DocumentCode :
2529272
Title :
Equivalent output-filtering using fast QRD-RLS algorithm for burst-type training applications
Author :
Shoaib, M. ; Werner, S. ; Apolinario, A. ; Laakso, T.I.
Author_Institution :
Signal Process. Lab., Helsinki Univ. of Technol., Espoo
fYear :
2006
fDate :
21-24 May 2006
Abstract :
Fast QR decomposition RLS (FQRD-RLS) algorithms are well known for their good numerical properties and low computational complexity. The FQRD-RLS algorithms do not provide access to the filter weights, and their uses have so far been limited to problems seeking an estimate of the output error signal. In this paper we present techniques which allow us to reproduce the equivalent output signal corresponding to any input-signal applied to the weight vector of the FQRD-RLS algorithm. As a consequence, we can extend the range of applications of the FQRD-RLS to include problems where the filter weights are periodically updated using training data, and then used for fixed filtering of a useful data sequence, e.g., burst-trained equalizers. The proposed output-filtering techniques are tested in an equalizer setup. The results verify our claims that the proposed techniques achieve the same performance as the inverse QRD-RLS algorithm at a much lower computational cost
Keywords :
filtering theory; inverse problems; matrix algebra; signal processing; FQRD-RLS algorithm; QR decomposition; burst-type training applications; equivalent output signal filtering; fast QRD-RLS algorithm; inverse QRD-RLS algorithm; output error signal; recursive least-squares; Adaptive filters; Computational complexity; Equalizers; Equations; Error correction; Filtering algorithms; Laboratories; Resonance light scattering; Signal processing algorithms; Switches;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Circuits and Systems, 2006. ISCAS 2006. Proceedings. 2006 IEEE International Symposium on
Conference_Location :
Island of Kos
Print_ISBN :
0-7803-9389-9
Type :
conf
DOI :
10.1109/ISCAS.2006.1692540
Filename :
1692540
Link To Document :
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