DocumentCode :
1503927
Title :
Trajectory sampling for direct traffic observation
Author :
Duffield, N.G. ; Grossglauser, Matthias
Author_Institution :
AT&T Labs-Res., Florham Park, NJ, USA
Volume :
9
Issue :
3
fYear :
2001
fDate :
6/1/2001 12:00:00 AM
Firstpage :
280
Lastpage :
292
Abstract :
Traffic measurement is a critical component for the control and engineering of communication networks. We argue that traffic measurement should make it possible to obtain the spatial flow of traffic through the domain, i.e., the paths followed by packets between any ingress and egress point of the domain. Most resource allocation and capacity planning tasks can benefit from such information. Also, traffic measurements should be obtained without a routing model and without knowledge of network state. This allows the traffic measurement process to he resilient to network failures and state uncertainty. We propose a method that allows the direct inference of traffic flows through a domain by observing the trajectories of a subset of all packets traversing the network. The key advantages of the method are that (1) it does not rely on routing state; (2) its implementation cost is small; and (3) the measurement reporting traffic is modest and can be controlled precisely. The key idea of the method is to sample packets based on a hash function computed over the packet content. Using the same hash function will yield the same sample set of packets in the entire domain, and enables us to reconstruct packet trajectories
Keywords :
Internet; computer network management; cryptography; packet switching; signal reconstruction; signal sampling; telecommunication traffic; transport protocols; IP networks; Internet; QoS; capacity planning; communication networks control; communication networks engineering; direct traffic observation; hash function; implementation cost; measurement reporting traffic; network failures; packet content; packet sampling; packet trajectories reconstruction; packet transmission; quality of service; resource allocation; spatial traffic flow; state uncertainty; traffic measurement; trajectory sampling; Capacity planning; Communication networks; Communication system traffic control; Costs; Fluid flow measurement; Resource management; Routing; Sampling methods; Telecommunication traffic; Traffic control;
fLanguage :
English
Journal_Title :
Networking, IEEE/ACM Transactions on
Publisher :
ieee
ISSN :
1063-6692
Type :
jour
DOI :
10.1109/90.929851
Filename :
929851
Link To Document :
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