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A HMM-based model to geolocate pelagic fish from high-resolution individual temperature and depth histories: European sea bass as a case study

机译:基于HMM的模型可根据高分辨率个体温度和深度历史对浮游鱼类进行地理定位:以欧洲鲈鱼为例

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Numerous methods have been developed to geolocate fish from data storage tags. Whereas demersal species have been tracked using tide-driven geolocation models, pelagic species which undertake extensive migrations have been mainly tracked using light-based models. Here, we present a new HMM-based model that infers pelagic fish positions from the sole use of high-resolution temperature and depth histories. A key contribution of our framework lies in model parameter inference (diffusion coefficient and noise parameters with respect to the reference geophysical fields satellite SST and temperatures derived from the MARS3D hydrodynamic model), which improves model robustness. As a case study; we consider long time series of data storage tags (DSTs) deployed on European sea bass for which individual migration tracks are reconstructed for the first time. We performed a sensitivity analysis on synthetic and real data in order to assess the robustness of the reconstructed tracks with respect to model parameters, chosen reference geophysical fields and the knowledge of fish recapture position. Model assumptions and future directions are discussed. Finally, our model opens new avenues for the reconstruction and analysis of migratory patterns of many other pelagic species in relatively contrasted geophysical environments. (C) 2015 The Authors. Published by Elsevier B.V.
机译:已经开发出许多方法来对来自数据存储标签的鱼进行地理定位。尽管使用潮汐驱动的地理定位模型跟踪了海底物种,但主要使用光基模型跟踪了进行大量迁移的远洋物种。在这里,我们提出了一种基于HMM的新模型,该模型可以仅通过使用高分辨率温度和深度历史来推断远洋鱼类的位置。我们框架的主要贡献在于模型参数推断(相对于参考地球物理场卫星SST的扩散系数和噪声参数以及从MARS3D水动力模型得出的温度),从而提高了模型的鲁棒性。作为案例研究;我们考虑了长期部署在欧洲鲈鱼上的数据存储标签(DST)的长期序列,首次针对这些数据重构了各个迁移轨迹。我们对合成数据和真实数据进行了敏感性分析,以评估相对于模型参数,所选参考地球物理场和鱼类重新捕获位置的知识,重建轨迹的稳健性。讨论了模型假设和未来方向。最后,我们的模型为在相对对比的地球物理环境中许多其他远洋物种的迁移模式的重建和分析开辟了新途径。 (C)2015作者。由Elsevier B.V.发布

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