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Symmetric Graph Convolutional Autoencoder for Unsupervised Graph Representation Learning

Authors
Lee, MinsikPark, JiwoongChang, Hyung JinLee, KyuewangJChoi, in Young
Issue Date
Oct-2019
Publisher
IEEE
Citation
2019 IEEE/CVF INTERNATIONAL CONFERENCE ON COMPUTER VISION (ICCV 2019), v.2019-Octob, pp 6519 - 6528
Pages
10
Indexed
SCIE
SCOPUS
Journal Title
2019 IEEE/CVF INTERNATIONAL CONFERENCE ON COMPUTER VISION (ICCV 2019)
Volume
2019-Octob
Start Page
6519
End Page
6528
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/2291
DOI
10.1109/ICCV.2019.00662
ISSN
1550-5499
2380-7504
Abstract
We propose a symmetric graph convolutional autoencoder which produces a low-dimensional latent representation from a graph. In contrast to the existing graph autoencoders with asymmetric decoder parts, the proposed autoencoder has a newly designed decoder which builds a completely symmetric autoencoder form. For the reconstruction of node features, the decoder is designed based on Laplacian sharpening as the counterpart of Laplacian smoothing of the encoder, which allows utilizing the graph structure in the whole processes of the proposed autoencoder architecture. In order to prevent the numerical instability of the network caused by the Laplacian sharpening introduction, we further propose a new numerically stable form of the Laplacian sharpening by incorporating the signed graphs. In addition, a new cost function which finds a latent representation and a latent affinity matrix simultaneously is devised to boost the performance of image clustering tasks. The experimental results on clustering, link prediction and visualization tasks strongly support that the proposed model is stable and outperforms various state-of-the-art algorithms.
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Lee, Min sik
ERICA 공학대학 (SCHOOL OF ELECTRICAL ENGINEERING)
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