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Global and collective outliers detection on hotspot data as forest fires indicator in Riau Province, Indonesia

机译:全球和集体异常值在印度尼西亚罗岛省森林火灾指标的热点数据检测

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Forest fire in Indonesia is considered as an annual event that causes serious problems in health and environment especially in Sumatera and Kalimantan Islands. Studies on analyzing hotspot data as forest fire indicators are required for predicting hotspot occurrences. The objective of this work is to detect global and collective outliers on hotspot data in Riau Province in Sumatera Island for the period 2001-2012. The data used in this work are 4383 daily hotspots and 144 monthly hotspots. The method applied to discover outliers is the k-means clustering algorithm. The best clustering results are obtained on the number of clusters of 10 and the sum of squared error value is 18526.14. Based on the clustering results, we obtain 59 collective outliers and 30 global outliers on the hotspot dataset. The outliers on the hotspot data mostly occur in February, March, June, July, and August. The average frequency of outliers is 482.22 and the highest frequency of outliers is occurred in 2005. As many 1118 hotspots were found in the northern part of the Riau province on 21 June 2005. In August 2005 outliers spread on the whole area of Riau Province. For the period 2001-2012 there are no outliers occurred in April, November and December. This information is essential for an early warning system in forest fires prevention.
机译:印度尼西亚的森林火灾被视为一年度的年度事件,导致健康和环境中的严重问题,特别是在苏马特拉和卡利马坦群岛。在预测热点发生时需要分析热点数据作为森林火灾指标的研究。这项工作的目标是在2001 - 2012年期间检测苏马特岛苏州岛岛的热点数据的全球和集体异常值。本工作中使用的数据每日4383个热点和144个月热点。应用于发现异常值的方法是K-means聚类算法。在10的簇数上获得最佳聚类结果,并且平方误差值的总和为18526.14。根据聚类结果,我们在热点数据集中获得59个集体异常值和30个全局异常值。热点数据的异常值主要发生在2月,3月,6月,7月和8月。异常值的平均频率是482.22,2005年发生的最高频率发生。2005年6月21日,在罗伊省北部发现了许多1118个热点。2005年8月在罗泰省的整个地区传播。 2001 - 2012年4月,11月和12月,没有发生异常值。此信息对于预防森林火灾的预警系统至关重要。

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