A comparison of reverse link access schemes for next-generation cellular systems

被引:9
|
作者
Das, S [1 ]
Viswanathan, H [1 ]
机构
[1] Bell Labs, Lucent Technol, Murray Hill, NJ 07974 USA
关键词
code-division multiple access (CDMA); hybrid automatic repeat request (HARQ); orthogonal frequency-division multiple access (OFDMA); time-division multiple access (TDMA);
D O I
10.1109/JSAC.2005.862419
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
We consider different transmission options on the reverse link of cellular systems for packet data. The different trans mission options are classified based on the nature of in-cell and out-of-cell interference power statistics. The categories are: (a) no in-cell interference, averaged out-of cell interference; (b) no in-cell interference, bursty out-of-cell interference; and (c) averaged in-cell interference, averaged out-of-cell interference. Depending on whether the reverse link transmission is time multiplexed one user at a time transmission, or simultaneous transmission by multiple users with or without in-cell orthogonality, the interference structure falls into one of the above three categories. We analyze the throughput performance of the system in each of these cases when incremental redundancy is employed to combat uncertainty in the interference power. We compare the different options under an in-cell rise-over-thermal (IROT) constraint and provide some insights for reverse link design for next-generation cellular systems. Our results show that transmission option (a) with an optimal choice of the number of simultaneous transmissions within the cell has the best performance over several different scenarios. Time-multiplexed transmissions, despite the bursty out-of-cell interference power structure, has throughput comparable to that of a multiple-user orthogonal transmission system for small cells where mobiles have sufficient transmit power to meet the target IROT.
引用
收藏
页码:684 / 692
页数:9
相关论文
共 50 条
  • [41] Next-generation sequencing: a short comparison
    Stangier, Kerstin A.
    LABORATORIUMSMEDIZIN-JOURNAL OF LABORATORY MEDICINE, 2009, 33 (05): : 267 - 270
  • [42] Next-Generation PON-Part II: Candidate Systems for Next-Generation PON
    Effenberger, Frank J.
    Mukai, Hiroaki
    Park, Soojin
    Pfeiffer, Thomas
    IEEE COMMUNICATIONS MAGAZINE, 2009, 47 (11) : 50 - 57
  • [43] Next-generation aluminum vacuum systems
    Tisdale, G
    Offerle, JA
    Bothell, R
    Bothell, J
    SOLID STATE TECHNOLOGY, 1998, 41 (05) : 79 - +
  • [44] Next-generation RF circuits and systems
    Razavi, B
    SEVENTEENTH CONFERENCE ON ADVANCED RESEARCH IN VLSI, PROCEEDINGS, 1997, : 270 - 282
  • [45] NEXT-GENERATION OPERATING-SYSTEMS
    HELLER, M
    CRABB, D
    ULLMAN, E
    THOMPSON, T
    HAYES, F
    POURNELLE, J
    LINDERHOLM, O
    BYTE, 1992, 17 (02): : 91 - 92
  • [46] Next-Generation Robots and Systems Introduction
    Popa, Dan O.
    Wijesundara, Muthu B. J.
    NEXT-GENERATION ROBOTS AND SYSTEMS, 2014, 9116
  • [47] A SERIOUS PROBLEM FOR NEXT-GENERATION SYSTEMS
    STANKOVIC, JA
    COMPUTER, 1988, 21 (10) : 10 - 19
  • [48] Planning the next-generation wireless systems
    Beaubrun, R
    Pierre, S
    Conan, J
    PROVIDING QUALITY OF SERVICE IN HETEROGENEOUS ENVIRONMENTS, VOLS 5A AND 5B, 2003, 5A-B : 741 - 750
  • [49] Next-Generation Infrastructure Systems and Services
    Weijnen, Margot P. C.
    IEEE SYSTEMS MAN AND CYBERNETICS MAGAZINE, 2019, 5 (03): : 8 - 9
  • [50] Plasmonics for Next-Generation Wireless Systems
    Burla, Maurizio
    Bonjour, Romain
    Salamin, Yannick
    Abrecht, Felix
    Hoessbacher, Claudia
    Haffner, Christian
    Heni, Wolfgang
    Fedoryshyn, Yuriy
    Baeuerle, Benedikt
    Josten, Arne
    Elder, Delwin
    Dalton, Larry
    Leuthold, Juerg
    2018 IEEE/MTT-S INTERNATIONAL MICROWAVE SYMPOSIUM - IMS, 2018, : 1308 - 1311