نتایج جستجو برای: outlier detection

تعداد نتایج: 569959  

2010
Natasa Reljin Samantha McDaniel Dragoljub Pokrajac Nebojsa Pejcic Tia Vance Aleksandar Lazarevic Longin Jan Latecki

Recent research in motion detection has shown that various outlier detection methods could be used for efficient detection of small moving targets. These algorithms detect moving objects as outliers in a properly defined attribute space, where outlier is defined as an object distinct from the objects in its neighborhood. In this paper, we compare the performance of two incremental outlier detec...

Journal: :Data Mining and Knowledge Discovery 2010

Journal: :Scandinavian Journal of Statistics 2019

Journal: :Geodesy and cartography 2012

2011
P. Murugavel

Outliers detection is a task that finds objects that are dissimilar or inconsistent with respect to the remaining data. It has many uses in applications like fraud detection, network intrusion detection and clinical diagnosis of diseases. Using clustering algorithms for outlier detection is a technique that is frequently used. The clustering algorithms consider outlier detection only to the poi...

Journal: :EAI Endorsed Trans. Scalable Information Systems 2013
Ji Zhang

Outlier detection is an important research problem in data mining that aims to find objects that are considerably dissimilar, exceptional and inconsistent with respect to the majority data in an input database [50]. Outlier detection, also known as anomaly detection in some literatures, has become the enabling underlying technology for a wide range of practical applications in industry, busines...

Journal: :International Journal of Computer Applications 2012

2013
Garima Singh Vijay Kumar

Outlier detection is a substantial research problem in the domain of data mining that aims to uncover objects which exhibit significantly different, exceptional and inconsistent from rest of the data. Outlier detection has been widely researched and finds use within various application domains including tax fraud detection, network robustness analysis, network intrusion and medical diagnosis. I...

Journal: :the modares journal of electrical engineering 2005
elham tavasolipour mohammad taghi hamidi beheshti amin ramezani

in this paper a novel process monitoring scheme for reducing the type і and type іі error rates in the monitoring phase is proposed. first, the proposed approach uses an augmented data matrix to implement the process dynamic. then, we apply independent component analysis (ica) transformation to the augmented data matrix, and eliminate the outliers using the local outlier factor (lof) algorithm....

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