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River instantaneous peak flow estimation using daily flow data and machine-learning-based models

机译:利用每日流量数据和基于机器学习的模型估算河流瞬时峰值流量

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Estimation of the design flood flow for hydraulic structures is often performed by adjusting probabilistic models to daily mean flow series, In most cases, this may cause under design of the structure capacity with possible risks of failure because instantaneous peak flows may be considerably larger than the daily averages. As there is often a lack of instantaneous flow data at a given site of interest, the peak flow has to be estimated. This paper develops new machine-learning-based methods to estimate the instantaneous peak flow from mean daily flow data where long daily data series exist but the instantaneous peak data series are short. However, the presented methods cannot be used where only daily flow data are available. Developed methodologies have been successfully applied to series of flow information from different gauging stations in Iran, with important improvements compared to traditional empirical methods available in the literature. Reliable results produced by the machine-learning-based models compared to the traditional methods show the superior ability of these techniques to solve the problem of inadequate measured peak flow data periods, especially in developing countries where it is difficult to find sufficiently long instantaneous peak flow data series.
机译:通常,通过将概率模型调整为每日平均流量序列来估算水工结构的设计洪水流量。在大多数情况下,这可能会导致结构能力设计不足,并可能存在故障风险,因为瞬时峰值流量可能会大大大于最大流量。日均值。由于在给定的感兴趣位置经常缺少瞬时流量数据,因此必须估算峰值流量。本文开发了一种新的基于机器学习的方法,可从存在较长日数据序列但瞬时峰值数据序列短的平均日流量数据中估算瞬时峰值流量。但是,在只有每日流量数据可用的情况下,不能使用所提出的方法。已开发的方法已成功应用于来自伊朗不同计量站的一系列流量信息,与文献中提供的传统经验方法相比具有重要的改进。与传统方法相比,基于机器学习的模型产生的可靠结果表明,这些技术具有出色的能力来解决测量的峰值流量数据周期不足的问题,尤其是在难以找到足够长的瞬时峰值流量的发展中国家数据系列。

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