Model-assisted estimation of forest wood volume is approached exploiting the wall-to-wall information available from satellite data and partial information achieved from airborne laser scanning (ALS) covering a portion of the survey area. If the portion covered by ALS is selected by a probabilistic sampling scheme, two-phase estimators are considered in which the two sources of information are exploited by means of linear and non-linear models. If the portion covered by ALS is fixed because purposively selected, the two sources of information are exploited by the double-calibration estimator. The performance of the proposed strategies is checked by a simulation study from two study areas in Southern and Northern Italy.

Model-assisted estimation of forest attributes exploiting remote sensing information to handle spatial under-coverage / Franceschi S.; Chirici G.; Fattorini L.; Giannetti F.; Corona P.. - In: SPATIAL STATISTICS. - ISSN 2211-6753. - ELETTRONICO. - 41:(2021), pp. 100472-100472. [10.1016/j.spasta.2020.100472]

Model-assisted estimation of forest attributes exploiting remote sensing information to handle spatial under-coverage

Chirici G.
Writing – Original Draft Preparation
;
Giannetti F.;
2021

Abstract

Model-assisted estimation of forest wood volume is approached exploiting the wall-to-wall information available from satellite data and partial information achieved from airborne laser scanning (ALS) covering a portion of the survey area. If the portion covered by ALS is selected by a probabilistic sampling scheme, two-phase estimators are considered in which the two sources of information are exploited by means of linear and non-linear models. If the portion covered by ALS is fixed because purposively selected, the two sources of information are exploited by the double-calibration estimator. The performance of the proposed strategies is checked by a simulation study from two study areas in Southern and Northern Italy.
2021
41
100472
100472
Franceschi S.; Chirici G.; Fattorini L.; Giannetti F.; Corona P.
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Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/1231752
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