Topological Autoencoders
Michael Moor, Max Horn, Bastian Rieck, Karsten M. Borgwardt
摘要
We propose a novel approach for preserving topological structures of the input space in latent representations of autoencoders. Using persistent homology, a technique from topological data analysis, we calculate topological signatures of both the input and latent space to derive a topological loss term. Under weak theoretical assumptions, we construct this loss in a differentiable manner, such that the encoding learns to retain multi-scale connectivity information. We show that our approach is theoretically well-founded and that it exhibits favourable latent representations on a synthetic manifold as well as on real-world image data sets, while preserving low reconstruction errors.
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引用它的顶会 Paper53
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- Representation Topology Divergence: A Method for Comparing Neural Network RepresentationsSerguei Barannikov, Ilya Trofimov, Nikita Balabin, Evgeny BurnaevICML 2022 · 被引用 69 次
- Manifold Topology Divergence: a Framework for Comparing Data ManifoldsSerguei Barannikov, Ilya Trofimov, Grigorii Sotnikov, Ekaterina Trimbach 等NeurIPS 2021 · 被引用 45 次
- PLLay: Efficient Topological Layer based on Persistent LandscapesKwangho Kim, Jisu Kim, Manzil Zaheer, Joon Sik Kim 等NeurIPS 2020 · 被引用 34 次
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