DocumentCode
1404512
Title
Threat Detection of Radioactive Contraband Incorporating Compton Scattering Physics: A Model-Based Processing Approach
Author
Candy, J.V. ; Chambers, D.H. ; Breitfeller, E.F. ; Guidry, B.L. ; Verbeke, J.M. ; Axelrod, M.A. ; Sale, K.E. ; Meyer, A.M.
Author_Institution
Lawrence Livermore Nat. Lab., Livermore, CA, USA
Volume
58
Issue
1
fYear
2011
Firstpage
214
Lastpage
230
Abstract
The detection of radioactive contraband is a critical problem in maintaining national security for any country. Gamma-ray emissions from threat materials challenge both detection and measurement technologies significantly. The development of a sequential, model-based Bayesian processor that captures both the underlying transport physics of gamma-ray emissions including Compton scattering and the measurement of photon energies offers a physics-based approach to attack this challenging problem. The inclusion of a basic radionuclide representation of absorbed/scattered photons at a given energy along with interarrival times is used to extract the physics information available from noisy measurements. It is shown that this representation leads to an “extended” physics-based structure that can be used to develop an effective sequential detection technique. The resulting model-based processor is applied to data obtained from a controlled experiment in order to assess its feasibility.
Keywords
Bayes methods; Compton effect; gamma-ray detection; national security; radioactive sources; Compton scattering; absorbed photons; gamma-ray emissions; model-based Bayesian processor; national security; photon energies; radioactive contraband; radionuclide representation; scattered photons; threat detection; transport physics; Compton scattering; model-based processor; particle filter; photoelectric absorption; physics-based approach; sequential Bayesian processor; sequential Monte Carlo; sequential radionuclide detection;
fLanguage
English
Journal_Title
Nuclear Science, IEEE Transactions on
Publisher
ieee
ISSN
0018-9499
Type
jour
DOI
10.1109/TNS.2010.2090361
Filename
5668517
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