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Enhanced Loran skywave delay estimation based on artificial neural network in low SNR environment

机译:低信噪比环境下基于人工神经网络的增强罗兰天波时延估计。

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摘要

This study proposes a high precision algorithm to estimate the Enhanced Loran skywave delay. It is based on the artificial neural network. The algorithm establishes a neural network model between the receiving Enhanced Loran signal and the skywave propagation delay. By training a large number of data, the neural network model can more accurately reflect the relationship between the receiving signal and the skywave delay. This is an innovative application of the skywave delay estimation algorithm in the Enhanced Loran receiving system, especially in low signal-to-noise ratio (SNR) environments. The experimental results show that the accuracy of this algorithm is about hundreds of nanoseconds in the condition of normal receiving SNR. The accuracy of the algorithm is about us in the condition of low SNR, while the previous algorithm cannot be used in this case. It has also been proved by the off-air data.
机译:这项研究提出了一种高精度算法来估计增强的罗兰天波延迟。它基于人工神经网络。该算法在接收到的增强罗兰信号与天波传播延迟之间建立了神经网络模型。通过训练大量数据,神经网络模型可以更准确地反映接收信号与天波延迟之间的关系。这是天波延迟估计算法在增强型Loran接收系统中的创新应用,尤其是在低信噪比(SNR)环境中。实验结果表明,在正常接收信噪比的情况下,该算法的精度约为数百纳秒。在低信噪比的情况下,算法的准确性与我们有关,而在这种情况下不能使用以前的算法。空中数据也证明了这一点。

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