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电信和无线电工程

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ISSN 打印: 0040-2508

ISSN 在线: 1943-6009

SJR: 0.185 SNIP: 0.268 CiteScore™:: 1.5 H-Index: 22

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ACOUSTIC NOISE ATMOSPHERIC RADAR WITH NONPARAMETRIC COPULA BASED SIGNAL PROCESSING

卷 71, 册 4, 2012, pp. 327-335
DOI: 10.1615/TelecomRadEng.v71.i4.30
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摘要

In this paper we discuss a new approach to creating the acoustic atmospheric radar (sodar) which is based on noise sounding waveform. Such sounding waveform has extremely high range and speed resolution. These good properties exist only in the case when we have independent samples, and a noise signal forms such independent samples because of its nature. The prototype of the radar is described and investigated theoretically, using computer simulation and in natural conditions. Non-parametrical signal processing algorithm is developed based on the statistical approach and digital signal processing. It has wonderful properties of invariance to the group of the noise and signal transforms and stable level of the false alarm probability. The algorithm can be applied for both acoustic and microwave noise radars. The use of the FFT algorithm increases the speed of calculations and gives us the possibility of constructing digital random signal radars. These new properties allow us to simplify signal detection algorithms and measure a distance, an azimuth and a target velocity simultaneously with high resolution and accuracy.

参考文献
  1. Lukin, K., First International Workshop on the Noise Radar Technology (NRTW 2002).

  2. Narayanan, R.M. et al., Doppler estimation using a coherent ultra-wideband random noise radar.

  3. Doviak, R. and Zrnic, D., Doppler radar and weather observations.

  4. Yanovsky, F., Potential of a noise radar for meteorological applications.

  5. Sinitsyn, R., Beletsky, A., and Yanovsky, F., Noise signal for sodar applications.

  6. Yanovsky, F. and Sinitsyn, R., Ultrawideband Signal Processing Agorothms for Radars and Sodars.

  7. Gijbels, I. and Mielniczuc, J., Estimating the density of a copula function.

对本文的引用
  1. Tarkovska Anna Ya., Sinitsyn Rustem B., Ambiguity function of passive acoustic radar, 2013 Signal Processing Symposium (SPS), 2013. Crossref

  2. Sinitsyn Rustem B., Yanovsky Felix J., Copula ambiguity function for wideband random radar signals, 2011 IEEE International Conference on Microwaves, Communications, Antennas and Electronic Systems (COMCAS 2011), 2011. Crossref

  3. Sinitsyn Rustem, Yanovsky Felix, Chervoniak Eugene, Zaporozhets Oleksandr, Passive acoustic radar for aircraft trajectory tracking, 2014 IEEE Microwaves, Radar and Remote Sensing Symposium (MRRS), 2014. Crossref

  4. Sinitsyn Rustem B., Yanovsky Felix J., Wideband ambiguity function in radar and navigation systems, 2014 IEEE 3rd International Conference on Methods and Systems of Navigation and Motion Control (MSNMC), 2014. Crossref

  5. Yanovsky Felix J., Sinitsyn Rustem B., Application of wideband signals for acoustic localization, 2016 8th International Conference on Ultrawideband and Ultrashort Impulse Signals (UWBUSIS), 2016. Crossref

  6. Chervoniak Yevhen, Sinitsyn Rustem, Yanovsky Felix, Makarenko Vitalii, Tokarev Vadim, Zaporozhets Oleksandr, Algorithm of Passive Acoustic Locator Data Processing for Flying Vehicle Detection and Tracking, 2017 IEEE Microwaves, Radar and Remote Sensing Symposium (MRRS), 2017. Crossref

  7. Yanovsky Felix J., Sinitsyn Rustem B., Chervoniak Yevhen, Makarenko Vitaliy, Tokarev Vadim, Zaporozhets Oleksandr, Moving target detection and tracking using passive acoustic radar, 2016 IEEE Radar Methods and Systems Workshop (RMSW), 2016. Crossref

  8. Chervoniak Yevhen, Sinitsyn Rustem, Yanovsky Felix, Makarenko Vitalii, Tokarev Vadim, Zaporozhets Oleksandr, Signal processing in passive acoustic location for aircraft detection, 2017 Signal Processing Symposium (SPSympo), 2017. Crossref

  9. Chervoniak Yevhen, Sinitsyn Rustem, Yanovsky Felix, Passive Acoustic Radar System for Flying Vehicle Localization, 2020 23rd International Microwave and Radar Conference (MIKON), 2020. Crossref

  10. Chervoniak Yevhen, Sinitsyn Rustem, Yanovsky Felix, Zaporozhets Oleksandr, TDoA and Doppler Shift Estimation Method for Passive Acoustic Location of Flying Vehicles, 2018 IEEE 17th International Conference on Mathematical Methods in Electromagnetic Theory (MMET), 2018. Crossref

  11. GengE Zhang, Fang Huang, Jialun Shen, Design and Implementation of Cold Chain Logistics Temperature Measurement and Control System Based on LabVIEW, in Advances in Computer Science for Engineering and Education, 134, 2022. Crossref

  12. Yanovsky Felix, Prokopenko Igor, Pitertsev Alexander, Rhee Huinam, Dmytruk Anastasiia, Robust Algorithm for Signal Digital Detection on the Background of Non-Gaussian Passive Interferences, 2022 Workshop on Microwave Theory and Techniques in Wireless Communications (MTTW), 2022. Crossref

  13. Yanovsky Felix, Prokopenko Igor, Rudiakova Anna, Rhee Huinam, Generalized Computer Model of Sea, Land and Atmospheric Clutter, 2022 23rd International Radar Symposium (IRS), 2022. Crossref

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