DocumentCode
804711
Title
On beamforming with finite rate feedback in multiple-antenna systems
Author
Mukkavilli, Krishna Kiran ; Sabharwal, Ashutosh ; Erkip, Elza ; Aazhang, Behnaam
Author_Institution
Qualcomm Inc., San Diego, CA, USA
Volume
49
Issue
10
fYear
2003
Firstpage
2562
Lastpage
2579
Abstract
We study a multiple-antenna system where the transmitter is equipped with quantized information about instantaneous channel realizations. Assuming that the transmitter uses the quantized information for beamforming, we derive a universal lower bound on the outage probability for any finite set of beamformers. The universal lower bound provides a concise characterization of the gain with each additional bit of feedback information regarding the channel. Using the bound, it is shown that finite information systems approach the perfect information case as (t-1)2-Bt-1/, where B is the number of feedback bits and t is the number of transmit antennas. The geometrical bounding technique, used in the proof of the lower bound, also leads to a design criterion for good beamformers, whose outage performance approaches the lower bound. The design criterion minimizes the maximum inner product between any two beamforming vectors in the beamformer codebook, and is equivalent to the problem of designing unitary space-time codes under certain conditions. Finally, we show that good beamformers are good packings of two-dimensional subspaces in a 2t-dimensional real Grassmannian manifold with chordal distance as the metric.
Keywords
adaptive antenna arrays; array signal processing; feedback; probability; quantisation (signal); space-time codes; transmitting antennas; beamformer codebook; beamforming; beamforming vectors; chordal distance; design criterion; feedback bits; feedback information; finite information systems; finite rate feedback; geometrical bounding technique; instantaneous channel realizations; maximum inner product; multiple-antenna systems; outage performance; outage probability; perfect information; quantized information; real Grassmannian manifold; transmit antennas; transmitter; unitary space-time codes; universal lower bound; Antenna feeds; Array signal processing; Base stations; Feedback; Information systems; Performance gain; Power control; Telephone sets; Transmitters; Transmitting antennas;
fLanguage
English
Journal_Title
Information Theory, IEEE Transactions on
Publisher
ieee
ISSN
0018-9448
Type
jour
DOI
10.1109/TIT.2003.817433
Filename
1237136
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