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Interference suppression methods with adaptive threshold in Internet of Things (IoT) systems

机译:在物联网(物联网)系统中具有自适应阈值的干扰抑制方法

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The explosive growth in home, wearable, and wireless devices has not been matched by the growth in radio spectrum bands to accommodate them. The inter-networking of all of these devices known as “the internet of things (IoT)” is expected to have tens of billions of devices, mostly wireless, definitely incurring a coexistence or interference problem. The ubiquitous industrial, scientific and medical (ISM) radio band at 2.4GHz, in particular, one of the candidate band for IoT is heavily oversubscribed due to its unlicensed nature and could become all but unusable for priority systems in a densely populated area in the future at the present rate of growth of 2.4GHz transmitters and networks. In our study, the communications of the “last 100 meters” of an IoT network, i.e., from devices to an access point (AP) are considered. The interference suppression algorithms using the probability of false alarm PFAbased methods, i.e., the Neyman-Pearson (NP) criterion and the localization algorithm based on double-thresholding (LAD) are applied to enhance the transmission bit error rate (BER) performances in various scenarios. Besides the traditional fixed threshold approach, an adaptive threshold approaches are proposed to enhance the performances in frequency selective fading channels. The simulation results show that the proposed methods excellently work even in an IoT network, which contains a large number of devices.
机译:家庭,可穿戴和无线设备的爆炸性增长尚未匹配无线电谱带的增长以适应它们。所有称为“物联网(物联网)”的所有这些设备的网络间都预计将具有数十亿个设备,大多是无线的,绝对导致共存或干扰问题。普遍存在的工业,科学和医疗(ISM)无线电乐队,特别是IOT的候选乐队之一,由于其未经许可的性质,由于其未经许可的性质而言,这可能变得全部但是在浓密人口稠密的区域中的优先系统变得全部但无法使用未来目前的2.4GHz发射机和网络的增长率。在我们的研究中,考虑了IOT网络的“最后100米”的通信,即从设备到接入点(AP)。使用假警报PF概率的干扰抑制算法 a 基于方法,即Neyman-Pearson(NP)标准和基于双阈值(LAD)的定位算法应用于增强各种场景中的传输钻头错误率(BER)性能。除了传统的固定阈值方法之外,提出了一种自适应阈值方法来增强频率选择性衰落通道中的性能。仿真结果表明,所提出的方法即使在IOT网络中也有用,其中包含大量设备。

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