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Papers/Your Local GAN: Designing Two Dimensional Local Attention ...

Your Local GAN: Designing Two Dimensional Local Attention Mechanisms for Generative Models

Giannis Daras, Augustus Odena, Han Zhang, Alexandros G. Dimakis

2019-11-27CVPR 2020 6Deep AttentionImage GenerationConditional Image Generation
PaperPDFCode(official)Code

Abstract

We introduce a new local sparse attention layer that preserves two-dimensional geometry and locality. We show that by just replacing the dense attention layer of SAGAN with our construction, we obtain very significant FID, Inception score and pure visual improvements. FID score is improved from $18.65$ to $15.94$ on ImageNet, keeping all other parameters the same. The sparse attention patterns that we propose for our new layer are designed using a novel information theoretic criterion that uses information flow graphs. We also present a novel way to invert Generative Adversarial Networks with attention. Our method extracts from the attention layer of the discriminator a saliency map, which we use to construct a new loss function for the inversion. This allows us to visualize the newly introduced attention heads and show that they indeed capture interesting aspects of two-dimensional geometry of real images.

Results

TaskDatasetMetricValueModel
Image GenerationImageNet 128x128FID15.94Your Local GAN
Image GenerationImageNet 128x128Inception score57.22Your Local GAN
Conditional Image GenerationImageNet 128x128FID15.94Your Local GAN
Conditional Image GenerationImageNet 128x128Inception score57.22Your Local GAN

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