Air Temperature Prediction Using Different Datamining Approaches In Sulaymaniyah City In Iraq

Passer Journal Pub Date : 2021-04-12 DOI:10.24271/PSR.21
Yosra Mohammed, Sherko Murad, Brzu Tahir
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引用次数: 3

Abstract

Climate change has a historical impact at universal and local levels over the past era. Climate change is one of the greatest challenge issues in the globe for meteorological research. Air temperature estimation, in particular, has been measured as a significant feature in weather impression studies on industrial sectors, environmental, ecological, and agricultural. Accurately predicting air temperature guides to measure lifestyle, perform a key character for the government, industries, and public in development activities. In this paper, we investigate the use of various data mining approaches such as Support Vector Machine (SVM), Decision tree (DT), and Naïve Bayes for air temperature prediction within Sulaymaniyah City in Kurdistan, IRAQ. The metrological data is collected from the local Weather Forecast Department in the city within the range 2013 to 2018 inclusive. A dataset for the metrological data was developed and used to train the data mining algorithms. The proposed data mining algorithms were tested on the dataset to predict the air temperature and the performance of these algorithms were compared using standard performance metrics. Support vector machine has accomplished promising performance among using algorithms
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利用不同数据挖掘方法预测伊拉克苏莱曼尼亚市气温
过去一个时代以来,气候变化在全球和地方层面都产生了历史性影响。气候变化是全球气象研究面临的最大挑战之一。特别是,在工业部门、环境、生态和农业的天气印象研究中,气温估计已被视为一个重要特征。准确预测气温是衡量生活方式的指南,是政府、工业和公众发展活动的关键。在本文中,我们研究了各种数据挖掘方法的使用,如支持向量机(SVM)、决策树(DT)和Naïve贝叶斯,用于伊拉克库尔德斯坦苏莱曼尼亚市的气温预测。气象数据收集自2013年至2018年(含2018年)本市当地天气预报部门。开发了计量数据集,并将其用于训练数据挖掘算法。在数据集上测试了所提出的数据挖掘算法以预测气温,并使用标准性能指标比较了这些算法的性能。支持向量机在众多算法中取得了令人满意的成绩
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来源期刊
CiteScore
0.50
自引率
0.00%
发文量
23
审稿时长
12 weeks
期刊最新文献
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