METHODS, SYSTEMS, AND MEDIA FOR RELIGHTING IMAGES USING PREDICTED DEEP REFLECTANCE FIELDS

Patent №

US 10,997,457

Granted

2021-05-04

Filed 2019

Owner

GOOGLE LLC

AI components

4

ml · vision · evo · hardware

Assignment

Recorded

Dataset

AIPD

2023_r1 edition

Application

16616235

Methods, systems, and media for relighting images using predicted deep reflectance fields are provided. In some embodiments, the method comprises: identifying a group of training samples, wherein each training sample includes (i) a group of one-light-at-a-time (OLAT) images that have each been captured when one light of a plurality of lights arranged on a lighting structure has been activated, (ii) a group of spherical color gradient images that have each been captured when the plurality of lights arranged on the lighting structure have been activated to each emit a particular color, and (iii) a lighting direction, wherein each image in the group of OLAT images and each of the spherical color gradient images are an image of a subject, and wherein the lighting direction indicates a relative orientation of a light to the subject; training a convolutional neural network using the group of training samples, wherein training the convolutional neural network comprises: for each training iteration in a series of training iterations and for each training sample in the group of training samples: generating an output predicted image, wherein the output predicted image is a representation of the subject associated with the training sample with lighting from the lighting direction associated with the training sample; identifying a ground-truth OLAT image included in the group of OLAT images for the training sample that corresponds to the lighting direction for the training sample; calculating a loss that indicates a perceptual difference between the output predicted image and the identified ground-truth OLAT image; and updating parameters of the convolutional neural network based on the calculated loss; identifying a test sample that includes a second group of spherical color gradient images and a second lighting direction; and generating a relit image of the subject included in each of the second group of spherical color gradient images with lighting from the second lighting direction using the trained convolutional neural network.

Machine learningVisionEvolutionary computationAI hardwareG06T 15/506G06F 18/214G06N 3/045G06N 3/0455G06N 3/0464G06N 3/08G06N 3/09G06T 7/00+5 more

AI classification

Vision1.00
Machine learning1.00
AI hardware1.00
Evolutionary computation0.69
Natural language0.36
Knowledge representation0.14
Planning0.07
Speech0.00

Ownership

GOOGLE LLC

assignment · 558320248

Assignors

WHALEN, MATTHEW, BUSCH, JESSICA LYNN, BOUAZIZ, SOFIEN, HARVEY, GEOFFREY DOUGLAS, TAGLIASACCHI, ANDREA, TAYLOR, JONATHAN, RHEMANN, CHRISTOPH, DEBEVEC, PAUL, DENNY, PETER JOSEPH, FYFFE, GRAHAM, DOURGARIAN, JASON ANGELO, YU, XUEMING, +8 more

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

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