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Automating the measurement of physiological parameters: A case study in the image analysis of cilia motion

机译:自动测量生理参数:纤毛运动图像分析中的案例研究

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As image processing and analysis techniques improve, an increasing number of procedures in bio-medical analyses can be automated. This brings many benefits, e.g improved speed and accuracy, leading to more reliable diagnoses and follow-up, ultimately improving patients outcome. Many automated procedures in bio-medical imaging are well established and typically consist of detecting and counting various types of cells (e.g. blood cells, abnormal cells in Pap smears, and so on). In this article we propose to automate a different and difficult set of measurements, which is conducted on the cilia of people suffering from a variety of respiratory tract diseases. Cilia are slender, microscopic, hair-like structures or organelles that extend from the surface of nearly all mammalian cells. Motile cilia, such as those found in the lungs and respiratory tract, present a periodic beating motion that keep the airways clear of mucus and dirt. In this paper, we propose a fully automated method that computes various measurements regarding the motion of cilia, taken with high-speed video-microscopy. The advantage of our approach is its capacity to automatically compute robust, adaptive and regionalized measurements, i.e. associated with different regions in the image. We validate the robustness of our approach, and illustrate its performance in comparison to the state-of-the-art.
机译:随着图像处理和分析技术的改进,生物医学分析中越来越多的程序可以实现自动化。这带来了许多好处,例如提高了速度和准确性,从而导致了更可靠的诊断和随访,最终改善了患者的预后。生物医学成像中的许多自动化程序已得到很好的建立,通常包括检测和计数各种类型的细胞(例如血细胞,子宫颈抹片检查中的异常细胞等)。在本文中,我们建议对一组患有各种呼吸道疾病的人的纤毛进行自动化的一组不同且困难的测量。纤毛是细长的,微观的,类似头发的结构或细胞器,几乎从所有哺乳动物细胞的表面延伸出来。运动性纤毛,例如在肺和呼吸道中发现的纤毛,表现出周期性的跳动运动,使气道中没有粘液和污垢。在本文中,我们提出了一种全自动方法,该方法可以计算与高速视频显微术有关的纤毛运动的各种测量值。我们方法的优点是它能够自动计算鲁棒,自适应和区域化的测量值,即与图像中的不同区域相关联的测量值。我们验证了该方法的鲁棒性,并说明了其与最新技术相比的性能。

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