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GPU-Accelerated Real-Time Gastrointestinal Diseases Detection

机译:GPU加速的实时胃肠道疾病检测

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The process of finding diseases and abnormalities during live medical examinations has for a long time depended mostly on the medical personnel, with a limited amount of computer support. However, computer-based medical systems are currently emerging in domains like endoscopies of the gastrointestinal (GI) tract. In this context, we aim for a system that enables automatic analysis of endoscopy videos, where one use case is live computer-assisted endoscopy that increases disease-and abnormality-detection rates. In this paper, a system that tackles live automatic analysis of endoscopy videos is presented with a particular focus on the system's ability to perform in real time. The presented system utilizes different parts of a heterogeneous architecture and can be used for automatic analysis of high-definition colonoscopy videos (and a fully automated analysis of video from capsular endoscopy devices). We describe our implementation and report the system performance of our GPU-based processing framework. The experimental results show real-time stream processing and low resource consumption, and a detection precision and recall level at least as good as existing related work.
机译:长期进行现场医学检查期间发现疾病和异常的过程主要取决于医务人员,并且计算机支持量有限。但是,基于计算机的医疗系统目前正在胃肠道(GI)内窥镜检查等领域出现。在这种情况下,我们的目标是一种能够自动分析内窥镜视频的系统,其中一个用例是实时计算机辅助内窥镜,可提高疾病和异常检测率。在本文中,提出了一种用于实时处理内窥镜视频的自动分析系统,特别着重于该系统的实时执行能力。提出的系统利用异构体系结构的不同部分,可用于自动分析高清结肠镜检查视频(以及对来自胶囊内窥镜检查设备的视频进行全自动分析)。我们描述我们的实现并报告基于GPU的处理框架的系统性能。实验结果表明,实时流处理和低资源消耗,以及检测精度和召回水平至少与现有的相关工作一样好。

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