# Questions tagged [pca]

Principal component analysis (PCA) is a statistical technique for dimension reduction often used in clustering or factor analysis. Given any number of explanatory or causal variables, PCA ranks the variables by their ability to explain greatest variation in the data. It is this property that allows PCA to be used for dimension reduction, i.e. to identify the most important variables from amongst a large set possible influences.

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### PCA().fit() is using the wrong axis for data input

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### Controlling Servo with PCA9685 and Raspberry Pi

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### Why plt.quiver( ) doesn't show over seaborn.jointplot( )?

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### Automatically selecting features for anomaly detection using gaussian distribution

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### PCA returns duplicated features for different components

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### How to retrieve observation scores for each Principal Component in R using principal Function

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### PCA on Image Data

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### how to apply pca in matlab?

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### interpreting Principal Components Analysis results

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### Controlling focus of matplotlib image

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### When Should I use PCA? [closed]

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### How to write this orthogonal projection formula in python? [duplicate]

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### One feature has high correlation with target [closed]

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### PCA projection centroids and ellipsis

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### k-means centroid labels change across runs of the same program?

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### Understanding the output for PCA

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### pca with iris dataset alongwith feature variability visualisation

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### Can I use Box's M test on PCA variables to choose between LDA and QDA?

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### dudi.hillsmith error in x * w : non-numeric argument to binary operator

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### Can PCA prediction guess the group of the new data numerically [migrated]

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### Dimension reduction for mixed data frame involving categorical(binary) values

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### Is normality test required for original data prior to the principal component analysis? [migrated]

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### Getting very low coefficients for PCA features in Cox linear model, but Z score is very high

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### How to choose n components for PCA in face recognition algorithm

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### How to display the number of records in each PCA component?

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### What does the ranker in Weka PCA tell us about feature selection?

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### PCA with varimax rotation in R: comparison between the functions principal and prcomp

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### How to inverse PCA without one component?

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### Same values for PCA Loadings results

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### error in github “Analysis-of-DDoS-Attacks-in-SDN-Environments” in PCA algoritm

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### How can I get a scatter plot matrix of principal components in R?

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### Can Linear Combinations of Principal Component become correlated?

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### Interpreting analysis with PCA [closed]

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### Is it appropriate to use principal component analysis to show that each response groups' answers are strongly correlated?

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### PCA Bounding box PCL

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### PCA in R - Do we need to reassign the elements of “prcomp” by multiplying negative sign?

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### sklearn PCA, one feature in 2 components. Where's the error?

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### How to implement Random Search to optimize the number of principle components?

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### How to plot with fviz_pca_ind() without showing the legend?

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### When applying PCA to images for CNN, do I have to give it the grayscale image?

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### Kernel PCA Implementation in Julia

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### PC1 values very high still there is no clear separation between groups [migrated]

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### scatter3d(): chol.default(shape) error: leading minor of order not positive definite

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### Plotting select PCA loadings in R

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### Python PCA Plot (Parametric Ellipse) - Identify and Label Outliers

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### Z-standardization makes PC1 and PC2 exactly the same in this PCA analysis: Why?

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### Application of methods for dimensionality reduction

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### Performing PCA and knowing which columns were retained [duplicate]

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### Color palettes in R for Kmeans clustering

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