Title :
Approximating fair bandwidth allocation in core-stateless networks
Author :
Mingyu, Zhai ; Guanqun, Gu
Author_Institution :
Dept. of Comput. Sci. & Eng., Southeast Univ., Nanjing, China
Abstract :
We present queue length based fair queueing (QLFQ), a scheme to approximate fair bandwidth allocation without per-flow state. Edge routers divide each flow into a set of layers using a linear encoding scheme and insert an appropriate label into each packet header. Core routers maintain a dropping threshold according to the current queue length at each router; packets with a label greater than the threshold are dropped. We have evaluated QLFQ together with CSFQ (core-stateless fair queueing) and RFQ (rainbow fair queueing) with several different configurations and traffic sources. The simulation results show that QLFQ is able to achieve approximately fair bandwidth sharing in all of these scenarios. The performance of QLFQ is comparable to that of CSFQ, and it performs much better than RFQ. The simulations also show that in an environment with bursty traffic sources, QLFQ provides much better fairness than CSFQ.
Keywords :
Internet; bandwidth allocation; linear codes; queueing theory; telecommunication congestion control; telecommunication network routing; telecommunication traffic; Internet congestion control; bursty traffic sources; core routers; core-stateless fair queueing; core-stateless networks; edge routers; fair bandwidth allocation; label insertion; linear encoding; packet header; per-flow state; queue length based fair queueing; rainbow fair queueing; Bandwidth; Channel allocation; Computer networks; Computer science; Encoding; Intelligent networks; Laboratories; Scalability; Scheduling algorithm; Traffic control;
Conference_Titel :
Networks, 2001. Proceedings. Ninth IEEE International Conference on
Print_ISBN :
0-7695-1187-4
DOI :
10.1109/ICON.2001.962384