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Penalized Image Averaging and Discrimination with Facial and Fishery Applications

机译:面部和渔业应用中的图像平均平均和歧视

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In this paper we use a penalized likelihood approach to image warping in the context of discrimination and averaging. The choice of average image is formulated statistically by minimizing a penalized likelihood, where the likelihood measures the similarity between images after warping and the penalty is a measure of distortion of a warping. The notions of measures of similarity are given in terms of normalized image information. The measures of distortion are landmark based. Thus we use a combination of landmark and normalized image information. The average defined in the paper is also extended by allowing random perturbation of the landmarks. This strategy improves averages for discrimination purposes. We give here real applications from medical and biological areas.
机译:在本文中,我们使用惩罚似然法在歧视和取平均值的情况下对图像进行变形。平均图像的选择通过最小化惩罚的可能性来统计地制定,其中,可能性测量弯曲后图像之间的相似度,而惩罚是弯曲变形的量度。根据标准化图像信息给出相似性度量的概念。失真的度量基于地标。因此,我们结合使用了界标和标准化图像信息。通过允许对地标进行随机扰动,还可以扩展论文中定义的平均值。此策略出于歧视目的提高了平均值。我们在这里提供医学和生物学领域的实际应用。

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