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3 months ago

Adversarially-Guided Portrait Matting

Sergej Chicherin Karen Efremyan

Adversarially-Guided Portrait Matting

Abstract

We present a method for generating alpha mattes using a limited data source. We pretrain a novel transformerbased model (StyleMatte) on portrait datasets. We utilize this model to provide image-mask pairs for the StyleGAN3-based network (StyleMatteGAN). This network is trained unsupervisedly and generates previously unseen imagemask training pairs that are fed back to StyleMatte. We demonstrate that the performance of the matte pulling network improves during this cycle and obtains top results on the human portraits and state-of-the-art metrics on animals dataset. Furthermore, StyleMatteGAN provides high-resolution, privacy-preserving portraits with alpha mattes, making it suitable for various image composition tasks. Our code is available at https://github.com/chroneus/stylematte

Code Repositories

chroneus/stylematte
Official
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
image-matting-on-am-2kStyleMatte
MAD: 0.0055
MSE: 0.0024
SAD: 9.602
image-matting-on-p3m-10kStyleMatte
MAD: 0.004
MSE: 0.0019
SAD: 6.97

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