DocumentCode :
2544672
Title :
Multitone sensor gain calibration in an uncertain underwater environment
Author :
Avital, Ittai ; Tabrikian, Joseph ; Messer, Hagit
Author_Institution :
Tel Aviv Univ., Israel
fYear :
2000
fDate :
2000
Firstpage :
107
Lastpage :
111
Abstract :
Array processing techniques for source detection and localization in an underwater acoustic environment are highly sensitive to both environmental modeling errors, such as sound propagation conditions, and sensor gain mismatch. Sonar arrays, which are normally rigorously calibrated before placement, may develop gain mismatch due to mechanical failures or local environmental variations, such as sediment build-up. In order to avoid performance degradation of detection and localization algorithms, a sensor gain calibration process can be carried out periodically. This paper proposes a maximum likelihood algorithm for sensor gain calibration in a shallow water environment. In the presence of environmental uncertainties, a robust algorithm is required, and such an algorithm is consequentially developed. The proposed method is based on the simultaneous estimation of the relative gains and the acoustic transfer function. To improve the accuracy of the sensor gain estimation, a-priori knowledge of the relationship between the sensor gains at different frequencies is exploited. The performance of the proposed calibration method is evaluated via simulations
Keywords :
amplification; array signal processing; calibration; direction-of-arrival estimation; maximum likelihood estimation; sonar arrays; sonar detection; sonar signal processing; underwater acoustic propagation; acoustic transfer function; array processing; detection algorithm; environmental modeling errors; local environmental variations; localization algorithm; maximum likelihood algorithm; mechanical failures; multitone sensor gain calibration; performance; sediment build-up; sensor gain calibration; sensor gain estimation; sensor gain mismatch; shallow water environment; simulations; sonar arrays; sound propagation conditions; source detection; source localization; two-step Viterbi-based estimator; uncertain underwater environment; Acoustic propagation; Acoustic sensors; Acoustic signal detection; Array signal processing; Calibration; Frequency estimation; Mechanical sensors; Sensor arrays; Underwater acoustics; Underwater tracking;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Sensor Array and Multichannel Signal Processing Workshop. 2000. Proceedings of the 2000 IEEE
Conference_Location :
Cambridge, MA
Print_ISBN :
0-7803-6339-6
Type :
conf
DOI :
10.1109/SAM.2000.877978
Filename :
877978
Link To Document :
بازگشت