Exchangeable Generative Models with Flow Scans
Christopher M. Bender, Kevin O'Connor, Yang Li, Juan Jose Garcia, Junier Oliva, Manzil Zaheer
摘要
In this work, we develop a new approach to generative density estimation for exchangeable, non-i.i.d. data. The proposed framework, FlowScan, combines invertible flow transformations with a sorted scan to flexibly model the data while preserving exchangeability. Unlike most existing methods, FlowScan exploits the intradependencies within sets to learn both global and local structure. FlowScan represents the first approach that is able to apply sequential methods to exchangeable density estimation without resorting to averaging over all possible permutations. We achieve new state-of-the-art performance on point cloud and image set modeling. † Equal contribution * This paper is an updated version of preliminary work detailed in (Bender et al. 2019)
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引用它的顶会 Paper6
- SurVAE Flows: Surjections to Bridge the Gap between VAEs and FlowsDidrik Nielsen, Priyank Jaini, Emiel Hoogeboom, Ole Winther 等NeurIPS 2020 · 被引用 100 次
- Improved Variational Bayesian Phylogenetic Inference with Normalizing FlowsCheng ZhangNeurIPS 2020 · 被引用 32 次
- Exchangeable Neural ODE for Set ModelingYang Li, Haidong Yi, Christopher M. Bender, Siyuan Shan 等NeurIPS 2020 · 被引用 32 次
- Scalable Normalizing Flows for Permutation Invariant DensitiesMarin Bilos, Stephan GünnemannICML 2021 · 被引用 28 次
- Phoneme Hallucinator: One-Shot Voice Conversion via Set ExpansionSiyuan Shan, Yang Li, Amartya Banerjee, Junier B. OlivaAAAI 2024 · 被引用 12 次
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