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首页> 外文期刊>Journal of Parallel and Distributed Computing >A hardware accelerated system for high throughput cellular image analysis
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A hardware accelerated system for high throughput cellular image analysis

机译:用于高通量细胞图像分析的硬件加速系统

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AbstractImaging flow cytometry and high speed microscopy have shown immense promise for clinical diagnostics, biological research, and drug discovery. They enable high throughput screening and sorting using biological, chemical, or mechanical properties of cells. These techniques can separate mature cells from immature ones, determine the presence of cancerous cells, classify stem cells during differentiation, and screen drugs based upon how they affect cellular architecture. The process works by imaging cells at a high rate, extracting features of the cell (e.g., size, location, circularity, deformation), and using those features to classify the cell. Modern systems have a target throughput of thousands of cells per second, which requires imaging at rates of more than 60,000 frames per second. The cellular features must be calculated in less than a millisecond to enable real-time sorting. This creates challenging computing performance constraints in terms of both throughput and latency. In this paper, we present a hardware accelerated system for high throughput cellular image analysis. We carefully developed algorithms and their corresponding hardware implementations to meet the strict computational demands. Our algorithm analyzes and extracts cellular morphological features from low resolution microscopic images. Our hardware accelerated system operates at over 60,000 frames per second with 0.068 ms latency. This is almost1400×faster in throughput than similar software based analysis and335×better in terms of latency.HighlightsA scalable, high speed image analysis algorithm for cell morphological analysis.A hardware accelerated system to achieve a high throughput and low latency constraint.A demonstration of a proposed system in an end-to-end (CPU- FPGA) machine.A flexible hardware design for an FPGA using a high-level synthesis tool.
机译: 摘要 成像流式细胞术和高速显微镜显示了临床诊断的巨大希望,生物研究和药物发现。它们可以利用细胞的生物学,化学或机械特性进行高通量筛选和分类。这些技术可以将成熟细胞与未成熟细胞分离,确定癌细胞的存在,在分化过程中对干细胞进行分类,并根据它们如何影响细胞结构筛选药物。该过程通过对细胞进行高速成像,提取细胞特征(例如大小,位置,圆形度,变形),然后使用这些特征对细胞进行分类来进行。现代系统的目标吞吐量为每秒数千个单元,这需要以每秒60,000帧以上的速率进行成像。必须在不到一毫秒的时间内计算出蜂窝特征,才能进行实时分类。这在吞吐量和延迟方面都产生了挑战性的计算性能约束。在本文中,我们提出了一种用于高通量细胞图像分析的硬件加速系统。我们精心开发了算法及其相应的硬件实现,以满足严格的计算需求。我们的算法从低分辨率显微图像中分析并提取细胞形态特征。我们的硬件加速系统以每秒60,000帧的速度运行,延迟为0.068毫秒。这几乎是 1400 × 的吞吐速度比基于类似软件的分析和 335 × 在延迟方面更好。 突出显示 ”> 针对细胞形态的可扩展高速图像分析算法分析。 一个硬件加速系统,可实现高吞吐量和低延迟约束。 在端到端(CPU- FPGA)机器。 使用高级综合工具为FPGA进行灵活的硬件设计。

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