Data Mining -What's noise, How can noise be reduced in a dataset

Question # 00760397 Posted By: dr.tony Updated on: 05/07/2020 07:30 AM Due on: 05/07/2020
Subject Education Topic General Education Tutorials:
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Data Mining Questions

 1. What's noise? How can noise be reduced in a dataset? 

2. Define outlier. Describe 2 different approaches to detect outliers in a dataset. 

3. Give 2 examples in which aggregation is useful. 

4. What's stratified sampling? Why is it preferred? 

5. Provide a brief description of what Principal Components Analysis (PCA) does. [Hint: See Appendix A and your lecture notes.] State what's the input and what the output of PCA is. 

6. What's the difference between dimensionality reduction and feature selection? 7. What's the difference between feature selection and feature extraction? 

8. Give two examples of data in which feature extraction would be useful. 

9. What's data discretization and when is it needed? 

10. How are the Correlation and Covariance, used in data pre-processing? 

 

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  1. Tutorial # 00760710 Posted By: dr.tony Posted on: 05/07/2020 07:31 AM
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