Robustness anomaly detection method based on local and global statistical analysis
A statistical analysis and anomaly detection technology, applied in the field of robust anomaly detection based on local and global statistical analysis, can solve problems such as unsupervised learning, and achieve the effect of avoiding system failures
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Embodiment 1
[0025] Such as figure 1 As shown, a robust anomaly detection method based on local and global statistical analysis, the method is based on local information and global information to model, and then judge the comprehensive index, if this index exceeds the pre-set judgment conditions, it is considered An exception occurred.
Embodiment 2
[0027] On the basis of embodiment 1, the method described in this embodiment includes content:
[0028] According to the characteristics of the detected data and the actual business background, an optimal anomaly detection model is selected to conduct a global analysis of the detected data, and the abnormal points of the global analysis are obtained.
[0029] Described method content comprises:
[0030] According to the specific business situation, the data is divided into different time periods or different working conditions, and the analyzed data is analyzed locally.
Embodiment 3
[0032] On the basis of Embodiment 2, the implementation process of the method described in this embodiment includes the following contents:
[0033] 1) Select the basic algorithm and implement it. You can use the commonly used Isolation Forest, One-Class SVM, Robust covariance, etc. There are many ready-made implementation software packages for these methods, such as sklearn. Or use other open source packages;
[0034] 2) According to the combination of the characteristics of the detected data and the actual business background, select an optimal anomaly detection model to conduct a global analysis of the detected data, and obtain the abnormal points of the global analysis;
[0035] 3) According to the specific business situation, the data is divided into different time periods or different working conditions, and the analyzed data is partially analyzed;
[0036] 4) Using the weighting method to comprehensively consider the results of local analysis of outliers and the result...
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