Machine Learning No.9: Dimensionality reduction
1. Principal component analysis algorithm
data preprocessing



2. choosing the number of principal components


3. reconstruction from compressed representation

4. Application of PCA
- compression
- reduce memory/dist needed to store data
- speed up learning algorithm
- visualization
bad use of PCA: to prevent overfitting
 
                    
                     
                    
                 
                    
                 
 
                
            
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