凸壳和DBSCAN聚类预测未来天气

Ratul Dey, Sanjay Chakraborty
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引用次数: 13

摘要

机器学习方法越来越多地与传统气象观测结合使用,用于天气分析和传统天气预报,以提取与印度人类社会农业和粮食安全相关的信息。本文采用基于密度的聚类方法增量预测未来天气状况。在将污染物数据输入聚类算法之前,还使用了一种著名的预处理方法,称为convexx - hull。该凸壳方法严格用于将非结构化数据转换为相应的结构化形式。这些结构化数据被DBSCAN聚类算法有效地用于形成天气导数的结果聚类。该预测数据库完全基于西孟加拉邦加尔各答市的天气,该预测方法的开发是为了减轻空气污染的影响,并为天气事件的预测和预报推出重点建模计算。这里也测量了这种方法的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Convex-hull & DBSCAN clustering to predict future weather
Machine learning methods are increasingly being used in conjunction with conventional meteorological observations in the synoptic analysis and conventional weather forecast to extract information of relevance for agriculture and food security of the human society in India. Density based clustering approach is incrementally used to predict the future weather conditions in this paper. One famous preprocessing approach, known as Convex-Hull is also used before fed the pollutant data into the clustering algorithm. This Convex-Hull method is strictly used to convert unstructured data into its corresponding structured form. These structured data is efficiently and effectively used by the DBSCAN clustering algorithm to form resultant clusters for weather derivatives. This forecasting database is totally based on the weather of Kolkata city in west Bengal and this forecasting methodology is developed to mitigating the impacts of air pollutions and launch focused modeling computations for prediction and forecasts of weather events. Here accuracy of this approach is also measured.
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