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Signal processing for NQR discrimination of buried landmines

Publication ,  Conference
Tantum, S; Collins, L; Carin, L; Gorodnitsky, I; Hibbs, A; Walsh, D; Barrell, G; Gregory, D; Matthews, R; Vierkotter, S
Published in: Proceedings of SPIE - The International Society for Optical Engineering
January 1, 1999

Nuclear quadrupole resonance (NQR) is a technique that discriminates mines from clutter by exploiting unique properties of explosives, rather than the attributes of the mine that exist in many forms of anthropic clutter (e.g., metal content). After exciting the explosive with a properly designed electromagnetic-induction (EMI) system, one attempts to sense late-time spin echoes, which are characterized by radiation at particular frequencies. It is this narrow-band radiation that indicates the presence of explosives, since this effect is not seen in most clutter, both natural and anthropic. However, this problem is complicated by several issues. First, the late-time radiation is often very weak, particularly for TNT, and therefore the signal-to-noise ratio must be high for extracting the NQR response. Further, the frequency at which the explosive radiates is often a strong function of the background environment (e.g., temperature), and therefore in practice the NQR radiation frequency is not known a priori. Finally, at the frequencies of interest, there is a significant amount of background radiation, which induces radio frequency interference (RFI). In this paper we discuss several signal processing tools we have developed to enhance the utility of NQR explosives (mine) detection. In particular, with regard to the RFI, we explore least-mean-squares (LMS) algorithms which have proven well suited to extracting background interference. Algorithm performance is assessed through consideration of actual measured data. With regard to the detection of the NQR electromagnetic echo, we consider a Bayesian discrimination algorithm. The performance of the Bayesian algorithm is presented, again using measured NQR data.

Duke Scholars

Published In

Proceedings of SPIE - The International Society for Optical Engineering

DOI

ISSN

0277-786X

Publication Date

January 1, 1999

Volume

3710

Issue

I

Start / End Page

474 / 482

Related Subject Headings

  • 5102 Atomic, molecular and optical physics
  • 4009 Electronics, sensors and digital hardware
  • 4006 Communications engineering
 

Citation

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Tantum, S., Collins, L., Carin, L., Gorodnitsky, I., Hibbs, A., Walsh, D., … Vierkotter, S. (1999). Signal processing for NQR discrimination of buried landmines. In Proceedings of SPIE - The International Society for Optical Engineering (Vol. 3710, pp. 474–482). https://doi.org/10.1117/12.357071
Tantum, S., L. Collins, L. Carin, I. Gorodnitsky, A. Hibbs, D. Walsh, G. Barrell, D. Gregory, R. Matthews, and S. Vierkotter. “Signal processing for NQR discrimination of buried landmines.” In Proceedings of SPIE - The International Society for Optical Engineering, 3710:474–82, 1999. https://doi.org/10.1117/12.357071.
Tantum S, Collins L, Carin L, Gorodnitsky I, Hibbs A, Walsh D, et al. Signal processing for NQR discrimination of buried landmines. In: Proceedings of SPIE - The International Society for Optical Engineering. 1999. p. 474–82.
Tantum, S., et al. “Signal processing for NQR discrimination of buried landmines.” Proceedings of SPIE - The International Society for Optical Engineering, vol. 3710, no. I, 1999, pp. 474–82. Scopus, doi:10.1117/12.357071.
Tantum S, Collins L, Carin L, Gorodnitsky I, Hibbs A, Walsh D, Barrell G, Gregory D, Matthews R, Vierkotter S. Signal processing for NQR discrimination of buried landmines. Proceedings of SPIE - The International Society for Optical Engineering. 1999. p. 474–482.

Published In

Proceedings of SPIE - The International Society for Optical Engineering

DOI

ISSN

0277-786X

Publication Date

January 1, 1999

Volume

3710

Issue

I

Start / End Page

474 / 482

Related Subject Headings

  • 5102 Atomic, molecular and optical physics
  • 4009 Electronics, sensors and digital hardware
  • 4006 Communications engineering