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Original Articles

Estimation of tree lists from airborne laser scanning by combining single-tree and area-based methods

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Pages 1175-1192 | Published online: 30 Mar 2010
 

Abstract

Individual tree crown segmentation from airborne laser scanning (ALS) data often fails to detect all trees depending on the forest structure. This paper presents a new method to produce tree lists consistent with unbiased estimates at area level. First, a tree list with height and diameter at breast height (DBH) was estimated from individual tree crown segmentation. Second, estimates at plot level were used to create a target distribution by using a k-nearest neighbour (k-NN) approach. The number of trees per field plot was rescaled with the estimated stem volume for the field plot. Finally, the initial tree list was calibrated using the estimated target distribution. The calibration improved the estimates of the distributions of tree height (error index (EI) from 109 to 96) and DBH (EI from 99 to 93) in the tree list. Thus, the new method could be used to estimate tree lists that are consistent with unbiased estimates from regression models at field plot level.

Acknowledgements

This study was financed by the research council FORMAS through the WoodWisdom IRIS project and the company Prevista A/S. The Swedish National Property Board financed the ALS data and field data for this study.

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