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how well training experience represents the distribution of examples over which the final system performance P must be measured
- P is percent of games in the world tournament,
obvious danger when E consists of only games played against itself
(probably can't get world champion to teach computer!)
- most current theories of machine learning assume that the distribution of training examples is identical to the distribution of test examples
- It is IMPORTANT to keep in mind that this assumption must often be violated in practise.
- E: play games against itself (advantage of getting a lot of data this way)
Patricia Riddle
Fri May 15 13:00:36 NZST 1998