DocumentCode :
2874288
Title :
Design and Implementation of Iterative Decoder for Faster-than-Nyquist Signaling Multicarrier Systems
Author :
Dasalukunte, Deepak ; Rusek, Fredrik ; Anderson, John B. ; Owall, Viktor
Author_Institution :
Dept. of EIT, Lund Univ., Lund, Sweden
fYear :
2011
fDate :
4-6 July 2011
Firstpage :
359
Lastpage :
360
Abstract :
Faster-than-Nyquist (FTN) signaling is a method of improving bandwidth efficiency by transmitting information beyond Nyquist´s orthogonality limit for interference free transmission. Previously have theoretically established that FTN can provide improved bandwidth efficiency. However, this comes at the cost of higher decoding complexity at the receiver. Our work has evaluated multicarrier FTN signaling for its implementation feasibility and complexity overhead compared to the gains in bandwidth efficiency. The work carried out in this research project includes a systems perspective evaluating performance, algorithm hardware tradeoffs and a hardware architecture leading to a silicon implementation of the decoder for FTN signaling. From the systems perspective, co-existence of FTN and OFDM based multicarrier system has been evaluated. OFDM being a part of many existing and upcoming broadband access technologies such as WLAN, LTE, DVB, this analogy is motivated. On the hardware aspect, the proposed architecture can accommodate both OFDM and FTN systems. The processing blocks in transmitter and receiver were designed for reuse and carry out different functions in the transceiver. Furthemore, the hardware could be configured to operate at varying bandwidth efficiencies (by FTN signaling) to exploit the channel conditions. The decoder implementation also considered block sizes and data rates to comply with the 3GPP standard. The decoding is carried out in as few as 8 iterations making it more practical for implementation in power constrained mobile devices. The decoder is implemented in 65nm CMOS process and occupies a total chip area of 0.8mm2.
Keywords :
3G mobile communication; CMOS integrated circuits; OFDM modulation; iterative decoding; 3GPP standard; CMOS process; Nyquist orthogonality limit; OFDM based multicarrier system; bandwidth efficiency; broadband access technologies; decoding complexity; faster-than-Nyquist signaling multicarrier systems; interference-free transmission; iterative decoder; multicarrier FTN signaling; power-constrained mobile devices; processing blocks; silicon implementation; size 65 nm; transceiver; Bandwidth; Decoding; Hardware; Iterative decoding; OFDM; Receivers; Transmitters; faster-than-Nyquist; hardware implementation; iterative decoding; system design;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
VLSI (ISVLSI), 2011 IEEE Computer Society Annual Symposium on
Conference_Location :
Chennai
ISSN :
2159-3469
Print_ISBN :
978-1-4577-0803-9
Electronic_ISBN :
2159-3469
Type :
conf
DOI :
10.1109/ISVLSI.2011.40
Filename :
5992545
Link To Document :
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