用于无标记生物细胞分类的光学数据压缩时间拉伸成像

A. Mahjoubfar, C. Chen, B. Jalali
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引用次数: 3

摘要

对于异常值的检测和分类,需要实时采集大数据集的仪器。一种基于光子时间拉伸的新型高通量实时仪器已经导致光学异常波[1]的发现,罕见癌细胞[2]的检测,以及有史以来最高的模拟-数字转换性能[3]。这些仪器的一个例子是时间拉伸相机,这是一种成像方式,以每秒1亿帧的连续运行速度和不到一纳秒的快门速度为特征。作为一种成像流动显微镜,该技术正用于血液筛查的临床试验。虽然对于收集大型数据集非常有用,但该仪器的超高吞吐量也造成了大数据问题。该系统可以在短时间内产生相当于每秒几部4K电影的大量数据。这样的数据消防水带给数据采集、存储和处理操作带来了负担,并要求在光学域和实时压缩图像的技术。最近报道了一个基于翘曲拉伸变换和非均匀傅立叶域采样的例子。本文将对具有实时光学图像压缩功能的时间拉伸显微镜及其在血液中癌细胞分类中的应用进行综述。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Time stretch imaging with optical data compression for label-free biological cell classification
Real-time instruments that acquire large data sets are needed for detection and classification of outliers. A new class of high throughput real-time instruments based on the photonic time-stretch has led to the discovery of optical rogue waves [1], detection of rare cancer cells [2], and the highest analog-to-digital conversion performance ever achieved [3]. One example of these instruments is the time stretch camera, an imaging modality that features continuous operation at about 100 million frames per second and shutter speed of less than a nanosecond. As an imaging flow-through microscope, the technology is in clinical testing for blood screening. While highly useful for collecting large data sets, the instrument's ultrahigh throughput also creates a big data problem. The system produces a large volume of data in a short time equivalent to several 4K movies per second. Such a data fire hose places a burden on data acquisition, storage, and processing operations and calls for technologies that compress images in optical domain and in real-time. An example of this, based on warped stretch transformation and non-uniform Fourier domain sampling has recently been reported [4]. The paper will provide an overview of the time-stretch microscope with real-time optical image compression, and application of this technology in classification of cancer cell lines in blood.
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