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Tree-Level Harvest Optimization for Structure-Based Forest Management Based on the Species Mingling Index

机译:基于物种混合指数的基于结构的森林管理树级收获优化

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This novel research investigated the use of a heuristic process to inform tree-level harvest decisions guided by the need to maximize the interspersion of tree species across a forest. In the heuristic process, a species mingling value for each tree was computed using both (1) neighbors that were simply of a different species than the reference tree and (2) neighbors that were uniquely different species from both the reference tree and other neighbors of the reference tree. The tree-level species mingling value was averaged for the stand, which was then subject to a maximization process. Constraints included residual tree density levels and minimum tree volume harvest levels. In two case studies, results suggest that the species mingling index at the stand level can be significantly increased over randomly allocated harvest decisions using the heuristic process described. In the case studies, we illustrate how this type of process can inform management decisions by suggesting the distance between residual trees of similar species given the initial stand structure and the objectives and constraints. The work represents a unique tree-level optimization approach that one day may be of value as new technologies are developed to map the location of individual trees in a timely and efficient manner.
机译:这项新颖的研究调查了启发式过程的使用,以指导树木水平的收获决策,该决策的指导是最大化树木在森林中的散布。在启发式过程中,使用(1)与参考树的物种完全不同的邻居和(2)与参考树和该树的其他邻居唯一不同的邻居,来计算每棵树的物种混合值。参考树。对林分的树级物种混合值进行平均,然后对其进行最大化处理。约束条件包括残余树木密度水平和最小树木体积收获水平。在两个案例研究中,结果表明,使用所描述的启发式方法,与随机分配的收获决策相比,可以显着提高林分一级的物种混合指数。在案例研究中,我们通过给出初始林分结构,目标和限制条件,建议相似物种的残留树木之间的距离,从而说明这种类型的过程如何为管理决策提供依据。这项工作代表了一种独特的树级优化方法,随着开发新技术以及时有效地绘制各个树的位置的一天,这一天可能很有价值。

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