A nonparametric HMM for genetic imputation and coalescent inference
Genetic sequence data are well described by hidden Markov models (HMMs) in which latent states correspond to clusters of similar mutation patterns. Theory from statistical genetics suggests that these HMMs are nonhomogeneous (their transition probabilities vary along the chromosome) and have large s...
Những tác giả chính: | , |
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Định dạng: | Journal article |
Được phát hành: |
Institute of Mathematical Statistics
2016
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