Title :
Optical flow-switched transport layer protocol design and performance analysis
Author :
Henna Huang ; Chan, Vincent W. S.
Author_Institution :
Massachusetts Inst. of Technol., Cambridge, MA, USA
Abstract :
We explore transport layer protocol design for a scheduled optical flow-switched network. The design guarantees the reliable delivery of large data files (“elephant” flows) over an all-optical end-to-end flow-switched network that can be modeled as a burst-error channel. We describe a good first-order channel model for optical flow-switched networks with optical amplifier transients. First, we show that transmission control protocol (TCP) performs poorly in such networks. Specifically, flow control and fair resource allocation with windowing in TCPare unnecessary since they are done via scheduling. Instead, we propose a transport protocol that uses file segmentation and reassembly, interleaving with forward error correction, and frame retransmission to combat burst errors. We analyze the protocol performance using standard results from information theory and probability theory and optimize throughput efficiency and delay, find practical frame lengths, and optimize flow durations.
Keywords :
channel allocation; file organisation; forward error correction; interleaved codes; optical design techniques; optical fibre amplifiers; optical fibre networks; optical switches; probability; telecommunication congestion control; telecommunication network reliability; transport protocols; all-optical end-to-end flow-switched network; burst-error channel; data files; file reassembly; file segmentation; first-order channel model; flow control; forward error correction; frame length; frame retransmission; information theory; optical amplifier transients; optical flow-switched transport layer protocol design; optimize flow duration; performance analysis; probability theory; resource allocation; scheduled optical flow-switched network; transmission control protocol; windowing method; Adaptive optics; Delays; Forward error correction; Optical amplifiers; Protocols; Throughput; Transient analysis; Design and performance analysis; Network architecture; Optical flow switching; Transport layer protocol;
Journal_Title :
Optical Communications and Networking, IEEE/OSA Journal of
DOI :
10.1364/JOCN.6.000801