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Accelerating Histograms of Oriented Gradients descriptor extraction for pedestrian recognition

机译:加速梯度梯度直方图描述符提取,用于行人识别

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摘要

Pedestrian recognition is an emerging visual computing application for embedded systems. In one usage model, a vehicle mounted camera acquires image from road and a pedestrian recognition system automatically recognizes and alarms information on the road preventing traffic accidents. Achieving this in software on embedded systems requires significant compute processing for object recognition. In this paper, we identify the hotspot function of the workload on an embedded system that motivates acceleration and present the detailed design of a hardware accelerator for Histograms of Oriented Gradients descriptor extraction. We also quantify the performance and area efficiency of the hardware accelerator. Our analysis shows that hardware acceleration has the potential to improve the hotspot function. As a result, user response time can be reduced significantly.
机译:行人识别是一种用于嵌入式系统的新兴视觉计算应用程序。在一种使用模型中,车载摄像机从道路获取图像,行人识别系统自动识别并警告道路信息,以防止交通事故。在嵌入式系统上的软件中实现此目标需要大量的计算处理以实现对象识别。在本文中,我们确定了可促进加速的嵌入式系统上工作负载的热点功能,并给出了用于定向梯度描述符直方图提取的硬件加速器的详细设计。我们还量化了硬件加速器的性能和面积效率。我们的分析表明,硬件加速有可能改善热点功能。结果,可以大大减少用户响应时间。

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