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Markov models for ocular fixation locations in the presence and absence of colour

2016-04-21 · Adam B. Kashlak, Eoin Devane, Helge Dietert, Henry Jackson

We propose to model the fixation locations of the human eye when observing a still image by a Markovian point process in R 2 . Our approach is data driven using k-means clustering of the fixation locations to identify distinct salient regions of the image, which in turn correspond to the states of our Markov chain. Bayes factors are computed as model selection criterion to determine the number of clusters. Furthermore, we demonstrate that the behaviour of the human eye differs from this model when colour information is removed from the given image.

📄 PDF Abstract BibTeX arXiv:1604.06335

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ClusteringModel Selection

Methods 이 논문이 사용한 방법론

k-Means Clustering k-Means Clustering is a clustering algorithm that divides a training set into $k$ different clusters of examples that are near each other. It works by initializing $k$…

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