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High resolution remote sensing for reducing uncertainties in urban forest carbon offset life cycle assessments

机译:高分辨率遥感技术可减少城市森林碳补偿生命周期评估中的不确定性

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Background Urban forests reduce greenhouse gas emissions by storing and sequestering considerable amounts of carbon. However, few studies have considered the local scale of urban forests to effectively evaluate their potential long-term carbon offset. The lack of precise, consistent and up-to-date forest details is challenging for long-term prognoses. Therefore, this review aims to identify uncertainties in urban forest carbon offset assessment and discuss the extent to which such uncertainties can be reduced by recent progress in high resolution remote sensing. We do this by performing an extensive literature review and a case study combining remote sensing and life cycle assessment of urban forest carbon offset in Berlin, Germany. Main text Recent progress in high resolution remote sensing and methods is adequate for delivering more precise details on the urban tree canopy, individual tree metrics, species, and age structures compared to conventional land use/cover class approaches. These area-wide consistent details can update life cycle inventories for more precise future prognoses. Additional improvements in classification accuracy can be achieved by a higher number of features derived from remote sensing data of increasing resolution, but first studies on this subject indicated that a smart selection of features already provides sufficient data that avoids redundancies and enables more efficient data processing. Our case study from Berlin could use remotely sensed individual tree species as consistent inventory of a life cycle assessment. However, a lack of growth, mortality and planting data forced us to make assumptions, therefore creating uncertainty in the long-term prognoses. Regarding temporal changes and reliable long-term estimates, more attention is required to detect changes of gradual growth, pruning and abrupt changes in tree planting and mortality. As such, precise long-term urban ecological monitoring using high resolution remote sensing should be intensified, especially due to increasing climate change effects. This is important for calibrating and validating recent prognoses of urban forest carbon offset, which have so far scarcely addressed longer timeframes. Additionally, higher resolution remote sensing of urban forest carbon estimates can improve upscaling approaches, which should be extended to reach a more precise global estimate for the first time. Conclusions Urban forest carbon offset can be made more relevant by making more standardized assessments available for science and professional practitioners, and the increasing availability of high resolution remote sensing data and the progress in data processing allows for precisely that.
机译:背景技术城市森林通过存储和隔离大量的碳来减少温室气体排放。但是,很少有研究考虑到城市森林的局部规模来有效评估其潜在的长期碳补偿。缺乏精确,一致和最新的森林详细信息对于长期预测具有挑战性。因此,本综述旨在确定城市森林碳补偿评估中的不确定性,并讨论高分辨率遥感技术的最新进展可在多大程度上减少此类不确定性。为此,我们进行了广泛的文献综述和结合遥感与德国柏林城市森林碳补偿的生命周期评估的案例研究。主要文本与常规土地利用/覆盖类别方法相比,高分辨率遥感技术和方法的最新进展足以提供有关城市树木冠层,单个树木指标,物种和年龄结构的更精确的细节。这些区域范围内一致的详细信息可以更新生命周期清单,以更准确地预测未来。通过从分辨率提高的遥感数据中获得更多的特征,可以实现分类精度的进一步提高,但是对此主题的首次研究表明,对特征的明智选择已经提供了足够的数据,从而避免了冗余并实现了更有效的数据处理。我们来自柏林的案例研究可以使用遥感的单个树种作为生命周期评估的一致清单。然而,由于缺乏生长,死亡率和播种数据,我们不得不做出假设,因此在长期预后方面存在不确定性。关于时间变化和可靠的长期估计,需要更多的注意力来检测树木生长和死亡率的逐渐增长,修剪和突变的变化。因此,特别是由于气候变化影响的增加,应加强使用高分辨率遥感的长期精确城市生态监测。这对于校准和验证城市森林碳补偿的近期预测非常重要,迄今为止,该预测几乎没有解决较长的时间框架。此外,对城市森林碳估算值的高分辨率遥感可以改善升级方法,应将其扩展以首次达到更精确的全球估算值。结论通过使科学和专业从业人员可以进行更标准化的评估,可以使城市森林碳补偿更加相关,而高分辨率遥感数据的可用性不断提高以及数据处理的进展正恰恰说明了这一点。

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