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Homogeneous Climate Divisions for Peninsular Malaysia

机译:马来西亚半岛的均质气候区

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Classification of Peninsular Malaysia was delineated by integrating in-situ temperature elements data and Geographical Information System (GIS) raster data. The principal component (PC) analysis was applied to long-term mean monthly temperature elements data for monsoon seasons. The first three principal components were chosen to be statistically significant, accounted for 96.5% of the variability in the 27 variables. These three components are related to the mean monthly variation in minimum temperature during monsoon season (first PC), the mean monthly variation in maximum and the mean temperature in southwest monsoon (second PC), and the mean monthly variation in maximum temperature during northeast monsoon (third PC). Cluster analyses were applied to create clusters of meteorological stations, of which six classes were formed. To determine cluster boundaries, interpolation analysis was applied to generate GIS raster data of factor scores. The supervised classification analysis was then performed to the generated GIS factor data. The result of a maximum likelihood classification produced three clusters when summarized by districts. Final classification results of climate divisions show rational climate regionalization that reveals control on temperature. The use of factor score GIS raster data effectively assists the generation of meteorological station clusters, grouped using only in-situ data. ? 2011 Lavoisier SAS. All rights reserved.
机译:马来西亚半岛的分类是通过整合原位温度元素数据和地理信息系统(GIS)栅格数据来确定的。将主成分(PC)分析应用于季风季节的长期平均每月温度要素数据。选择前三个主要成分具有统计学意义,占27个变量变异性的96.5%。这三个成分与季风季节最低温度的月平均变化(第一PC),西南季风最高温度和平均温度的月平均变化(第二PC)以及东北季风期间最高温度的平均月变化有关。 (第三台PC)。应用聚类分析来创建气象站的聚类,其中形成了六个类别。为了确定聚类边界,应用了插值分析来生成因子得分的GIS栅格数据。然后对生成的GIS因子数据执行监督分类分析。当按地区汇总时,最大似然分类的结果产生了三个聚类。气候分区的最终分类结果显示合理的气候分区,揭示了对温度的控制。因子得分GIS栅格数据的使用有效地协助了气象站群集的生成,这些气象站群集仅使用现场数据进行分组。 ? 2011 Lavoisier SAS。版权所有。

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