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Gungor Polatkan

Researcher at LinkedIn

Publications -  29
Citations -  893

Gungor Polatkan is an academic researcher from LinkedIn. The author has contributed to research in topics: Gibbs sampling & Hidden Markov model. The author has an hindex of 10, co-authored 29 publications receiving 641 citations. Previous affiliations of Gungor Polatkan include Boğaziçi University & Microsoft.

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An Attentive Survey of Attention Models

TL;DR: A taxonomy that groups existing techniques into coherent categories in attention models is proposed, and how attention has been used to improve the interpretability of neural networks is described.
Journal ArticleDOI

Deep Learning with Hierarchical Convolutional Factor Analysis

TL;DR: Unsupervised multilayered (“deep”) models are considered for imagery, represented using a hierarchical convolutional factor-analysis construction, with sparse factor loadings and scores.
Journal ArticleDOI

A Bayesian Nonparametric Approach to Image Super-Resolution

TL;DR: In this paper, the authors developed a new Bayesian nonparametric model for super-resolution which uses a beta-Bernoulli process to learn a set of recurring visual patterns, called dictionary elements, from the data.
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A Bayesian Nonparametric Approach to Image Super-resolution

TL;DR: This paper develops a new Bayesian nonparametric model for super-resolution that uses a beta-Bernoulli process to learn a set of recurring visual patterns, called dictionary elements, from the data.
Proceedings ArticleDOI

Detection of forgery in paintings using supervised learning

TL;DR: It is demonstrated that supervised machine learning on features derived from hidden-Markov-tree-modeling of the paintings' wavelet coefficients has the potential to distinguish copies from originals in the new dataset.