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Text-Guided Style Transfer-Based Image Manipulation Using Multimodal Generative Models

Authors :
Togo, Ren
Kotera, Megumi
1000020524028
Ogawa, Takahiro
1000000218463
Haseyama, Miki
Togo, Ren
Kotera, Megumi
1000020524028
Ogawa, Takahiro
1000000218463
Haseyama, Miki
Publication Year :
2021

Abstract

A new style transfer-based image manipulation framework combining generative networks and style transfer networks is presented in this paper. Unlike conventional style transfer tasks, we tackle a new task, text-guided image manipulation. We realize style transfer-based image manipulation that does not require any reference style images and generate a style image from the user's input sentence. In our method, since an initial reference input sentence for a content image can automatically be given by an image-to-text model, the user only needs to update the reference sentence. This scheme can help users when they do not have any images representing the desired style. Although this text-guided image manipulation is a new challenging task, quantitative and qualitative comparisons showed the superiority of our method.

Details

Database :
OAIster
Notes :
English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1375199867
Document Type :
Electronic Resource