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Spectral-correlation based estimation of channel parameters by noncoherent data processing

机译:基于非相关数据处理的基于频谱相关的信道参数估计

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A recently proposed cyclostationarity exploiting, i.e., spectral-correlation based, method for estimating the channel parameters needs a long integration time to obtain a sufficient level of noise and interference suppression in weak-signal case. The paper overcomes such a limitation by adopting a noncoherent data processing, i.e., by segmenting data and averaging the estimates obtained from each segment. The appropriate length of the temporal segment is determined as a compromise between computation time and estimate accuracy. It is shown that the noncoherent data processing can work well also when the accuracy in knowledge of the cycle frequency (i.e., the parameter characterizing the cyclostationarity) is not sufficient to assure an acceptable performance level with a coherent data processing.
机译:最近提出的循环平稳性开发,即基于频谱相关的估计信道参数的方法需要很长的积分时间才能在弱信号情况下获得足够的噪声和干扰抑制水平。本文通过采用非相干数据处理,即通过对数据进行分段并平均从每个分段获得的估计值,克服了这种限制。确定时间段的适当长度是计算时间和估计精度之间的折衷。结果表明,当循环频率知识的准确度(即表征循环平稳性的参数)不足以确保相干数据处理的性能水平时,非相干数据处理也可以很好地工作。

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