Title :
Performance analysis on wireless communication system with harmonic frequency channels concept
Author :
Cheong, Pedro ; Ke Wu ; Deslandes, Dominic ; Kam-Weng Tam
Author_Institution :
Univ. of Macau, Macau, China
Abstract :
This paper presents a new concept of simultaneous data transfers with existence of multiple harmonic frequency channels. Contradictory to conventional approaches of multiband communication systems, which generate the desired operating frequencies with multiple local oscillators and communicate in time division basis, this proposed harmonic communication system reuse the intermodulation products generated by the intrinsic property of nonlinear devices, primarily the up-/down-converting mixers in the transceiver. In this case, duplicated data can be transferred through multiple frequency channels. Moreover, compact multiband components can be used to replace those single-band circuits in conventional multiband systems and therefore limiting the cost of such transceiver. In theoretical analysis, the optimal signal-to-noise ratio (SNR) performance can be enhanced by 3-dB whenever the number of frequency channels is doubled. As the consequence, the bit-error-rate (BER) performance can be improved, or in another point of view, the minimum required SNR for the receiver can be relaxed. The simulation results show good agreements with the theoretical ones and therefore demonstrate the usefulness of proposed harmonic frequency channels concept.
Keywords :
data communication; error statistics; radio transceivers; telecommunication channels; BER performance; SNR; bit-error-rate; compact multiband components; harmonic communication system; harmonic frequency channels; intermodulation products; intrinsic property; multiband communication systems; multiple frequency channels; multiple harmonic frequency channels; multiple local oscillators; nonlinear devices; operating frequencies; performance analysis; signal-to-noise ratio; simultaneous data transfers; transceiver; up-down converting mixers; wireless communication system; Bit error rate; Gain; Harmonic analysis; Mixers; Signal to noise ratio; Wireless communication; Bit-error rate; harmonic communication system; signal-to-noise ratio; three-tone mixer;
Conference_Titel :
Wireless Symposium (IWS), 2013 IEEE International
Conference_Location :
Beijing
DOI :
10.1109/IEEE-IWS.2013.6616847