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Sensitivity of landscape pattern indices to input data characteristics on real landscapes: implications for their use in natural disturbance emulation

机译:景观格局指数对真实景观输入数据特征的敏感性:其在自然干扰模拟中的应用意义

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Resource management strategies have begun to adopt natural landscape disturbance emulation as a means of minimizing risk to ecosystem integrity. Detailed understanding of the disturbance regime and the associated spatial landscape patterns are required to provide a "natural" baseline for comparison with the results of emulation strategies. Landscape pattern indices provide a useful tool to quantify spatial pattern for developing these strategies and evaluating their success. Despite an abundance of indices and tools to calculate these, practical knowledge of interpretation is rare. Quantifying changes in landscape pattern indices and the meaning of these changes is confounded by index sensitivity to input data characteristics such as spatial extent, spatial resolution, and thematic resolution. Sensitivity has been examined for simulated landscapes but rarely using real data for large areas as real landscapes are more difficult to manipulate systematically than simulated data. While simulated data offer a control, they do not provide an accurate portrayal of reality for practical applications. Our goal was to test the sensitivity of a suite of landscape pattern indices useful for disturbance emulation strategy development and evaluation to spatial extent, spatial resolution, and thematic resolution using current land cover data for a case study of the managed forest of Ontario, Canada. We also examined how sensitivity varies spatially across the study area. We used Landsat TM-based land cover data (> 45.5 million ha), controlling spatial extent (2,500 to 2,560,000 ha), spatial resolution (1 to 16 ha), and thematic resolution (2 to 26 classes). For each index we tested a hypothesis of insensitivity to changes in each input data characteristic using a combination of ANOVA and regression and compared our results with previous studies. Of the 18 indices studied, significant (p < 0.01) effects were found for 17 indices with changes in spatial extent, 13 indices with changes in spatial resolution and 18 indices with changes in thematic resolution. A significant (p < 0.01) linear trend accounted for the majority of the variance for all of the significant relationships identified. Most of the mean index responses were consistent with those interpreted from previous studies of simulated and real landscapes; however, sensitivity varied greatly among indices and over space. We suggest that variation in sensitivity to input data characteristics among indices and over space must be explicitly incorporated in the design of future natural disturbance emulation efforts.
机译:资源管理策略已开始采用自然景观干扰模拟作为将对生态系统完整性的风险降至最低的方法。需要对干扰状况和相关的空间景观格局有详细的了解,以提供一个“自然的”基线,以便与仿真策略的结果进行比较。景观格局指数提供了一种有用的工具,可以量化空间格局,以制定这些策略并评估其成功。尽管有大量的指标和计算这些指标的工具,但口译的实践知识却很少。量化景观格局指数的变化以及这些变化的含义,是因为对输入数据特征(例如空间范围,空间分辨率和主题分辨率)的敏感性敏感。已经对模拟景观进行了敏感性分析,但是很少使用大面积的真实数据,因为与模拟数据相比,真实景观更难以系统地进行操纵。尽管模拟数据提供了控制,但它们不能为实际应用提供准确的现实描述。我们的目标是,以加拿大安大略省受管理森林为例,测试一套景观格局指数的敏感性,这些指数可用于干扰模拟策略的开发和评估,包括空间范围,空间分辨率和主题分辨率,使用当前的土地覆盖数据。我们还研究了整个研究区域的敏感性在空间上如何变化。我们使用了基于Landsat TM的土地覆盖数据(> 4,550万公顷),控制了空间范围(2,500至2,560,000公顷),空间分辨率(1至16公顷)和主题分辨率(2至26类)。对于每个指数,我们使用方差分析和回归测试了对每个输入数据特征变化不敏感的假设,并将我们的结果与以前的研究进行了比较。在所研究的18个指标中,发现17个具有空间范围变化的指标,13个具有空间分辨率变化的指标和18个具有主题分辨率变化的指标的显着(p <0.01)效果。对于所有已确定的显着关系,显着(p <0.01)线性趋势占方差的大部分。大多数平均指数响应与先前对模拟和真实景观研究的解释一致。但是,灵敏度在指标之间和整个空间上差异很大。我们建议,在未来的自然干扰仿真工作的设计中,必须明确纳入索引之间和整个空间对输入数据特征的敏感性差异。

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