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Modelling coloured residual noise in gravitational-wave signal processing
classification
📊 stat.ME
gr-qcphysics.data-an
keywords
noisemodeldataprocessingsignalspectrumableaccommodate
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We introduce a signal processing model for signals in non-white noise, where the exact noise spectrum is a priori unknown. The model is based on a Student's t distribution and constitutes a natural generalization of the widely used normal (Gaussian) model. This way, it allows for uncertainty in the noise spectrum, or more generally is also able to accommodate outliers (heavy-tailed noise) in the data. Examples are given pertaining to data from gravitational wave detectors.
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