TR2007-097

The Tradeoff Between Processing Gains of an Impulse Radio UWB System in the Presence of Timing Jitter


    •  Gezici, S., Molisch, A.F., Poor, H.V., Kobayashi, H., "The Tradeoff Between Processing Gains of an Impulse Radio UWB System in the Presence of Timing Jitter", IEEE Transactions on Communications, Vol. 55, No. 8, pp. 1504-1515, August 2007.
      BibTeX TR2007-097 PDF
      • @article{Gezici2007aug,
      • author = {Gezici, S. and Molisch, A.F. and Poor, H.V. and Kobayashi, H.},
      • title = {The Tradeoff Between Processing Gains of an Impulse Radio UWB System in the Presence of Timing Jitter},
      • journal = {IEEE Transactions on Communications},
      • year = 2007,
      • volume = 55,
      • number = 8,
      • pages = {1504--1515},
      • month = aug,
      • issn = {0090-6778},
      • url = {https://www.merl.com/publications/TR2007-097}
      • }
  • Research Area:

    Communications

Abstract:

In time hopping impulse radio, Nf pulses of durations Tc are transmitted for each information symbol. This gives rise to two types of processing gains: i) pulse combining gain, which is a factor Nf, and (ii) pulse spreading gain, which is Nc = Tf/Tc, where Tf is the mean interval between two subsequent pulses. This paper investigates the tradeoff between these two types of processing gains in the presence of timing jitter. First, an additive white Gaussian noise (AWGN) channel is considered, and approximate closed-form expressions for bit error probability (BEP) are derived for impulse radio systems with and without pulse-based polarity randomization. Both symbol-synchronous and chip-synchronous scenarios are considered. The effects of multi-access interference (MAI) and timing jitter on the selection of optimal system parameters are explained through theoretical analysis. Finally, a multipath scenario is considered, and the tradeoff between processing gains of a synchronous impulse radio system with pulse-based polarity randomization is analyzed. The effects of the timing jitter MAI, and interframe interference (IFI) are investigated. Simulation studies support the theoretical results.

 

  • Related News & Events