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Meaningful Predictive Modeling

This course will help us to evaluate and compare the models we have developed in previous courses.
Course from Coursera
 1560 students enrolled
 en
Understand the definitions of simple error measures (e.g. MSE, accuracy, precision/recall).
Evaluate the performance of regressors / classifiers using the above measures.
Understand the difference between training/testing performance, and generalizability.
Understand techniques to avoid overfitting and achieve good generalization performance.

This course will help us to evaluate and compare the models we have developed in previous courses. So far we have developed techniques for regression and classification, but how low should the error of a classifier be (for example) before we decide that the classifier is "good enough"? Or how do we decide which of two regression algorithms is better?

Meaningful Predictive Modeling
Free
per course
Incentives
Shareable Certificate
100% online
Course 3 of 4 in the
Flexible deadlines
Intermediate Level
Approx. 10 hours to complete
English
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