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Representing Local Dynamics of Water Resource Systems through a Data-Driven Emulation Approach

机译:通过数据驱动的仿真方法表示水资源系统的局部动态

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Water resource systems are under enormous pressures globally. To diagnose and quantify potential vulnerabilities, effective modeling tools are required to represent the interactions between water availability, water demands and their natural and anthropogenic drivers across a range of spatial and temporal scales. Despite significant progresses, system models often undergo various level of simplifications. For instance, several variables are represented within models as prescribed values; and therefore, their links with their natural and anthropogenic drives are not represented. Here we propose a data-driven emulation approach to represent the local dynamics of water resource systems through advising a set of interconnected functional mappings that not only learn and replicate input-output relationships of an existing model, but also link the prescribed variables to their corresponding natural and anthropogenic drivers. To demonstrate the practical utility of the suggested methodology, we consider representing the local dynamics at the Oldman Reservoir, which is a critical infrastructure for effective regional water resource management in southern Alberta, Canada. Using a rigorous setup/falsification procedure, we develop a set of alternative emulators to describe the local dynamics of irrigation demand and withdrawals along with reservoir release and evaporation. The non-falsified emulators are then used to address the impact of changing climate on the local irrigation deficit. Our analysis shows that local irrigation deficit is more sensitive to changes in local temperature than those of local precipitation. In addition, the rate of change in irrigation deficit is much more significant under a unit degree of warming than a unit degree of cooling. Such local understandings are not attainable by the existing operational model.
机译:全球水资源系统面临巨大压力。为了诊断和量化潜在的漏洞,需要使用有效的建模工具来表示各种时空范围内的可用水,需水量及其自然和人为驱动因素之间的相互作用。尽管取得了重大进展,但系统模型通常会经历各种简化程度。例如,几个变量在模型中表示为规定值。因此,它们与自然和人为驱动力之间的联系并未得到体现。在这里,我们提出了一种数据驱动的仿真方法,通过建议一组相互关联的功能映射来表示水资源系统的局部动态,这些功能映射不仅可以学习和复制现有模型的输入-输出关系,还可以将规定的变量链接到其对应的变量自然和人为因素。为了证明所建议方法的实用性,我们考虑代表奥尔德曼水库的当地动态,这是加拿大艾伯塔省南部有效进行区域水资源管理的关键基础设施。使用严格的设置/伪造程序,我们开发了一组替代模拟器来描述灌溉需求和取水量以及水库释放和蒸发的局部动态。然后,使用非伪造的仿真器来解决气候变化对当地灌溉赤字的影响。我们的分析表明,与局部降水相比,局部灌溉亏缺对局部温度变化更敏感。另外,在单位温度下,灌溉亏缺的变化率比单位温度下的冷却要重要得多。现有的运营模式无法获得这种本地的理解。

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