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Non-negative Matrix Factorization on Manifold

Published: 15 December 2008 Publication History

Abstract

Recently Non-negative Matrix Factorization (NMF) has received a lot of attentions in information retrieval, computer vision and pattern recognition. NMF aims to find two non-negative matrices whose product can well approximate the original matrix. The sizes of these two matrices are usually smaller than the original matrix. This results in a compressed version of the original data matrix. The solution of NMF yields a natural parts-based representation for the data. When NMF is applied for data representation, a major disadvantage is that it fails to consider the geometric structure in the data. In this paper, we develop a graph based approach for parts-based data representation in order to overcome this limitation. We construct an affinity graph to encode the geometrical information and seek a matrix factorization which respects the graph structure. We demonstrate the success of this novel algorithm by applying it on real world problems.

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  • (2024)Multi-View Clustering Based on Deep Non-negative Tensor FactorizationProceedings of the 32nd ACM International Conference on Multimedia10.1145/3664647.3681417(1130-1138)Online publication date: 28-Oct-2024
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  1. Non-negative Matrix Factorization on Manifold

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    cover image Guide Proceedings
    ICDM '08: Proceedings of the 2008 Eighth IEEE International Conference on Data Mining
    December 2008
    1145 pages
    ISBN:9780769535029

    Publisher

    IEEE Computer Society

    United States

    Publication History

    Published: 15 December 2008

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    • (2024)Multi-View Clustering Based on Deep Non-negative Tensor FactorizationProceedings of the 32nd ACM International Conference on Multimedia10.1145/3664647.3681417(1130-1138)Online publication date: 28-Oct-2024
    • (2021)One-Step Robust Low-Rank Subspace Segmentation for Tumor Sample ClusteringComputational Intelligence and Neuroscience10.1155/2021/99902972021Online publication date: 8-Dec-2021
    • (2021)NEDProceedings of the 30th ACM International Conference on Information & Knowledge Management10.1145/3459637.3482455(627-637)Online publication date: 26-Oct-2021
    • (2020)Deep relational topic modeling via graph poisson gamma belief networkProceedings of the 34th International Conference on Neural Information Processing Systems10.5555/3495724.3495766(488-500)Online publication date: 6-Dec-2020
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    • (2020)Block-Aware Item Similarity Models for Top-N RecommendationACM Transactions on Information Systems10.1145/341175438:4(1-26)Online publication date: 10-Sep-2020
    • (2020)A Novel Deep Learning Model by Stacking Conditional Restricted Boltzmann Machine and Deep Neural NetworkProceedings of the 26th ACM SIGKDD International Conference on Knowledge Discovery & Data Mining10.1145/3394486.3403184(1316-1324)Online publication date: 23-Aug-2020
    • (2020)Probabilistic Topic Modeling for Comparative Analysis of Document CollectionsACM Transactions on Knowledge Discovery from Data10.1145/336987314:2(1-27)Online publication date: 4-Mar-2020
    • (2020)Hierarchical overlapping belief estimation by structured matrix factorizationProceedings of the 12th IEEE/ACM International Conference on Advances in Social Networks Analysis and Mining10.1109/ASONAM49781.2020.9381477(81-88)Online publication date: 7-Dec-2020
    • (2019)Zero-shot metric learningProceedings of the 28th International Joint Conference on Artificial Intelligence10.5555/3367471.3367597(3996-4002)Online publication date: 10-Aug-2019
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