作者
Yasi Dani, Agus Yodi Gunawan, Sapto Wahyu Indratno
发表日期
2022/12/8
研讨会论文
2022 Seventh International Conference on Informatics and Computing (ICIC)
页码范围
1-7
出版商
IEEE
简介
Outlier analysis is a statistical procedure that involves the identification of anomalous observations. Outlier detection is important in many fields and involved in numerous applications since if the outliers are not detected then it can lead us to a wrong decision. There are a wide variety of techniques that can be used to identify outliers in datasets. Most of the existing methods are based on static data, while in case of data stream these methods are computational inefficiency and require big memory storage. This is due to the data stream being a dataset that is generated in a real-time data stream and requires real-time data analysis. The recursive least squares approach is mainly used in many regression analysis and the outlier detection process is referred to as supervised outlier detection. In this paper, we propose an online outlier detection algorithm using recursive residuals via recursive least squares method. The …
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Y Dani, AY Gunawan, SW Indratno - 2022 Seventh International Conference on Informatics …, 2022