Deep, Flexible Data Embedding with Graph-Based Feature Propagation for Semi-supervised Classification

被引:1
作者
Dornaika, Fadi [1 ]
机构
[1] Ho Chi Minh City Open Univ, 97 Vo Van Tan,Dist 3, Ho Chi Minh City 70000, Vietnam
关键词
Semi-supervised learning; Graph-based embedding; Manifold regularization; Graph construction; Deep architecture; Feature propagation; NETWORKS;
D O I
10.1007/s12559-022-10056-w
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Graph-based data representation has recently received much attention in the fields of machine learning and cognitive computation. Deep architectures and the semi-supervised learning paradigm are very closely related to natural cognitive systems. In this paper, and in the context of semi-supervised learning, we will be addressing deep graph-based data representation using a cascade of flexible embedding based on feature propagation over graphs. Inspired by connectionist models, we developed a deep architecture that performs data representation. In each layer, a graph is created over the current representation of the data. This graph is used to aggregate the current features of the input data and provide a layer-specific linear and non-linear representation. The semi-supervised scheme presented simultaneously satisfies several desired properties. These include graph-based regularization of the data structure - a geometrically motivated criterion, flexible non-linear projection (i.e., linear and non-linear projections are jointly estimated), graph-based feature propagation (providing a low-pass filter of the features in each layer), and deep architecture. Our work's main innovative aspect stems from the fact that each layer employs feature propagation (aggregation) before solving the layer-by-layer projection transformations. The proposed model can be learned layer by layer. In each layer, the non-linear data representation and linear regression are jointly estimated with a closed form solution. The proposed method was evaluated using semi-supervised classification tasks with six image datasets. These experiments demonstrated the effectiveness of the proposed approach, which can compete with a variety of competing semi-supervised methods. Compared to a flexible scheme for data representation, the introduced method improved the performance by 8.5% on average. Compared to a recent deep scheme for data representation, the introduced feature propagation improved the performance by 1.3% on average. The use of feature propagation in each layer can improve the flexible model's performance.
引用
收藏
页码:1 / 12
页数:12
相关论文
共 50 条
[21]   Information representation space in artificial and biological neural networks [J].
Malakhova, E. Yu .
JOURNAL OF OPTICAL TECHNOLOGY, 2020, 87 (10) :598-603
[22]   Artificial neural networks training algorithm integrating invasive weed optimization with differential evolutionary model [J].
Movassagh, Ali Akbar ;
Alzubi, Jafar A. ;
Gheisari, Mehdi ;
Rahimi, Mohamadtaghi ;
Mohan, Senthilkumar ;
Abbasi, Aaqif Afzaal ;
Nabipour, Narjes .
JOURNAL OF AMBIENT INTELLIGENCE AND HUMANIZED COMPUTING, 2021, 14 (5) :6017-6025
[23]  
Nie F, 2020, IEEE T NEURAL NETW L, V2020
[24]   Submanifold-Preserving Discriminant Analysis With an Auto-Optimized Graph [J].
Nie, Feiping ;
Wang, Zheng ;
Wang, Rong ;
Li, Xuelong .
IEEE TRANSACTIONS ON CYBERNETICS, 2020, 50 (08) :3682-3695
[25]   Auto-Weighted Multi-View Learning for Image Clustering and Semi-Supervised Classification [J].
Nie, Feiping ;
Cai, Guohao ;
Li, Jing ;
Li, Xuelong .
IEEE TRANSACTIONS ON IMAGE PROCESSING, 2018, 27 (03) :1501-1511
[26]   Flexible Manifold Embedding: A Framework for Semi-Supervised and Unsupervised Dimension Reduction [J].
Nie, Feiping ;
Xu, Dong ;
Tsang, Ivor Wai-Hung ;
Zhang, Changshui .
IEEE TRANSACTIONS ON IMAGE PROCESSING, 2010, 19 (07) :1921-1932
[27]   Learning Neural Bag-of-Features for Large-Scale Image Retrieval [J].
Passalis, Nikolaos ;
Tefas, Anastasios .
IEEE TRANSACTIONS ON SYSTEMS MAN CYBERNETICS-SYSTEMS, 2017, 47 (10) :2641-2652
[28]   Dynamic graph convolutional network for long-term traffic flow prediction with reinforcement learning [J].
Peng, Hao ;
Du, Bowen ;
Liu, Mingsheng ;
Liu, Mingzhe ;
Ji, Shumei ;
Wang, Senzhang ;
Zhang, Xu ;
He, Lifang .
INFORMATION SCIENCES, 2021, 578 :401-416
[29]   RGLN: ROBUST RESIDUAL GRAPH LEARNING NETWORKS VIA SIMILARITY-PRESERVING MAPPING ON GRAPHS [J].
Tang, Jiaxiang ;
Gao, Xiang ;
Hu, Wei .
2021 IEEE INTERNATIONAL CONFERENCE ON ACOUSTICS, SPEECH AND SIGNAL PROCESSING (ICASSP 2021), 2021, :2940-2944
[30]   The global landscape of cognition: hierarchical aggregation as an organizational principle of human cortical networks and functions [J].
Taylor, P. ;
Hobbs, J. N. ;
Burroni, J. ;
Siegelmann, H. T. .
SCIENTIFIC REPORTS, 2015, 5