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Implementation of a scalable real time canny edge detector on programmable SOC

机译:在可编程SOC上实现可扩展的实时Canny边缘检测器的实现

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In today's world, we are surrounded by variety of computer vision applications e.g. medical imaging, bio-metrics, security, surveillance and robotics. Most of these applications require real time processing of a single image or sequence of images. This real time image/video processing requires high computational power and specialized hardware architecture and can't be achieved using general purpose CPUs. In this paper, a FPGA based generic canny edge detector is introduced. Edge detection is one of the basic steps in image processing, image analysis, image pattern recognition, and computer vision. We have implemented a re-sizable canny edge detector IP on programmable logic (PL) of PYNQ-Platform. The IP is integrated with HDMI input/output blocks and can process 1080p input video stream at 60 frames per second. As mentioned the canny edge detection IP is scalable with respect to frame size i.e. depending on the input frame size, the hardware architecture can be scaled up or down by changing the template parameters. The offloading of canny edge detection from PS to PL causes the CPU usage to drop from about 100% to 0%. Moreover, hardware based edge detector runs about 14 times faster than the software based edge detector running on Cortex-A9 ARM processor.
机译:在当今世界,我们被各种各样的计算机视觉应用程序所包围,例如医学成像,生物识别,安全,监视和机器人技术。这些应用大多数都需要对单个图像或图像序列进行实时处理。这种实时图像/视频处理需要很高的计算能力和专门的硬件体系结构,无法使用通用CPU来实现。本文介绍了一种基于FPGA的通用Canny边缘检测器。边缘检测是图像处理,图像分析,图像模式识别和计算机视觉中的基本步骤之一。我们已经在PYNQ平台的可编程逻辑(PL)上实现了可调整大小的Canny边缘检测器IP。该IP与HDMI输入/输出模块集成在一起,可以处理每秒60帧的1080p输入视频流。如所提到的,Canny边缘检测IP相对于帧大小是可伸缩的,即取决于输入帧大小,可以通过改变模板参数来按比例放大或缩小硬件体系结构。将PS边缘检测的负担从PS卸载到PL,导致CPU使用率从大约100%下降到0%。此外,基于硬件的边缘检测器的运行速度比在Cortex-A9 ARM处理器上运行的基于软件的边缘检测器快约14倍。

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