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Hierarchical Clustering for Anomalous Traffic Conditions Detection in Power Substations
Author(s) -
Erwin Alexander Leal Piedrahita
Publication year - 2019
Publication title -
ciencia e ingeniería neogranadina
Language(s) - English
Resource type - Journals
eISSN - 1909-7735
pISSN - 0124-8170
DOI - 10.18359/rcin.4236
Subject(s) - cluster analysis , data mining , hierarchical clustering , computer science , euclidean distance , process (computing) , overhead (engineering) , automation , engineering , artificial intelligence , mechanical engineering , operating system
The IEC 61850 standard has contributed significantly to the substation management and automation process by incorporating the advantages of communications networks into the operation of power substations. However, this modernization process also involves new challenges in other areas. For example, in the field of security, several academic works have shown that the same attacks used in computer networks (DoS, Sniffing, Tampering, Spoffing among others), can also compromise the operation of a substation. This article evaluates the applicability of hierarchical clustering algorithms and statistical type descriptors (averages), in the identication of anomalous patterns of traffic in communication networks for power substations based on the IEC 61850 standard. The results obtained show that, using a hierarchical algorithm with Euclidean distance proximity criterion and simple link grouping method, a correct classification is achieved in the following operation scenarios: 1) Normal trafc, 2) IED disconnection, 3) Network discovery attack, 4) DoS attack, 5) IED spoong attack and 6) Failure on the high voltage line. In addition, the descriptors used for the classification proved equally effective with other unsupervised clustering techniques such as K-means (partitional-type clustering), or LAMDA (diffuse-type clustering).

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