The layer 1 virtual private network framework has emerged from the need to enable the dynamic coexistence of multiple circuit-switched client networks over a common physical network infrastructure. Such a VPN could be set up for an enterprise with offices across a wide geographical area (e.g., around the world or by a global ISP). Additionally, emerging IP over optical WDM technologies let IP traffic be carried directly over the optical WDM layer. Thus, different VPNs can share a common optical WDM core, and may demand different amounts of bandwidth at different time periods. This type of operation would require dynamic and reconfigurable allocation of bandwidth. This article evaluates the state of the art in layer 1 VPNs in the context of globally deployable optical networks and cost-efficient dynamic bandwidth usage. While exploiting the dynamism of IP traffic in a global network in which the nodes are located in different time zones, we study different bandwidth allocation methods for setting up a worldwide layer 1 VPN. We propose and investigate the characteristics of a cost-efficient bandwidth provisioning and reconfiguration algorithm, called capacity allocation using time zones (CATZ)
[1]
Eric G. Manning,et al.
Optimal Bandwidth Allocation for Dynamically Priced Network Services
,
2006,
2006 3rd International Conference on Broadband Communications, Networks and Systems.
[2]
Tomonori Takeda,et al.
Layer 1 virtual private networks: service concepts, architecture requirements, and related advances in standardization
,
2004,
IEEE Communications Magazine.
[3]
B. Mukherjee,et al.
Minimum-cost topology adaptation for an ISP's mesh network
,
2005,
OFC/NFOEC Technical Digest. Optical Fiber Communication Conference, 2005..
[4]
Deborah Brungard,et al.
Layer 1 virtual private networks: driving forces and realization by GMPLS
,
2005,
IEEE Communications Magazine.
[5]
R. Wilder,et al.
Wide-area Internet traffic patterns and characteristics
,
1997,
IEEE Netw..
[6]
Tomonori Takeda,et al.
Framework and Requirements for Layer 1 Virtual Private Networks
,
2007,
RFC.
[7]
Biswanath Mukherjee,et al.
Virtual-topology adaptation for WDM mesh networks under dynamic traffic
,
2003,
TNET.