By Ulf Grenander
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Blocking B prob bability vs. 9 42 Tablee 7. Blocking probability vs. 6 322 Ameneh A Daeinnabi, Akbar Ghaffarpour G Raahbar and Waiil Mardini The SSPR algorithm hass very small bllocking probabbility at low trraffic loads (seee Table 7) beecause SSPR can afford moore flexible baackup capacityy sharing. How wever, the com mplexity of SSPR grows up u if the numbber of un-oveerlapped workking segments on a primaryy light-tree inncrease. Underr the SLPP alggorithm, the network n nodes do not use anny wavelength converters inn order to redu uce the cost of o implementaations.
Note thhat multicast group g size is defined d as the maximum perrcentage of thhe network nod des that couldd be destinationn nodes . Fiigure 15. Compparison of blockking probability between MPSP P and SSMP whhen the numberr of w wavelengths is 64 4 and session siize is 10. B prob bability vs. sesssion size wheen W=32, load d is 80 Erlanggs and Table 8. 16 Protection of Unicast and Multicast Traffic in WDM Mesh Networks 33 Table 9. Blocking probability vs. 26 Table 10. Blocking probability vs.
16 Protection of Unicast and Multicast Traffic in WDM Mesh Networks 33 Table 9. Blocking probability vs. 26 Table 10. Blocking probability vs. 05 CONCLUSION Network survivability is an important concern for WDM optical networks. In this chapter, we have reviewed the protection schemes that are used to survive link failures in optical networks supporting the unicast and multicast traffic. According to our study, we have found out that the best schemes for unicast traffic could be the techniques that are based on the dedicated protection, if the capacity is not of our main concern because these schemes have low recovery time and network complexity.
Abstract Inference (Probability & Mathematical Statistics) by Ulf Grenander