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Architecture Exploration Based on Tasks Partitioning Between Hardware, Software and Locality for a Wireless Vision Sensor Node

机译:基于任务的硬件,软件和位置之间的无线视觉传感器节点体系结构探索

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摘要

Wireless Vision Sensor Networks (WVSNs) is an emerging field which consists of a number of Visual Sensor Nodes (VSNs). Compared to traditional sensor networks, WVSNs operates on two dimensional data, which requires high bandwidth and high energy consumption. In order to minimize the energy consumption, the focus is on finding energy efficient and programmable architectures for the VSN by partitioning the vision tasks among hardware (FPGA), software (Micro-controller) and locality (sensor node or server). The energy consumption, cost and design time of different processing strategies is analyzedfor the implementation of VSN. Moreover, the processing energy and communication energy consumption of VSN is investigated in order to maximize the lifetime. Results show that by introducing a reconfigurable platform such as FPGA with small static power consumption and by transmitting the compressed images after pixel based tasks from the VSN results in longer battery lifetime for the VSN.
机译:无线视觉传感器网络(WVSN)是一个新兴领域,由许多视觉传感器节点(VSN)组成。与传统的传感器网络相比,WVSN在二维数据上运行,这需要高带宽和高能耗。为了最大程度地降低能耗,重点是通过将视觉任务划分为硬件(FPGA),软件(微控制器)和位置(传感器节点或服务器)来找到VSN的节能和可编程架构。为了实现VSN,分析了不同处理策略的能耗,成本和设计时间。此外,为了最大限度地延长使用寿命,还对VSN的处理能耗和通信能耗进行了研究。结果表明,通过引入可重构平台(例如具有低静态功耗的FPGA)并通过在VSN执行基于像素的任务之后传输压缩图像,可以延长VSN的电池寿命。

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