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How to Calibrate Historical Aerial Photographs: A Change Analysis of Naturally Dynamic Boreal Forest Landscapes

机译:如何校准历史空中照片:自然动态北方森林景观的变化分析

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摘要

Time series of repeat aerial photographs currently span decades in many regions. However, the lack of calibration data limits their use in forest change analysis. We propose an approach where we combine repeat aerial photography, tree-ring reconstructions, and Bayesian inference to study changes in forests. Using stereopairs of aerial photographs from five boreal forest landscapes, we visually interpreted canopy cover in contiguous 0.1-ha cells at three time points during 1959–2011. We used tree-ring measurements to produce calibration data for the interpretation, and to quantify the bias and error associated with the interpretation. Then, we discerned credible canopy cover changes from the interpretation error noise using Bayesian inference. We underestimated canopy cover using the historical low-quality photographs, and overestimated it using the recent high-quality photographs. Further, due to differences in tree species composition and canopy cover in the cells, the interpretation bias varied between the landscapes. In addition, the random interpretation error varied between and within the landscapes. Due to the varying bias and error, the magnitude of credibly detectable canopy cover change in the 0.1-ha cells depended on the studied time interval and landscape, ranging from −10 to −18 percentage points (decrease), and from +10 to +19 percentage points (increase). Hence, changes occurring at stand scales were detectable, but smaller scale changes could not be separated from the error noise. Besides the abrupt changes, also slow continuous canopy cover changes could be detected with the proposed approach. Given the wide availability of historical aerial photographs, the proposed approach can be applied for forest change analysis in biomes where tree-rings form, while accounting for the bias and error in aerial photo interpretation.
机译:时间序列重复空中照片目前在许多地区的数十年。然而,缺乏校准数据限制了它们在森林变化分析中的使用。我们提出了一种方法,在那里我们结合重复航空摄影,树木重建和贝叶斯推断,以研究森林的变化。使用来自五个北方森林景观的空中照片立体拍摄,在1959 - 2011年期间,我们在三个时间点在视觉上解释了连续0.1-HA细胞的冠层。我们使用树木测量来产生解释的校准数据,并量化与解释相关的偏差和错误。然后,我们通过贝叶斯推断,我们彻底辨别可靠的遮盖盖从解释误差噪声变化。我们使用历史低质量照片低估了天篷覆盖,并使用最近的高质量照片高估了它。此外,由于树种组成和电池中的树冠覆盖的差异,景观之间的解释偏差变化。此外,随机解释误差在景观之间变化。由于偏差和误差变化,可信可检测的顶篷覆盖的幅度在0.1-HA细胞中的变化依赖于研究的时间间隔和景观,范围为-10至-18个百分点(减少),以及+10到+ 19个百分点(增加)。因此,在站标尺处发生的变化是可检测的,但不能与误差噪声分离较小的缩放变化。除了突然的变化外,还可以通过所提出的方法检测慢的连续冠层覆盖变化。鉴于历史空中照片的广泛可用性,所提出的方法可以应用于树圈形式的生物群系中的森林变化分析,同时占空中照片解释中的偏差和误差。

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