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Updated: Jan 20, 2026

Development of an Individual-Tree Basal Area Increment Model using a Linear Mixed-Effects Approach
Published on: July 3, 2020
Developing mixed-effects height-diameter model using stand and environmental factors for mixed forests in northern
Yaxiong Zheng1,2, Yongjie Yue1,2, Runhong Gao1,2
1College of Forestry, Inner Mongolia Agricultural University, Hohhot, China.
Accurately estimating tree biomass and carbon storage requires understanding the tree height-diameter relationship. Environmental factors and species diversity significantly influence this allometric scaling, necessitating sensitive models for forest management.
Area of Science:
- Forest Ecology
- Allometry
- Quantitative Silviculture
Background:
- The tree height (H)-diameter at breast height (D) allometric relationship is fundamental for forest biomass and carbon stock estimations.
- Environmental factors and species diversity are known to influence H-D relationships but are often understudied in model development.
Purpose of the Study:
- To develop an environment-sensitive nonlinear mixed-effects model for the H-D relationship in Hulunbuir mixed forests.
- To investigate the influence of stand attributes, soil properties, climate, and species diversity on H-D scaling.
Main Methods:
- Collected data from 99 forest plots in Inner Mongolia, China.
- Developed a nonlinear mixed-effects model incorporating stand-level, soil, climate, and diversity variables.
- Accounted for variations at plot and species levels using random components.
Main Results:
- Quadratic mean diameter, basal area (BAL), Simpson's diversity index (SIM), mean annual precipitation (MAP), and soil organic carbon significantly impacted the H-D relationship.
- Height growth increased with BAL and MAP, but decreased with higher SIM.
- Species traits and environmental factors were found to jointly influence H-D scaling.
Conclusions:
- The developed model provides a more accurate estimation of tree dimensions by integrating environmental sensitivity.
- Findings support adaptive forest management strategies in response to environmental changes.
- Highlights the importance of considering species diversity and environmental factors in allometric modeling.
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