• DocumentCode
    722537
  • Title

    Mobility enhancement of dense small-cell network

  • Author

    Sungjin Lee ; Jungsoo Jung ; Jungmin Moon ; Nigam, Anshuman ; Sunheui Ryoo

  • Author_Institution
    DMC R&D Center, Samsung Electron., Suwon, South Korea
  • fYear
    2015
  • fDate
    9-12 Jan. 2015
  • Firstpage
    297
  • Lastpage
    303
  • Abstract
    Achieving significant throughput enhancement is a fundamental technical challenge for next generation cellular communication systems. In order to meet the projected 1000 fold traffic increase by the year 2020, the cellular systems are intensely focusing on ultra-densification by deploying a large number of small cells in a geographical area as a practical means for aggressively increasing the areal capacity. However cell densification is inherently limited by the high inter-cell interference that it inadvertently generates which seriously jeopardizes its gain and renders it practically unsuitable to meet the projected huge traffic explosion. Furthermore, increased densification leads to increased cell edges which in turn lead to rugged user experience. In order to overcome these daunting limitations and make densification a practical reality, we propose novel mobility robustness solutions which significantly decrease the number of handover failures and minimize the interruption in the ongoing services thereby leading to an appreciably better quality of experience for the user. The performance of the proposed schemes are evaluated using computer simulations and also in the drive test with a commercial handset and network equipment in the Gang-nam station area where the network configuration is close to the dense small cell environment. The proposed schemes enhance mobility performance up to 77% and reduce the service outage by 38% in the simulation with typical handover configurations. The enhancement is also observed from the drive tests in the commercial LTE small cell network around Gang-nam station area.
  • Keywords
    Long Term Evolution; interference; mobility management (mobile radio); next generation networks; Gang-nam station area; commercial LTE small cell network; dense small-cell network; handover failures; huge traffic explosion; inter-cell interference; mobility enhancement; next generation cellular communication systems; novel mobility robustness solutions; ultra-densification; Antennas; Bandwidth; Gain; Lead; Q measurement;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Consumer Communications and Networking Conference (CCNC), 2015 12th Annual IEEE
  • Conference_Location
    Las Vegas, NV
  • ISSN
    2331-9860
  • Print_ISBN
    978-1-4799-6389-8
  • Type

    conf

  • DOI
    10.1109/CCNC.2015.7157992
  • Filename
    7157992