DocumentCode
2177277
Title
Time-domain equalizer design for discrete multitone systems
Author
Wang, Bo ; Adali, Tulay
Author_Institution
Dept. of Comput. Sci. & Electr. Eng., Maryland Univ., Baltimore, MD, USA
Volume
2
fYear
2000
fDate
2000
Firstpage
1080
Abstract
In discrete multitone (DMT) transceivers, a cyclic prefix of length γ is inserted between transmitted symbols. If the channel impulse response is of length γ+1 or shorter, the intersymbol interference can be avoided. To reduce the inefficiency due to the use of a long cyclic prefix, the use of a time-domain equalizer (TEQ) to shorten the effective channel impulse response has been the most popular equalization approach in DMT receivers. In this paper, we pose the TEQ design problem completely in the frequency domain by minimizing the least squares cost function defined in the frequency-domain. We also show the connection between the frequency-domain least squares cost function and its time-domain counterpart for the TEQ design. Furthermore, we extend this frequency-domain least squares approach by incorporating noise suppression into the cost function and derive a new learning algorithm such that the channel impulse response can be shortened and noise and interference can be suppressed
Keywords
equalisers; frequency-domain synthesis; interference suppression; intersymbol interference; learning systems; least squares approximations; modulation; noise; transceivers; transient response; DMT receivers; DMT transceivers; channel impulse response; cyclic prefix length; discrete multitone systems; discrete multitone transceivers; frequency-domain least squares cost function; interference suppression; intersymbol interference; learning algorithm; least squares cost function minimization; noise suppression; time-domain equalizer design; time-domain least squares cost function; transmitted symbols; Cost function; Equalizers; Fast Fourier transforms; Frequency domain analysis; Intersymbol interference; Least squares methods; OFDM modulation; Quadrature amplitude modulation; Time domain analysis; Transceivers;
fLanguage
English
Publisher
ieee
Conference_Titel
Communications, 2000. ICC 2000. 2000 IEEE International Conference on
Conference_Location
New Orleans, LA
Print_ISBN
0-7803-6283-7
Type
conf
DOI
10.1109/ICC.2000.853664
Filename
853664
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