期刊文献+

Spectral resource defragmentation based on PCE in flexible bandwidth optical networks

Spectral resource defragmentation based on PCE in flexible bandwidth optical networks
原文传递
导出
摘要 The granularity of the flexible bandwidth optical network is the spectral slots, which is much smaller than that of the wavelength switch optical network. For the dynamic clients' connections setup and tear down processes, it will give rise to fragmentation of spectral resources. It is the decline in the probability of finding sufficient contiguous spectrum for new connections that result in the fragmentation of spectral resource. To be more specific, these spectra may be unavailable and waste. In this case, the severe waste of the spectrum will lead to low efficiency in spectral utilization and will not adapt to large capacity requirements of transmission in the future. Because path computation element (PCE) framework has the characteristics of the central disposal and deployment of the spectrum resource, we construct the spectral resource allocation scenario based on PCE framework in the flexible bandwidth optical network to use spectrum resource effectively Based on the principle of the generation of the fragmentation, we put forward a spectrum resource defragmentation algorithm to consolidate the available spectrum for clients' connections. The simulation results indicate that this algorithm is able to reduce fragmentation of network, improve the continuity of spectral resource, reduce the blocking rate of services in the network and improve the spectral efficiency significantly. The granularity of the flexible bandwidth optical network is the spectral slots, which is much smaller than that of the wavelength switch optical network. For the dynamic clients' connections setup and tear down processes, it will give rise to fragmentation of spectral resources. It is the decline in the probability of finding sufficient contiguous spectrum for new connections that result in the fragmentation of spectral resource. To be more specific, these spectra may be unavailable and waste. In this case, the severe waste of the spectrum will lead to low efficiency in spectral utilization and will not adapt to large capacity requirements of transmission in the future. Because path computation element (PCE) framework has the characteristics of the central disposal and deployment of the spectrum resource, we construct the spectral resource allocation scenario based on PCE framework in the flexible bandwidth optical network to use spectrum resource effectively Based on the principle of the generation of the fragmentation, we put forward a spectrum resource defragmentation algorithm to consolidate the available spectrum for clients' connections. The simulation results indicate that this algorithm is able to reduce fragmentation of network, improve the continuity of spectral resource, reduce the blocking rate of services in the network and improve the spectral efficiency significantly.
出处 《The Journal of China Universities of Posts and Telecommunications》 EI CSCD 2012年第6期105-112,共8页 中国邮电高校学报(英文版)
基金 supported by the National Bascic Research Program of China(2010CB328204) the National Natural Science Foundation of China(60932004) the Hi-Tech Research and Development Program of China(2009AA01Z255) RFDP Project(20090005110013) the Fundamental Research Funds for the Central Universities(2011RC0406)
关键词 flexible bandwidth optical network PCE framework spectral fragmentation spectral resource defragmentation flexible bandwidth optical network, PCE framework, spectral fragmentation, spectral resource defragmentation
  • 相关文献

参考文献8

  • 1Jinno M, Takara H, Kozicki B, et al. Spectrum-efficient and scalable elastic optical path network: architecture, benefits, and enabling technologies. IEEE Communications Magazine, 2009, 47(11): 66-73.
  • 2Patel A N, Ji P N, Jue J P, et al. Routing, wavelength assignment, and spectrum allocation in transparent flexible optical WDM (FWDM) networks. Proceedings of the OSA Photonics in Switching (PS'I 0), Jul 25-28, 2010, Monterey, CA, USA. 2010.
  • 3Patel A N, Ji P N, Jue J P, et al. Defragmentation of transparent flexible optical WDM (FWDM) networks. Proceedings of the IEEE/OSA Optical Fiber Conference (OFC'I 1), Mar 6, 2011, Los Angeles, CA,USA. 2011.
  • 4Christodoulopoulos K, Tomkos I, Varvarigos E A. Routing and spectrum allocation in OFDM-based optical networks with elastic bandwidth allocation. Proceedings of the IEEE Global Telecommunications Conference (GLOBECOM'10), Dec 6-10, 2010, Miami, FL, USA. Piscatawav, NJ, USA: IEEE, 2010: 5p.
  • 5Christodoulopoulos K, Tornkos I, Varvarigos E A. Elastic bandwidth allocation in flexible OFDM-based optical networks. Journal of Lightwave Technology, 2011, 29(9): 1354-1366.
  • 6Wang Y, Cao X J, Pan Y. A study of the routing and spectrum allocation in spectrum-sliced elastic optical path networks. Proceedings of the 30th Annual Joint Conference of the IEEE Computer and Communications (INFOCOM' 11), Apr 10-15, 2011, Shanghai, China. Piscataway, N J, USA: IEEE, 2011:1503-1511.
  • 7Yu X S, Zhang J, Zhao Y L, et al. Spectrum compactness based defragmentation in flexible bandwidth optical networks. Proceedings of the Optical Fiber Communication/National Fiber Optic Engineers Conference (OFC/NFOEC' 12), Mar 4-8, 2012, Los Angeles, CA, USA. Piscataway, NJ USA: IEEE, 2011: 3p.
  • 8Yin Y W, Wen K, Geisler D J, et al. Dynamic on-demand defi'agmentation in flexible bandwidth elastic optical networks. Optics Express, 2012, 20(2): 1798-1804.

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部