Papers › StyleCLIP: Text-Driven Manipulation of StyleGAN Imagery

StyleCLIP: Text-Driven Manipulation of StyleGAN Imagery

31 Mar 2021ICCV 2021 10arXiv:2103.17249archive 2025-07-28

Or Patashnik, Zongze Wu, Eli Shechtman, Daniel Cohen-Or, Dani Lischinski

Inspired by the ability of StyleGAN to generate highly realistic images in a variety of domains, much recent work has focused on understanding how to use the latent spaces of StyleGAN to manipulate generated and real images. However, discovering semantically meaningful latent manipulations typically involves painstaking human examination of the many degrees of freedom, or an annotated collection of images for each desired manipulation. In this work, we explore leveraging the power of recently introduced Contrastive Language-Image Pre-training (CLIP) models in order to develop a text-based interface for StyleGAN image manipulation that does not require such manual effort. We first introduce an optimization scheme that utilizes a CLIP-based loss to modify an input latent vector in response to a user-provided text prompt. Next, we describe a latent mapper that infers a text-guided latent manipulation step for a given input image, allowing faster and more stable text-based manipulation. Finally, we present a method for mapping a text prompts to input-agnostic directions in StyleGAN's style space, enabling interactive text-driven image manipulation. Extensive results and comparisons demonstrate the effectiveness of our approaches.

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Code

Syntology Ran 7 of 11 code samples harvested from 2 repositories linked to this paper; 4 have no recorded run. Of those that ran: 1 ran · our draft was wrong; 6 ran with no contract checked.

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orpatashnik/StyleCLIP officialmentioned in papermentioned on GitHubpytorch report
futscdav/Chunkmogrify mentioned on GitHubpytorch report
happy-jihye/Cartoon-StyleGAN mentioned on GitHubpytorch report
happy-jihye/Cartoon-StyleGan2 mentioned on GitHubpytorch report

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Code Syntology ran Syntology

11 samples harvested; 7 ran; 0 honoured the contract we drafted; 4 have no recorded run. Read from Syntology's graph 2026-09-24; that is when this build read the record, not when the samples ran.

1ran · our draft was wrong
6ran
4unverified

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EqualLinear orpatashnik/StyleCLIP/mapper/styleclip_mapper.py official repository ran MIT (permissive) · 4f91f5287f2bccb5 · report
ModulatedConv2d orpatashnik/StyleCLIP/mapper/styleclip_mapper.py official repository ran MIT (permissive) · b398ec20195c1d95 · report
Generator orpatashnik/StyleCLIP/mapper/styleclip_mapper.py official repository unverified MIT (permissive) · ebb80a3f61cb7a50 · report
StyleCLIPMapper orpatashnik/StyleCLIP/mapper/styleclip_mapper.py official repository unverified MIT (permissive) · 7a9530e00278c641 · report
StyledConv orpatashnik/StyleCLIP/mapper/styleclip_mapper.py official repository unverified MIT (permissive) · 8f3b9dd81d86b5eb · report
ToRGB orpatashnik/StyleCLIP/mapper/styleclip_mapper.py official repository unverified MIT (permissive) · bc13e5e23103e209 · report
LevelsMapper futscdav/Chunkmogrify/styleclip_mapper.py community (archive-listed) ran MIT (permissive) · 5af8549bf22e22cd · report
Mapper futscdav/Chunkmogrify/styleclip_mapper.py community (archive-listed) ran MIT (permissive) · d125a9b4a7b263b1 · report
SingleMapper futscdav/Chunkmogrify/styleclip_mapper.py community (archive-listed) ran MIT (permissive) · 74dccf57f42f8ea1 · report
StyleCLIPMapper futscdav/Chunkmogrify/styleclip_mapper.py community (archive-listed) ran MIT (permissive) · c77809a5b3af62c6 · report
get_keys identical code first harvested elsewhere ran · our draft was wrong licence of this copy not recorded · 29b9a890f149a3a6 · report

Tasks

Image Manipulation

Results from the paper archive 2025-07-28

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Methods

Adaptive Instance NormalizationConvolutionDense ConnectionsFeedforward NetworkR1 RegularizationStyleGAN

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