Title :
A quantitative method for mono- and multistatic radar coverage area prediction
Author :
Inggs, Michael ; Lange, Gunther ; Paichard, Yoann
Author_Institution :
Dept. of Electr. Eng., Univ. of Cape Town, Rondebosch, South Africa
Abstract :
The prediction of radar coverage as a function of the position of the radar has always been a key step in radar network planning. In the past, simple geometric models backed up by the deployment of siting radars were the only options for potential site evaluation, but the development of sophisticated propagation models (e.g. AREPS [1]) has moved the technology forward to another level of prediction accuracy. Modelling takes into account atmospheric refraction, as well as terrain effects and clutter. In previous papers [2], [3] we have shown that the modelling can also cater for multistatic radar systems. In this paper we have extended our modelling to give a statistical measure of the effectiveness of a site that measures the signal to noise ratio (SNR) or (for multistatic radar) the signal to interference ratio (SIR) over regions of interest. The area is pixellated into values of SNR and SIR, and pixels meeting the required SNR and / SIR are counted. We show some results for a multistatic radar. We conclude by indicating how we plan to include ground clutter. We mention how this method of obtaining quantitative coverage performance can be used with all forms of radar, and will be able to improve future networks of cognitive radars.
Keywords :
radar clutter; statistical analysis; atmospheric refraction; cognitive radars; ground clutter; monostatic radar coverage area prediction; multistatic radar coverage area prediction; quantitative coverage performance; radar clutter; signal to interference ratio; signal to noise ratio; Atmospheric measurements; Atmospheric modeling; Clutter; Equations; Noise measurement; Optical transmitters; Radar cross section; Refractive index; Signal to noise ratio; Solid modeling;
Conference_Titel :
Radar Conference, 2010 IEEE
Conference_Location :
Washington, DC
Print_ISBN :
978-1-4244-5811-0
DOI :
10.1109/RADAR.2010.5494532