• DocumentCode
    153809
  • Title

    Optimum Design for Robustness of Frequency Hopping System

  • Author

    Gang Wang ; Khanh Pham ; Blasch, Erik ; Tien Manh Nguyen ; Genshe Chen ; Dan Shen ; Bin Jia ; Xin Tian ; Zhonghai Wang

  • Author_Institution
    Intell. Fusion Technol., Inc., Germantown, MD, USA
  • fYear
    2014
  • fDate
    6-8 Oct. 2014
  • Firstpage
    675
  • Lastpage
    681
  • Abstract
    Engineering systems rely on robust, continuous, and resilient communications. To ensure robustness, communication systems should operate in situations of intentional interference. Specifically, cognitive radio frequency interferences (RFI) for a frequency hopping system will be demonstrated to maximize probability of interception, while probability of RFI detection is maintained. Three test conditions of power, distance, and the number of occupied sub-channels are the parameters of trade studies. A closed-form formulation of interception probability is presented under general Nakagami-m fading channels in the condition of intentional interference. Our RFI maximum interception method provides a solution for system´s testing, signals deconfliction, and secure communications. Lastly, the proposed methodology is compared to baseline methods where average power either on the whole bandwidth or single random channel impeded communications. Results demonstrate that the proposed optimum design outperforms the baseline methods.
  • Keywords
    Nakagami channels; cognitive radio; frequency hop communication; probability; radiofrequency interference; telecommunication security; RFI detection probability; RFI maximum interception method; closed-form formulation; cognitive radio frequency interferences; communication security; engineering systems; frequency hopping system; general Nakagami-m fading channels; intentional interference situations; interception probability; occupied sub-channels; optimum design; robustness communication systems; signal deconfliction; single random channel impeded communications; system testing; test conditions; Communication systems; Fading; Interference; Nakagami distribution; Radio transmitters; Receivers; Robustness;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Military Communications Conference (MILCOM), 2014 IEEE
  • Conference_Location
    Baltimore, MD
  • Type

    conf

  • DOI
    10.1109/MILCOM.2014.118
  • Filename
    6956839