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Papers/Unsupervised Image Representation Learning with Deep Laten...

Unsupervised Image Representation Learning with Deep Latent Particles

Tal Daniel, Aviv Tamar

2022-05-31Representation LearningVideo PredictionUnsupervised Facial Landmark DetectionModel SelectionImage Manipulation
PaperPDFCode(official)

Abstract

We propose a new representation of visual data that disentangles object position from appearance. Our method, termed Deep Latent Particles (DLP), decomposes the visual input into low-dimensional latent ``particles'', where each particle is described by its spatial location and features of its surrounding region. To drive learning of such representations, we follow a VAE-based approach and introduce a prior for particle positions based on a spatial-softmax architecture, and a modification of the evidence lower bound loss inspired by the Chamfer distance between particles. We demonstrate that our DLP representations are useful for downstream tasks such as unsupervised keypoint (KP) detection, image manipulation, and video prediction for scenes composed of multiple dynamic objects. In addition, we show that our probabilistic interpretation of the problem naturally provides uncertainty estimates for particle locations, which can be used for model selection, among other tasks. Videos and code are available: https://taldatech.github.io/deep-latent-particles-web/

Results

TaskDatasetMetricValueModel
Facial Recognition and ModellingMAFLNME2.43Deep Latent Particles
Facial Landmark DetectionMAFLNME2.43Deep Latent Particles
Face ReconstructionMAFLNME2.43Deep Latent Particles
3DMAFLNME2.43Deep Latent Particles
3D Face ModellingMAFLNME2.43Deep Latent Particles
3D Face ReconstructionMAFLNME2.43Deep Latent Particles

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