Peter D. Heidmann
Qualcomm
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Publication
Featured researches published by Peter D. Heidmann.
international microwave symposium | 2011
M. Omer; Roberto Rimini; Peter D. Heidmann; J.S. Kenney
Current and future generation radio transceivers have to share spectrum in increasingly tight frequency space. Front end nonlinearities create spectral expansion which leads to radio interference in adjacent bands. The problem is greatly exacerbated for full duplex receivers with closely spaced Tx/Rx channels. This work proposes a novel radio architecture that can take care of out of band (OOB) emissions and allow interference free full duplex radio operation using appropriate nonlinear interference cancellation schemes. We propose that nonlinear operation and the resulting spectral re-growth can be handled without incurring any extra analog hardware in the RF front-end. This is accomplished at the cost of extra base band DSP workload. We then demonstrate that such an operation is indeed possible by setting up an experiment with a commercial RF front end chipset. This can possibly lead to a wide range of applications where interference cancellation can either facilitate or enable radio co-existence in upcoming multi-radio transceivers.
radio frequency integrated circuits symposium | 2012
M. Omer; Roberto Rimini; Peter D. Heidmann; J.S. Kenney
The evolution of efficiency in RF power amplifiers has been very gradual. Even today, they dissipate a lot of energy as heat which reduces the efficiency and increases the noise level. This PA noise is generally attenuated down to the thermal noise floor of the receiver by using highly selective duplexers. High selectivity necessarily carries high insertion loss and hence the PA output power requirement further increases. In the next generation of radios, efforts are underway to substantially reduce duplexer size and selectivity specifications. This will lead to a significant increase in the PA noise falling into the receive band. This work looks at a new technique to mitigate this receive-band noise by means of a mixed signal architecture using analog and digital components. We demonstrate that the cancellation of this noise can be accomplished by the receiver, and SNR gains can be demonstrated using commercial RFICs.
international microwave symposium | 2012
M. Omer; Roberto Rimini; Peter D. Heidmann; J.S. Kenney
In radio receivers employing diversity reception, receiver LO frequencies are closely separated. Different LO frequencies can couple through the substrate to the nonlinear components in the phase locked loops thus generating spurs. Such a spur, if it falls nearby the local transmit frequency, can inadvertently demodulate the strong local transmit signal and hence degrade the received SNR severely. In this paper, we investigate a novel method of compensating for transmitter self-jamming by carefully mimicking this mechanism in the received signal path and thus allowing cancellation. It has been shown that with certain simplifying assumptions one can realistically cancel the spur-induced transmit self-jamming interference. We outline the theoretical feasibility of this approach and then setup an RF test-bench to demonstrate these ideas on actual RF chipsets. Performance results from prototype measurements are reported.
Archive | 2000
Peter D. Heidmann; Joseph Patrick Burke
Archive | 2010
Roberto Rimini; Peter D. Heidmann; Joseph Patrick Burke
Archive | 2000
Randolph E. Standke; Joseph Patrick Burke; Peter D. Heidmann
Archive | 2011
Roberto Rimini; Mohammad Omer; Joseph Patrick Burke; Peter D. Heidmann
Archive | 1998
Franklin P. Antonio; Joseph Patrick Burke; Houtan Dehesh; Walid Hamdy; Peter D. Heidmann; Jeffrey A. Levin; Todd Sutton
Archive | 1998
Joseph Patrick Burke; Peter D. Heidmann
Archive | 2013
Roberto Rimini; Cong T. Nguyen; Peter D. Heidmann; Joseph Patrick Burke; Vladimir Aparin