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首页> 外文期刊>Arabian journal of geosciences >CART and PSO plus KNN algorithms to estimate the impact of water level change on water quality in Poyang Lake, China
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CART and PSO plus KNN algorithms to estimate the impact of water level change on water quality in Poyang Lake, China

机译:购物车和PSO Plus KNN算法估算水位变化对鄱阳湖水质的影响

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摘要

Rapid urbanization and global warming have caused a sequence of ecological issues in China including degradation of lake water environments which is one of the many consequences. Lakes are an important part of a biological system where a plethora of amphibian plants and animals reside. Other than this, they have a noteworthy impact in providing water for landscape irrigation, for domestic utilization, and most importantly sustaining a healthy ecosystem. Poyang Lake is the largest freshwater lake of China, with its rich water and biological resources for irrigation, water supply, shipping, and regulation of the flow; additionally, this lake can relieve the impact of droughts and floods by storing huge quantities of water and discharging it during shortages. However, the water environment is a standout among the most critical issues in Poyang Lake. This paper proposes two classification algorithms, i.e., classification and regression trees algorithm and particle swarm optimization + k-nearest neighbors algorithm to build up a connection between the water level and the primary water quality parameters of Poyang Lake. Two models have been trained with 8years of data (2002-2008) and verified with 1year of data (2009). Water quality forecasts from the particle swarm optimization + k-nearest neighbors algorithm was observed to be better when compared with the results obtained from the classification and regression trees algorithm. Finally, the category of the water quality was evaluated using 3years of water level data (20102012) as an input to the particle swarm optimization + k-nearest neighbors algorithm.
机译:快速城市化和全球变暖导致了一系列中国生态问题,包括湖水环境的退化,这是众多后果之一。湖泊是生物系统的重要组成部分,其中血腥植物和动物居住。除此之外,他们对为国内利用率提供景观灌溉的水有值得注意的影响,最重要的是维持健康的生态系统。鄱阳湖是中国最大的淡水湖,其水和生物资源丰富,供水,运输和流动调节;此外,这种湖泊可以通过将大量的水储存和在短缺期间放电来缓解干旱和洪水的影响。然而,水环境是鄱阳湖最关键的问题之一。本文提出了两个分类算法,即分类和回归树算法和粒子群优化+ k最近邻居算法,建立了水位与Poyang湖的主要水质参数之间的连接。两种型号已经接受过8年的数据(2002-2008)培训,并用1年的数据(2009)进行了验证。与从分类和回归树算法获得的结果相比,观察到从粒子群优化+ K最近邻居算法的水质预测。最后,使用3年的水位数据(20102012)评估水质的类别作为粒子群优化+ K-Collect邻居算法的输入。

著录项

  • 来源
    《Arabian journal of geosciences》 |2019年第9期|共12页
  • 作者单位

    China Inst Water Resources &

    Hydropower Res State Key Lab Simulat &

    Regulat Water Cycles Rive Beijing Peoples R China;

    King Abdulaziz Univ Dept Hydrogeol Jeddah 21589 Saudi Arabia;

    China Inst Water Resources &

    Hydropower Res State Key Lab Simulat &

    Regulat Water Cycles Rive Beijing Peoples R China;

    Tsinghua Univ Dept Hydraul Engn State Key Lab Hydrosci &

    Engn Beijing Peoples R China;

    China Inst Water Resources &

    Hydropower Res State Key Lab Simulat &

    Regulat Water Cycles Rive Beijing Peoples R China;

    Jiangxi Prov Inst Water Sci Nanchang Jiangxi Peoples R China;

    Water Resources Dept Jiangxi Prov Nanchang Jiangxi Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 地质学;
  • 关键词

    Algorithm; Freshwater; Poyang Lake; Water level; Water quality;

    机译:算法;淡水;鄱阳湖;水位;水质;

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