Title :
Monobit Digital Receivers for QPSK: Design, Performance and Impact of IQ Imbalances
Author :
Zhiyong Wang ; Huarui Yin ; Wenyi Zhang ; Guo Wei
Author_Institution :
Dept. of Electron. Eng. & Inf. Sci., Univ. of Sci. & Technol. of China, Hefei, China
Abstract :
Future communication system requires large bandwidths to achieve high data rates, thus rendering analog-to-digital conversion (ADC) a bottleneck due to its high power consumption. In this paper, we consider monobit receivers for QPSK. The optimal monobit receiver under Nyquist sampling is obtained and its performance is analyzed. Then, a suboptimal but low-complexity receiver is proposed. The effect of imbalances between In-phase (I) and Quadrature (Q) branches is carefully examined. To combat the performance loss due to IQ imbalances, monobit receivers based on double training sequences and eight-sector phase quantization are proposed. Numerical simulations show that the low-complexity suboptimal receiver suffers 3dB signal-to-noise-ratio (SNR) loss in additive white Gaussian noise (AWGN) channels and only 1dB SNR loss in multipath channels compared with matched-filter monobit receiver with perfect channel state information (CSI). It is further demonstrated that the amplitude imbalance has essentially no effect on monobit receivers. In AWGN channels, receivers based on double training sequences can efficiently compensate for the SNR loss without complexity increase, while receivers with eight-sector phase quantization can almost completely eliminate the SNR loss caused by IQ imbalances. In dense multipath channels, the effect of imbalances on monobit receivers is slight.
Keywords :
AWGN channels; analogue-digital conversion; matched filters; multipath channels; quadrature phase shift keying; quantisation (signal); radio receivers; receivers; ultra wideband communication; ADC; AWGN channel; CSI; IQ imbalance; Nyquist sampling; QPSK; SNR loss; additive white Gaussian noise channel; analog-to-digital conversion; double training sequence; eight-sector phase quantization; low-complexity receiver; low-complexity suboptimal receiver; matched-filter monobit receiver; monobit digital receiver; multipath channel; perfect channel state information; power consumption; signal-to-noise-ratio loss; Complexity theory; Multipath channels; Phase shift keying; Quantization (signal); Receivers; Signal to noise ratio; Training; Analog-to-digital conversion; IQ imbalance; QPSK; deflection ratio; impulse radio; monobit; multipath; phase quantization; ultra-wideband;
Journal_Title :
Communications, IEEE Transactions on
DOI :
10.1109/TCOMM.2013.061913.120304