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      AlgorithmsArtificial IntelligenceTelecommunicationsCell Phones
A method is presented for detecting changes to the distribution of a criminal or terrorist point process between two time periods using a non-model-based approach. By treating the criminal/terrorist point process as an intelligent site... more
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    •   6  
      Multivariate StatisticsTerrorismCrime ScienceSpace-Time Point Processes
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      Anomaly DetectionCost ModelCost effectivenessNetwork Performance
With the increasing number of computers being connected to the Internet, security of an information system has never been more urgent. Because no system can be absolutely secure, the timely and accurate detection of intrusions is... more
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    •   6  
      Internet SecurityNeural NetworkAnomaly DetectionIEEE Student Member
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    •   8  
      MultidisciplinaryAnomaly DetectionMagnetic fieldSolar Wind
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    •   11  
      Information TechnologyInformation SecurityWireless CommunicationsComputer Networks
An implemented system for on-line analysis of multiple distributed data streams is presented. The system is conceptually universal since it does not rely on any particular platform feature and uses format adaptors to translate data... more
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    •   15  
      Computer ArchitectureNetwork SecurityData AnalysisAuditing
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    •   4  
      Information TheoryAnomaly DetectionStatistical TestFalse Positive Rate
Audio signal processing is moving towards detecting and/or defining rare/anomalous sounds. The application of such an anomaly detection problem can be easily extended to audio surveillance systems. Thus, a rare sound event detection... more
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    •   5  
      Fuzzy LogicAnomaly DetectionFuzzy SetAudio Event Detection
Deregulation, cyber-terrorism, and increased interdependency are making large complex critical infrastructures, such as the telecommunications and electricity networks, increasingly vulnerable. Solutions are needed that can provide a... more
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      Anomaly DetectionCritical Infrastructure
In recent years, data mining has played an essential role in computer system performance, helping to improve system functionality. One of the most critical and influential data mining algorithms is anomaly detection. Anomaly detection is... more
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      Machine LearningData MiningAnomaly DetectionData Science
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      Data MiningAnomaly DetectionTopic modeling
This paper examines short-term price reactions after one-day abnormal price changes and whether they create exploitable profit opportunities in various financial markets. A t-test confirms the presence of overreactions and also suggests... more
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      TradingAnomaly DetectionForex TradingEfficient Market Hypothesis
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    •   9  
      AssessmentNetwork SecuritySecurityAnomaly Detection
Image classification in the open-world must handle out-of-distribution (OOD) images. Systems should ideally reject OOD images, or they will map atop of known classes and reduce reliability. Using open-set classifiers that can reject OOD... more
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    •   9  
      Pattern Recognition and ClassificationAnomaly DetectionImage ClassificationExtreme Value Theory
Masqueraders are users who take control of a machine and perform malicious activities such as data exfiltration or system misuse on behalf of legitimate users. In the literature, there are various approaches for detecting masqueraders by... more
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      Anomaly DetectionOne class ClassificationInsider ThreatMalicious insider threat
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    •   34  
      Distributed ComputingArtificial IntelligenceGame TheoryRemote Sensing
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    •   8  
      Relational DatabaseAnomaly DetectionCondition Based MaintenanceEmerging Technology
Concerns of cyber-security threats are increasingly becoming a part of everyday operations of cyber-physical systems, especially in the context of critical infrastructures. However, despite the tight integration of cyber and physical... more
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      Network SecurityComputer SecurityAnomaly DetectionCritical Infrastructure Security
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      EngineeringAnomaly Detection
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      Cognitive ScienceData MiningPattern RecognitionRadio Resource Management
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    •   21  
      Civil EngineeringImage ProcessingTerrorismData Analysis
Outlier (or anomaly) detection is an important problem for many domains, including fraud detection, risk analysis, network intrusion and medical diagnosis, and the discovery of significant outliers is becoming an integral aspect of data... more
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    •   14  
      Computer ScienceData MiningAnomaly DetectionRisk Analysis
In wastewater industry, real-time sensing of surface temperature variations on concrete sewer pipes is paramount in assessing the rate of microbial-induced corrosion. However, the sensing systems are prone to failures due to the... more
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    •   17  
      ForecastingAnomaly DetectionForecasting and Prediction ToolsSewer
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    •   5  
      Machine LearningAnomaly DetectionVideo SurveillanceIP networks
Safety is one of the key issues in the use of robots, especially when human–robot interaction is targeted. Although unforeseen environment situations, such as collisions or unexpected user interaction, can be handled with specially... more
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      RoboticsMachine LearningAnomaly Detection
