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On Packet Size and Error Correction Optimisations in Low-Power Wireless Networks

机译:低功耗无线网络中的数据包大小和纠错优化

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In wireless networks that operate in those bands where spectrum sharing occurs across a variety of wireless technologies, such as the license-free Industrial Scientific and Medical (ISM) bands, mitigating interference becomes challenging. Addressing interference is an important aspect for the design and development of solutions intended to satisfy the demands of applications requiring QoS guarantees. In this paper, we investigate dynamic radio resource adaptation techniques based on instantaneous spectrum usage. Using a novel metric to quantify the spectrum usage, we address packet size and error correction code overhead optimizations. On one hand, large payloads lead to energy and throughput gains due to the amortization of the transmission overheads, but on the other hand, larger payloads imply larger resource wastage in the event of packet collisions. Using real-world data, we found that payload size in the neighbourhood of 100 bytes leads to near-optimal performance in general in the IEEE 802.15.4 networks. Our data also shows that for very high interference scenarios, erasure codes capable of correcting 10% of the packet payload can provide an equivalent Signal to Interference plus Noise Ratio (SINR) gain of 25 dB with probability greater than 0.6. This is significant for interference management and for increasing spatial re-use by employing lower transmission power. We show that erasure codes drastically improve energy-efficiency and throughput of low-power wireless links. In the heavy interference regime, even though interference doubles the energy-per-usable-bit cost, erasure codes remain cost-effective for very large payload sizes, up-to 1500 bytes. Finally, we discuss interference-dependent dynamic adjustment of the correction capacity of erasure codes.
机译:在使用频谱共享发生在各种无线技术的频带的无线网络中,例如无用的工业科学和医疗(ISM)频段,减轻干扰变得具有挑战性。解决干扰是设计和开发旨在满足需要QoS保证的应用需求的解决方案的重要方面。本文基于瞬时频谱用途研究了动态无线电适应技术。使用新的度量来量化频谱使用,我们地址分组大小和纠错码开销优化。一方面,由于传输开销的摊销,大量有效载荷导致能量和吞吐量增益,但另一方面,在数据包冲突中较大的有效载荷意味着更大的资源浪费。使用现实世界数据,我们发现100个字节附近的有效载荷大小导致IEEE 802.15.4网络中的近乎最佳性能。我们的数据还表明,对于非常高的干扰场景,能够校正10%的数据包有效载荷的擦除码可以提供与25 dB的干扰加噪声比(SINR)增益的等效信号大于0.6。这对于干扰管理具有重要意义,并且通过采用更低的传输功率来增加空间重复使用。我们表明擦除代码大大提高了低功耗无线链路的能效和吞吐量。在沉重的干扰方案中,即使干扰加倍能量的能量比特成本,擦除代码对于非常大的有效载荷尺寸,最高为1500字节仍然具有成本效益。最后,我们讨论了擦除码校正能力的干扰依赖性动态调整。

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