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Detection of weak signals hidden beneath the noise floor with a modified principal components analysis

机译:通过改进的主成分分析检测隐藏在本底噪声下的微弱信号

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Detecting signals hidden beneath the noise floor is a challenging task. As the signal-to-noise ratio (S/N) dips below 0, false alarms and detection misses become a serious problem. Furthermore, to satisfy the real-time or near real-time requirement, detection schemes that are computationally intensive do not enjoy wide-spread adoption. In this paper, we present a new detection algorithm consisting of phase-space reconstruction technique and principal components analysis. The goal is to achieve the detection of weak signals in noisy environments. With the new algorithm, our study shows that in addition to detection, the frequency of the signal can be extracted even when the S/N reaches negative value and the FFT power spectrum shows no trace of its spectral characteristics. The signal detection scheme is insensitive to the nature of the background noise, making it viable to achieve good performance in various signal application domains. In this paper, we chose to report on the results pertaining to the analysis of time series from IPIX radar. The new detection algorithm is also computationally lean, thus enabling its use in real-time applications.
机译:检测隐藏在本底噪声之下的信号是一项艰巨的任务。随着信噪比(S / N)降至0以下,虚假警报和检测遗漏成为一个严重的问题。此外,为了满足实时或接近实时的要求,计算密集型的检测方案没有得到广泛采用。在本文中,我们提出了一种新的检测算法,该算法包括相空间重构技术和主成分分析。目的是在嘈杂的环境中实现对弱信号的检测。使用新算法,我们的研究表明,除了检测之外,即使当S / N达到负值并且FFT功率谱也没有显示其频谱特性时,也可以提取信号的频率。信号检测方案对背景噪声的性质不敏感,因此可以在各种信号应用领域中实现良好的性能。在本文中,我们选择报告与IPIX雷达的时间序列分析有关的结果。新的检测算法在计算上也很精简,因此可以在实时应用中使用。

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