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Centre Interdisciplinaire
de Recherche et d’Innovation
en Cybersécurité et Société

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1.

Yapi, D.; Allili, M. S.; Baaziz, N.

Automatic Fabric Defect Detection Using Learning-Based Local Textural Distributions in the Contourlet Domain Journal Article

In: IEEE Transactions on Automation Science and Engineering, vol. 15, no. 3, pp. 1014–1026, 2018, ISSN: 15455955 (ISSN), (Publisher: Institute of Electrical and Electronics Engineers Inc.).

Abstract | Links | BibTeX | Tags: Automatic Detection, Barium compounds, Bayes classifier (BC), Contourlet transform, Defect-detection systems, Defects, Fabric defect detection, Image decomposition, Learning-based approach, mixture of generalized Gaussians (MoGG), Statistical representations, Statistical signatures, Textile industry, texture analysis

2.

Yapi, D.; Mejri, M.; Allili, M. S.; Baaziz, N.

A learning-based approach for automatic defect detection in textile images Proceedings Article

In: A., Zaremba M. Sasiadek J. Dolgui (Ed.): IFAC-PapersOnLine, pp. 2423–2428, 2015, ISBN: 24058963 (ISSN), (Issue: 3 Journal Abbreviation: IFAC-PapersOnLine).

Abstract | Links | BibTeX | Tags: Algorithms, Artificial intelligence, Automatic defect detections, Barium compounds, Bayes Classifier, Computational efficiency, Contourlets, Defect detection, Defect detection algorithm, Defects, Detection problems, Feature extraction, Feature extraction and classification, Gaussians, Image classification, Learning algorithms, Learning systems, Learning-based approach, Machine learning approaches, Mixture of generalized gaussians, Mixtures of generalized Gaussians (MoGG), Textile defect detection, Textile images, Textiles, Textures

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