2023
DOI: 10.24996/ijs.2023.64.5.32
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Application of Data Mining and Imputation Algorithms for Missing Value Handling: A Study Case Car Evaluation Dataset

Abstract: Data mining is a data analysis process using software to find certain patterns or rules in a large amount of data, which is expected to provide knowledge to support decisions. However, missing value in data mining often leads to a loss of information. The purpose of this study is to improve the performance of data classification with missing values, ​​precisely and accurately. The test method is carried out using the Car Evaluation dataset from the UCI Machine Learning Repository. RStudio and RapidMiner tools … Show more

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“…The C5.0 algorithm is widely used in various applications such as classification, prediction, and data analysis and has become one of the most essential tools in data analysis models. The C5.0 algorithm can also resolve missing data, a crucial feature in practical data analysis where data is often incomplete [35]. In addition, this algorithm can also group variables or attributes to solve problems involving many characteristics with a high degree of complexity.…”
Section: Classification C50 Algorithmmentioning
confidence: 99%
“…The C5.0 algorithm is widely used in various applications such as classification, prediction, and data analysis and has become one of the most essential tools in data analysis models. The C5.0 algorithm can also resolve missing data, a crucial feature in practical data analysis where data is often incomplete [35]. In addition, this algorithm can also group variables or attributes to solve problems involving many characteristics with a high degree of complexity.…”
Section: Classification C50 Algorithmmentioning
confidence: 99%