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Insurance Data Analysis with COGNITO: An Auto Analysing and Storytelling Python Library

机译:与Cognito的保险数据分析:自动分析和讲故事Python库

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Data pre-processing has taken an enhanced role with the advent of Machine learning. It is a vital element that forms the encore of the data science and business analytics process. Data pre-processing involves generating descriptive statistical summary, data cleaning, and data manipulation based on inputs gained after the initial analysis. Of late, it has been observed that data science practitioners spend 45% to 50% of their time cleaning and processing the data. Much time can be saved if the data transformation process can be automated. The COGNITO framework helps in performing the automated feature engineering and data storytelling of the dataset based on end-user discretion. The present work discusses the process and results obtained when automated feature engineering was performed on an insurance dataset using COGNITO.
机译:数据预处理在机器学习的出现时取得了增强的作用。 它是一个重要的元素,它形成了数据科学和业务分析过程的内容。 数据预处理涉及基于初始分析后获得的输入生成描述性统计摘要,数据清洁和数据操作。 迄今为止,已经观察到数据科学从业者花费45%至50%的时间清洁和处理数据。 如果数据转换过程可以自动化,则可以保存大量时间。 Cognito框架有助于根据最终用户自行决定执行数据集的自动特征工程和数据讲故事。 本工作讨论了使用Cognito在保险数据集上执行自动特征工程时获得的过程和结果。

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