DocumentCode :
3335896
Title :
Identification of Low-Level Point Radiation Sources Using a Sensor Network
Author :
Rao, Nageswara S V ; Shankar, Mallikarjun ; Chin, Jren-Chit ; Yau, David K Y ; Srivathsan, Srinivasagopalan ; Iyengar, S. Sitharama ; Yang, Yong ; Hou, Jennifer C.
Author_Institution :
Oak Ridge Nat. Lab., Oak Ridge, TN
fYear :
2008
fDate :
22-24 April 2008
Firstpage :
493
Lastpage :
504
Abstract :
Identification of a low-level point radiation source amidst background radiation is achieved by a network of radiation sensors using a two-step approach. Based on measurements from three sensors, the geometric difference triangulation method is used to estimate the location and strength of the source. Then a sequential probability ratio test based on current measurements and estimated parameters is employed to finally decide: (1) the presence of a source with the estimated parameters, or (2) the absence of the source, or (3) the insufficiency of measurements to make a decision. This method achieves specified levels of false alarm and missed detection probabilities, while ensuring a close-to-minimal number of measurements for reaching a decision. This method minimizes the ghost-source problem of current estimation methods, and achieves a lower false alarm rate compared with current detection methods. This method is tested and demonstrated using: (1) simulations, and (2) a test-bed that utilizes the scaling properties of point radiation sources to emulate high intensity ones that cannot be easily and safely handled in laboratory experiments.
Keywords :
mesh generation; parameter estimation; probability; wireless sensor networks; geometric difference triangulation method; ghost-source problem; low-level point radiation sources; parameter estimation; radiation sensors; sensor network; sequential probability ratio test; Cosmic rays; Current measurement; Dispersion; Information processing; Laboratories; Parameter estimation; Radiation detectors; Sensor systems; Sequential analysis; Testing; Point radiation source; detection and localization; sequential probability ratio test;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Information Processing in Sensor Networks, 2008. IPSN '08. International Conference on
Conference_Location :
St. Louis, MO
Print_ISBN :
978-0-7695-3157-1
Type :
conf
DOI :
10.1109/IPSN.2008.19
Filename :
4505498
Link To Document :
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