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Journal Article

A Taper Equation for Loblolly Pine Using Penalized Spline Regression

Mauricio Zapata-Cuartas; Bronson P Bullock; Cristian R Montes
Forest Science · Vol. 67, Issue 1 · pp. 1-13 · 2021

Abstract

Stem profile needs to be modeled with an accurate taper equation to produce reliable tree volume assessments. We propose a semiparametric method where few a priori functional form assumptions or parametric specification are required. We compared the diameter and volume predictions of a penalized spline regression (P-spline), P-spline extended with an additive dbh-class variable, and six alternative parametric taper equations including single, segmented, and variable-exponent equation forms. We used taper data from 147 loblolly pine (Pinus taeda L.) trees to fit the models and make comparisons. Here we show that the extended P-spline outperforms the parametric taper equations when used to predict outside bark diameter in the lower portion of the stem, up to 40% of the tree height where the more valuable wood products (62% of the total outside bark volume) are located. For volume, both P-spline models perform equal or better than the best parametric model, with taper calibration, which could result in possible savings on inventory costs by not requiring an additional measurement. Our findings suggest that assuming a priori fixed form in taper models imposes restrictions that fail to explain the tree form adequately compared with the proposed P-spline.

Bibliographic Information

JournalForest Science
PublisherSpringer
Publication Date2021-02-01
Publication Year2021
Volume67
Issue1
Pages1-13
Document TypeJournal Article
Print ISSN0015-749X
eISSN1938-3738
DOI10.1093/forsci/fxaa037

Access Information

NARA Access Coverage1955-01-01~Current
Journal Homepagehttps://www.springer.com/journal/44391
Publisher PageOpen Publisher Page
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