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从帧结构浅谈OTN网络的带宽颗粒度
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作者 冯建新 《企业技术开发》 2008年第6期24-25,共2页
文章从OTN的特殊帧结构出发,分析了它的带宽颗粒度,并论述了OTN网络的带宽利用率高、接入形式简单、应用灵活的特点。
关键词 OTN帧结构 带宽粒度 网络
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光网络中支持多粒度的子通路保护算法 被引量:5
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作者 何荣希 王晟 李乐民 《电子科技大学学报》 EI CAS CSCD 北大核心 2003年第3期245-250,共6页
提出了一种支持多粒度业务的自适应子通路保护算法,该算法根据网络状态动态调整链路权值,选择一条最短路作为工作通路,然后将工作通路分为互不重叠的n个子通路(每个子通路经过的链路数为m),再分别找出各自基于共享风险链路组限制的保护... 提出了一种支持多粒度业务的自适应子通路保护算法,该算法根据网络状态动态调整链路权值,选择一条最短路作为工作通路,然后将工作通路分为互不重叠的n个子通路(每个子通路经过的链路数为m),再分别找出各自基于共享风险链路组限制的保护通路。该算法既可保证业务连接的可靠性要求,同时又允许网络管理者根据一定优化策略调整m值,从而能在资源利用率和恢复时间之间进行折中,最后给出了仿真结果。 展开更多
关键词 波分复用 粒度带宽 子通路保护 自适应 共事风险绝路组
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光突发交换中的路由技术 被引量:2
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作者 仇英辉 纪越峰 徐大雄 《电信科学》 北大核心 2004年第1期21-24,共4页
光突发交换是面向下一代因特网的光交换模式,是光电路交换和光分组交换的有效折衷方案,避免了各自的缺点。它使用的带宽粒度介于光电路交换和光分组交换之间,比光电路交换灵活,带宽利用率高,比光分组交换易于实现,是很有发展前途的光交... 光突发交换是面向下一代因特网的光交换模式,是光电路交换和光分组交换的有效折衷方案,避免了各自的缺点。它使用的带宽粒度介于光电路交换和光分组交换之间,比光电路交换灵活,带宽利用率高,比光分组交换易于实现,是很有发展前途的光交换技术。路由技术在光突发交换中起重要作用,在很大程度上影响着光突发交换网络的性能。本文首先介绍了光突发交换技术的原理,然后分析了光突发交换技术的现状及存在的问题,最后探讨了光突发交换中的路由技术及其发展。 展开更多
关键词 光突发交换 路由技术 带宽粒度 OBS 光交换矩阵 RLD RFD
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Efficient and flexible memory architecture to alleviate data and context bandwidth bottlenecks of coarse-grained reconfigurable arrays 被引量:2
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作者 YANG Chen LIU Lei Bo +1 位作者 YIN Shou Yi WEI Shao Jun 《Science China(Physics,Mechanics & Astronomy)》 SCIE EI CAS 2014年第12期2214-2227,共14页
The computational capability of a coarse-grained reconfigurable array(CGRA)can be significantly restrained due to data and context memory bandwidth bottlenecks.Traditionally,two methods have been used to resolve this ... The computational capability of a coarse-grained reconfigurable array(CGRA)can be significantly restrained due to data and context memory bandwidth bottlenecks.Traditionally,two methods have been used to resolve this problem.One method loads the context into the CGRA at run time.This method occupies very small on-chip memory but induces very large latency,which leads to low computational efficiency.The other method adopts a multi-context structure.This method loads the context into the on-chip context memory at the boot phase.Broadcasting the pointer of a set of contexts changes the hardware configuration on a cycle-by-cycle basis.The size of the context memory induces a large area overhead in multi-context structures,which results in major restrictions on application complexity.This paper proposes a Predictable Context Cache(PCC)architecture to address the above context issues by buffering the context inside a CGRA.In this architecture,context is dynamically transferred into the CGRA.Utilizing a PCC significantly reduces the on-chip context memory and the complexity of the applications running on the CGRA is no longer restricted by the size of the on-chip context memory.Data preloading is the most frequently used approach to hide input data latency and speed up the data transmission process for the data bandwidth issue.Rather than fundamentally reducing the amount of input data,the transferred data and computations are processed in parallel.However,the data preloading method cannot work efficiently because data transmission becomes the critical path as the reconfigurable array scale increases.This paper also presents a Hierarchical Data Memory(HDM)architecture as a solution to the efficiency problem.In this architecture,high internal bandwidth is provided to buffer both reused input data and intermediate data.The HDM architecture relieves the external memory from the data transfer burden so that the performance is significantly improved.As a result of using PCC and HDM,experiments running mainstream video decoding programs achieved performance improvements of 13.57%–19.48%when there was a reasonable memory size.Therefore,1080p@35.7fps for H.264high profile video decoding can be achieved on PCC and HDM architecture when utilizing a 200 MHz working frequency.Further,the size of the on-chip context memory no longer restricted complex applications,which were efficiently executed on the PCC and HDM architecture. 展开更多
关键词 memory architecture CGRA context cache cache prefetch data memory
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