CLC number: TN95
On-line Access: 2024-08-27
Received: 2023-10-17
Revision Accepted: 2024-05-08
Crosschecked: 2015-07-08
Cited: 0
Clicked: 8330
Ji-chuan Li, Xiao-de Lu, Hui Zhang, Peng-cheng Yang, Yu Liu, Mao-sheng Xiang. Moving target detection in the cepstrum domain for passive coherent location (PCL) radar[J]. Frontiers of Information Technology & Electronic Engineering,in press.https://doi.org/10.1631/FITEE.1500036 @article{title="Moving target detection in the cepstrum domain for passive coherent location (PCL) radar", %0 Journal Article TY - JOUR
Abstract: The work emphasizes on IMPROVED CEPSTRUM. The concept is clear and good. The language used is simple and easy to understand. The real time results portrayed are appreciable. It is an interesting advance in the field.
无源雷达倒谱动目标检测方法创新点:首次提出基于倒谱技术的无源雷达动目标检测(CEPMTD)方法。在CEPMTD算法的基础上,为获得更高的目标检测性能,进而提出了改进的CEPMTD算法。 方法:首先,将传统倒谱技术加以改进和扩展,使其具有运动目标检测的能力。然后,在该方法基础上,提出改进的CEPMTD算法,利用相同的回波信号和参考信号,通过改变它们之间的相对延时,构建不同的合成信号。对于每个合成信号利用CEPMTD算法进行目标检测,将每次输出的结果按照一定的规则相干累加。运动目标的真实峰值相干累加,而旁瓣和副峰则非相干叠加。最后,利用仿真和试验数据对本文方法进行验证。 结论:理论分析结果显示改进的CEPMTD算法的目标检测性能优于雷达模糊函数,仿真和试验结果验证了理论分析结果。 关键词组: Darkslateblue:Affiliate; Royal Blue:Author; Turquoise:Article
Reference[1]Andric, M.S., Bujakovic, D.M., Bondzulic, B.P., et al., 2011. Cepstrum-based analysis of radar Doppler signals. Proc. 10th Int. Conf. on Telecommunication in Modern Satellite Cable and Broadcasting Services, p.575-578. ![]() [2]Axelsson, S.R.J., 2004. Noise radar using random phase and frequency modulation. IEEE Trans. Geosci. Remote Sens., 42(11):2370-2384. ![]() [3]Bogert, B.P., Healy, M.J.R., Tukey, J.W., 1963. The quefrency analysis of time series for echoes: cepstrum, pseudo-autocovariance, cross-cepstrum and saphe cracking. Proc. Symp. on Time Series Analysis, p.209-243. ![]() [4]Cherniakov, M., 2008. Bistatic Radars: Emerging Technology. John Wiley & Sons, Inc., UK. ![]() [5]Hansson-Sandsten, M., Axmon, J., 2007. Multiple-window cepstrum analysis for estimation of periodicity. IEEE Trans. Signal Process., 55(2):474-481. ![]() [6]Kemerait, R., Childers, D.G., 1972. Signal detection and extraction by cepstrum techniques. IEEE Trans. Inform. Theory, 18(6):745-759. ![]() [7]Kim, H.K., Rose, R.C., 2003. Cepstrum-domain acoustic feature compensation based on decomposition of speech and noise for ASR in noisy environments. IEEE Trans. Speech Audio Process., 11(5):435-446. ![]() [8]Kim, H.K., Rose, R.C., 2009. Cepstrum-domain model combination based on decomposition of speech and noise using MMSE-LSA for ASR in noisy environments. IEEE Trans. Audio Speech Lang. Process., 17(4):704-713. ![]() [9]Li, J., Lu, X., Zhao, Y., 2012. A novel algorithm for side peaks suppression of ambiguity function for passive radar based on Chinese DTTB signal. J. Electron. (China), 29(6):485-492. ![]() [10]Li, J., Zhao, Y., Lu, X., 2013. The impact of step selection in NLMS algorithm on low velocity target detecting for passive radar. Proc. IET Int. Radar Conf. ![]() [11]Malanowski, M., Kulpa, K., Kulpa, J., et al., 2014. Analysis of detection range of FM-based passive radar. IET Radar Sonar Navig., 8(2):153-159. ![]() [12]Noll, A.M., 1964. Short-time spectrum and “Cepstrum” techniques for vocal-pitch detection. J. Acoust. Soc. Am., 36(2):296-302. ![]() [13]Noll, A.M., 1967. Cepstrum pitch determination. J. Acoust. Soc. Am., 41(2):293-309. ![]() [14]Olivadese, D., Giusti, E., Petri, D., et al., 2013. Passive ISAR with DVB-T signals. IEEE Trans. Geosci. Remote Sens., 51(8):4508-4517. ![]() [15]Oppenheim, A.V., 1965. Superposition in a Class of Nonlinear Systems. PhD Thesis, MIT Research Laboratory of Electronics, Cambridge, USA. ![]() [16]Oppenheim, A.V., Schafer, R.W., 2004. From frequency to quefrency: a history of the cepstrum. IEEE Signal Process. Mag., 21(5):95-106. ![]() [17]Palmer, J.E., Harms, H.A., Searle, S.J., et al., 2013. DVB-T passive radar signal processing. IEEE Trans. Signal Process., 61(8):2116-2126. ![]() [18]Schafer, R.W., 1969. Echo Removal by Discrete Generalized Linear Filtering. Technical Report, MIT Research Laboratory of Electronics, Cambridge, USA. ![]() [19]Sinsky, A.I., Wang, C., 1974. Standardization of the definition of the radar ambiguity function. IEEE Trans. Aerosp. Electron. Syst., AES-10(4):532-533. ![]() [20]Stoffa, P.L., Buhl, P., Bryan, G.M., 1974. The application of homomorphic deconvolution to shallow-water marine seismology—Part I: models. Geophysics, 39(4):401-416. ![]() [21]Thomas, J.M., Griffiths, H.D., Baker, C.J., 2006. Ambiguity function analysis of digital radio mondiale signals for HF passive bistatic radar. Electron. Lett., 42(25):1482-1483. ![]() [22]Tsai, W.H., Lin, H.P., 2011. Background music removal based on cepstrum transformation for popular singer identification. IEEE Trans. Audio Speech Lang. Process., 19(5):1196-1205. ![]() [23]Ulrych, T.J., 1971. Application of homomorphic deconvolution to seismology. Geophysics, 36(4):650-660. ![]() [24]Yan, H., Shen, G., Zetik, R., et al., 2013. Ultra-wideband MIMO ambiguity function and its factorability. IEEE Trans. Geosci. Remote Sens., 51(1):504-519. ![]() Journal of Zhejiang University-SCIENCE, 38 Zheda Road, Hangzhou
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