Title :
Adaptive Hybrid Beamformer for Mobile Reception of ATSC DTV
Author :
Ahn, Jang Hwan ; Lim, Chae-Hyun ; Han, Dong Seog ; Oh, Hae-Sock
Author_Institution :
Sch. of Electron. & Electr. Eng., Kyungpook Nat. Univ., Daegu, South Korea
Abstract :
An adaptive hybrid beamformer is proposed to improve the reception performance of the advanced television system committee (ATSC) digital television (DTV) in a mobile environment. Dynamic multipaths and Doppler shifts severely degrade the reception performance of the ATSC DTV receiver. Accordingly, a hybrid beamformer, called a Capon and least mean square (CLMS) beamformer, is presented that uses direction of arrival (DOA) information and the least mean square (LMS) beamforming algorithm. The proposed CLMS algorithm efficiently removes dynamic multipaths and compensates for the phase distortion caused by Doppler shifts in mobile receivers. When the CLMS beamformer has an insufficient degree of freedom (DOF), the subsequent use of an equalizer removes any residual multipath effects, thereby significantly improving the performance of DTV receivers. The performances of the proposed CLMS, Capon, and LMS beamformers are compared based on computer simulations. In addition, the overall performance of the CLMS beamformer followed by an equalizer is also considered.
Keywords :
Doppler shift; adaptive equalisers; array signal processing; digital television; direction-of-arrival estimation; least mean squares methods; mobile communication; television receivers; television standards; ATSC; CLMS; Capon-least mean square beamformer; DOA; DOF; DTV receiver; Doppler shift; adaptive hybrid beamformer; advanced television system committee; degree of freedom; digital television; direction of arrival information; dynamic multipath; equalizer; mobile environment; phase distortion; Adaptive arrays; Array signal processing; Digital TV; Digital video broadcasting; Doppler shift; Equalizers; Heuristic algorithms; Least squares approximation; Phase distortion; TV receivers; Adaptive beamforming; digital television; equalization;
Journal_Title :
Broadcasting, IEEE Transactions on
DOI :
10.1109/TBC.2005.847622