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Improvement of the agricultural effective rainfall for irrigating rice using the optimal clustering model of rainfall station network

机译:利用降雨站网最优聚类模型改善水稻灌溉农业有效降雨量。

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In this study, the clustering method was applied to improve the usage of effective rainfall (ER) for irrigating rice paddy in the region managed by the TaoYuan Irrigation Association (TIA) of Taiwan. A total of 16 rainfall stations and rainfall data from 1981 to 2000 were used. A traditional area-weighted method (Thiessen polygons method) and an optimal clustering model of ER were evaluated and compared. The optimal clustering model of ER comprised self-organizing map (SOM), k-means (KM), and fuzzy c-means (FCM) clustering algorithms. To obtain optimal clustering data of ER, the clustering groups from two to five of SOM, KM, and FCM algorithms were determined using root-mean-squared-error. The results show that three algorithms with group numbers from two to five are adopted for the monthly optimal clustering model in different months. However, for the annual optimal model, 12 sub-models are assessed and then compared. The results show that the SOM clustering with groups three was the optimal model for annual ER. The optimal clustering model of ER provides a new procedure step in preparation of the irrigation scheduling for the TIA, and the amount irrigation water waste can be reduced from 770.1 to 22.3 mm/year. The planned ER using the optimal clustering model significantly improves the irrigation water use efficient in agricultural water management
机译:在这项研究中,采用聚类方法来提高台湾桃园灌溉协会(TIA)管理的区域内有效灌溉水稻(ER)的利用率。总共使用了16个降雨站和1981年至2000年的降雨数据。评价并比较了传统的区域加权方法(Thiessen多边形方法)和ER的最佳聚类模型。 ER的最佳聚类模型包括自组织图(SOM),k均值(KM)和模糊c均值(FCM)聚类算法。为了获得ER的最佳聚类数据,使用均方根误差确定了SOM,KM和FCM算法中从2到5的聚类组。结果表明,在不同月份的月度最优聚类模型中,采用了组号为2到5的三种算法。但是,对于年度最佳模型,评估并比较了12个子模型。结果表明,与第三组的SOM聚类是年度ER的最佳模型。 ER的最佳聚类模型为TIA的灌溉时间表的准备提供了新的程序步骤,并且可以将灌溉废水的数量从770.1毫米/年减少到22.3毫米/年。使用最佳聚类模型的计划ER显着提高了农业用水管理中的灌溉用水效率

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