Title :
Performance tradeoffs among beamforming approaches
Author :
Rong, Yue ; Eldar, Yonina C. ; Gershman, Alex B.
Author_Institution :
California Univ., Riverside, CA
Abstract :
In this paper, three main criteria for the adaptive beamformer design are discussed: maximal signal-to-interference-plus-noise ratio (MSINR), minimal mean-squared error (MMSE), and minimal least-square error (MLSE). Although in the case of exactly known power and steering vector of the signal-of-interest (SOI), there are beamformers that can simultaneously meet the MMSE and MSINR criteria, this is no longer true when the exact knowledge of the steering vector is unavailable. To account for steering vector errors, a meaningful approach is to model the actual steering vector as random. In this paper, it is shown that in the latter case, the MMSE and MSINR criteria can not be simultaneously attained. We study the achievable region in the MSE-SINR plane and propose a new adaptive beamformer that can attain a frontier of operating points on the boundary of this region and, therefore, provide an optimal performance tradeoff among the MSINR and MMSE criteria. It is also shown that in the random steering vector case, the MLSE and MSINR criteria are simultaneously achievable and a new adaptive beamformer is proposed that satisfies both these criteria.
Keywords :
adaptive signal processing; array signal processing; least mean squares methods; MLSE; MMSE; MSINR; adaptive beamformer design; beamforming approaches; maximal signal-to-interference-plus-noise ratio; minimal least-square error; minimal mean-squared error; signal-of-interest; steering vector; Amplitude estimation; Array signal processing; Digital communication; Maximum likelihood estimation; Phase detection; Phase estimation; Radar applications; Signal design; Signal to noise ratio; Sonar applications;
Conference_Titel :
Sensor Array and Multichannel Processing, 2006. Fourth IEEE Workshop on
Conference_Location :
Waltham, MA
Print_ISBN :
1-4244-0308-1
DOI :
10.1109/SAM.2006.1706077