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Automatic Identification of Bacterial Types using Statistical Imaging Methods

机译:使用统计成像方法自动识别细菌类型

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The objective of the current study is to develop an automatic tool to identify bacterial types using computer-vision and statistical modeling techniques. Bacteriophage (phage)-typing methods are used to identify and extract representative profiles of bacterial types, such as the Staphylococcus Aureus. Current systems rely on the subjective reading of plaque profiles by human expert. This process is time-consuming and prone to errors, especially as technology is enabling the increase in the number of phages used for typing. The statistical methodology presented in this work, provides for an automated, objective and robust analysis of visual data, along with the ability to cope with increasing data volumes.
机译:当前研究的目的是开发一种自动工具,使用计算机视觉和统计建模技术来识别细菌类型。噬菌体(噬菌体)分型方法用于鉴定和提取细菌类型(例如金黄色葡萄球菌)的代表性特征。当前的系统依赖于人类专家对斑块轮廓的主观读取。该过程耗时且容易出错,尤其是随着技术的发展,用于打字的噬菌体数量的增加。这项工作中介绍的统计方法论提供了对视觉数据的自动化,客观和鲁棒的分析,以及应对日益增长的数据量的能力。

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