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Convolutional networks for images, speech, and time series

In Michael A. Arbib (ed.), Handbook of Brain Theory and Neural Networks. MIT Press. pp. 3361 (1995)

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  1. Using CNN Features to Better Understand What Makes Visual Artworks Special.Anselm Brachmann, Erhardt Barth & Christoph Redies - 2017 - Frontiers in Psychology 8.
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  • On the Impact of Interpretability Methods in Active Image Augmentation Method.Flávio Arthur Oliveira Santos, Cleber Zanchettin, Leonardo Nogueira Matos & Paulo Novais - 2022 - Logic Journal of the IGPL 30 (4):611-621.
    Robustness is a significant constraint in machine learning models. The performance of the algorithms must not deteriorate when training and testing with slightly different data. Deep neural network models achieve awe-inspiring results in a wide range of applications of computer vision. Still, in the presence of noise or region occlusion, some models exhibit inaccurate performance even with data handled in training. Besides, some experiments suggest deep learning models sometimes use incorrect parts of the input information to perform inference. Active image (...)
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