Data throughput tripling by Feed-Forward Equalization and photonic QPSK in a 7 Gbps single-carrier RoF link at 60 GHz

Author(s):  
Anthony Ng'oma ◽  
Michael Sauer ◽  
Dean Thelen ◽  
Jacob George
2014 ◽  
Vol 39 (6) ◽  
pp. 1358 ◽  
Author(s):  
Chun-Ting Lin ◽  
Chun-Hung Ho ◽  
Hou-Tzu Huang ◽  
Yu-Hsuan Cheng

Author(s):  
Daiju Nakano ◽  
Yasuteru Kohda ◽  
Kohji Takano ◽  
Nobuyuki Ohba ◽  
Toshiyuki Yamane ◽  
...  

2020 ◽  
Vol 10 (17) ◽  
pp. 5800 ◽  
Author(s):  
Devika Dass ◽  
Sean O'Duill ◽  
Amol Delmade ◽  
Colm Browning

The future evolution of wireless networks, throughout the 5G era and beyond, will require the expansion and augmentation of millimetre-wave systems for both terrestrial and satellite communications. Photonic technologies offer a cost efficient and high bandwidth platform for millimetre-wave carrier generation and distribution, but can introduce high levels of phase noise through optical heterodyning, which is highly problematic for mobile signal waveforms. In this work, a detailed analytical model of a hybrid photonic/mm-wave system is developed and discussed. Through careful system design, the system is found to support both 5G compatible multi-carrier (OFDM) and single carrier (APSK) modulation at 60 GHz. APSK is found to offer higher tolerance mm-wave phase noise compared to OFDM, ultimately easing optical linewidth restrictions to ∼30 kHz. The model is extended to include a novel millimetre wave phase noise cancelling receiver, which is shown to significantly alleviate these restrictions even further—enabling phase noise free mm-wave operation for optical linewidths up to ∼2 MHz. Detailed analysis and discussion of this extended system lead to the establishment of a theoretical relationship between the mm-wave receiver design and the achievable system performance in terms of error vector magnitude (EVM). Excellent matching of the predicted theoretical with simulated performances is shown.


2010 ◽  
Vol 2 (3-4) ◽  
pp. 399-408 ◽  
Author(s):  
Satoshi Suyama ◽  
Junichi Onodera ◽  
Hiroshi Suzuki ◽  
Kazuhiko Fukawa

This paper proposes a receiver that repeats iterative frequency-domain equalization (FDE) and decision-directed phase noise compensation (DD-PNC) to alleviate degradation due to the phase noise for millimeter-wave single carrier (SC) systems. High bit-rate SC-FDE transceivers based on the single-chip Si RF-CMOS IC technology in the 60-GHz millimeter-wave band have been extensively studied for wireless personal area network (WPAN) systems, and the relatively large phase noise in a phase-locked loop (PLL) synthesizer severely degrades transmission performance. In an initial processing of the proposed receiver, a cyclic prefix (CP)-based phase noise compensator (CP-PNC) removes the phase noise from a time-domain received signal by using CP, which is known to the receiver, and the channel is equalized by the iterative FDE using the conventional minimum mean-square-error (MMSE) weight. In an iterative processing, DD-PNC estimates the phase noise each symbol by exploiting an output of a channel decoder, and then compensates the time-domain received signal for the phase noise by using the estimate. In order to equalize the compensated received signal, the iterative FDE performs both the MMSE filtering and residual inter-symbol interference cancelation using the decoder output. Computer simulations following the 60-GHz WPAN standard demonstrate that in the 64QAM with the coding rate of 3/4, the proposed receiver with three iterations can drastically remove the phase noise of −85 dBc/Hz at 1 MHz offset, and that it can achieve excellent transmission performance.


2010 ◽  
Vol 35 (21) ◽  
pp. 3619 ◽  
Author(s):  
Jing Li ◽  
Tigang Ning ◽  
Li Pei ◽  
Chunhui Qi ◽  
Qian Zhou ◽  
...  

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