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Waveband switching for dynamic traffic demands in multigranular optical networks
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Source IEEE/ACM Transactions on Networking (TON) archive
Volume 15 ,  Issue 4  (August 2007) table of contents
Pages: 957 - 968  
Year of Publication: 2007
ISSN:1063-6692
Authors
Xiaojun Cao  Department of Networking, Security, and Systems Administration, Rochester Institute of Technology, Rochester, NY
Vishal Anand  Department of Computer Science, State University of New York at Brockport, Brockport, NY
Chunming Qiao  Department of Computer Science Engineering, State University of New York at Buffalo, Buffalo, NY
Publisher
IEEE Press  Piscataway, NJ, USA
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DOI Bookmark: 10.1109/TNET.2007.896234

ABSTRACT

Waveband switching (WBS) in conjunction with multigranular optical cross-connect (MG-OXC) architectures can reduce the cost and complexity of OXCs. In this paper, we study the performance of different MG-OXC architectures under dynamic traffic. In the case with online incremental traffic, we compare two MG-OXC architectures in terms of the blocking probability of new lightpath requests and study the impact of port counts and traffic loads. We develop an online Integer Linear Programming model (On-ILP), which minimizes the number of used ports and the request blocking probability, given a fixed number of wavelengths and MG-OXC architecture. The On-ILP optimizes the routing of new lightpaths so as to maximize lightpath grouping and reduce the port count given that existing traffic cannot be rearranged. We also propose a new efficient heuristic algorithm, called Maximum Overlap Ratio (MOR) to satisfy incremental traffic and compare it with the On-ILP, first-fit, and random-fit algorithms. Our results and analysis indicate that using WBS with MG-OXCs can reduce the size (and, hence, the cost) of switching fabrics compared to using ordinary OXCs. Based on the results and observations in the incremental traffic case, we further study the performance of a particular MG-OXC architecture under fully dynamic or fluctuating traffic. Our simulations show that the proposed heuristic algorithm waveband assignment with path graph, which groups wavelengths to bands and uses wavelength converters efficiently under fluctuating traffic, significantly out-performs other heuristic algorithms.


REFERENCES

Note: OCR errors may be found in this Reference List extracted from the full text article. ACM has opted to expose the complete List rather than only correct and linked references.

 
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Collaborative Colleagues:
Xiaojun Cao: colleagues
Vishal Anand: colleagues
Chunming Qiao: colleagues