Title :
A Factor Graph Approach to Clock Offset Estimation in Wireless Sensor Networks
Author :
Ahmad, Aitzaz ; Zennaro, Davide ; Serpedin, Erchin ; Vangelista, Lorenzo
Author_Institution :
Dept. of Electr. & Comput. Eng., Texas A&M Univ., College Station, TX, USA
fDate :
7/1/2012 12:00:00 AM
Abstract :
The problem of clock offset estimation in a two-way timing message exchange regime is considered when the likelihood function of the observation time stamps is Gaussian, exponential, or log-normally distributed. A parameterized solution to the maximum likelihood (ML) estimation of clock offset is analytically obtained, which differs from the earlier approaches where the likelihood function is maximized graphically. In order to capture the imperfections in node oscillators, which may render a time-varying nature to the clock offset, a novel Bayesian approach to the clock offset estimation is proposed by using a factor graph representation of the posterior density. Message passing using the max-product algorithm yields an exact expression for the Bayesian inference problem. Several lower bounds on the variance of an estimator are derived for arbitrary exponential family distributed likelihood functions which, while serving as stepping stones to benchmark the performance of the proposed clock offset estimators, can be useful in their own right in classical as well Bayesian parameter estimation theory. To corroborate the theoretical findings, extensive simulation results are discussed for classical as well as Bayesian estimators in various scenarios. It is observed that the performance of the proposed estimators is fairly close to the fundamental limits established by the lower bounds.
Keywords :
Gaussian distribution; exponential distribution; graph theory; log normal distribution; maximum likelihood estimation; message passing; synchronisation; wireless sensor networks; Bayesian approach; Bayesian inference problem; Bayesian parameter estimation theory; Gaussian distribution; ML estimation; arbitrary exponential family-distributed likelihood function; clock offset estimation; factor graph approach; log-normal distribution; max-product algorithm; maximum likelihood estimation; message passing; node oscillators; observation time stamps; time-varying nature; two-way timing message exchange regime; wireless sensor networks; Bayesian methods; Clocks; Delay; Maximum likelihood estimation; Synchronization; Clock synchronization; estimation bounds; factor graphs; message passing; wireless sensor networks (WSNs);
Journal_Title :
Information Theory, IEEE Transactions on
DOI :
10.1109/TIT.2012.2194134