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Accounting for Connectivity Uncertainties in Predicting Roadkills: a Comparative Approach between Path Selection Functions and Habitat Suitability Models

机译:在预测Roadkills中的连接不确定性核算:路径选择功能与栖息地适用性模型之间的比较方法

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摘要

Functional connectivity modeling is increasingly used to predict the best spatial location for over- or underpasses, to mitigate road barrier effects and wildlife roadkills. This tool requires estimation of resistance surfaces, ideally modeled with movement data, which are costly to obtain. An alternative is to use occurrence data within species distribution models to infer movement resistance, although this remains a controversial issue. This study aimed both to compare the performance of resistance surfaces derived from path versus occurrence data in identifying road-crossing locations of a forest carnivore and assess the influence of movement type (daily vs. dispersal) on this performance. Resistance surfaces were built for genet (Genetta genetta) in southern Portugal using path selection functions with telemetry data, and species distribution models with occurrence data. An independent roadkill dataset was used to evaluate the performance of each connectivity model in predicting roadkill locations. The results show that resistance surfaces derived from occurrence data are as suitable in predicting roadkills as path data for daily movements. When dispersal was simulated, the performance of both resistance surfaces was equally good at predicting roadkills. Moreover, contrary to our expectations, we found no significant differences in locations of roadkill predictions between models based on daily movements and models based on dispersal. Our results suggest that species distribution models are a cost-effective tool to build functional connectivity models for road mitigation plans when movement data are not available.
机译:功能性连接建模越来越多地用于预测过度或地下通道的最佳空间位置,以减轻道路屏障效应和野生动物跑步。该工具需要估计电阻表面,理想地建模的移动数据,其昂贵以获得。替代方案是在物种分发模型中使用发生数据以推断出移动阻力,尽管这仍然是一个有争议的问题。本研究旨在比较从路径与发生数据中衍生的阻力表面的性能,识别森林肉食病的道路交叉位置,并评估运动型(每日与分散)对这种性能的影响。使用具有遥测数据的路径选择函数和具有发生数据的物种分配模型,为葡萄牙南部葡萄牙群岛(Genetta Genetta)构建了抗性表面。使用独立的Roadkill DataSet来评估每个连接模型在预测Roadkill位置的性能。结果表明,来自发生数据的阻力表面与日常运动的路径数据一样适用于预测Roadkill。当模拟分散时,阻力表面的性能同样良好地预测跑道。此外,与我们的期望相反,我们发现基于当日运动基于分散的日常运动和模型的模型之间的道路预测位置没有显着差异。我们的结果表明,物种分布模型是一种经济高效的工具,可以在不可用的移动数据时构建道路缓解计划的功能连接模型。

著录项

  • 来源
    《Environmental Management》 |2019年第3期|329-343|共15页
  • 作者单位

    Univ Evora Nucleo Mitra ICAAM Edificio Principal Apartado 94 P-7002554 Evora Portugal|Univ Evora CIBIO InBIO UE Res Ctr Biodivers & Genet Resources Evora Portugal;

    Univ Porto Res Ctr Biodivers & Genet Resource CIBIO InBIO Campus Agr Vairao P-4485661 Vairao Portugal|Univ Ft Hare Sch Biol & Environm Sci Dept Zool & Entomol Private Bag X1314 ZA-5700 Alice South Africa;

    Univ Evora CIBIO InBIO UE Res Ctr Biodivers & Genet Resources Evora Portugal;

    Univ Evora Nucleo Mitra ICAAM Edificio Principal Apartado 94 P-7002554 Evora Portugal|Univ Evora Dept Biol Conservat Biol Lab Evora Portugal;

    Univ Evora Nucleo Mitra ICAAM Edificio Principal Apartado 94 P-7002554 Evora Portugal;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Movement data; Occurrence data; Telemetry; Species distribution models; Mitigation; Dispersal period;

    机译:移动数据;发生数据;遥测;物种分布模型;缓解;分散时期;
  • 入库时间 2022-08-18 21:49:15

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