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Automated Micro-Object Detection for Mobile Diagnostics Using Lens-Free Imaging Technology

机译:使用无透镜成像技术进行移动诊断的自动化微对象检测

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Lens-free imaging technology has been extensively used recently for microparticle and biological cell analysis because of its high throughput, low cost, and simple and compact arrangement. However, this technology still lacks a dedicated and automated detection system. In this paper, we describe a custom-developed automated micro-object detection method for a lens-free imaging system. In our previous work (Roy et al. ), we developed a lens-free imaging system using low-cost components. This system was used to generate and capture the diffraction patterns of micro-objects and a global threshold was used to locate the diffraction patterns. In this work we used the same setup to develop an improved automated detection and analysis algorithm based on adaptive threshold and clustering of signals. For this purpose images from the lens-free system were then used to understand the features and characteristics of the diffraction patterns of several types of samples. On the basis of this information, we custom-developed an automated algorithm for the lens-free imaging system. Next, all the lens-free images were processed using this custom-developed automated algorithm. The performance of this approach was evaluated by comparing the counting results with standard optical microscope results. We evaluated the counting results for polystyrene microbeads, red blood cells, and HepG2, HeLa, and MCF7 cells. The comparison shows good agreement between the systems, with a correlation coefficient of 0.91 and linearity slope of 0.877. We also evaluated the automated size profiles of the microparticle samples. This Wi-Fi-enabled lens-free imaging system, along with the dedicated software, possesses great potential for telemedicine applications in resource-limited settings.
机译:由于无透镜成像技术的高通量,低成本和简单紧凑的结构,近来已广泛用于微粒和生物细胞分析。但是,该技术仍然缺少专用的自动检测系统。在本文中,我们描述了针对无透镜成像系统的定制开发的自动微物体检测方法。在我们以前的工作中(Roy等人),我们开发了使用低成本组件的无透镜成像系统。该系统用于生成和捕获微物体的衍射图,全局阈值用于定位衍射图。在这项工作中,我们使用相同的设置来开发基于自适应阈值和信号聚类的改进的自动检测和分析算法。为此,使用无透镜系统的图像来了解几种类型样品的衍射图的特征和特性。根据这些信息,我们为无透镜成像系统定制开发了一种自动算法。接下来,使用此定制开发的自动算法处理所有无镜头图像。通过将计数结果与标准光学显微镜结果进行比较,评估了该方法的性能。我们评估了聚苯乙烯微珠,红细胞以及HepG2,HeLa和MCF7细胞的计数结果。比较表明,系统之间具有良好的一致性,相关系数为0.91,线性斜率为0.877。我们还评估了微粒样品的自动尺寸分布。这种具有Wi-Fi功能的无镜头成像系统,以及专用软件,在资源有限的环境中对于远程医疗应用具有巨大的潜力。

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