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=Questions and Comments=
 
=Questions and Comments=
 
*Review by Minwoong Kim will be written here.
 
*Review by Minwoong Kim will be written here.
* Sudhir starts with a very interesting coin example to give us a strong motivation to easily understand what Maximum Likelihood means. The author states a very clear mathematical definition and a methodology of computing MLE by the first and second order derivatives. Then, the important properties of MLE are described. Finally, the author shows several examples of MLE for the parameters of Gaussian distribution and Binomial distributions. In summary, this slecture gives us a very clear definition and examples of MLE, but the most of contents seem to be shown and solved in our lecture. That is only a weak point of this slecture.         
+
* Sudhir starts with a very interesting coin example to give us a strong motivation to easily understand what Maximum Likelihood means. The author states a very clear mathematical definition and a methodology of computing MLE by the first and second order derivatives. Then, the important properties of MLE are described. Finally, the author shows several examples of MLE for the parameters of the Gaussian distribution and Binomial distribution. In summary, this slecture gives us a very clear definition and examples of MLE, but the most of contents seem to be shown and solved in our lecture. That is only a weak point of this slecture.         
 
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Back to '''[[Mle_tutorial|MLE Tutrial]]'''
 
Back to '''[[Mle_tutorial|MLE Tutrial]]'''

Revision as of 22:41, 24 April 2014

Questions and Comments for: MLE Tutorial

A slecture by Sudhir Kylasa


Please leave me comment below if you have any questions, if you notice any errors or if you would like to discuss a topic further.


Questions and Comments

  • Review by Minwoong Kim will be written here.
  • Sudhir starts with a very interesting coin example to give us a strong motivation to easily understand what Maximum Likelihood means. The author states a very clear mathematical definition and a methodology of computing MLE by the first and second order derivatives. Then, the important properties of MLE are described. Finally, the author shows several examples of MLE for the parameters of the Gaussian distribution and Binomial distribution. In summary, this slecture gives us a very clear definition and examples of MLE, but the most of contents seem to be shown and solved in our lecture. That is only a weak point of this slecture.

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Basic linear algebra uncovers and clarifies very important geometry and algebra.

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