Loading...
|
Please use this identifier to cite or link to this item:
https://nccur.lib.nccu.edu.tw/handle/140.119/32668
|
Title: | 在WMN 網路上考量Intra/Inter-flow 干擾之多網卡路由協定 Multi-Interface Routing with Intra/Inter-flow Interference (MiRii) Considerations in Wireless Mesh Networks |
Authors: | 劉彩鳳 Liu,Tsai-Feng |
Contributors: | 蔡子傑 Tsai,Tzu-Chieh 劉彩鳳 Liu,Tsai-Feng |
Keywords: | 無線網狀網路 路由協定 排隊理論 鏈結品質 干擾 AODV Wireless Mesh Networks Routing Link Quality Interference AODV Ad hoc network Little`s Result |
Date: | 2006 |
Issue Date: | 2009-09-17 14:00:45 (UTC+8) |
Abstract: | 近年來興起一個前瞻性無線技術,稱之為無線網狀網路(Wireless Mesh Networks),WMNs 以所費低廉方式提供無線網路最後一哩存取Internet,同時具備ad hoc 網路全部優點,例如自我組織(self-organization)、自我組態(self-configuration)等。儘管WMNs 骨幹部分與平面式ad hoc 網路相似,多網卡(multi-radio)的Mesh Routers 節點卻是固定不動且沒有電力限制。有鑑於此,設計於ad hoc 網路上之路由協定並不適合於WMNs。 WCETT(Weighted Cumulated Expected Transmission Time)metric 考量到intra-flow 干擾,卻未捕捉到inter-flow 干擾;而LBAR(Load-Balanced Ad hoc Routing)協定以計算節點之活躍值(nodal activity)與訊務流量干擾選擇路徑,並無支援多網卡路由,LBAR 可以在單一網卡環境表現良好,在多網卡環境卻不一定。因此,我們提出一個WMNs 上考量到Intra/Inter-flow干擾之多網卡路由協定,稱為MiRii。模擬結果顯示出我們路由協定可以改善網路效能,包含了封包成功傳送率及平均點對點延遲。 A new promising wireless technology has emerged recently, called wireless mesh networks (WMNs). WMNs are inexpensive way to provide wireless last-mile broadband Internet access and have all the advantages of ad hoc network, such as self-organization, self-configuration. Although WMNs backbone is similar to flat ad hoc network, mesh routers with multi-radio are stationary and have no power constraints. As a result, routing protocols designed for ad hoc network may not be appropriate for WMNs. The WCETT (Weighted Cumulated Expected Transmission Time) metric takes intra-flow interference into consideration, but does not capture inter-flow interference. LBAR (Load-Balanced Ad hoc Routing) calculates nodal activity and traffic interference for choosing a path, but does not supporting multi-radio. LBAR may be perform well in single-radio environment, but do not perform as well in multi-radios. Consequently, we incorporate a new Multi-Interface Routing with Intra/Inter-flow Interference in Wireless Mesh Networks, called MiRii. The simulations show that our routing protocol can improve the network performance including the Packet Delivery Ratio and average end-to-end delay. |
Reference: | [1] A. Adya, P. Bahl, J. Padhye, A. Wolman, and L. Zhou. “A Multi-Radio Unification Protocol for IEEE 802.11 Wireless Networks,” In Broadnets, 2004. [2] A.K. Saha, D.B. Johnson, “Self-organizing hierarchical routing for scalable ad hoc networking,” Technical Report, TR04-433, Department of Computer Science, Rice University. [3] A. Raniwala and T. C. Chiueh, "Architecture and algorithms for an IEEE 802.11-based multi-channel wireless mesh network,” Proc. IEEE INFOCOM, vol. 3, pp. 2223-2234, March 2005. [4] D.B. Johnson, D.A. Maltz, Y.-C. Hu, “The dynamic source routing protocol for mobile ad hoc networks (DSR),” IETF Internet-Draft: work in progress, July 2004. [5] C. Perkins, E. Belding-Royer, S. Das, “Ad hoc on-demand distance vector (AODV) routing,” IETF RFC 3561, July 2003. [6] D. C. Plummer. “An Ethernet Address Resolution Protocol,” In IETF RFC 826, Network Working Group, November 1982. [7] D.S.J. De Couto, D. Aguayo, J. Bicket, R. Morris, “A high-throughput path metric for multi-hop wireless routing,” ACM Annual International Conference on Mobile Computing and Networking (MOBICOM), September 2003, pp. 134–146. [8] Hossam Hassanein, Audrey Zhou, “Routing with Load Balancing in Wireless Ad hoc Networks,” ACM MSWiM, 2001. [9] Ian F. Akyildiz, Xudong Wang, Weilin Wang, “Wireless mesh networks: a survey,” Broadband and Wireless Networking (BWN) Lab, School of Electrical and Computer Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USA Kiyon, Inc., 4225 Executive Square, Suite 290, La Jolla, CA 92037, USA, December 2004. [10] Jitendra Padhye, Richard Draves, Brian Zill, “Routing in Multi-Radio, Multi-Hop Wireless Mesh Networks,” ACM Annual International Conference on Mobile Computing and Networking (MOBICOM), October 2004. [11] Lei Chen, et al. “QoS-Aware Routing Based on Bandwidth Estimation for Mobile Ad Hoc Networks,” IEEE Journal on Selected Areas in Communications, vol. 23, no. 3, pp. 561–572, March 2005, [12] Mario Gerla, http://wiki.uni.lu/secan-lab/docs/manet-fsr-00.htm, November 17, 2000. [13] Ramon Aguero Calvo, Jesus Perez Campo, “Adding Multiple Interface Support in NS-2,” January 2007. [14] Raffaele Bruno, et al. “Mesh Networks: Commodity Multihop Ad hoc Networks,” IEEE Communications Magazine, March 2005, vol. 43, no.3, pp. 123–131. [15] R. Draves, J. Padhye, B. Zill, “Comparisons of routing metrics for static multi-hop wireless networks,” ACM Annual Conference of the Special Interest Group on Data Communication (SIGCOMM), August 2004, pp. 133–144. [16] S. Mueller, D. Ghosal, “Multipath routing in mobile ad hoc networks: issues and challenges,” M.C.i Calzarossa, E. Gelenbe (Eds.), Lecture Notes in Computer Science, 2004. [17] Sung-Ju Lee and Mario Gerla, “Dynamic Load-Aware Routing in Ad hoc Networks,” in IEEE ICC, 2001. [18] S.Bansal, R.Shorey, A.A.Kherani, “Performance of TCP and UDP Protocols in Multi-Hop Multi-Rate Wireless Networks,” IEEE WCNC, vol. 1, pp. 231–236, March 2004. [19] Wu Xiuchao, “Simulate 802.11b Channel within NS2 ,” SOC, NUS. [20] “IEEE 802.1D - MAC Bridges”, http://standards.ieee.org/getieee802/download/802.1D-1998.pdf [21] “Optimized Link State Routing Protocol (OLSR),” IETF RFC 3561, October 2003. [22] “The network simulator - ns2”, http://www.isi.edu/nsnam/ns. [23] “802.11 TGs Simple Efficient Extensible Mesh (SEE-Mesh) Proposal,” 2006-01-09 |
Description: | 碩士 國立政治大學 資訊科學學系 93971012 95 |
Source URI: | http://thesis.lib.nccu.edu.tw/record/#G0093971012 |
Data Type: | thesis |
Appears in Collections: | [資訊科學系] 學位論文
|
All items in 政大典藏 are protected by copyright, with all rights reserved.
|