Please use this identifier to cite or link to this item: http://dspace.dtu.ac.in:8080/jspui/handle/repository/23020
Title: SEMANTIC REGION-AWARE FACIAL ATTRIBUTE EDITING VIA SEGFORMER PARSING AND DIFFUSION INPAINTING
Authors: NIKHIL
Sethi, Manoj (SUPERVISOR)
Keywords: FACIAL ATTRIBUTE EDITING
SEMANTIC SEGMENTATION
STABLE DIFFUSION
SEGFORMER
CELEBA HQ
INPAINTING
DIFFUSION MODELS
FACE PARSING
Issue Date: May-2026
Series/Report no.: TD-8930;
Abstract: Facial attribute editing, which involves making modifications to a specific area of the face without changing other areas, is still a difficult task due to its inherent nature of being on the cusp of semantic segmentation and generative image synthesis. The existing GAN-based methods, like StarGAN and AttGAN, have issues with controlling the edit's position, while the diffusion-based techniques, which do not employ masks, do not restrict the edit to the proper area. In this work, I introduce SemFaceDiff, which incorporates both capabilities through a transformer-based face parsing followed by latent diffusion-based inpainting in a three-step pipeline. Then, the segmentation mask is improved using morphological binary dilation and Gaussian boundary feathering (σ=7). The actual inpainting is carried out with Stable Diffusion XL Inpainting, which utilizes a pair of CLIP-based prompt encoders. The presented solution allows for editing 11 facial attributes in an iterative fashion and produces photo-realistic results, measured by the high SSIM score, low LPIPS score, and CLIP Faithfulness score.
URI: http://dspace.dtu.ac.in:8080/jspui/handle/repository/23020
Appears in Collections:M.E./M.Tech. Computer Engineering

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