Open Access Open Access  Restricted Access Subscription or Fee Access

Routing Configuration of Inter-VLAN on Packet Tracer

Bhakti Dhomane, Sushil Bakhtar

Abstract


Network traffic is forwarded from one VLAN to another VLAN using a procedure called inter-VLAN routing. Legacy, router-on-a-stick, and a Layer 3 switch employing SVIs are the three alternatives. A router with several Ethernet interfaces was used by Legacy. Each router interface was connected to a switch port in different VLANs. Virtual LANS (VLANs) allow you to partition a large network into several smaller ones. Many businesses have divisions within their networks for certain departments. The fundamental reasoning for VLANs has been covered in earlier articles. As you are aware, every VLAN is a distinct VLAN. They are all separate networks. Therefore, there is no connectivity between VLANs at first. Inter-VLAN Routing is necessary for these many sub-networks to be able to communicate with one another. This architecture is also known as the “Router on Stick” topology. A very popular topology for CCNA examinations is inter-VLAN routing or router-on-stick architecture. In this session, we will study Router on Stick Topology and Configuration.

 


Full Text:

PDF

References


Weinstein SB, Ebert PM. Data transmission by frequency-division multiplexing using the discrete Fourier transform. IEEE Trans Comm Technol. 1971;19(5):628–34. DOI: 10.1109/TCOM.1971.1090705.

Fettweis G, Bahai AS, Anvari K. On multi-carrier code division multiple access (MC-CDMA) modem design. Proceedings of IEEE Vehicular Technology Conference (VTC), Stockholm, Sweden, 1994, vol. 3, pp. 1670–74. DOI: 10.1109/VETEC.1994.345380.

Hanzo L, Keller T. OFDM and MC–CDMA: A Primer. West Sussex: John Wiley; 2006.

Yee N, Linnartz JP. Multicarrier CDMA in indoor wireless radio networks. PIMRC 1993. Yokohama: Proceeding of PIMRC; 1993. p. 109–13.

Proakis JG. Digital Communications. New York: McGraw Hill; 1995.

Steele R, Hanzo L. Mobile Radio Communications. New York: John Wiley and IEEE Publications; 1999.

Verdu S. Multiuser Detection. Cambridge: Cambridge University Press; 1998.

Bhaskar V, Pai LS. Performance Analysis of MC-CDMA Systems Under Nakagami Hoyt Fading. Wirel Personal Commun. 2013;69(4):1885–98. DOI: 10.1007/s11277–012–0669–4.

Silva A, Teodoro S, Dinis RG, Gameiro A. Iterative Frequency-Domain Detection for IA-Precoded MC-CDMA Systems. IEEE Trans Commun. 2014;62(4):1240–8.

DOI: 10.1109/TCOMM.2014.022514.130681.

Yan Y, Ma M. Novel Frequency-Domain Oversampling Receiver for CP MC-CDMA Systems. IEEE Commun Lett. 2015;19(4):661–4. DOI: 10.1109/LCOMM.2015.2391103.

Sung WL, Chang YK, Ueng FB, Shen YS. A new SAGE-based receiver for MC–CDMA communication systems. Wireless Pers Commun. 2015;85(3):1617–34. DOI: 10.1007/s11277–015–2858–4.

Hornik K, Stinchcombe M, White H. Multilayer feedforward networks are universal approximators. Neural Netw. 1989;2(5):359–66. DOI: 10.1016/0893–6080(89)90020–8.

Hornik K. Approximation capabilities of multilayer feedforward networks. Neural Netw. 1991;4(2):251–7. DOI: 10.1016/0893–6080(91)90009-T.

Haykin S. Neural Networks. Singapore: Pearson Education; 1999.

Taşpınar N, Çiçek M. Neural network based receiver for multiuser detection in MC–CDMA systems. Wireless Pers Commun. 2013;68(2):463–72. DOI: 10.1007/s11277–011–0462–9.

Patra JC, Pal RN, Baliarsingh R, Panda G. Nonlinear channel equalization for QAM signal constellation using artificial neural networks. IEEE Trans Syst Man Cybern B Cybern. 1999;29(2):262–71. DOI: 10.1109/3477.752798.

Ravikumar CV, Bagadi K. Robust Neural Network based multiuser detector in MC-CDMA for multiple access mitigation. Indian J Sci Technol. 2016;9(30).

Ravikumar CV, Srikanth YM, Sairam P, Sundeep M, Praveen Bagadi K, Annepu V. Performance analysis of HSRP in provisioning layer-3 gateway redundancy for corporate networks. Indian J Sci Technol. 2016;9(20):1–5. DOI: 10.17485/ijst/2016/v9i20/89851.

Bagadi K. Ravikumar CV. Performance analysis of IPv4 to IPv6 transition methods. Indian J Sci Technol. 2016;9(20):1–8. DOI: 10.17485/ijst/2016/v9i20/90005.

Mishra AK, Sahoo A. S-OSPF: A traffic engineering solution for OSPF based on best effort network. IEEE Globecom. 2007:1845–9.

Kjeld Borch Egevang and Pyda Srisuresh (2001). RFC 3022: Traditional IP Network Address Translator (Traditional NAT). [online] IETF Datatracker. Available from: https://datatracker.ietf.org/doc/html/rfc3022.

Baker RH. Network Security: How to Plan for It and Achieve It. New York: McGraw-Hill, Inc; 1995.

Chappell LA, Hakes DE. Novell’s Guide to NetWare LAN analysis. 2nd ed. Alameda, CA: SYBEX, Inc; 1994.

Comer DE. Internetworking with TCP/IP, Volume I. Principles, Protocols, and Architecture. 3rd ed. Englewood Cliffs: Prentice Hall, Inc.; 1995.

Derfler FJ, Freed L. How Networks Work. 2nd ed. Computer networks. Que. Emeryville; 1996.

Henry PD, De Libero G. Strategic networking: from LAN and WAN to Information Superhighways. London: International Thomson Computer Press; 1996.

Martin J, Chapman KK, Leben J. Local Area Networks: Architectures and Implementations. 2nd ed. NJ: P TR Prentice Hall, Inc; 1994.

Passmore D, Freeman J. (1998). The virtual LAN technology report [online] Available from: http://www.3com.com/nsc/200374.html.

Roese J. Switched LANs: Implementation, Operation, Maintenance. New York: McGraw-Hill, Inc; 1998.

Roese J, Knapp E. SecureFast: A Comparative Analysis of SecureFast and 802.1Q. Rochester, NH: Cabletron Systems, Inc; 1997.

SecureFast services overview. Cabletron Systems Product Marketing White Papers. Rochester, NH: Cabletron Systems, Inc.; 1998.

Tittel E, Robbins M. Network Design Essentials. Cambridge, MA: A P Professional; 1994.

Virtual LAN Communications; 1996 [online]. Available from: http://cio.cisco.com/warp/public/614/13.html.

VLAN information. UC Davis Network 21; 1998 [online] Available from: http://net21.ucdavis.edu/newvlan.htm.




DOI: https://doi.org/10.37628/ijtet.v8i2.1848

Refbacks

  • There are currently no refbacks.