Résumé
The framework of this study is classification of high resolution SAR images over urban areas. Statistics of these images reflect the presence of strong reflectors scattered all over; therefore histograms have a heavy tail. We propose a new distribution model (Fisher distribution) to fit such probability density functions. As its moments are not defined for all parameter values, we use a second kind statistics based estimation (log-moment estimation). The purpose of this article is the validation of both estimation method and distribution model. We first prove that, in this context, log-moment method is more accurate than moment method. We also demonstrate that Fisher functions are the most accurate for man-made structures. Finally these distributions are used in a Markovian classification.
| langue originale | Anglais |
|---|---|
| Pages | 1999-2001 |
| Nombre de pages | 3 |
| état | Publié - 24 nov. 2003 |
| Evénement | 2003 IGARSS: Learning From Earth's Shapes and Colours - Toulouse, France Durée: 21 juil. 2003 → 25 juil. 2003 |
Une conférence
| Une conférence | 2003 IGARSS: Learning From Earth's Shapes and Colours |
|---|---|
| Pays/Territoire | France |
| La ville | Toulouse |
| période | 21/07/03 → 25/07/03 |
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