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A non-parametric hidden Markov model for climate state identification
2003
Hydrology and Earth System Sciences
Hidden Markov models (HMMs) can allow for varying wet and dry cycles in the climate without the need to simulate supplementary climate variables. The fitting of a parametric HMM relies upon assumptions for the state conditional distributions. It is shown that inappropriate assumptions about state conditional distributions can lead to biased estimates of state transition probabilities. An alternative non-parametric model with a hidden state structure that overcomes this problem is described. It
doi:10.5194/hess-7-652-2003
fatcat:2yfrmmdhtbcepbkbg7pkto2ytq