DocumentCode
2367607
Title
Coded path protection: Efficient conversion of sharing to coding
Author
Avci, Serhat Nazim ; Ayanoglu, Ender
Author_Institution
Dept. of Electr. Eng. & Comput. Sci., Univ. of California, Irvine, Irvine, CA, USA
fYear
2012
fDate
10-15 June 2012
Firstpage
1198
Lastpage
1203
Abstract
Link failures in wide area networks are common and cause significant data losses. Mesh-based protection schemes offer high capacity efficiency but they are slow and require complex signaling. Additionally, real-time reconfiguration of a crossconnect threatens their transmission integrity. On the other hand, coding-based protection schemes are proactive. Therefore, they have higher restoration speed, lower signaling complexity, and higher transmission integrity. This paper introduces a coding-based protection scheme, named Coded Path Protection (CPP). In CPP, a backup copy of the primary data is encoded with other data streams, resulting in capacity savings. This paper presents an optimal and simple capacity placement and coding group formation algorithm. The algorithm converts the sharing structure of any solution of a Shared Path Protection (SPP) technique into a coding structure with minimum extra capacity. W e conducted quantitative and qualitative comparisons of our technique with the SPP and, another technique, known as p-cycle protection. Simulation results confirm that the CPP is significantly faster than the SPP and p-cycle techniques. CPP incurs marginal extra capacity on top of SPP. Its capacity efficiency is lower than the p-cycle technique for dense networks but can be higher for sparse networks. In addition, unlike p-cycle protection, CPP is inherently suitable for the wavelength continuity constraint in optical networks.
Keywords
network coding; wide area networks; CPP; SPP technique; coded path protection; coding group formation algorithm; coding- based protection scheme; coding-based protection schemes; high capacity efficiency; link failures; mesh-based protection schemes; optical networks; p-cycle techniques; real-time reconfiguration; shared path protection; signaling complexity; wide area networks; Complexity theory; Decoding; Encoding; Network topology; Optical fiber networks; Synchronization; Topology;
fLanguage
English
Publisher
ieee
Conference_Titel
Communications (ICC), 2012 IEEE International Conference on
Conference_Location
Ottawa, ON
ISSN
1550-3607
Print_ISBN
978-1-4577-2052-9
Electronic_ISBN
1550-3607
Type
conf
DOI
10.1109/ICC.2012.6363902
Filename
6363902
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