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首页> 外文期刊>Geoscientific Model Development >Implementing spatially explicit wind-driven seed and pollen dispersal in the individual-based larch simulation model: LAVESI-WIND 1.0
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Implementing spatially explicit wind-driven seed and pollen dispersal in the individual-based larch simulation model: LAVESI-WIND 1.0

机译:在基于个体的落叶松模拟模型中实现空间明确的风驱动种子和花粉扩散:LAVESI-WIND 1.0

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It is of major interest to estimate the feedback of arctic ecosystems to the global warming we expect in upcoming decades. The speed of this response is driven by the potential of species to migrate, tracking their climate optimum. For this, sessile plants have to produce and disperse seeds to newly available habitats, and pollination of ovules is needed for the seeds to be viable. These two processes are also the vectors that pass genetic information through a population. A restricted exchange among subpopulations might lead to a maladapted population due to diversity losses. Hence, a realistic implementation of these dispersal processes into a simulation model would allow an assessment of the importance of diversity for the migration of plant species in various environments worldwide. To date, dynamic global vegetation models have been optimized for a global application and overestimate the migration of biome shifts in currently warming temperatures. We hypothesize that this is caused by neglecting important fine-scale processes, which are necessary to estimate realistic vegetation trajectories. Recently, we built and parameterized a simulation model LAVESI for larches that dominate the latitudinal treelines in the northernmost areas of Siberia. In this study, we updated the vegetation model by including seed and pollen dispersal driven by wind speed and direction. The seed dispersal is modelled as a ballistic flight, and for the pollination of ovules of seeds produced, we implemented a wind-determined and distance-dependent probability distribution function using a von Mises distribution to select the pollen donor. A local sensitivity analysis of both processes supported the robustness of the model's results to the parameterization, although it highlighted the importance of recruitment and seed dispersal traits for migration rates. This individual-based and spatially explicit implementation of both dispersal processes makes it easily feasible to inherit plant traits and genetic information to assess the impact of migration processes on the genetics. Finally, we suggest how the final model can be applied to substantially help in unveiling the important drivers of migration dynamics and, with this, guide the improvement of recent global vegetation models.
机译:估计北极生态系统对我们预计未来几十年的全球变暖的反馈非常重要。这种反应的速度受物种迁徙的潜力驱动,追踪其气候最佳状态。为此,无柄植物必须产生种子并将其分散到新近可利用的生境中,并且需要使胚珠授粉才能使种子存活。这两个过程也是通过群体传递遗传信息的载体。由于多样性的丧失,亚种群之间的有限交换可能导致种群适应不良。因此,将这些分散过程实际应用到模拟模型中,将可以评估多样性对于全世界各种环境中植物物种迁移的重要性。迄今为止,动态全球植被模型已针对全球应用进行了优化,并高估了当前变暖温度下生物群落变化的迁移。我们假设这是由于忽略了重要的精细过程,而这些过程对于估算现实的植被轨迹是必需的。最近,我们为西伯利亚最北端的纬度林线占主导的幼虫建立了一个模拟模型LAVESI并对其进行了参数化。在这项研究中,我们通过包括受风速和风向驱动的种子和花粉扩散来更新植被模型。种子的扩散被模拟为弹道飞行,并且对于所产生种子的胚珠的授粉,我们使用冯·米塞斯分布来实现由风决定且依赖于距离的概率分布函数来选择花粉供体。对这两个过程的局部敏感性分析支持了模型结果对参数化的鲁棒性,尽管它强调了招募和种子传播性状对于迁移率的重要性。基于个体和空间的两种扩散过程的实现使得继承植物性状和遗传信息以评估迁移过程对遗传学的影响变得容易可行。最后,我们建议如何使用最终模型来实质性地揭示移民动态的重要驱动因素,并以此指导最近全球植被模型的改进。

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