Title :
Novel Modeling and Calibration Approach for Multiport Receivers Mitigating System Imperfections and Hardware Impairments
Author :
Hasan, Abul ; Helaoui, Mohamed
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Calgary, Calgary, AB, Canada
Abstract :
Factors limiting and degrading the performance of a multiport-based receiver system for wideband signals are modeled and a suitable calibration approach is proposed in this paper. The proposed calibration approach uses a new model for linearization of diode power detectors suitable for wideband real (modulated) wireless signals. To verify the proposed model and calibration procedure, a 2-18-GHz wideband six-port-based receiver system is set up and its performance is verified using wireless signals having different bandwidth and modulation schemes. The new calibration algorithm improved the error vector magnitude (EVM) of the receiver system from 7.9% to 1.6% for a 64-QAM signal with a bandwidth of 2 MHz and a data rate of 12 Mb/s. To show the usefulness of the model for real communication signals, wideband code division multiple access (WCDMA) and wireless local area network (WLAN) signals are received and EVM of 4.7% and 3.4% are reported for the WCDMA and the WLAN signals, respectively.
Keywords :
calibration; code division multiple access; microwave diodes; microwave receivers; quadrature amplitude modulation; wireless LAN; EVM; QAM signal; WCDMA signals; WLAN signals; bandwidth 25 MHz; bit rate 12 Mbit/s; calibration approach; communication signals; diode power detector linearization; error vector magnitude; frequency 2 GHz to 18 GHz; hardware impairments; multiport receiver mitigating system; wideband code division multiple access signals; wideband signals; wideband six-port-based receiver system; wireless local area network signals; Calibration; Detectors; Junctions; Mathematical model; Receivers; Wideband; Calibration; diode linearization; direct conversion receiver; memory effect; multiport; software-defined radio (SDR);
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2012.2201742