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Confusion regarding Hidden Markov Model and Conditional Random Fields

I am a bit confused about Hidden Markov Models and Conditional Random Fields. I wanna know id they are supervised开发者_高级运维 or un-supervised learning methods? Thanks


Well as I read several papers, they are both supervised methods and they need a labeled training set to be trained on.


Neither. They're models for the underlying representation of knowledge. What happens during training is that certain transitions, being reinforced, become higher probability.

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