发明名称 Continuous anomaly detection based on behavior modeling and heterogeneous information analysis
摘要 The present disclosure describes a continuous anomaly detection method and system based on multi-dimensional behavior modeling and heterogeneous information analysis. A method includes collecting data, processing and categorizing a plurality of events, continuously clustering the plurality of events, continuously model building for behavior and information analysis, analyzing behavior and information based on a holistic model, detecting anomalies in the data, displaying an animated and interactive visualization of a behavioral model, and displaying an animated and interactive visualization of the detected anomalies.
申请公布号 US8887286(B2) 申请公布日期 2014.11.11
申请号 US201314034008 申请日期 2013.09.23
申请人 发明人 Dupont Laurent;Charnock Elizabeth B.;Roberts Steve;Amesefe Eli Yawo;Schon Keith Eric;Oehrle Richard Thomas
分类号 H04L29/06;G06F21/50;G06F21/55;G06F21/00 主分类号 H04L29/06
代理机构 Maldjian Law Group LLC 代理人 Maldjian Law Group LLC ;Maldjian John
主权项 1. A data-driven method of continuous anomaly detection based on behavioral modeling and heterogeneous information analysis that does not require definition of a set of rules or definition of anomalous patterns, the method comprising: collecting heterogeneous, structured and unstructured, text-bearing and non-text-bearing sociological data that includes data on human behavior; processing and categorizing a plurality of events in quasi-real-time; clustering the plurality of events from the sociological data in quasi-real-time; building predictive models of at least one of individual behavior and collective behavior in quasi-real-time for behavior and information analysis; analyzing behavior and information based on a multidimensional, normalcy-based behavioral model; detecting behavioral anomalies in the collected sociological data; displaying an animated and interactive visualization of the multidimensional, normalcy-based behavioral model; and displaying an animated and interactive visualization of the detected behavior-based and time-based anomalies, wherein different types of anomalies are detected based on the results of data analysis and individual and collective behavior modeling, wherein a monitoring or anomaly detection system provides a source of anomalies, wherein baseline patterns are computed with respect to different referentials and used as a source of anomalies corresponding to deviations from the baseline patterns, and wherein rankings of individuals against behavioral traits are a source of anomalies corresponding to abnormal behavior.
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