EVALUATION OF DYNAMIC CHANGE OF WATER LEVEL OF THE SMALL ARAL SEA BASED ON DATA OF OPEN SOURCES

Г. В. Айзель, А. С. Ижицкий, А. K. Курбаниязов, Ж. А. Жанабаева
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Abstract

The study of the Aral Sea water level and volume dynamics is an urgent scientific task due to the need to understand the mechanisms of natural, anthropogenic processes. In particular, the study of water balance component dynamics of Small Aral basin is the most important task in planning scenarios of water use, water protection in the region. In the proposed work, on the basis of machine learning methods, two statistical models were developed: a model that takes into account the variability of the monthly values of Syrdaria runoff and corresponding change in Small Aral water volume. In the low availability conditions of data from field observations, obtained operational estimates, which compose water balance component are the most important source of information about ongoing changes in studied basin. The proposed technique can used to obtain initial conditions in hydrodynamic modeling experiments, as well as to calculate climatic scenarios for development of the Aral hydrological system.
基于公开资料的小咸海水位动态变化评价
由于需要了解自然和人为过程的机制,咸海水位和体积动态的研究是一项紧迫的科学任务。特别是小咸海流域水平衡成分动态研究是该地区水资源利用、水资源保护规划方案的重要内容。在提出的工作中,基于机器学习方法,开发了两个统计模型:一个模型考虑了锡尔达河径流月值的变异性和小咸海水量的相应变化。在野外观测数据可得性较低的情况下,获得的业务估算是研究流域持续变化的最重要信息来源。该技术可用于水动力模拟实验中获得初始条件,也可用于计算咸海水文系统发展的气候情景。
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