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A Contact-Imaging Based Microfluidic Cytometer with Machine-Learning for Single-Frame Super-Resolution Processing

机译:具有机器学习的基于接触成像的微流式细胞仪用于单帧超分辨率处理

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摘要

Lensless microfluidic imaging with super-resolution processing has become a promising solution to miniaturize the conventional flow cytometer for point-of-care applications. The previous multi-frame super-resolution processing system can improve resolution but has limited cell flow rate and hence low throughput when capturing multiple subpixel-shifted cell images. This paper introduces a single-frame super-resolution processing with on-line machine-learning for contact images of cells. A corresponding contact-imaging based microfluidic cytometer prototype is demonstrated for cell recognition and counting. Compared with commercial flow cytometer, less than 8% error is observed for absolute number of microbeads; and 0.10 coefficient of variation is observed for cell-ratio of mixed RBC and HepG2 cells in solution.
机译:具有超分辨率处理功能的无透镜微流控成像已成为将常规流式细胞仪小型化的一种有前途的解决方案,适用于即时医疗应用。先前的多帧超分辨率处理系统可以提高分辨率,但是在捕获多个子像素移位的细胞图像时,细胞流速有限,因此吞吐量较低。本文介绍了一种具有在线机器学习功能的单帧超分辨率处理单元格的接触图像。相应的基于接触成像的微流式细胞仪原型被证明用于细胞识别和计数。与商业流式细胞仪相比,微珠的绝对数量误差小于8%。溶液中混合的RBC和HepG2细胞的细胞比例观察到0.10的变异系数。

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