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Open-Edit: Open-Domain Image Manipulation with Open-Vocabulary Instructions

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arxiv 2008.01576 v2 pith:7CBXFCL4 submitted 2020-08-04 cs.CV

classification cs.CV
keywords imageimagesapproachmanipulatedopen-domainopen-vocabularyfeatureinstructions
verification ladder T0 review T1 audit T2 compute T3 formal
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We propose a novel algorithm, named Open-Edit, which is the first attempt on open-domain image manipulation with open-vocabulary instructions. It is a challenging task considering the large variation of image domains and the lack of training supervision. Our approach takes advantage of the unified visual-semantic embedding space pretrained on a general image-caption dataset, and manipulates the embedded visual features by applying text-guided vector arithmetic on the image feature maps. A structure-preserving image decoder then generates the manipulated images from the manipulated feature maps. We further propose an on-the-fly sample-specific optimization approach with cycle-consistency constraints to regularize the manipulated images and force them to preserve details of the source images. Our approach shows promising results in manipulating open-vocabulary color, texture, and high-level attributes for various scenarios of open-domain images.

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