Robust parameter estimation in computer vision (1999)
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| Venue: | SIAM Reviews |
| Citations: | 104 - 10 self |
BibTeX
@ARTICLE{Stewart99robustparameter,
author = {Charles V. Stewart},
title = {Robust parameter estimation in computer vision},
journal = {SIAM Reviews},
year = {1999},
volume = {41},
pages = {513--537}
}
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Abstract
Abstract. Estimation techniques in computer vision applications must estimate accurate model parameters despite small-scale noise in the data, occasional large-scale measurement errors (outliers), and measurements from multiple populations in the same data set. Increasingly, robust estimation techniques, some borrowed from the statistics literature and others described in the computer vision literature, have been used in solving these parameter estimation problems. Ideally, these techniques should effectively ignore the outliers and measurements from other populations, treating them as outliers, when estimating the parameters of a single population. Two frequently used techniques are least-median of







