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A Recursive Estimator of Spectral Noise Floor in the Presence of Signals

机译:信号的存在频谱噪声底板的递归估计

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In this paper we propose a recursive noise floor estimator, which operates on spectral data and in the presence of intermittent signals. We use a Bayesian approach where we treat data samples consisting of signals as outliers in a Gaussian mixture distribution. The signal is modelled with a Gaussian distribution having larger power with respect to that of pure noise samples. In addition to noise floor estimation, this technique also leads to a novel detection statistic for the detection of signals in noise. We demonstrate our approach in two scenarios. Firstly, we consider a noise only case and calculate the root mean square error for the estimated noise variance over the number of spectral samples used. In the second scenario, we simulate representative radio frequency (RF) signals in the presence of noise and evaluate the performance of our approach by estimating the noise and the detection of signals withwin the noise. We also compare our method to another classical technique, in the form of a median filter and show that our proposed approach performs better for certain signal scenarios of interest.
机译:在本文中,我们提出了一种递归噪声底板估算器,其在光谱数据和间歇信号的存在下运行。我们使用贝叶斯方法,在那里我们将由信号的数据样本视为高斯混合分布中的异常值。该信号采用具有较大功率的高斯分布,相对于纯噪声样本的高斯分布。除了噪声底层估计之外,该技术还导致了用于检测噪声信号的新型检测统计。我们在两种情况下展示了我们的方法。首先,我们考虑噪声才能案例并计算估计噪声方差的根均方误差,以通过使用的光谱样本的数量来计算估计的噪声方差。在第二场景中,我们在存在噪声的情况下模拟代表射频(RF)信号,并通过估计噪声和噪声的信号检测来评估我们的方法的性能。我们还将我们的方法与另一种经典技术进行比较,以中值过滤器的形式,并表明我们的提出方法对某些感兴趣的信号场景表现更好。

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