2016
DOI: 10.9766/kimst.2016.19.3.346
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Analysis on the Distribution of RF Threats Using Unsupervised Learning Techniques

Abstract: In this paper, we propose a method to analyze the clusters of RF threats emitting electrical signals based on collected signal variables in integrated electronic warfare environments. We first analyze the signal variables collected by an electronic warfare receiver, and construct a model based on variables showing the properties of threats. To visualize the distribution of RF threats and reversely identify them, we use k-means clustering algorithm and self-organizing map (SOM) algorithm, which are belonging to… Show more

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