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Spectral analysis of nonuniformly sampled data using a least square method for application in multiple PRI system

机译:多种PRI系统应用中应用最小二乘法的非厘米采样数据的光谱分析

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This paper addresses the problem of spectrum analysis from nonuniformly sampled data using the least square method for applications in multiple PRF radar system. The benefits of using a direct spectrum analysis using nonuniformly spaced data instead of using a FFT based CR(Chinese Remainder) theorem has been presented. Using a spectrum analysis based on nonuniformly spaced data, the blind bursts that the target frequency is folded into the clutter band could be overcome easily. Additional benefits of using an unevenly spaced data spectrum is its robustness to noise. It is shown that the least square method outperforms conventional Chinese remainder theorem based on FFT method by 2.5[dB] of SNR. This can also be an efficient method when there exist multiple interferences with same magnitude as the target. To obtain a spectrum from nonuniformly sampled data, the well known Lomb periodogram has been modified to fit a complex sequence. Phase component has also been recovered from the power representation to determine whether the target is opening or closing. The result of a modified scheme is compared to the result of the Lomb periodogram.
机译:本文使用多个PRF雷达系统中的应用中的最小二乘法解决了来自非厘米采样数据的频谱分析问题。已经提出了使用非均匀间隔数据而不是使用基于FFT基于FFT的CR(中文余数)定理的直接频谱分析的益处。使用基于非均匀间隔数据的频谱分析,可以容易地克服目标频率折叠到杂波频带中的盲突发。使用不均匀间隔的数据谱的额外优势是其对噪声的鲁棒性。结果表明,基于SNR的2.5℃,最小二乘法基于FFT方法优于常规的中国剩余定理。当存在与目标相同的幅度相同的干扰时,这也可以是一种有效的方法。为了获得来自非均匀采样数据的光谱,已修饰众所周知的LONB期间以适合复杂序列。从功率表示也已恢复相位分量,以确定目标是打开还是关闭。将修改方案的结果与LONB期间图的结果进行了比较。

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