Fusion of complex networks and randomized neural networks for texture analysis

June 24, 2018 Β· Declared Dead Β· πŸ› Pattern Recognition

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Authors Lucas C. Ribas, Jarbas J. M. Sa Junior, Leonardo F. S. Scabini, Odemir M. Bruno arXiv ID 1806.09170 Category cs.CV: Computer Vision Cross-listed cs.LG, physics.data-an Citations 32 Venue Pattern Recognition Last Checked 6 months ago
Abstract
This paper presents a high discriminative texture analysis method based on the fusion of complex networks and randomized neural networks. In this approach, the input image is modeled as a complex networks and its topological properties as well as the image pixels are used to train randomized neural networks in order to create a signature that represents the deep characteristics of the texture. The results obtained surpassed the accuracies of many methods available in the literature. This performance demonstrates that our proposed approach opens a promising source of research, which consists of exploring the synergy of neural networks and complex networks in the texture analysis field.
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