Fuzzy-Conditioned Diffusion and Diffusion Projection Attention Applied to Facial Image Correction
Open access
Autor(in)
Datum
2023Typ
- Conference Paper
ETH Bibliographie
yes
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Abstract
Image diffusion has recently shown remarkable performance in image synthesis and implicitly as an image prior. Such a prior has been used with conditioning to solve the inpainting problem, but only supporting binary user-based conditioning.
We derive a fuzzy-conditioned diffusion, where implicit diffusion priors can be exploited with controllable strength. Our fuzzy conditioning can be applied pixel-wise, enabling the modification of different image components to varying degrees. Additionally, we propose an application to facial image correction, where we combine our fuzzy-conditioned diffusion with diffusion-derived attention maps. Our map estimates the degree of anomaly, and we obtain it by projecting on the diffusion space. We show how our approach also leads to interpretable and autonomous facial image correction. Mehr anzeigen
Persistenter Link
https://doi.org/10.3929/ethz-b-000624777Publikationsstatus
publishedExterne Links
Buchtitel
2023 IEEE International Conference on Image Processing (ICIP)Seiten / Artikelnummer
Verlag
IEEEKonferenz
Thema
Image-conditioned diffusion; Fuzzy conditioning; Diffusion projection; Autonomous image correctionOrganisationseinheit
02154 - Media Technology Center (MTC) / Media Technology Center (MTC)
Zugehörige Publikationen und Daten
Is supplemented by: https://github.com/majedelhelou/FC-Diffusion
Anmerkungen
Code: https://github.com/majedelhelou/FC-DiffusionETH Bibliographie
yes
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