DocumentCode :
153908
Title :
Multi-channel Phase-Coherent RF Measurement System Architectures and Performance Considerations
Author :
Hall, David ; Hinde, Andy ; Yupeng Jia
Author_Institution :
Nat. Instrum., Syst. Eng. America - RF & Commun., Austin, TX, USA
fYear :
2014
fDate :
6-8 Oct. 2014
Firstpage :
1318
Lastpage :
1323
Abstract :
The paradigm for wireless communication is, shifting toward multiple-input multiple-output (MIMO) communications, enabled by multiple antennas at the transmitter and receiver. Instrument synchronization requirements for MIMO test are some of the most difficult in the test industry. In a MIMO test system, each channel of a multichannel RF instrument must achieve true channel-to-channel phase coherency. While MIMO test setups traditionally used multiple VSAs with a shared 10 MHz reference clock, new modular RF instruments allow for a single LO to be shared between each channel of a multi-channel VSA. For both architectures, key contributors to channel-to-channel phase uncertainty are uncorrelated phase noise and ADC quantization noise. As the results from these experiments demonstrate, uncorrelated phase noise dominates channel-to-channel phase offsets in multichannel VSAs which use independent LOs for each down converter. By contrast, ADC quantization noise dominates channel-to-channel phase uncertainty in multi-channel VSAs using a common synthesized LO for each channel. Moreover, the absolute channel-to-channel phase uncertainty is significantly better in the multi-channel VSA which uses a common LO for each down converter chain.
Keywords :
MIMO communication; analogue-digital conversion; antenna arrays; phase noise; radiocommunication; ADC quantization noise; MIMO communications; RF measurement system architectures; channel-to-channel phase coherency; instrument synchronization; multichannel RF instrument; multichannel VSA; multichannel phase coherent; multiple antennas; multiple-input multiple-output communications; uncorrelated phase noise; wireless communication; Clocks; Phase measurement; Phase noise; Power dividers; Radio frequency; Synchronization; Topology; RF; multiple-channel acquisition; synchronization; vector signal analyzer; vector signal receiver;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Military Communications Conference (MILCOM), 2014 IEEE
Conference_Location :
Baltimore, MD
Type :
conf
DOI :
10.1109/MILCOM.2014.219
Filename :
6956939
Link To Document :
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