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首页> 外文期刊>Progress in Artificial Intelligence >Improving Quality-Of-Service in LoRa Low-Power Wide-Area Networks through Optimized Radio Resource Management
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Improving Quality-Of-Service in LoRa Low-Power Wide-Area Networks through Optimized Radio Resource Management

机译:通过优化的无线电资源管理提高LORA低功耗广域网的服务质量

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摘要

Low Power Wide Area Networks (LPWAN) enable a growing number of Internet-of-Things (IoT) applications with large geographical coverage, low bit-rate, and long lifetime requirements. LoRa (Long Range) is a well-known LPWAN technology that uses a proprietary Chirp Spread Spectrum (CSS) physical layer, while the upper layers are defined by an open standard-LoRaWAN. In this paper, we propose a simple yet effective method to improve the Quality-of-Service (QoS) of LoRaWAN networks by fine-tuning specific radio parameters. Through a Mixed Integer Linear Programming (MILP) problem formulation, we find optimal settings for the Spreading Factor (SF) and Carrier Frequency (CF) radio parameters, considering the network traffic specifications as a whole, to improve the Data Extraction Rate (DER) and to reduce the packet collision rate and the energy consumption in LoRa networks. The effectiveness of the optimization procedure is demonstrated by simulations, using LoRaSim for different network scales. In relation to the traditional LoRa radio parameter assignment policies, our solution leads to an average increase of 6% in DER, and a number of collisions 13 times smaller. In comparison to networks with dynamic radio parameter assignment policies, there is an increase of 5%, 2.8%, and 2% of DER, and a number of collisions 11, 7.8 and 2.5 times smaller than equal-distribution, Tiurlikova's (SOTA), and random distribution, respectively. Regarding the network energy consumption metric, the proposed optimization obtained an average consumption similar to Tiurlikova's, and 2.8 times lower than the equal-distribution and random dynamic allocation policies. Furthermore, we approach the practical aspects of how to implement and integrate the optimization mechanism proposed in LoRa, guaranteeing backward compatibility with the standard protocol.
机译:低功耗广域网(LPWAN)实现具有大地理覆盖率,低比特率和长寿命要求的跨越互联网的互联网(IOT)应用。 LORA(远程)是一项着名的LPWAN技术,使用专有的CHIRP扩频(CSS)物理层,而上层由开放标准-LORAWAN定义。在本文中,我们提出了一种简单但有效的方法,通过微调特定的无线电参数来提高LoraWan网络的服务质量(QoS)。通过混合整数线性编程(MILP)问题配方,我们发现扩展因子(SF)和载波频率(CF)无线电参数的最佳设置,考虑到整个网络流量规范,以提高数据提取率(DER)并降低LORA网络中的数据包冲突率和能量消耗。使用Lorasim对于不同的网络尺度,通过模拟来证明优化过程的有效性。与传统的LORA无线电参数分配策略有关,我们的解决方案导致DER的平均增加6%,并且较少的碰撞量小。与具有动态无线参数分配策略的网络相比,增加了5%,2.8%和2%的DER,以及比同等分布的次数为11,7.8和2.5倍,Tiurlikova(SOTA),分别和随机分布。关于网络能源消耗度量,所提出的优化获得了与Tiurlikova类似的平均消耗,比同等分布和随机动态分配策略低2.8倍。此外,我们接近如何实现和集成Lora中提出的优化机制的实际方面,保证与标准协议的向后兼容性。

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