Olivia Lappin, Kristine Evans, Raymond Iglay, Mark McConnell
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Similarly, we observed a quadratic relationship with litter (β1 = 0.25479, 95% CI = 0.12, 0.39; β12 = -0.09606, 95% CI = -0.16, -0.04). We also found selection decreased linearly with increasing bare ground (β1 =-0.20938, 95% CI = -0.31, -0.11). Individual birds may require taller vegetation, greater visual obstruction, greater litter coverage, and lesser bare ground coverage for better concealment from nocturnal predators when they are roosting individually during the breeding season or are constrained by limited mobility (i.e., brooding). Understanding the vegetative composition, structure, and location of roost sites during the breeding season may provide land managers with a better understanding of the vegetative characteristics necessary during all phases of bobwhite life history. 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引用次数: 0
摘要
适当的栖息地管理可能是促成北山齿鹑种群持久性的最重要因素之一,但生物学家缺乏关于在繁殖季节单个山齿鹑如何选择栖息地的信息。因此,我们从2021年到2022年对密西西比州B. Bryan农场的繁殖季节三级栖息地选择进行了研究。与平均植被高度呈二次曲线关系,随着植被高度的增加,巢址选择增加到一定程度后略有减少(β1 = 0.14084, 95% CI = 0.05, 0.24;β12 = -0.01005, 95% ci = -0.06, 0.04)。然而,二次项中的不确定性是值得注意的。同样,我们观察到与凋落物的二次关系(β1 = 0.25479, 95% CI = 0.12, 0.39;β12 = -0.09606, 95% ci = -0.16, -0.04)。我们还发现,随着裸地的增加,选择呈线性下降(β1 =-0.20938, 95% CI = -0.31, -0.11)。个体鸟可能需要更高的植被、更大的视觉障碍、更大的凋落物覆盖和更少的光秃秃的地面覆盖,以便在繁殖季节单独栖息或受限于有限的流动性(即孵蛋)时更好地隐藏夜间捕食者。了解山齿鹑繁殖期栖息地的营养成分、结构和位置,可以帮助土地管理者更好地了解山齿鹑生活史各个阶段的营养特征。本研究结果首次提供了山齿鹑繁殖季节栖息地选择的信息,有助于更全面地了解山齿鹑的栖息地需求,提高这一受保护物种的栖息地管理和保护工作的有效性。
Northern Bobwhite ( Colinus virginianus ) breeding season roost site selection in a working agricultural landscape in Clay County, Mississippi
Appropriate habitat management may be one of the most important factors contributing to Northern Bobwhite (Colinus virginianus) population persistence, but biologists lack information on how individual bobwhite select roost sites during the breeding season. Therefore, we examined breeding season third-order roost site selection on B. Bryan Farms, Mississippi, from 2021 to 2022. We observed a quadratic relationship with average vegetation height, where roost site selection increased with increasing vegetation height to a point and then slightly decreased (β1 = 0.14084, 95% CI = 0.05, 0.24; β12 = -0.01005, 95% CI = -0.06, 0.04). However, uncertainty in the quadratic term was notable. Similarly, we observed a quadratic relationship with litter (β1 = 0.25479, 95% CI = 0.12, 0.39; β12 = -0.09606, 95% CI = -0.16, -0.04). We also found selection decreased linearly with increasing bare ground (β1 =-0.20938, 95% CI = -0.31, -0.11). Individual birds may require taller vegetation, greater visual obstruction, greater litter coverage, and lesser bare ground coverage for better concealment from nocturnal predators when they are roosting individually during the breeding season or are constrained by limited mobility (i.e., brooding). Understanding the vegetative composition, structure, and location of roost sites during the breeding season may provide land managers with a better understanding of the vegetative characteristics necessary during all phases of bobwhite life history. Our results provide the first information on bobwhite breeding season roost site selection, which will help to develop a more complete understanding of bobwhite habitat requirements and increase the effectiveness of habitat management and conservation efforts for this species of conservation concern.