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Modelling habitat suitability for alpine rock ptarmigan (Lagopus muta helvetica) combining object-based classification of IKONOS imagery and Habitat Suitability Index modelling

机译:结合基于对象的IKONOS影像分类和栖息地适宜性指数建模,对高山雷鸟(Lagopus muta helvetica)的栖息地适宜性进行建模

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The maintenance and restoration of high-quality habitats of wildlife species in alpine ecosystems are key issues in conservation biology. The rock ptarmigan (Lagopus muta helvetica), which prefers open habitats above the treeline, is listed in Annex II of the EU Bird Directive. Large areas identified as potentially important for conservation and restricted financial resources for the implementation of conservation activities necessitate the development of tools supporting habitat monitoring and management. We developed a knowledge-based Habitat Suitability Index (HSI) model for rock ptarmigan and combined it with results of an object-based image analysis of very high resolution (VHR) satellite images (IKONOS) to create a rock ptarmigan habitat suitability map in the eastern Alps of Austria. The mechanistic habitat model contained 9 habitat variables, decisive for summer habitat use of rock ptarmigan (i.e., slope, patchiness, and land cover classes for: rocks, rocks intermixed with vegetation, scree, dwarf shrubs, dwarf pine, alpine/subnival grassland, and forest). We used Definiens Professional 5.0? software for the object-based image analyses, applying multi-resolution segmentation methods. We generated a classification hierarchy comprising the same variables used in the HSI model, each augmented by areas " in shadow", and took into account clouds, water bodies and human infrastructures. We assessed classification accuracies, applying an Error Matrix based on TTA Mask. We reached an overall classification accuracy of 0.75 and a kappa statistic value of 0.70, the latter indicating good to very good agreement. The classification results indicated that the object-oriented image classification approach using VHR data was appropriately used to create an adequate thematic map for further habitat modelling. We calculated the habitat suitability maps using MapModels. Model output was validated with ptarmigan presence-absence data, using signs (droppings) as indicators of presence. We compared presence-absence data and results of habitat suitability classification employing contingency tables and non-parametric correlations. Frequencies of sample plots with rock ptarmigan signs significantly differed between the habitat suitability classes and significantly correlated with the HSI level. Combining the mechanistic HSI model with an object-base image analysis of VHR satellite images was an effective tool for the spatially explicit assessment of habitat suitability and could be useful in regional monitoring, planning and management activities for ptarmigan.
机译:高山生态系统中野生生物物种高质量栖息地的维护和恢复是保护生物学的关键问题。雷鸟岩(Lagopus muta helvetica)更喜欢林线上方的开阔栖息地,已列入欧盟鸟类指令附件II。被确定为对养护潜在重要的大面积地区和用于开展养护活动的财政资源有限,因此必须开发支持栖息地监测和管理的工具。我们开发了基于知识的岩雷鸟栖息地适应性指数(HSI)模型,并将其与基于对象的超高分辨率(VHR)卫星图像(IKONOS)图像分析结果相结合,以在岩松鼠中创建岩雷鸟栖息地适宜性地图奥地利东部阿尔卑斯山。机械化的栖息地模型包含9个栖息地变量,这些决定因素对雷鸟雷鸟的夏季栖息地用途(即坡度,斑块和土地覆盖类别如下:岩石,混有植被的岩石,卵石,矮灌木丛,矮松,高山/亚热带草地,和森林)。我们使用了Definiens Professional 5.0吗?应用多分辨率分割方法的基于对象的图像分析软件。我们生成了一个分类层次结构,其中包括与HSI模型中使用的变量相同的变量,每个变量都由“阴影”区域扩大,并考虑了云,水体和人类基础设施。我们使用基于TTA掩码的错误矩阵评估了分类的准确性。我们的总体分类准确度达到0.75,卡伯统计值达到0.70,后者显示出良好的一致性。分类结果表明,使用VHR数据的面向对象图像分类方法已被适当地用来创建适当的专题图,以进行进一步的生境建模。我们使用MapModels计算了栖息地适宜性地图。模型输出使用雷鸟存在-缺失数据进行验证,并使用符号(粪便)作为存在的指示。我们使用列联表和非参数相关性比较了存在数据和栖息地适宜性分类结果。在栖息地适宜性类别之间,具有岩雷鸟标志的样地频率明显不同,并且与HSI水平显着相关。将机械HSI模型与VHR卫星图像的基于对象的图像分析相结合,是在空间上明确评估栖息地适宜性的有效工具,并且可能对雷鸟的区域监测,规划和管理活动有用。

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