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A hidden Markov model for reconstructing animal paths from solar geolocation loggers using templates for light intensity

机译:使用光强度模板从太阳能地理位置记录器重建动物路径的隐马尔可夫模型

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BackgroundSolar archival tags (henceforth called geolocators) are tracking devices deployed on animals to reconstruct their long-distance movements on the basis of locations inferred post hoc with reference to the geographical and seasonal variations in the timing and speeds of sunrise and sunset. The increased use of geolocators has created a need for analytical tools to produce accurate and objective estimates of migration routes that are explicit in their uncertainty about the position estimates. ResultsWe developed a hidden Markov chain model for the analysis of geolocator data. This model estimates tracks for animals with complex migratory behaviour by combining: (1) a shading-insensitive, template-fit physical model, (2) an uncorrelated random walk movement model that includes migratory and sedentary behavioural states, and (3) spatially explicit behavioural masks.The model is implemented in a specially developed open source R package FLightR. We used the particle filter (PF) algorithm to provide relatively fast model posterior computation. We illustrate our modelling approach with analysis of simulated data for stationary tags and of real tracks of both a tree swallow Tachycineta bicolor migrating along the east and a golden-crowned sparrow Zonotrichia atricapilla migrating along the west coast of North America. ConclusionsWe provide a model that increases accuracy in analyses of noisy data and movements of animals with complicated migration behaviour. It provides posterior distributions for the positions of animals, their behavioural states ( e.g. , migrating or sedentary), and distance and direction of movement.Our approach allows biologists to estimate locations of animals with complex migratory behaviour based on raw light data. This model advances the current methods for estimating migration tracks from solar geolocation, and will benefit a fast-growing number of tracking studies with this technology.
机译:背景技术太阳能档案标签(以下称为“地理定位器”)是一种跟踪设备,用于部署在动物上,以根据事后推断的位置(参照日出和日落的时间和速度的地理和季节变化)重建其长距离运动。越来越多地使用地理定位器,因此需要分析工具来生成准确而客观的移民路线估计,这些估计在其位置估计的不确定性中是明确的。结果我们开发了一个隐马尔可夫链模型来分析地理位置数据。该模型通过组合以下方面来估计具有复杂迁徙行为的动物的轨迹:(1)不依赖阴影的,适合模板的物理模型;(2)包括迁徙和久坐行为状态的不相关的随机行走运动模型;以及(3)空间上明确的行为面具。该模型在专门开发的开源R包FLightR中实现。我们使用粒子滤波(PF)算法来提供相对较快的模型后验计算。我们通过对固定标签的模拟数据和真实记录的分析结果说明了我们的建模方法,这些结果包括沿着东部迁移的燕子双色Tachycineta和沿着北美西海岸迁移的金冠麻雀Zonotrichia atricapilla。结论我们提供了一个模型,该模型可以提高分析噪声数据和具有复杂迁移行为的动物运动的准确性。它为动物的位置,其行为状态(例如迁徙或久坐)以及运动的距离和方向提供了后验分布。我们的方法使生物学家能够根据原始光数据估算具有复杂迁徙行为的动物的位置。该模型改进了当前从太阳能地理位置估计迁移轨迹的方法,并且将受益于该技术的快速增长的跟踪研究数量。

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