首页> 外文会议>Digital optical technologies 2017 >Autonomous generation of extended images of dynamic phase objects in a depth volume sample, using a simple focusing criterion and K-means clustering.
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Autonomous generation of extended images of dynamic phase objects in a depth volume sample, using a simple focusing criterion and K-means clustering.

机译:使用简单的聚焦标准和K均值聚类,自动生成深度体积样本中动态相位对象的扩展图像。

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摘要

The study of the movements of microscopic phase objects, as biological cells, is of high interest in the scientific community. Digital Holographic Microscopy (DHM) is a technique widely used for analysis of phase objects. It can record, in one shot, the sample complex field and then the complex field is refocused in several planes for the 3D sample reconstruction. However, when in the view field there are several cells at different distances from the hologram plane, the correct location of each cell is critical for the analysis of the sample. There are diverse approaches to find the optimal focusing distance of a phase object; however, most of them depend on the input of the cell location in the view field as parameter. This condition restrings their application to cells in movement. We present the analysis of moving phase objects, using an alternative focusing criterion based on the analysis of different sized windows. With this criterion, it is possible to create a depth map of the objects in the sample, and at the same time finds its location in the view field and discriminate them from the background. The depth map is segmented with the clustering K-means method and each cluster is analyzed to determine the optimal object focusing distance. Then an extended focus image of the sample is created and displayed for the user. The method can detect autonomously when a new cell enters in the view field and calculates its focusing distance. The resulting images present all the cells in the sample well focused, and can be used for counting or tracking purposes. We present simulated and experimental results.
机译:作为生物细胞的微观相对象运动的研究在科学界引起了极大的兴趣。数字全息显微术(DHM)是一种广泛用于分析相位对象的技术。它可以一次拍摄样本复杂区域,然后将复杂区域重新聚焦在几个平面上以进行3D样本重建。但是,当在视野中有几个与全息图平面距离不同的单元时,每个单元的正确位置对于分析样品至关重要。有多种方法可以找到相位物体的最佳聚焦距离。但是,它们中的大多数都取决于视图字段中单元格位置的输入作为参数。这种情况限制了它们在运动细胞中的应用。我们基于不同尺寸窗口的分析,使用替代聚焦标准,提出了对移动相对象的分析。使用此标准,可以创建样本中对象的深度图,同时找到其在视场中的位置并将其与背景区分开。用聚类K-means方法对深度图进行分割,并对每个聚类进行分析以确定最佳的对象聚焦距离。然后,创建样本的扩展焦点图像并为用户显示。当新的单元格进入视野时,该方法可以自主检测并计算其聚焦距离。生成的图像显示了样品中所有细胞的聚焦情况,可用于计数或跟踪目的。我们提出了模拟和实验结果。

著录项

  • 来源
    《Digital optical technologies 2017》|2017年|103350Z.1-103350Z.9|共9页
  • 会议地点 Munich(DE)
  • 作者单位

    Universidad Panamericana. Campus Guadalajara. Facultad de Ingenieria Prolongation Calzada Circunvalacion Poniente 49, Zapopan, Jalisco, 45010, Mexico;

    Universidad Panamericana. Campus Guadalajara. Facultad de Ingenieria Prolongation Calzada Circunvalacion Poniente 49, Zapopan, Jalisco, 45010, Mexico;

    Department of Biomedical Engineering, Tel Aviv University, Israel;

    Department of Biomedical Engineering, Tel Aviv University, Israel;

    University of Connecticut, Electrical Computer Engineering Dept., 371 Fairfield Way, Storrs, Connecticut 06269, USA;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Times Roman; image area; acronyms; references;

    机译:时代罗马图像区域首字母缩写词参考资料;

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