Title :
Direction finding in phased arrays with a neural network beamformer
Author :
Southall, Hugh L. ; Simmers, Jeffrey A. ; O´Donnell, Teresa H.
Author_Institution :
USAF Rome Lab. Electromagnetics & Reliability Directorate, Hanscom AFB, MA, USA
fDate :
12/1/1995 12:00:00 AM
Abstract :
Adaptive neural network processing of phased-array antenna received signals promises to decrease antenna manufacturing and maintenance costs while increasing mission uptime and performance between repair actions. We introduce one such neural network which performs aspects of digital beamforming with imperfectly manufactured, degraded, or failed antenna components. This paper presents measured results achieved with an adaptive radial basis function (ARBF) artificial neural network architecture which learned the single source direction finding (DF) function of an eight-element X-band array having multiple, unknown failures and degradations. We compare the single source DF performance of this ARBF neural network, whose internal weights are computed using a modified gradient descent algorithm, with another radial basis function network, Linnet, whose weights are calculated using linear algebra. Both networks are compared to a traditional DF approach using monopulse
Keywords :
adaptive antenna arrays; antenna phased arrays; antenna theory; electrical engineering computing; feedforward neural nets; linear algebra; Linnet; adaptive neural network processing; adaptive radial basis function; artificial neural network architecture; degradations; digital beamforming; direction finding; eight-element X-band array; failures; internal weights; maintenance costs; manufacturing costs; mission uptime; modified gradient descent algorithm; neural network beamformer; phased arrays; phased-array antenna received signals; repair actions; single source direction finding function; Adaptive arrays; Adaptive systems; Artificial neural networks; Costs; Degradation; Manufacturing processes; Neural networks; Phased arrays; Receiving antennas; Signal processing;
Journal_Title :
Antennas and Propagation, IEEE Transactions on