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Open AccessProceedings ArticleDOI

A Style-Based Generator Architecture for Generative Adversarial Networks

Tero Karras, +2 more
- pp 4396-4405
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TLDR
This paper proposed an alternative generator architecture for GANs, borrowing from style transfer literature, which leads to an automatically learned, unsupervised separation of high-level attributes (e.g., pose and identity when trained on human faces) and stochastic variation in the generated images.
Abstract
We propose an alternative generator architecture for generative adversarial networks, borrowing from style transfer literature. The new architecture leads to an automatically learned, unsupervised separation of high-level attributes (e.g., pose and identity when trained on human faces) and stochastic variation in the generated images (e.g., freckles, hair), and it enables intuitive, scale-specific control of the synthesis. The new generator improves the state-of-the-art in terms of traditional distribution quality metrics, leads to demonstrably better interpolation properties, and also better disentangles the latent factors of variation. To quantify interpolation quality and disentanglement, we propose two new, automated methods that are applicable to any generator architecture. Finally, we introduce a new, highly varied and high-quality dataset of human faces.

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StyleSDF: High-Resolution 3D-Consistent Image and Geometry Generation

TL;DR: In this article , a high resolution, 3D-consistent image and shape generation technique called StyleSDF is proposed, which combines a SDF-based 3D representation with a style-based 2D generator.
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Attentive Semantic Exploring for Manipulated Face Detection

TL;DR: This work proposes a novel manipulated face detection method based on Multilevel Facial Semantic Segmentation and Cascade Attention Mechanism, and finds that segmenting images into semantic fragments could be effective, as discriminative defects and distortions are closely related to such fragments.
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Deep models of superficial face judgments

TL;DR: This work combines deep generative image models with over 1 million judgments to model inferences of more than 30 attributes over a comprehensive latent face space and shows how the predictive accuracy of this model approaches human interrater reliability.
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DVG-Face: Dual Variational Generation for Heterogeneous Face Recognition

TL;DR: In this paper , a dual variational generator is designed to learn the joint distribution of paired heterogeneous images and a pairwise identity preserving loss is introduced to ensure their identity consistency.
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3D Shape Reconstruction from 2D Images with Disentangled Attribute Flow

TL;DR: 3DAttriFlow as discussed by the authors disentangles and extracts semantic attributes through different semantic levels in the input images, which can provide definite guidance to the reconstruction of specific attribute on 3D shape.
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