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Multi-Label Latent Spaces With Semi-Supervised Deep Generative Models, Rastin Rastgoufard
Multi-Label Latent Spaces With Semi-Supervised Deep Generative Models, Rastin Rastgoufard
University of New Orleans Theses and Dissertations
Expert labeling, tagging, and assessment are far more costly than the processes of collecting raw data. Generative modeling is a very powerful tool to tackle this real-world problem. It is shown here how these models can be used to allow for semi-supervised learning that performs very well in label-deficient conditions.
The foundation for the work in this dissertation is built upon visualizing generative models' latent spaces to gain deeper understanding of data, analyze faults, and propose solutions. A number of novel ideas and approaches are presented to improve single-label classification. This dissertation's main focus is on extending semi-supervised Deep Generative …