2018
DOI: 10.1007/s12524-018-0784-0
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Anomaly Detection from Hyperspectral Images Using Clustering Based Feature Reduction

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Cited by 5 publications
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“…Let assume that the hyperspectral background follows a multivariate Gaussian distribution. In this case, pixel đť’™ belongs to the background with the following probability [21], [27]:…”
Section: The Anomaly Weighted Gabormentioning
confidence: 99%
“…Let assume that the hyperspectral background follows a multivariate Gaussian distribution. In this case, pixel đť’™ belongs to the background with the following probability [21], [27]:…”
Section: The Anomaly Weighted Gabormentioning
confidence: 99%