Title :
Efficient detection with arrays in the presence of angular spreading
Author :
Rao, Anil M. ; Jones, Douglas L.
fDate :
2/1/2003 12:00:00 AM
Abstract :
The spatial channel in applications such as radar, sonar, and wireless communications is typically characterized by complex signal scattering leading to multiple signal components arriving at the array from a spread of angles. This multipath angle spread is well known to lead to loss of spatial signal coherence, requiring complicated combining schemes to achieve optimal performance, particularly when the signal is partially coherent across the receiving array. We show that the discrete Fourier transform serves as an efficient, robust, and asymptotically optimal spatial combiner for uniform linear arrays (ULAs) in multipath channels. In addition, the proposed spatial processing allows for convenient integration of conventional frequency-domain methods for angle-of-arrival searches. Simulation results show that the proposed combining scheme provides near-optimal performance at significantly less computation, even for arrays of moderate size.
Keywords :
antenna theory; array signal processing; direction-of-arrival estimation; discrete Fourier transforms; frequency-domain analysis; linear antenna arrays; multipath channels; signal detection; angle-of-arrival searches; angular spreading; asymptotically optimal spatial combiner; discrete Fourier transform; efficient detection; frequency-domain methods; multipath angle spread; multipath channels; multiple signal components; partial spatial coherence; radar; receiving array; signal scattering; sonar; spatial channel; spatial processing; spatial signal coherence; uniform linear arrays; wireless communications; Computational modeling; Discrete Fourier transforms; Multipath channels; Performance loss; Radar applications; Radar detection; Radar scattering; Robustness; Sonar applications; Wireless communication;
Journal_Title :
Signal Processing, IEEE Transactions on
DOI :
10.1109/TSP.2002.806992