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Anomaly detection on event logs with a scarcity of labels

Barbon Junior S.
•
Ceravolo P.
•
Damiani E.
altro
Tavares G. M.
2020
  • conference object

Abstract
Assuring anomaly-free business process executions is a key challenge for many organizations. Traditional techniques address this challenge using prior knowledge about anomalous cases that is seldom available in real-life. In this work, we propose the usage of word2vec encoding and One-Class Classification algorithms to detect anomalies by relying on normal behavior only. We investigated 6 different types of anomalies over 38 real and synthetics event logs, comparing the predictive performance of Support Vector Machine, One-Class Support Vector Machine, and Local Outlier Factor. Results show that our technique is viable for real-life scenarios, overcoming traditional machine learning for a wide variety of settings where only the normal behavior can be labeled.
DOI
10.1109/ICPM49681.2020.00032
WOS
WOS:000632751400021
Archivio
https://hdl.handle.net/11368/3037238
info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85096519305
https://ieeexplore.ieee.org/document/9230308
Diritti
open access
license:copyright editore
license:digital rights management non definito
license uri:iris.pri02
license uri:iris.pri00
FVG url
https://arts.units.it/request-item?handle=11368/3037238
Soggetti
  • anomaly detection

  • encoding

  • Local Outlier Factor

  • One Class Classificat...

  • Support Vector Machin...

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