DocumentCode :
723480
Title :
iPRP: Parallel redundancy protocol for IP networks
Author :
Popovic, Miroslav ; Mohiuddin, Maaz ; Tomozei, Dan-Cristian ; Le Boudec, Jean-Yves
Author_Institution :
I&C-LCA2, EPFL, Lausanne, Switzerland
fYear :
2015
fDate :
27-29 May 2015
Firstpage :
1
Lastpage :
4
Abstract :
Reliable packet delivery within stringent delay constraints is of primal importance to industrial processes with hard real-time constraints, such as electrical grid monitoring. Because retransmission and coding techniques counteract the delay requirements, reliability is achieved through replication over multiple fail-independent paths. Existing solutions such as parallel redundancy protocol (PRP) replicate all packets at the MAC layer over parallel paths. PRP works best in local area networks, e.g., sub-station networks. However, it is not viable for IP layer wide area networks which are a part of emerging smart grids. Such a limitation on scalability, coupled with lack of security, and diagnostic inability, renders it unsuitable for reliable data delivery in smart grids. To address this issue, we present a transport-layer design: IP parallel redundancy protocol (iPRP). Designing iPRP poses non-trivial challenges in the form of selective packet replication, soft-state and multicast support. Besides unicast, iPRP supports multicast, which is widely using in smart grid networks. It duplicates only time-critical UDP traffic. iPRP only requires a simple software installation on the end-devices. No other modification to the existing monitoring application, end-device operating system or intermediate network devices is needed. iPRP has a set of diagnostic tools for network debugging. With our implementation of iPRP in Linux, we show that iPRP supports multiple flows with minimal processing and delay overhead. It is being installed in our campus smart grid network and is publicly available.
Keywords :
IP networks; Linux; access protocols; computer network performance evaluation; local area networks; smart power grids; substations; telecommunication network reliability; transport protocols; IP networks; IP parallel redundancy protocol; Linux; MAC layer; campus smart grid network; coding technique; delay overhead; delay requirements; device operating system; diagnostic inability; electrical grid monitoring; hard real-time constraints; iPRP; industrial processes; intermediate network devices; local area networks; minimal processing; multicast support; multiple fail-independent paths; network debugging; packet delivery reliability; retransmission technique; security lackness; selective packet replication; soft-state; software installation; stringent delay constraints; substation networks; time-critical UDP traffic; transport-layer design; Delays; IP networks; Monitoring; Ports (Computers); Receivers; Redundancy; Smart grids;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Factory Communication Systems (WFCS), 2015 IEEE World Conference on
Conference_Location :
Palma de Mallorca
Type :
conf
DOI :
10.1109/WFCS.2015.7160549
Filename :
7160549
Link To Document :
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