Sequential Variational Autoencoder with Adversarial Classifier for Video Disentanglement

In this paper, we propose a sequential variational autoencoder for video disentanglement, which is a representation learning method that can be used to separately extract static and dynamic features from videos. Building sequential variational autoencoders with a two-stream architecture induces indu...

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Bibliographic Details
Published in:Sensors (Basel, Switzerland) Vol. 23; no. 5; p. 2515
Main Authors: Haga, Takeshi, Kera, Hiroshi, Kawamoto, Kazuhiko
Format: Journal Article
Language:English
Published: Switzerland MDPI AG 24.02.2023
MDPI
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ISSN:1424-8220, 1424-8220
Online Access:Get full text
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