2017
DOI: 10.4108/eai.1-2-2017.152156
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Securing Smart Grid In-Network Aggregation through False Data Detection

Abstract: Existing prevention-based secure in-network data aggregation schemes for the smart grids cannot effectively detect accidental errors and falsified data injected by malfunctioning or compromised meters. In this work, we develop a light-weight anomaly detector based on kernel density estimator to locate the smart meter from which the falsified data is injected. To reduce the overhead at the collector, we design a dynamic grouping scheme, which divides meters into multiple interconnected groups and distributes th… Show more

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References 34 publications
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