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首页> 外文期刊>The Journal of Applied Ecology >Managing more than the mean: using quantile regression to identify factors related to large elk groups
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Managing more than the mean: using quantile regression to identify factors related to large elk groups

机译:管理超过均值:使用分位数回归确定相关的因素大麋鹿组

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Animal group size distributions are often right-skewed, whereby most groups are small, but most individuals occur in larger groups that may also disproportionately affect ecology and policy. In this case, examining covariates associated with upper quantiles of the group size distribution could facilitate better understanding and management of large animal groups. We studied wintering elk groups in Wyoming, where group sizes span several orders of magnitude, and issues of disease, predation and property damage are affected by larger group sizes. We used quantile regression to evaluate relationships between the group size distribution and variables of land use, habitat, elk density and wolf abundance to identify conditions important to larger elk groups. We recorded 1263 groups ranging from 1 to 1952 elk and found that across all quantiles of group size, group sizes were larger in open habitat and on private land, but the largest effect occurred between irrigated and non-irrigated land [e.g. the 90th quantile group size increased by 135 elk (95% CI=42, 227) on irrigation]. Only upper quantile group sizes were positively related to broad-scale measures of elk density and wolf abundance. For wolf abundance, this effect was greater on elk groups found in open habitats and private land than those in closed habitats or public land. If we had limited our analysis to mean or median group sizes, we would not have detected these effects.Synthesis and applications. Our analysis of elk group size distributions using quantile regression suggests that private land, irrigation, open habitat, elk density and wolf abundance can affect large elk group sizes. Thus, to manage larger groups by removal or dispersal of individuals, we recommend incentivizing hunting on private land (particularly if irrigated) during the regular and late hunting seasons, promoting tolerance of wolves on private land (if elk aggregate in these areas to avoid wolves) and creating more winter range and varied habitats. Relationships to the variables of interest also differed by quantile, highlighting the importance of using quantile regression to examine response variables more completely to uncover relationships important to conservation and management.
机译:通常动物群体大小分布右偏态,大多数组织都小,但是大多数人可能发生在大组也不成比例地影响生态和政策。与上层集团分位数大小有关分布可以促进更好的理解和管理的大型动物组。怀俄明州,集团规模跨几个订单的级,和疾病的问题,捕食财产损失影响较大的集团大小。该集团大小分布之间的关系土地利用和变量,栖息地,麋鹿密度狼与丰度识别条件重要的大麋鹿群。组从1到1952麋鹿和发现在所有分位数的组大小,组大小在开放的栖息地和私人土地上更大,但最大的效应发生在灌溉和不受灌溉的土地上(例如第90分位数集团规模增加了135头麋鹿(95% CI = 227)在灌溉)。呈正相关的大规模措施麋鹿的密度和狼。丰富,这种影响是更大的麋鹿组发现在开放的栖息地和私人土地那些在封闭的栖息地或公共土地。我们分析有限或中等组意味着什么大小,我们就不会检测到这些效果。使用分位数麋鹿群大小分布回归表明,私人土地,灌溉、开放的栖息地,麋鹿密度和狼丰度会影响大麋鹿群大小。通过取消或分散管理更大的组的个体,我们建议激励狩猎(尤其是在私人土地在常规灌溉),后期打猎季节,促进宽容的狼在私人土地(如果麋鹿总在这些领域狼)和创造更多的冬季范围和多样栖息地。分位数的兴趣也不同,突出显示利用分位数回归的重要性检查响应变量更完全发现重要的保护的关系和管理。

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