4 结束语
由于集成Ad hoc和蜂窝网络的独特结构,必须针对其特点设计专门的切换解决方案。
在集成Ad hoc和蜂窝网络中,有两种通信方式:传统蜂窝方式和混合方式(经过多跳中继最终接入基站)。因此,当这几种通信方式都能实现用户的通信需求时,就需要解决不同通信方式的切换问题。目前在集成Ad hoc和蜂窝网络中,对切换算法的研究还不多,主要借鉴了和在单一网络中使用的传统切换算法。但是这种借用传统算法的系统性能不是最优的,因为它不能克服传统算法中参数无法自适应变化的特点。在所提出的混合架构中的一般目标是增强用户的吞吐量和提高整个系统的性能,没有考虑在传输模式选择、路由处理或切换过程中应用的QoS需求。随着新的切换度量的开发,传统切换算法已经不能适应多准则切换性能的要求。而基于多准则切换算法的实现越来越重要,特别是在混合网络中,网络和用户交互的增加将增加切换时延。因此必须发展新的技术来提高切换算法的有效性,在用户满意度和网络效率间形成平衡。近来新出现了一些技术,例如基于神经网络、模糊逻辑系统、模式识别的智能技术和基于代价函数、模糊多属性决策的优化技术。由于智能和优化切换算法对像集成Ad hoc和蜂窝网络结构的混合网络具有很好的适应性和鲁棒性,并且能够根据未来混合网络中的各种业务类型的QoS需求、网络状态以及移动节点条件等多种因素的变化进行自适应切换,所以可以考虑运用这些智能和优化算法来进行更加有效的切换判决,从而进一步提高系统的性能。下一步研究方向是在集成Ad hoc和蜂窝网络的环境下,使用智能或优化技术设计一种垂直切换算法来提高系统的整体性能。 5 参考文献
[1] CAVALCANTI D, AGRAWAL D, CORDEIRO C, et al. Issues in integrating cellular networks, WLANs, and MANETs: a futuristic heterogeneous wireless network [J]. IEEE Wireless Communications, 2005, 12(3):30-41.
[2] 3GPP TR 25.924, V1.0.0. Opportunity driven multiple access [S]. 1999.
[3] AGGELOU G N, TAFAZOLLI R. On the relaying capacity of next-generation GSM cellular networks [J]. IEEE Personal Communications, 2001, 8(1): 40-47.
[4] WU H, QIAO C, DE S, et al. Integrated cellular and Ad hoc relaying systems: iCAR [J] IEEE Journal on Selected Areas in Communications, 2001, 19(10) : 2105-2115.
[5] LUO H, RAMJEE R, SINHA P, et al. UCAN: a unified cellular and Ad-Hoc network architecture [C]// Proceedings of 9th Annual International Conference on Mobile Computing and Networking, Sep 14-19,2003, San Diego, CA, USA. New York, NY,USA: ACM,2003:.353-367.
[6] ZHOU J, YANG R. ParcelS: Pervasive ad-hoc relaying for cellular systems [C]// Proceedings of 1st Mediterranean Workshop on Ad hoc Networks, Sep 4-6,2002, Sardegna, Italy.2002.
[7] PAHLAVAN K, KRISHNAMURTHY P, HATAMI A, et al. Handoff in hybrid mobile data networks [J]. IEEE Personal Communications, 2000, 7(2):34-47.
[8] GUDMUNDSON M. Analysis of handover algorithms [C]// Proceedings of 41st Vehicular Technology Conference, May 19-22,1991, St Louis, MO, USA. Piscataway, NJ,USA: IEEE, 1991:537-542.
[9] ANAGNOSTOU M E, MANOS G C. Handover related performance of mobile communication networks [C]//Proceedings of 44th Vehicular Technology Conference: Vol 1, Jun 8-10,1994, Stockholm, Sweden. Piscataway, NJ,USA: IEEE 1994:111-114.
[10] MC-NAIR J, ZHU F. Vertical handoffs in fourth-generation multinetwork environments [J]. IEEE Wireless Communications, 2004, 11(3): 8-15.
[11] HASSWA A, NASSER N, HASSANEIN H. Generic vertical handoff decision function for heterogeneous wireless networks [C]//Proceedings of 2nd IFIP International Conference on Wireless and Optical Communications Networks, Mar 6-8,2005, Dubai, United Arab Emirates. Piscataway, NJ,USA:IEEE Computer Society, 2005:239-243.
[12] LOTT M, SIEBERT M, BONJOUR S, et al. Interworking of WLAN and 3G systems [J]. IEEE Proceedings: Communications, 2004, 151(5): 507-513.
[13] HARROLD T J, NIX A R. Intelligent relaying for future personal communication systems [J]. IEEE Colloquium (Digest), 2000(3):62-66.
[14] YAP J H, YANG X, GHAHERI-NIRI S, et al. Position assisted relaying and handover in hybrid Ad hoc WCDMA cellular system [C]//Proceedings of the 13th IEEE International Symposium on Personal, Indoor and Mobile Radio Communications: Vol 5, Sep 15-18,2002, Lisbon, Portugal. Piscataway, NJ,USA: IEEE, 2002: 2194-2198.
[15] WEI H Y, GITLIN R. Two-hop-relay architecture for next-generation WWAN/WLAN integration [J]. IEEE Wireless Communications, 2004,11(2): 24-30.
[16] ZHAO D, TODD T D. Cellular CDMA capacity with out-of-band multihop relaying [J]. IEEE Transactions on Mobile Computing 2006,5(2): 170-178.