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* [[Naive Bayes_OldKiwi]]-- What it is and why everyone should know about it.
 
* [[Naive Bayes_OldKiwi]]-- What it is and why everyone should know about it.
 
* [[Philosophies of Machine Learning_OldKiwi]] -- A long article
 
* [[Philosophies of Machine Learning_OldKiwi]] -- A long article
* [[Lower bound on performance of Bayes Classification_OldKiwi]] is <math>\frac{1}{2}</math> when the number of classes is 1
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* Lower bound on performance of [[Bayes Classification_OldKiwi]] is <math>\frac{1}{2}</math> when the number of classes is 2
* [[Ideal performance of Bayes Classification_OldKiwi]] when the two classes are Gaussian with the same variance and prior probability can be computed exactly, even when there is correlation between the dimensions
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* Ideal performance of [[Bayes Classification_OldKiwi]] when the two classes are Gaussian with the same variance and prior probability can be computed exactly, even when there is correlation between the dimensions
 
* [[Amount of training data needed_OldKiwi]] as a function of dimensions, covariance, etc.
 
* [[Amount of training data needed_OldKiwi]] as a function of dimensions, covariance, etc.
 
* [[Classification of data not in the Reals_OldKiwi]] (<math>\mathbb{R}^n</math>), such as text documents and graphs
 
* [[Classification of data not in the Reals_OldKiwi]] (<math>\mathbb{R}^n</math>), such as text documents and graphs

Latest revision as of 07:49, 17 April 2008

Hi! I'm Josiah Yoder, and I'm a big fan of Kiwis... and wikis.

My webpage is little out of date, but you can visit it anyway!

TODO

There are several articles I would like to write on the Kiwi when I get the time. If you would like to write them instead, please go for it, and let me know!

Administrative stuff to do:

  • Copying stuff over from the old kiwi!
  • Create a Lecture Template_OldKiwi like someone has done manually at the bottom of every page.

Alumni Liaison

Abstract algebra continues the conceptual developments of linear algebra, on an even grander scale.

Dr. Paul Garrett