探索利用中间像素可变性早期检测树皮甲虫攻击树木的潜力

Perola Olsson, Hugo Bergman, Karl Piltz
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引用次数: 0

摘要

摘要欧洲云杉树皮甲虫(Ips typographus L.)是挪威云杉(Picea abies (L.))的主要害虫。据估计,气候变化将导致未来爆发更严重的疫情。为了减少大规模暴发的风险,重要的是要有能够早期发现树皮甲虫攻击的方法,以帮助森林管理者防止种群增加,例如通过卫生砍伐。一些研究致力于利用Sentinel-2数据进行树皮甲虫攻击的早期检测,重点是利用基于像素的方法进行光谱特性和植被指数的早期检测。在这项研究中,我们探索了在不同尺寸的窗口(3×3, 4×4和5×5像素)中使用像素之间可变性变化的潜力。在2018年瑞典干旱引发树皮甲虫爆发期间,我们计算了Sentinel-2数据时间序列中四个植被指数(NDVI、NDWI、CCI和NDRS)的变异系数。结果表明,CCI是最有希望的早期检测指标,并且从7月下旬开始,当主要蜂群发生在5月的第二周时,受攻击树木的窗口像素之间的变异性增加。
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Exploring the potential to use in-between pixel variability for early detection of bark beetle attacked trees
Abstract. The European spruce bark beetle (Ips typographus L.) is a major disturbance agent in Norway spruce (Picea abies (L.) Karst) forests in Europe and it is estimated that a changing climate will result in more severe outbreaks in the future. To reduce the risk of large outbreaks it is important to have methods that enable early detection of bark beetle attacks to help forest managers to prevent population build-up, e.g by sanitary cutting. Several studies have been devoted to early detection of bark beetle attacks with Sentinel-2 data with a focus on spectral properties and vegetation indices for early detection with pixel-based methods. In this study we explore the potential to use changes in variability between pixels in windows of different sizes (3×3, 4×4 and 5×5 pixels). We compute the coefficient of variation for four vegetation indices (NDVI, NDWI, CCI and NDRS) in a time-series of Sentinel-2 data during a bark beetle outbreak in Sweden that was triggered by a drought in 2018. The results indicate that CCI is the most promising index for early detection and that the variability between pixels increase in windows with attacked trees from late July when the main swarming was the second week of May.
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