DocumentCode :
688135
Title :
Robust low-complexity blind frequency-dependent I/Q estimation and compensation
Author :
Narasmihan, Balachander ; Chien, C. ; Sheng-Hong Yan ; Liang, P. ; He Hwang
Author_Institution :
Mediatek USA Inc., San Jose, CA, USA
fYear :
2013
fDate :
9-13 Dec. 2013
Firstpage :
4331
Lastpage :
4336
Abstract :
A low-complexity blind frequency-dependent I/Q imbalance compensation scheme is proposed based on linear prediction (LP) method. It provides non-iterative processing which reduces computational complexity. No special training sequence is used and I/Q mismatch calibration is performed using any received sequence. Frequency-dependent (FD) I/Q imbalance can be compensated simply by matching the filter responses of the I and Q branches. This is achieved by estimating the inverse impulse responses of the I and Q branches using LP and then finding the `difference´ filter that can be used in one of the branches to match the other branch. Using simulations, we show that the proposed method has at least 5-7 dB better image rejection ratio (IRR) performance compared to other blind FD I/Q estimation techniques in the literature, for a realistic mismatch scenarios. Moreover, the computational complexity of the proposed technique is shown to be 20x less than the least complex blind estimation scheme in the literature for an 8-tap compensation filter. Finally, we propose the use of a noise-generator for offline-calibration.
Keywords :
calibration; compensation; computational complexity; filtering theory; frequency estimation; noise generators; prediction theory; radio receivers; 8-tap compensation filter; FD I-Q imbalance; I-Q mismatch calibration; IRR; LP method; computational complexity; filter response; image rejection ratio; inverse impulse response; linear prediction method; low-complexity blind frequency-dependent I-Q imbalance compensation scheme; noise-generator; noniterative processing; robust low-complexity blind frequency-dependent I-Q estimation; wireless receiver; Calibration; Complexity theory; Computational modeling; Estimation; Fading; Transmitters; Wireless communication;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Global Communications Conference (GLOBECOM), 2013 IEEE
Conference_Location :
Atlanta, GA
Type :
conf
DOI :
10.1109/GLOCOM.2013.6831754
Filename :
6831754
Link To Document :
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