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Individual tree biomass equations and growth models sensitive to climate variables for <Emphasis Type="Italic">Larix</Emphasis> spp. in China
Authors:WeiSheng Zeng  HaiRui Duo  XiangDong Lei  XinYun Chen  XueJun Wang  Ying Pu  WenTao Zou
Institution:1.Academy of Forest Inventory and Planning,State Forestry Administration,Dongcheng District, Beijing,People’s Republic of China;2.School of Nature Conservation,Beijing Forestry University,Beijing,People’s Republic of China;3.Institute of Forest Resource Information Techniques,Chinese Academy of Forestry,Beijing,People’s Republic of China;4.Research Institute of Forestry Policy and Information,Chinese Academy of Forestry,Beijing,People’s Republic of China
Abstract:Climate change has increased the need of information on amount of forest biomass. The biomass and carbon storage for larch (Larix spp.) in large geographic regions in China were failed to be accurately estimated from current biomass equations, because they were usually based on a few sample trees on local sites, generally incompatible to volume estimation, and not additive between components and total biomass. China needs reliable biomass estimation of the important species in the whole country. This study was based on the mensuration data of above- and belowground biomass from 600 and 198 destructive sample trees of larch from four regions in China, respectively. The main purpose was to develop compatible individual tree equations on both national and regional levels for above- and belowground biomass, biomass conversion factor and root-to-shoot ratio, using the nonlinear error-in-variable simultaneous equation approach. In addition, diameter at breast height (D) and tree height (H) growth models were also developed, and effects of key climate variables on biomass variation and growth process were analyzed. The results showed that mean prediction errors (MPEs) of regional aboveground biomass models were from 3.86 to 7.52%, and total relative errors (TREs) are within ±3%; and for regional belowground biomass equations, the MPEs are from 9.91 to 28.85%, and the TREs are within ±4%. The above- and belowground biomass and D- and H-growth were significantly related to mean annual temperature and mean annual precipitation. The biomass equations and growth models developed in this paper will provide good basis for estimating and predicting biomass of larch forests in China.
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