Title :
False alarm analysis of the envelope detection GO-CFAR processor
Author :
Pace, Phillip E. ; Taylor, I. Lamoyne
Author_Institution :
Naval Postgraduate Sch., Monterey, CA, USA
fDate :
7/1/1994 12:00:00 AM
Abstract :
The greatest of constant false alarm rate processor (GO CFAR) is a useful architecture for adaptively setting a radar detection threshold in the presence of clutter edges. The GO CFAR input is often the envelope detected in-phase (I) and quadrature (Q) channels of the baseband signal (xe=√(I2+Q2)). This envelope detection can also be approximated using x=a max{|I|,|Q|}+b min{|I|,|Q|} which requires less complex hardware (a and b are simple multiplying coefficients). The envelope GO CFAR processor and several envelope approximation GO CFAR processors are compared in terms of the probability of false alarm (PFA) performance. Closed-form expressions which describe the PFA performance are given and their accuracy evaluated. It is shown that for all cases, the PFA is proportional to the number of reference cells n for small threshold multiplier T and inversely proportional to n for large T. A region of intersection occurs where the PFA is the same for two different values of n. For example, at T´=1.68 in the |I|+|Q| GO CFAR (a=1, b=1) the PFA for n=1 is equal to the optimal n=∞ fixed-threshold PFA (PFA=0.112)
Keywords :
interpolation; probability; radar clutter; radar theory; signal detection; GO-CFAR processor; closed-form expressions; clutter edges; constant false alarm rate processor; envelope detection; false alarm analysis; false alarm performance; interpolation; intersection; probability; quadrature channels; radar detection threshold; reference cells; Baseband; Clutter; Envelope detectors; Gas detectors; Hardware; Missiles; Radar detection; Signal processing; Testing; Threshold voltage;
Journal_Title :
Aerospace and Electronic Systems, IEEE Transactions on