Pre-Processing and Normalization of the Historical Weather Data Collected from Secondary Data Source for Rainfall Prediction

Deepak Sharma, Dr. Priti Sharma
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Abstract

In the twenty first century, data analysis has become the talk of the town. Almost every company or organization depends on data analysis for taking future decision. The most important step in data analysis after data collection is the preprocessing of the collected data. The main aim of data analysis is to find meaningful pattern by processing large amount of data. In data preprocessing, the inconsistency of collected data has been removed. After storing data for a relatively longer period, it becomes noisy and inconsistent. While measuring various parameter due to error in the instrument or human error, the value become incorrect or invalid. It is necessary to remove the invalid data otherwise it will deflect the results and produce error in the prediction. In this work preprocessing of the weather data has been analyzed for rainfall prediction using data mining.
对从二手数据源收集的历史天气数据进行预处理和归一化处理,用于降雨预测
在二十一世纪,数据分析已成为人们谈论的话题。几乎每家公司或组织都依赖数据分析来做出未来决策。在数据收集之后,数据分析中最重要的一步就是对收集到的数据进行预处理。数据分析的主要目的是通过处理大量数据找到有意义的模式。在数据预处理过程中,收集到的数据的不一致性被消除。数据存储时间相对较长后,会变得嘈杂和不一致。在测量各种参数时,由于仪器误差或人为误差,数值会变得不正确或无效。有必要删除无效数据,否则会使结果发生偏差,并在预测中产生误差。在这项工作中,利用数据挖掘对天气数据的预处理进行了分析,以进行降雨预测。
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