Title :
Network delay tomography
Author :
Tsang, Yolanda ; Coates, Mark ; Nowak, Robert D.
Author_Institution :
Dept. of Electr. & Comput. Eng., Rice Univ., Houston, TX, USA
Abstract :
The substantial overhead of performing internal network monitoring motivates techniques for inferring spatially localized information about performance using only end-to-end measurements. In this paper, we present a novel methodology for inferring the queuing delay distributions across internal links in the network based solely on unicast, end-to-end measurements. The major contributions are: 1) we formulate a measurement procedure for estimation and localization of delay distribution based on end-to-end packet pairs; 2) we develop a simple way to compute maximum likelihood estimates (MLEs) using the expectation-maximization (EM) algorithm; 3) we develop a new estimation methodology based on recently proposed nonparametric, wavelet-based density estimation method; and 4) we optimize the computational complexity of the EM algorithm by developing a new fast Fourier transform implementation. Realistic network simulations are carried out using network-level simulator ns-2 to demonstrate the accuracy of the estimation procedure.
Keywords :
Internet; communication complexity; delay estimation; fast Fourier transforms; maximum likelihood estimation; tomography; wavelet transforms; Internet; MLEs; computational complexity; delay distribution; end-to-end measurements; end-to-end packet pairs; expectation-maximization algorithm; fast Fourier transform implementation; maximum likelihood estimates; measurement procedure; network delay; network-level simulator; queuing delay distributions; spatially localized information; tomography; wavelet-based density estimation; Computational modeling; Delay estimation; Density measurement; Distributed computing; Maximum likelihood estimation; Monitoring; Performance evaluation; Propagation delay; Tomography; Unicast;
Journal_Title :
Signal Processing, IEEE Transactions on
DOI :
10.1109/TSP.2003.814520