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Group Equivariant Capsule Networks

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arxiv 1806.05086 v2 pith:DJECG5XG submitted 2018-06-13 cs.CV

classification cs.CV
keywords groupcapsuleequivariantnetworksequivarianceinvarianceoutputable
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We present group equivariant capsule networks, a framework to introduce guaranteed equivariance and invariance properties to the capsule network idea. Our work can be divided into two contributions. First, we present a generic routing by agreement algorithm defined on elements of a group and prove that equivariance of output pose vectors, as well as invariance of output activations, hold under certain conditions. Second, we connect the resulting equivariant capsule networks with work from the field of group convolutional networks. Through this connection, we provide intuitions of how both methods relate and are able to combine the strengths of both approaches in one deep neural network architecture. The resulting framework allows sparse evaluation of the group convolution operator, provides control over specific equivariance and invariance properties, and can use routing by agreement instead of pooling operations. In addition, it is able to provide interpretable and equivariant representation vectors as output capsules, which disentangle evidence of object existence from its pose.

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Cited by 1 Pith paper

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  1. Building Deep, Equivariant Capsule Networks

    cs.LG 2019-08 conditional novelty 6.0 of 10

    SOVNET, a capsule network with group-equivariant convolution predictions and degree-centrality routing, is equivariant to its chosen transformation group, and its capsule-decomposition graph is isomorphic under such t...

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