Multihop sensor network design for wide-band communications

被引:41
|
作者
Gharavi, H [1 ]
Ban, K [1 ]
机构
[1] NIST, Gaithersburg, MD 20899 USA
关键词
ad hoc networks; cluster networks; IEEE; 802.11; mobile IP; wireless local area network (WLAN);
D O I
10.1109/JPROC.2003.814919
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
This paper presents a master/slave cellular-based mobile ad hoc network architecture for multihop multimedia communications. The proposed network is based on a new paradigm for solving the problem of cluster-based ad hoc routing when utilizing existing wireless local area network (WLAN) technologies. The network architecture is a mixture of two different types of networks: infrastructure (niaster-and-slave) and ad hoc. lit this architecture, the participating slave nodes (SNs) in each cluster communicate with each other via their respective master nodes (MNs) in an infrastructure network. In contrast to traditional cellular networks where the base stations are fixed (e.g., interconnected via a wired backbone), in this network the MNs (e.g., base stations) are mobile: thus, interconnection is accomplished dynamically and in an ad hoc manner For network implementation, the IEEE 802.11 WLAN has been deployed. Since there is no stationary node in this network, all the nodes in a cluster may have to move together as a group. However, in order to allow a mobile node to move to another cluster; which requires changing its point of attachment, a handoff process utilizing Mobile IP version 6 (IPnu6) has been considered. For ad hoc routing between the master nodes (i.e., MNs), the Ad hoc On-demand Distance Vector (AODV) Routing protocol has been deployed. In assessing the network performance, field test trials have been carried out to measure the proposed network performance. These measurements include packet loss, delays under various test conditions such as a change of ad hoc route, handoffs, etc.
引用
收藏
页码:1221 / 1234
页数:14
相关论文
共 50 条
  • [21] WIDE-BAND HETERODYNE SPATIAL TRACKING FOR OPTICAL SPACE COMMUNICATIONS
    BERNAYS, DJ
    CARTER, GM
    WINICK, KA
    OPTICAL ENGINEERING, 1992, 31 (03) : 590 - 601
  • [22] ADAPTIVE RECEIVING ARRAYS FOR WIDE-BAND LUNAR RELAY COMMUNICATIONS
    WATERS, WM
    WEDEL, JO
    IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 1964, AP12 (02) : 195 - +
  • [23] DESIGN RELATIONS FOR THE WIDE-BAND WAVEGUIDE FILTER
    COHN, SB
    PROCEEDINGS OF THE INSTITUTE OF RADIO ENGINEERS, 1950, 38 (07): : 799 - 803
  • [24] Design and Implementation of Cavity Wide-Band antenna
    Sandhya, Y. G.
    Nisha, S. L.
    Karthikeya, G. S.
    2022 IEEE MICROWAVES, ANTENNAS, AND PROPAGATION CONFERENCE, MAPCON, 2022, : 928 - 932
  • [25] DESIGN AND OPTIMIZATION OF CMOS WIDE-BAND AMPLIFIERS
    TEYNDE, FO
    SANSEN, W
    PROCEEDINGS OF THE IEEE 1989 CUSTOM INTEGRATED CIRCUITS CONFERENCE, 1989, : 767 - 770
  • [26] Design of a Wide-Band Isolation Cavity on HTCC
    Xie, Shushan
    2022 IEEE 10TH ASIA-PACIFIC CONFERENCE ON ANTENNAS AND PROPAGATION, APCAP, 2022,
  • [27] MICROWAVE WIDE-BAND FILTER DESIGN EXPERIENCE
    KARLOV, AF
    SEMENIKHINA, DV
    IZVESTIYA VYSSHIKH UCHEBNYKH ZAVEDENII RADIOELEKTRONIKA, 1987, 30 (11): : 76 - 77
  • [28] A THEORY OF MULTISTAGE WIDE-BAND AMPLIFIER DESIGN
    BRADLEY, WE
    PROCEEDINGS OF THE INSTITUTE OF RADIO ENGINEERS, 1947, 35 (02): : 176 - 176
  • [29] Criteria for wide-band radial switch design
    Wang, QY
    Lecours, M
    Vergnolle, C
    IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2001, 49 (01) : 128 - 132
  • [30] THE DESIGN OF WIDE-BAND PHASE SPLITTING NETWORKS
    SARAGA, W
    PROCEEDINGS OF THE INSTITUTE OF RADIO ENGINEERS, 1950, 38 (07): : 754 - 770