Adaptive exponential power distribution with moving estimator for nonstationary time series

Duda, Jarek

arXiv.org Machine Learning 

While standard estimation assumes that all datapoints are from probability distribution of the same fixed parameters $\theta$, we will focus on maximum likelihood (ML) adaptive estimation for nonstationary time series: separately estimating parameters $\theta_T$ for each time $T$ based on the earlier values $(x_t)_{t

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