Introducing Routing Uncertainty in Capsule Networks
Fabio De Sousa Ribeiro, Georgios Leontidis, Stefanos D. Kollias
摘要
Rather than performing inefficient local iterative routing between adjacent capsule layers, we propose an alternative global view based on representing the inherent uncertainty in part-object assignment. In our formulation, the local routing iterations are replaced with variational inference of part-object connections in a probabilistic capsule network, leading to a significant speedup without sacrificing performance. In this way, global context is also considered when routing capsules by introducing global latent variables that have direct influence on the objective function, and are updated discriminatively in accordance with the minimum description length (MDL) principle. We focus on enhancing capsule network properties, and perform a thorough evaluation on pose-aware tasks, observing improvements in performance over previous approaches whilst being more computationally efficient.
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引用它的顶会 Paper8
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它引用的顶会 Paper6
- Capsule Routing via Variational BayesFabio De Sousa Ribeiro, Georgios Leontidis, Stefanos D. KolliasAAAI 2020 · 被引用 93 次
- Capsules with Inverted Dot-Product Attention RoutingYao-Hung Hubert Tsai, Nitish Srivastava, Hanlin Goh, Ruslan SalakhutdinovICLR 2020 · 被引用 91 次
- Detecting and Diagnosing Adversarial Images with Class-Conditional Capsule ReconstructionsYao Qin, Nicholas Frosst, Sara Sabour, Colin Raffel 等ICLR 2020 · 被引用 76 次
- SubSpace Capsule NetworkMarzieh Edraki, Nazanin Rahnavard, Mubarak ShahAAAI 2020 · 被引用 38 次
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