Review of the design of data center network for cloud computing

被引:0
作者
Wang B. [1 ]
Su J. [1 ,2 ]
Chen L. [1 ]
机构
[1] College of Computer, National University of Defense Technology, Changsha
[2] Science and Technology on Parallel and Distributed Processing Laboratory, National University of Defense Technology, Changsha
来源
Jisuanji Yanjiu yu Fazhan/Computer Research and Development | 2016年 / 53卷 / 09期
基金
中国国家自然科学基金;
关键词
Cloud computing; Data center network; Mobility; Network architecture; Virtualization;
D O I
10.7544/issn1000-1239.2016.20150962
中图分类号
学科分类号
摘要
Under the influence of the development of cloud computing, the data center network is going through tremendous changes, which are reflected not only in the improvement of network size, bandwidth, abundant links, scalability, agility and the cutting down of the cost, but also in other aspects, such as the support for the VMotion dynamically, the network virtualization etc. On the basis of the main challenges of data center network for cloud computing, the paper firstly describes the network architecture of data center for cloud computing in two different aspects, which regards switches and servers as the forwarding center respectively. Next, from the perspective of the flexible deployment of network resources, the paper deeply analyzes the related proposals and key technologies concerning the VMotion dynamically in data center for cloud computing. Further, in order to summarize the application of the network virtualization in data center for cloud computing in detail, the paper mainly analyzes a variety of designs for the virtual network architecture, which includes two different types: the scalability type and the performance guaranteed type. Finally, taking the rapid development of advanced technologies into account, the paper puts forward several points of future prediction in terms of the development of data center network for cloud computing. © 2016, Science Press. All right reserved.
引用
收藏
页码:2085 / 2106
页数:21
相关论文
共 66 条
[11]  
Gary B., Facebook fabric networking deconstructed, (2014)
[12]  
Curtis A.R., Carpenter T., Elsheikh M., Et al., Rewire: An optimization-based framework for unstructured data center network design, Proc of IEEE INFOCOM'12, pp. 1116-1124, (2012)
[13]  
Mudigonda J., Yalagandula P., Al-Fares M., Et al., SPAIN: COTS data-center Ethernet for multipathing over arbitrary topologies, Proc of NSDI'10, pp. 265-280, (2010)
[14]  
Chen K., Guo C., Wu H., Et al., Generic and automatic address configuration for data center networks, ACM SIGCOMM Computer Communication Review, 41, 4, pp. 39-50, (2011)
[15]  
Halperin D., Kandula S., Padhye J., Et al., Augmenting data center networks with multi-gigabit wireless links, Proc of the 2011 ACM Conf on SIGCOMM, pp. 38-49, (2011)
[16]  
Zhang W., Zhou X., Yang L., Et al., 3D beaming for wireless data centers, Proc of the 10th ACM Workshop on Hot Topics in Networks, pp. 1-6, (2011)
[17]  
Katayama Y., Takano K., Kohda Y., Et al., Wireless data center networking with steered-beam mmwave links, Proc of the IEEE Wireless Communications and Networking Conf., pp. 2179-2184, (2011)
[18]  
Hamedazimi N., Gupta H., Sekar V., Et al., Patch panels in the sky: A case for free-space optics in data centers, Proc of the 12th ACM Workshop on Hot Topics in Networks, pp. 1-7, (2013)
[19]  
Kandula S., Padhye J., Bahl P., Flyways to de-congest data center networks, Proc of the ACM Workshop, pp. 32-41, (2009)
[20]  
Hamedazimi N., Qazi Z., Gupta H., Et al., FireFly: A reconfigurable wireless data center fabric using free-space optics, Proc of the 2014 ACM Conf on SIGCOMM, pp. 319-330, (2014)