DocumentCode :
3064839
Title :
Code division multiple access communications: multiuser detection based on a recurrent neural network structure
Author :
Teich, Werner G. ; Seidl, Michael
Author_Institution :
Dept. of Inf. Technol., Ulm Univ., Germany
Volume :
3
fYear :
1996
fDate :
22-25 Sep 1996
Firstpage :
979
Abstract :
A multiuser detector based on a recurrent neural network structure (MU-RNN) is derived for a direct sequence code division multiple access communication system with multi path propagation. Contrary to other neural network approaches the MU-RNN has the advantage, that the network size as well as the coefficients of the network can be derived from parameters which characterize the communication system. The energy function of the MU-RNN is identical to the log-likelihood function of an optimum multiuser detector. The performance of the MU-RNN is compared to other optimal and suboptimal multiuser detectors. The MU-RNN can achieve the same or almost the same BER as the optimal multiuser detector while at the same time the complexity is much lower
Keywords :
code division multiple access; communication complexity; digital radio; error statistics; land mobile radio; multipath channels; radio receivers; recurrent neural nets; signal detection; telecommunication computing; BER; MU-RNN; code division multiple access communications; complexity; direct sequence code division multiple access communication; energy function; log-likelihood function; multi path propagation; multiuser detection; network size; optimum multiuser detector; performance; recurrent neural network structure; AWGN; Bandwidth; Degradation; Detectors; Frequency division multiaccess; Multiaccess communication; Multiuser detection; Neural networks; Recurrent neural networks; Time division multiple access;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Spread Spectrum Techniques and Applications Proceedings, 1996., IEEE 4th International Symposium on
Conference_Location :
Mainz
Print_ISBN :
0-7803-3567-8
Type :
conf
DOI :
10.1109/ISSSTA.1996.563450
Filename :
563450
Link To Document :
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