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      Dynamic Graph CNN for Learning on Point Clouds

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          The graph neural network model.

          Many underlying relationships among data in several areas of science and engineering, e.g., computer vision, molecular chemistry, molecular biology, pattern recognition, and data mining, can be represented in terms of graphs. In this paper, we propose a new neural network model, called graph neural network (GNN) model, that extends existing neural network methods for processing the data represented in graph domains. This GNN model, which can directly process most of the practically useful types of graphs, e.g., acyclic, cyclic, directed, and undirected, implements a function tau(G,n) is an element of IR(m) that maps a graph G and one of its nodes n into an m-dimensional Euclidean space. A supervised learning algorithm is derived to estimate the parameters of the proposed GNN model. The computational cost of the proposed algorithm is also considered. Some experimental results are shown to validate the proposed learning algorithm, and to demonstrate its generalization capabilities.
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            Backpropagation Applied to Handwritten Zip Code Recognition

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              Non-local Neural Networks

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                Author and article information

                Journal
                ACM Transactions on Graphics
                ACM Trans. Graph.
                Association for Computing Machinery (ACM)
                0730-0301
                1557-7368
                November 05 2019
                November 05 2019
                : 38
                : 5
                : 1-12
                Affiliations
                [1 ]Massachusetts Institute of Technology
                [2 ]UC Berkeley/ICSI
                [3 ]Imperial College London/USI Lugano
                Article
                10.1145/3326362
                36298220
                3d5315b3-4633-49d4-9920-f320b38f78ec
                © 2019

                http://www.acm.org/publications/policies/copyright_policy#Background

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