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Statistical learning applied to computer-assisted fish age and growthestimation from otolith images

机译:统计学习应用于耳石图像的计算机辅助鱼龄和生长估计

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摘要

Computer-assisted tools need to be developed to help in the accurate and efficient acquisition of fish age and growth data for ecological and assessment issues. Stating fish age and growth analysis as pattern classification issues, the proposed approach relies on a statistical learning strategy. Given otolith images interpreted by an expert, probabilistic kernel-based methods (namely Kernel Logistic Regression) are used to infer interpretation rules. More precisely, two different probabilistic models are introduced: one to infer fish age from otolith images and a second one aiming at evaluating whether or not a given otolith growth pattern is realistic w.r.t. training examples. These probabilistic models provide us with the basis for coping with three different issues: the automated estimation of fish age from otolith images, the estimation of individual otolith growth patterns, and the definition of a confidence measure of otolith interpretations. These computer-assisted ageing tools are validated for a dataset of plaice otoliths.
机译:需要开发计算机辅助工具,以帮助准确,有效地获取有关生态和评估问题的鱼龄和生长数据。提出的方法将鱼类年龄和生长分析作为模式分类问题,该方法依赖于统计学习策略。给定由专家解释的耳石图像,可以使用基于概率的基于核的方法(即内核逻辑回归)来推断解释规则。更准确地说,引入了两种不同的概率模型:一种从耳石图像推断鱼龄,另一种旨在评估给定的耳石生长方式是否现实。培训实例。这些概率模型为我们解决三个不同问题提供了基础:从耳石图像自动估计鱼龄,估计耳石生长方式的个体以及定义耳石解释的置信度。这些计算机辅助老化工具已针对for石耳石的数据集进行了验证。

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