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SDEdit: Guided Image Synthesis and Editing with Stochastic Differential Equations

About

Guided image synthesis enables everyday users to create and edit photo-realistic images with minimum effort. The key challenge is balancing faithfulness to the user input (e.g., hand-drawn colored strokes) and realism of the synthesized image. Existing GAN-based methods attempt to achieve such balance using either conditional GANs or GAN inversions, which are challenging and often require additional training data or loss functions for individual applications. To address these issues, we introduce a new image synthesis and editing method, Stochastic Differential Editing (SDEdit), based on a diffusion model generative prior, which synthesizes realistic images by iteratively denoising through a stochastic differential equation (SDE). Given an input image with user guide of any type, SDEdit first adds noise to the input, then subsequently denoises the resulting image through the SDE prior to increase its realism. SDEdit does not require task-specific training or inversions and can naturally achieve the balance between realism and faithfulness. SDEdit significantly outperforms state-of-the-art GAN-based methods by up to 98.09% on realism and 91.72% on overall satisfaction scores, according to a human perception study, on multiple tasks, including stroke-based image synthesis and editing as well as image compositing.

Chenlin Meng, Yutong He, Yang Song, Jiaming Song, Jiajun Wu, Jun-Yan Zhu, Stefano Ermon• 2021

Related benchmarks

TaskDatasetResultRank
Image EditingPIE-Bench
PSNR22.57
215
Object DetectionARCADE real (test)
mAP@0.546.5
49
Object DetectionMulti-center Internal real (test)
mAP@0.567.5
48
Gaussian DeblurringFFHQ 256x256 (val)
LPIPS0.291
48
Image InpaintingFFHQ 256x256 (val)
FID47.24
42
Image EditingUser Study 100 images (test)
User Selection Rate14.5
32
Audio EditingAudioCaps
FD (Frechet Distance)73.85
24
Image-to-Image TranslationEdges -> Handbags 64 x 64 (test)
FID26.5
21
Video EditingTGVE benchmark
ViCLIPdir17.2
20
Motion DeblurringFFHQ 256x256 (val)
FID42.35
19
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