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Signal Estimation in Cognitive Satellite Networks for Satellite-Based Industrial Internet of Things

机译:基于卫星工业互联网的认知卫星网络中的信号估计

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Satellite industrial Internet of Things (IIoT) plays an important role in industrial manufactures without requiring the support of terrestrial infrastructures. However, due to the scarcity of spectrum resources, existing satellite frequency bands cannot satisfy the demand of IIoT, which have to explore other available spectrum resources. Cognitive satellite networks are promising technologies and have the potential to alleviate the shortage of spectrum resources and enhance spectrum efficiency by sharing both spectral and spatial degrees of freedom. For effective signal estimations, multiple features of wireless signals are needed at receivers, the transmissions of which may cause considerable overhead. To mitigate the overhead, part of parameters, such as modulation order, constellation type, and signal to noise ratio (SNR), could be obtained at receivers through signal estimation rather than transmissions from transmitters to receivers. In this article, a grid method is utilized to process the constellation map to obtain its equivalent probability density function. Then, binary feature matrix of the probability density function is employed to construct a cost function to estimate the modulation order and constellation type for multiple quadrature amplitude modulation (MQAM) signal. Finally, an improved M2M infinity method is adopted to realize the SNR estimation of MQAM. Simulation results show that the proposed method is able to accurately estimate the modulation order, constellation type, and SNR of MQAM signal, and these features are extremely useful in satellite-based IIoT.
机译:卫星工业互联网(IIOT)在工业制造商中发挥着重要作用,而不需要支持陆地基础设施。然而,由于频谱资源的稀缺性,现有的卫星频段不能满足IIOT的需求,必须探索其他可用的频谱资源。认知卫星网络是有前途的技术,并且有可能通过共享光谱和空间自由度来缓解频谱资源的短缺,提高频谱效率。为了有效信号估计,接收器需要多个无线信号的特征,其传输可能导致相当大的开销。为了减轻开销,可以通过信号估计在接收器中获得诸如调制顺序,星座类型和信噪比(SNR)的参数的一部分,而不是从发送器到接收器的传输。在本文中,利用网格方法来处理星座图以获得其等效概率密度函数。然后,采用概率密度函数的二进制特征矩阵来构造成本函数以估计用于多个正交幅度调制(MQAM)信号的调制顺序和星座类型。最后,采用改进的M2M无限方法来实现MQAM的SNR估计。仿真结果表明,该方法能够准确地估计MQAM信号的调制顺序,星座型和SNR,这些功能在基于卫星的IIOT中非常有用。

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