• DocumentCode
    3373831
  • Title

    Experimental characterization of space optical communications with disruption-tolerant network protocols

  • Author

    Schoolcraft, Joshua ; Wilson, Keith

  • Author_Institution
    Commun. Networks Group, California Inst. of Technol., Pasadena, CA, USA
  • fYear
    2011
  • fDate
    11-13 May 2011
  • Firstpage
    248
  • Lastpage
    252
  • Abstract
    Disruption-tolerant networks (DTNs) are groups of network assets connected with a suite of communication protocol technologies designed to mitigate the effects of link delay and disruption. Application of DTN protocols to diverse groups of network resources in multiple sub-networks results in an overlay network-of-networks with autonomous data routing capability. In space environments where delay or disruption is expected, performance of this type of architecture (such as an interplanetary internet) can increase with the inclusion of new communications mediums and techniques. Space-based optical communication links are therefore an excellent building block of space DTN architectures. When compared to traditional radio frequency (RF) communications, optical systems can provide extremely power-efficient and high bandwidth links bridging sub-networks. Because optical links are more susceptible to link disruption and experience the same light-speed delays as RF, optical-enabled DTN architectures can lessen potential drawbacks and maintain the benefits of autonomous optical communications over deep space distances. These environment-driven expectations - link delay and interruption, along with asymmetric data rates - are the purpose of the proof-of-concept experiment outlined herein. In recognizing the potential of these two technologies, we report an initial experiment and characterization of the performance of a DTN-enabled space optical link. The experiment design employs a point-to-point free-space optical link configured to have asymmetric bandwidth. This link connects two networked systems running a DTN protocol implementation designed and written at JPL for use on spacecraft, and further configured for higher bandwidth performance. Comparing baseline data transmission metrics with and without periodic optical link interruptions, the experiment confirmed the DTN protocols´ ability to handle real-world unexpected link outages while maintaining capability of reliabl- - y delivering data at relatively high rates. Finally, performance characterizations from this data suggest performance optimizations to configuration and protocols for future optical-specific DTN space link scenarios.
  • Keywords
    optical communication; optical links; optimisation; routing protocols; space vehicles; transport protocols; DTN-enabled space optical link; JPL; autonomous data routing capability; autonomous optical communications; communication protocol; deep space distances; disruption-tolerant network protocols; interplanetary internet; optimizations; overlay network-of-networks; point-to-point free-space optical link; space-based optical communication links; spacecraft; Optical attenuators; Optical fiber communication; Optical fibers; Protocols; Throughput; Disruption tolerant network; Interplanetary Overlay Network; Optical communications; Space networking;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Space Optical Systems and Applications (ICSOS), 2011 International Conference on
  • Conference_Location
    Santa Monica, CA
  • Print_ISBN
    978-1-4244-9686-0
  • Type

    conf

  • DOI
    10.1109/ICSOS.2011.5783678
  • Filename
    5783678