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Showing 1–1 of 1 results for author: Breidt, M

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  1. arXiv:1906.03292  [pdf, other

    stat.ML cs.LG

    On the Transfer of Inductive Bias from Simulation to the Real World: a New Disentanglement Dataset

    Authors: Muhammad Waleed Gondal, Manuel Wüthrich, Đorđe Miladinović, Francesco Locatello, Martin Breidt, Valentin Volchkov, Joel Akpo, Olivier Bachem, Bernhard Schölkopf, Stefan Bauer

    Abstract: Learning meaningful and compact representations with disentangled semantic aspects is considered to be of key importance in representation learning. Since real-world data is notoriously costly to collect, many recent state-of-the-art disentanglement models have heavily relied on synthetic toy data-sets. In this paper, we propose a novel data-set which consists of over one million images of physica… ▽ More

    Submitted 25 November, 2019; v1 submitted 7 June, 2019; originally announced June 2019.

    Comments: NeurIPS 2019 Camera Ready Version