Подтверждена геомагнитная гипотеза полтергейста и мысль о том, что этот феномен может быть некой формой природных явлений, связанных с геофизическими факторами. Причём связь эта носит универсальный характер независимо от его географии.... more
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      ParapsychologyAnomalistic PsychologySpirituality & MysticismOccultism
The rapid proliferation of wireless networks and mobile computing applications has changed the landscape of network security. Anomaly detection is a pattern recognition task whose goal is to report the occurrence of abnormal or unknown... more
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      MathematicsComputer ScienceDistributed ComputingArtificial Intelligence
Wireless network has an exponential increase in various aspects of the human community. Accordingly, transmitting a vast volume of sensitive and non-sensitive data over the network puts them at risk of being attacked. To avoid this,... more
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    •   16  
      Machine LearningData MiningNetwork SecurityClassification (Machine Learning)
Conditional Anomaly Detection ... However, in contrast to problems in supervised learning where studies of classification accuracy are the norm, little research has systematically addressed the issue of accuracy in general-purpose... more
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    •   5  
      Data MiningData AnalysisAnomaly DetectionDomain Knowledge
—Despite all attempts to prevent fraud, it continues to be a major threat to industry and government. In this paper, we present a fraud detection method which detects irregular frequency of transaction usage in an Enterprise Resource... more
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      RoboticsComputer ScienceInformation TechnologyEducation
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    •   10  
      Computer ScienceDistributed ComputingMachine LearningAnomaly Detection
IEC61850 is the mainstream of the development for substation automation. This paper presents a practical consideration and analysis for implementing a secure sampled measured value (SeSV) message in substation automation system. Due to... more
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    •   14  
      Power SystemIntrusion Detection SystemsCryptographyAnomaly Detection
Network anomaly detection system enables to monitor computer network that behaves differently from the network protocol and it is many implemented in various domains. Yet, the problem arises where different application domains have... more
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    •   4  
      Machine LearningAnomaly DetectionAveraged One Dependence Estimator (AODE)UNSW-NB15
Firewalls are core elements in network security. However, managing firewall rules, especially for enterprise networks, has become complex and error-prone. Firewall filtering rules have to be carefully written and organized in order to... more
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      Network SecurityAnomaly DetectionSecurity ManagementPolicy Management
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      Computational ComplexityAnomaly DetectionSoftwareSupervised Learning
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      Anomaly DetectionSpam FilteringElectronic mailMathematical Model
In this study, we introduce a novel unsupervised countermeasure for smart grid power systems, based on generative adversarial networks (GANs). Given the pivotal role of smart grid systems (SGSs) in urban life, their security is of... more
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      Machine LearningPower SystemStatistical machine learningAnomaly Detection
Our aim is to estimate the perspective-effected geometric distortion of a scene from a video feed. In contrast to most related previous work, in this task we are constrained to using low-level, spatio-temporally local motion features... more
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    •   75  
      EngineeringOptimization (Mathematical Programming)Computer ScienceAlgorithms
Wireless (Wi-Fi) networks based on IEEE 802.11 1 family of standards have been spreading its coverage last years and this trend is expected to grow. Every day more and more people use this type of networks to access Internet, company or... more
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    •   19  
      Artificial IntelligenceMachine LearningNetwork SecurityWireless Sensor Networks
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      Anomaly DetectionIntrusion DetectionInformation FusionFuzzy Set
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    •   19  
      Machine LearningData MiningNetwork SecurityGenetic Algorithms
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    •   6  
      Computer ScienceNetwork SecurityComputer NetworksAnomaly Detection
Given the anticipated increases in highway traffic, the scale and complexity of the traffic infrastructure will continue to grow progressively in time and in distributed geographical areas. To assure transportation efficiency, safety, and... more
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    •   11  
      Traffic controlAnomaly DetectionInfrastructure DevelopmentSouth Carolina
The use of the Internet has increased in all areas in recent years. With the huge growth and use of the internet increasing, there have been an increase in the number of intrusions and hackers. The risk of intrusion in the network... more
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    •   6  
      Anomaly DetectionIDSFirewallMisuse Detection
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    •   14  
      Distributed ComputingComputer NetworksPower SystemIntrusion Detection Systems
Anomaly detection is used for identifying data that deviate from 'normal' data patterns. Its usage on classical data finds diverse applications in many important areas like fraud detection, medical diagnoses, data cleaning and... more
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      Machine LearningQuantum ComputationAnomaly DetectionComputer and Network Security
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      EngineeringTechnologyData MiningComputer Networks
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      BioinformaticsArtificial IntelligenceMachine LearningComputational Biology