Question: Gaussian Mixture Model and the EM Algorithm 1 point possible ( graded ) Which of the following statements are true? Assume that we have a
Gaussian Mixture Model and the EM Algorithm
point possible graded
Which of the following statements are true? Assume that we have a Gaussian mixture model with known or
estimated parameters means and variances of the Gaussians and the mixture weights
A Gaussian mixture model can provide information about how likely it is that a given point belongs to
each cluster.
The EM algorithm converges to the same estimate of the parameters irrespective of the initialized
values.
An iteration of the EM algorithm is computationally more expensive in terms of order complexity when
compared to an iteration of the Kmeans algorithm for the same number of clusters.
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