首页> 外文期刊>Scandinavian Journal of Forest Research >Predicting probability of A-quality lumber of Scots pine (Pinus sylvestris L.) prior to or concurrently with logging operation
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Predicting probability of A-quality lumber of Scots pine (Pinus sylvestris L.) prior to or concurrently with logging operation

机译:用测井操作预测苏格兰松树(Pinus Sylvestris L.)的质量木材(Pinus Sylvestris L.)的概率

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Knot properties have a profound influence on the suitability of wood for many wood products leading to significant value differences between different quality grades. It would therefore be rather advantageous to maximise the volume of good quality timber attained from the logs. The objective of this study was to assess how well A-quality lumber of Scots pine derived from log tomography features can be predicted with characteristics measured prior to or concurrently with the logging operation. The study is based on field experiments and X-ray scanning of 204 stems from southern Finland in 2014. We employed mixed logistic regression techniques to model the relationship between the main stem characteristics and probability of A-quality lumber. From the tree characteristics that can be measured or detected from standing trees, the height from the ground level to the lowest dead branch was found to be the best predictor of A-quality lumber. From the characteristics that could, at least in theory, be detected and measured at the moment of harvest, early growth rate and size of tree were found to be the best combination for predicting the probability of A-class quality.
机译:结性能对木材的适用性产生了深刻的影响,这导致不同质量等级之间的显着价值差异。因此,它将最大限度地提高从日志获得的优质木材的体积相当有利。本研究的目的是评估源自测井断层扫描特征的苏格兰松树的质量毒液的质量如何,可以通过与测井操作同时或同时进行测量的特性来预测。该研究基于2014年芬兰南部204个茎的现场实验和X射线扫描。我们采用了混合逻辑回归技术来模拟主干与质量木材概率之间的关系。从可以从常设树木测量或检测的树形特征,发现从地面到最低死区分支的高度是质量木材的最佳预测因子。从最初可以在收获的时刻检测和测量的特征,发现树的早期生长速率和大小是预测课堂质量概率的最佳组合。

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