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2015 | OriginalPaper | Buchkapitel

A Markov Random Field and Active Contour Image Segmentation Model for Animal Spots Patterns

verfasst von : Alexander Gómez, German Díez, Jhony Giraldo, Augusto Salazar, Juan M. Daza

Erschienen in: Advances in Visual Computing

Verlag: Springer International Publishing

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Abstract

Non-intrusive biometrics of animals using images allows to analyze phenotypic populations and individuals with patterns like stripes and spots without affecting the studied subjects. However, non-intrusive biometrics demand a well trained subject or the development of computer vision algorithms that ease the identification task. In this work, an analysis of classic segmentation approaches that require a supervised tuning of their parameters such as threshold, adaptive threshold, histogram equalization, and saturation correction is presented. In contrast, a general unsupervised algorithm using Markov Random Fields (MRF) for segmentation of spots patterns is proposed. Active contours are used to boost results using MRF output as seeds. As study subject the Diploglossus millepunctatus lizard is used. The proposed method achieved a maximum efficiency of \(91.11\,\%\).

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Metadaten
Titel
A Markov Random Field and Active Contour Image Segmentation Model for Animal Spots Patterns
verfasst von
Alexander Gómez
German Díez
Jhony Giraldo
Augusto Salazar
Juan M. Daza
Copyright-Jahr
2015
DOI
https://doi.org/10.1007/978-3-319-27863-6_16

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