A GA-based effective fault-tolerant model for channel allocation in mobile computing

被引:21
|
作者
Khanbary, Lutfi Mohammed Omer [1 ]
Vidyarthi, Deo Prakash [1 ]
机构
[1] Jawaharlal Nehru Univ, Sch Comp & Syst Sci, New Delhi 110067, India
关键词
channel reuse; fault-tolerant model; genetic algorithm; handoff; mobile communication;
D O I
10.1109/TVT.2007.907311
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
Efficient channel allocation to mobile hosts is of utmost importance in a cellular network. A genetic algorithm (GA), which is a useful tool in solving optimization problems, is explored to design a fault-tolerant cellular channel allocation model that allows a cell to continue communicating with its mobile hosts, even if there are insufficient channels available in the cell. Sometimes, the load over a cell may increase to the extent that it needs more channels than it actually has in order to handle the traffic. On the other hand, it is quite possible that the load in some other cell is less than its channel capacity, resulting in underutilization of the channels. This problem is solved by temporarily taking unutilized channels from cells that have lesser load and allocating them to the cells that are overloaded. We propose a model that reuses available channels more efficiently. The model also considers the handoff by using the reserved channel technique. A reserved pool of channels makes the model fault tolerant. Thus, the proposed work uses GA for fault-tolerant dynamic channel allocation to minimize the average number of blocked hosts and handoff failures in the mobile computing network. Simulation experiments evaluate the performance of the proposed model. Comparison of the results with the two recent earlier models reveals that the proposed model works better in serving mobile hosts.
引用
收藏
页码:1823 / 1833
页数:11
相关论文
共 50 条
  • [31] FAULT-TOLERANT COMPUTING - INTRODUCTION
    REDDY, SM
    IEEE TRANSACTIONS ON COMPUTERS, 1978, 27 (06) : 481 - 482
  • [32] FAULT-TOLERANT COMPUTING - OVERVIEW
    AVIZIENIS, A
    COMPUTER, 1971, 4 (01) : 5 - +
  • [33] FAULT-TOLERANT COMPUTING - INTRODUCTION
    MEYER, JF
    RAULT, JC
    IEEE TRANSACTIONS ON COMPUTERS, 1976, 25 (06) : 553 - 556
  • [34] A hybrid and adaptive model for fault-tolerant distributed computing
    Gorender, S
    Macêdo, R
    Raynal, M
    2005 INTERNATIONAL CONFERENCE ON DEPENDABLE SYSTEMS AND NETWORKS, PROCEEDINGS, 2005, : 412 - 421
  • [35] An analytical model for a parallel fault-tolerant computing system
    Personè, VD
    Grassi, V
    PERFORMANCE EVALUATION, 1999, 38 (3-4) : 201 - 218
  • [36] A dynamic fault-tolerant model for open distributed computing
    Lanka, Rodrigo
    Oda, Kentaro
    Najima, Horoki
    Yoshida, Takaichi
    SEVENTEENTH INTERNATIONAL CONFERENCE ON DATABASE AND EXPERT SYSTEMS APPLICATIONS, PROCEEDINGS, 2006, : 25 - +
  • [37] An adaptive programming model for fault-tolerant distributed computing
    Gorender, Sergio
    Macedo, Raimundo Jose de Araujo
    Raynal, Michel
    IEEE TRANSACTIONS ON DEPENDABLE AND SECURE COMPUTING, 2007, 4 (01) : 18 - 31
  • [38] QoS and fault-tolerant based distributed dynamic channel allocation protocol for cellular networks
    Boukerche, A
    Abrougui, K
    Huang, TX
    LCN 2005: 30th Conference on Local Computer Networks, Proceedings, 2005, : 59 - 66
  • [39] Fault-tolerant in mobile agent
    Wu, X.
    Lu, X.D.
    Jisuanji Gongcheng/Computer Engineering, 2001, 27 (02):
  • [40] A Hierarchical Fault-Tolerant and Cost Effective Framework for RRAM Based Neural Computing Systems
    Vatti, Chandrasekhara Srinivas
    Reddy, Rakesh M. B. P. Ravi Teja
    Acharyya, Amit
    IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS II-EXPRESS BRIEFS, 2022, 69 (03) : 684 - 688