Title :
A high-capacity, scalable video-on-demand system architecture, based on a 3-stage Clos network
Author :
Liotopoulos, Fotios K.
Author_Institution :
Comput.. Technol. Inst., Athens, Greece
Abstract :
We present a high performance, scalable architecture for a video on demand (VoD) system, using a three stage Clos switch. Three stage Clos switching networks have been used in the past in multiprocessor interconnection networks as well as for ATM switching fabrics due to their attractive low latency and fault tolerance properties. The proposed VoD system mainly consists of such a three stage Clos switch, which scales to 1024 OC-3 inputs and 1024 OC-3 outputs, offering more than 132 Gbps of pure switching capacity. Video data is transported through the switching network using the ATM cell format and switching protocol, connection oriented network services and fast virtual circuit switching. Routing is centrally performed by means of intelligent nearly nonblocking control algorithms, developed for Clos networks, which increase the switch utilization and significantly reduce the blocking probability at call setup. The proposed architecture can manipulate up to several Terabytes of video data and simultaneously serve 22000 to 66000 out of a total of 262144 end users. Depending on the number of middle stage switches and the control algorithm used, the blocking probability at call setup can range between zero and 5e-4
Keywords :
asynchronous transfer mode; multistage interconnection networks; telecommunication congestion control; video on demand; video signal processing; 3-stage Clos network; ATM cell format; ATM switching fabrics; OC-3 inputs; OC-3 outputs; VoD system; blocking probability; call setup; connection oriented network services; fast virtual circuit switching; fault tolerance properties; high capacity scalable video on demand system architecture; intelligent nearly nonblocking control algorithms; low latency; middle stage switches; multiprocessor interconnection networks; scalable architecture; switching capacity; switching protocol; three stage Clos switch; three stage Clos switching networks; video data; Asynchronous transfer mode; Delay; Fabrics; Fault tolerance; Multiprocessor interconnection networks; Routing; Switches; Switching circuits; Transport protocols; Video on demand;
Conference_Titel :
Performance, Computing and Communications Conference, 1999 IEEE International
Conference_Location :
Scottsdale, AZ
Print_ISBN :
0-7803-5258-0
DOI :
10.1109/PCCC.1999.749460