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Performance and energy-efficient implementation of a smart city application on FPGAs

机译:在FPGA上的智能城市应用的性能和节能实施

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The continuous growth of modern cities and the request for better quality of life, coupled with the increased availability of computing resources, lead to an increased attention to smart city services. Smart cities promise to deliver a better life to their inhabitants while simultaneously reducing resource requirements and pollution. They are thus perceived as a key enabler to sustainable growth. Out of many other issues, one of the major concerns for most cities in the world is traffic, which leads to a huge waste of time and energy, and to increased pollution. To optimize traffic in cities, one of the first steps is to get accurate information in real time about the traffic flows in the city. This can be achieved through the application of automated video analytics to the video streams provided by a set of cameras distributed throughout the city. Image sequence processing can be performed both peripherally and centrally. In this paper, we argue that, since centralized processing has several advantages in terms of availability, maintainability and cost, it is a very promising strategy to enable effective traffic management even in large cities. However, the computational costs are enormous, and thus require an energy-efficient High-Performance Computing approach. Field Programmable Gate Arrays (FPGAs) provide comparable computational resources to CPUs and GPUs, yet require much lower amounts of energy per operation (around 6x for the application considered in this case study). They are thus preferred resources to reduce both energy supply and cooling costs in the huge datacenters that will be needed by Smart Cities. In this paper, we describe efficient implementations of high-performance algorithms that can process traffic camera image sequences to provide traffic flow information in real-time at a low energy and power cost.
机译:现代城市的持续增长和提高生活质量的要求,加上计算资源的可用性增加,导致智能城市服务增加。智能城市承诺向其居民提供更好的生活,同时降低资源需求和污染。因此,它们被认为是可持续增长的关键推动者。在许多其他问题中,世界上大多数城市的主要问题之一是交通,这导致了巨大的时间和能量,并增加了污染。为了优化城市的流量,第一步之一是实时获得大量信息的准确信息。这可以通过将自动视频分析应用于在整个城市的一组摄像机提供的视频流中的视频流来实现。图像序列处理可以在外围和集中进行。在本文中,我们认为,由于集中化处理在可用性,可维护性和成本方面具有几个优点,因此即使在大城市中也能够实现有效的交通管理是一种非常有希望的策略。然而,计算成本是巨大的,因此需要节能的高性能计算方法。字段可编程门阵列(FPGA)为CPU和GPU提供了可比的计算资源,但每个操作需要较低的能量(在本案例研究中考虑的应用程序约为6倍)。因此,它们是优选的资源,以减少智能城市需要的巨大数据中心的能量供应和冷却成本。在本文中,我们描述了高性能算法的有效实现,其可以处理交通摄像机图像序列,以低能量和功率成本实时地提供交通流量信息。

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