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Comparative evaluation of autofocus algorithms for a real-time system for automatic detection of Mycobacterium tuberculosis

机译:用于自动检测结核分枝杆菌的实时系统的自动聚焦算法的比较评估

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Microscopy images must be acquired at the optimal focal plane for the objects of interest in a scene. Although manual focusing is a standard task for a trained observer, automatic systems often fail to properly find the focal plane under different microscope imaging modalities such as bright field microscopy or phase contrast microscopy. This article assesses several autofocus algorithms applied in the study of fluorescence-labeled tuberculosis bacteria. The goal of this work was to find the optimal algorithm in order to build an automatic real-time system for diagnosing sputum smear samples, where both accuracy and computational time are important. We analyzed 13 focusing methods, ranging from well-known algorithms to the most recently proposed functions. We took into consideration criteria that are inherent to the autofocus function, such as accuracy, computational cost, and robustness to noise and to illumination changes. We also analyzed the additional benefit provided by preprocessing techniques based on morphological operators and image projection profiling.
机译:对于场景中感兴趣的对象,必须在最佳焦平面上获取显微镜图像。尽管对于训练有素的观察者而言,手动聚焦是一项标准任务,但自动系统通常无法在不同的显微镜成像模式下(例如明场显微镜或相差显微镜)正确找到焦平面。本文评估了几种用于研究荧光标记的结核菌的自动聚焦算法。这项工作的目的是找到最佳算法,以便建立一个用于诊断痰涂片样本的自动实时系统,其中准确性和计算时间都很重要。我们分析了13种聚焦方法,从众所周知的算法到最新提出的功能。我们考虑了自动对焦功能固有的标准,例如准确性,计算成本以及对噪声和照明变化的鲁棒性。我们还分析了基于形态算子和图像投影分析的预处理技术所提供的其他好处。

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