data missing from the first center block; generates an n-th estimated k-space block by repeatedly applying an (n−1)-th estimated k-space center block combined with an n-th center block of the compressed multi-channel k-space data as input to an n-th convolutional neural network to produce an n-th estimated k-space center block that includes estimates of k-space data missing from the n-th center block; reconstructs image-space data from the n-th estimated k-space block.

Machine learningVisionG06T 12/10G01R 33/4826G01R 33/5608G01R 33/5611G06N 3/045G06N 3/0464G06N 3/08G06N 3/09+1 more

AI classification

Machine learning1.00
Vision1.00
AI hardware0.32
Speech0.06
Knowledge representation0.00
Evolutionary computation0.00
Natural language0.00
Planning0.00

Ownership

THE BOARD OF TRUSTEES OF THE LELAND STANFORD JUNIOR UNIVERSITY

assignment · 481680943

Assignors

CHENG, JOSEPH YITAN, MARDANI KORANI, MORTEZA, PAULY, JOHN M., VASANAWALA, SHREYAS S.

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

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