IEEE 802.15.4中采用DSSS和CSS物理层的块确认

Norberto Barroca, L. M. Borges, F. Velez, P. Chatzimisios
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引用次数: 2

摘要

IEEE 802.15.4标准已被广泛接受为无线传感器网络(wsn)的事实上的标准,因为它为低数据速率的无线连接提供了超低的复杂性、成本和能耗。然而,IEEE 802.15.4介质访问控制(MAC)效率低下的根本原因之一是开销。在我们的研究背景下,我们证明了wsn可能受益于数据包连接。在本文中,我们介绍并研究了块确认机制的使用,以便在IEEE 802.15.4非信标支持网络中实现2.4工业、科学和医疗(ISM)频段的啁啾扩频(CSS)和直接序列扩频(DSSS)物理层(PHY)的增强信道效率。两个新的创新MAC子层机制的提议也可以被视为对标准本身的未来可能的贡献。在理想条件下(即没有传输错误的信道环境),吞吐量和延迟性能在数学上推导出来。利用omnet++仿真器,将所提方案的性能与IEEE 802.15.4标准进行了比较。我们证明,对于这两个物理层,网络性能在吞吐量、端到端延迟和带宽效率方面都得到了显着改善。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Block acknowledgment in IEEE 802.15.4 by employing DSSS and CSS PHY layers
The IEEE 802.15.4 standard has been widely accepted as the de facto standard for Wireless Sensor Networks (WSNs), since it provides ultra-low complexity, cost and energy consumption for low-data rate wireless connectivity. However, one of the fundamental reasons for the IEEE 802.15.4 Medium Access Control (MAC) inefficiency is overhead. In the context of our research, we demonstrate that WSNs may benefit from packet concatenation. In this paper we introduce and study the employment of a block acknowledgment mechanisms in order to achieve enhanced channel efficiency in IEEE 802.15.4 nonbeacon-enabled networks for both the Chirp Spread Spectrum (CSS) and Direct Sequence Spread Spectrum (DSSS) Physical (PHY) layers for the 2.4 Industrial, Scientific and Medical (ISM) frequency band. The proposal of the two new innovative MAC sublayer mechanisms can also be considered as a future possible contribution to the standard itself. The throughput and delay performance is mathematically derived under ideal conditions, (i.e., a channel environment without transmission errors). The performance of the proposed schemes is compared against the IEEE 802.15.4 standard through extensive simulations by employing the OMNeT++ simulator. We demonstrate that, for both PHY layers, the network performance is significantly improved in terms of throughput, end-to-end delay and bandwidth efficiency.
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