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A Wireless Sensor Network Application with Distributed Processing in the Compressed Domain

机译:压缩域中具有分布式处理的无线传感器网络应用

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摘要

Wireless Sensor Networks are being used in multiple applications and they are becoming popular particularly in precision-agriculture and environmental monitoring. Their low-cost enables to build distributed deployments with large spatial density of nodes. They have been traditionally used to build maps describing scalar fields varying in time and space. However, in the recent years, image capturing capable nodes have appeared allowing to measure more complex data but imposing new challenges for the processor and memory constrained nodes. Transmission of large images over a Wireless Sensor Network is a costly operation since most of the power consumption at the node is due to the operation of its radio. Hence, it is desirable to process and extract interesting features from the images at the node in order to transmit the important information and not all the images. However, image processing is also complicated by low processor and memory resources at the node. An image is usually delivered in JPEG format by the node's camera and stored in flash memory but, with current typical node configurations, memory resources are insufficient to open the image file and perform the image processing algorithms on the pixels of the image. To overcome this limitation, image processing can be done in the compressed domain parsing the JPEG file and working directly on the Discrete Cosine Transform coefficients of the compressed image blocks as soon as they are decoded. In this article, we present an agricultural Wireless Sensor Network application that implements block based classification in the compressed domain. In this application, image-sensor nodes are placed on insect pest traps to quantify pest population in fruit trees.
机译:无线传感器网络已被用于多种应用中,尤其在精密农业和环境监测中正变得越来越流行。它们的低成本使得可以构建具有较大节点空间密度的分布式部署。传统上,它们已用于构建描述随时间和空间变化的标量场的地图。但是,近年来,具有图像捕获能力的节点已经出现,可以测量更复杂的数据,但对处理器和内存受限的节点提出了新的挑战。通过无线传感器网络传输大图像是一项昂贵的操作,因为该节点的大部分功耗是由于其无线电的操作造成的。因此,期望处理并从节点处的图像中提取有趣的特征,以便传输重要信息而不是所有图像。但是,由于节点处的处理器和内存资源不足,图像处理也很复杂。图像通常由节点的相机以JPEG格式传送并存储在闪存中,但是,在当前典型的节点配置下,内存资源不足以打开图像文件并对图像的像素执行图像处理算法。为了克服此限制,可以在压缩域中对图像进行解析,以解析JPEG文件,并在解码后立即直接对压缩图像块的离散余弦变换系数进行处理。在本文中,我们介绍了一个农业无线传感器网络应用程序,该应用程序在压缩域中实现了基于块的分类。在此应用中,将图像传感器节点放置在害虫诱捕器上以量化果树中的害虫种群。

著录项

  • 来源
  • 会议地点 Stockholm(SE)
  • 作者单位

    Facultad de Ingenieria, Instituto de Ingenieria Electrica, Universidad de la Republica, Montevideo, Uruguay;

    Facultad de Ingenieria, Instituto de Ingenieria Electrica, Universidad de la Republica, Montevideo, Uruguay;

    Facultad de Ingenieria, Instituto de Ingenieria Electrica, Universidad de la Republica, Montevideo, Uruguay;

    Facultad de Ingenieria, Instituto de Ingenieria Electrica, Universidad de la Republica, Montevideo, Uruguay;

    Facultad de Ingenieria, Instituto de Ingenieria Electrica, Universidad de la Republica, Montevideo, Uruguay;

    Facultad de Ingenieria, Instituto de Ingenieria Electrica, Universidad de la Republica, Montevideo, Uruguay;

    Facultad de Ingenieria, Instituto de Ingenieria Electrica, Universidad de la Republica, Montevideo, Uruguay;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Wireless sensor network; Pest monitoring; Compressed domain; Block based classifier; JPEG; DCT;

    机译:无线传感器网络;害虫监测;压缩域;基于块的分类器; JPEG; DCT;

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