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 ...

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Dimension reduction using psych::principal() does not work for smaller data

I am trying to get the PCA components using the training data by using function psych::Principal(). > train <- read.csv("mytraindata.csv", header = TRUE) > train[is.na(train)] <- 0 > ...
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7 views

Getting data index from datapoints after sklearn PCA decomposition

Sci-Kit learn Kmeans and PCA dimensionality reduction I have a dataset, 2M rows by 7 columns, with different measurements of home power consumption with a date for each measurement. date, ...
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29 views

Matlab - use of principal components in finding longest axis of shape

I'm trying to use the pca function to find the longest axis of shapes in binary images. These are 2D images, so I'm expecting just two principal components. If I apply pca to the image itself I get ...
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19 views

Transforming rows in a PCA context using dudi.pca

I have a huge matrix of genetic data (1e7 rows representing individuals x 5,000 columns representing markers) on which I would like to perform a PCA in order to keep c. 20 columns. However, due to ...
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10 views

Features extraction in face recognition

I am looking to extact "fisherfaces" features from set of images to be able to use PCA algorithm. It is already implemented in "opencv" but I am not allowed to use external libs. If anyone has useful ...
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39 views

how do i reduce the number of arrows shown on a PCA biplot using FactoMineR

i'm trying to create PCA biplot using FactoMineR. my script look like that: library(grid) PCbiplot2 <- function(res.pca, x="Dim.1", y="Dim.2") { if(!require(ggplot2)) ...
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29 views

PCA with ggbiplot: ordering

I have a script for visualizing a PCA with ggbiplot, which is working quite nicely, excepting that I have to remove all zeroes from the data, for some reason... I already have a question about it. ...
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23 views

how to find out the exact threshold value for the correct recognition of person

hello I am novice here in matlab my task is to write a code for multimodal biometric system using discrete wavelet transform and pca (principle component analysis) for 100 people database containing 9 ...
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41 views

Matlab svd vs pca

I know several Matlab pca questions have been asked and answered here, but I've read all the ones I can find and they all seem to discuss specific problems or the user's own pca implementation. So ...
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1answer
55 views

Eigen Vector Calculations for OBB crashing on second pass through “Assertion Failed”

Sorry if the title isn't clear enough, I wasn't really sure how to summarize this problem since it's very specific and odd. Basically, I have a mesh that I've drawn and I am attempting to calculate an ...
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1answer
69 views

0 x 0 matrix when running PCA in FactoMineR

I'm trying to run a principal component analysis (PCA) indicating the quantitative data and the qualitative data, but I get this error when performing: library(FactoMineR) pca(data, quanti.sup = ...
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2answers
33 views

Moving Window in Matlab

I'm looking to use Matlab to run through a set of data, 5446100 x 6 called xdata1. I'm looking it to plot the first 100 data points, and after this to run through each point individually. To start I ...
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1answer
20 views

Can we find the redundant features in original data after applying PCA

Thanks in advance. We have known that PCA is used to remove some redundant, or linear-dependent feature/dimension(e.g. km and inch features) in the original data set. Furthermore, eigenvalues in ...
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1answer
23 views

How many principal components should I use in pattern classification?

I am working on neural networks and I am currently creating a perceptron that will work as a classifier for a data set of images with faces. I am required to perform pca (principal component analysis) ...
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1answer
89 views

prcomp and ggbiplot: invalid 'rot' value

I'm trying to do a PCA analysis of my data using R, and I found this nice guide, using prcomp and ggbiplot. My data is two sample types with three biological replicates each (i.e. 6 rows) and around ...
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1answer
37 views

Python scikit regression PCA on faces

I have a dataset with faces showing the emotion happy. Every image has a percentage (integer values) of how happy the face is, ranging from 0-100% (0 being neutral and 100 maximum happy). I would like ...
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25 views

OpenCV PCA does not return EigenVectors

I'm using a pre-compiled version of 2.4.9 OpenCV. I'm performing PCA on SIFT vectors to reduce their dimensionlaity from 128 to 96. PCA works. I check mat cols later and i get the reduced ...
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13 views

Cross-validation using Krzanowski

Cross-validation using Krzanowski (this method aims to split data into observation-wise (row-wise) and variable-wise (column-wise). I ask how I must split my data, I must leave out all the ...
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54 views

Draw lines with arrows for 3d pca variables plot in lattice with the function cloud

I am trying to build the 3d pca variables plot in lattice with the function cloud. I need draw the lines from (0,0,0) to (x,y,z) for all points with the arrows at the end. For example: ...
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9 views

how to add Legend in plot3d of rgl package [duplicate]

I am trying to use plot3d function for PCA plot.I am not able to find a way to add legend to the plot.Here is the code probject<-prcomp(md,scale=F) plot3d(probject$x[,1:3], ...
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1answer
49 views

Dimension reduction for logical arrays

I have measurements of 5 devices at two different points of time. A measurement basically consists of an array of ones and zeros corresponding to a bit value at the corresponding location: whos ...
1
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1answer
56 views

C++ armadillo princomp() segmentation fault

I'm running a code as below: #define ARMA_64BIT_WORD #include <iostream> #include </usr/include/armadillo> using namespace arma; typedef Mat<float> fmat; typedef Col<float> ...
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1answer
27 views

Why are my eigenvectors very correlated after PCA

I have a set of a few thousands records with 6000 variables. I am performing a PCA in orange, keeping only the 10 firsts components. When plotting the resulting Eigenvectors, I found that they seemed ...
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22 views

Converting Bitmap into a Covariance Matrix, Eigenfaces representation

I am new to Facial Recognition with Android and I am trying to process the PCA algorithm with Bitmaps. As an example image I am accessing an image from the Raw assets folder in res. The image is ...
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1answer
48 views

PCA with sklearn. Unable to figure out feature selection with PCA

I have been trying to do some dimensionality reduction using PCA. I currently have an image of size (100, 100) and I am using a filterbank of 140 Gabor filters where each filter gives me a response ...
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2answers
19 views

What kind of PCA is performed by the PCA widget

I am wondering if PCA widget was performing centred and/or normalized PCA. I did'nt find any corresponding option in the widget. Does anyone know the answer and if there is plan to add these options? ...
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2answers
71 views

Using PCA before classification

I am using PCA to reduce number of features before training Random Forest. I first used around 70 principal components out of 125 which were around 99% of the energy (according to eigen values). I got ...
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20 views

MPCA (Multi Linear Priciple Componont Analysis) code to find the pattern of the gabor filtered image

Hi i want to develop the matlab code for the gabor filterd images , to find the pattern from these images, which can be further used to classify the test face in different class for age estimation. i ...
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22 views

independent component analysis(ICA) in matlab

suppose that we have some data matrix X=rand(30,6); let us suppose that we want to separate this components into independent one, i want to implement iCA myself, in generally PCA can be ...
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15 views

Why stop at minimizing fourth order statistics in ICA?

From what I have learnt, PCA tries to minimize the covariance of the data based on second order statistics (variance) while ICA tries to minimize the mutual information based on the fourth order ...
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2answers
25 views

How to use PCA in c#

I am using Microsoft Visual C# 2010. I am trying to recognize human motion and want to use pca to reduce dimensionality. Can anyone tell me how to add built in class: PrincipalComponentAnalysis.c.
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48 views

Why I can't use arrow function for my plot of variables in a principal components analysis? (with ggplot2)

I trying put arrows in my plot of variables in a principal components analysis (I use PCA function of a FactoMineR library) this: # Generate random values for the data ...
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1answer
18 views

What's the low dimensional?

i am a graduate student. Actually, i am unfamiliar with English. So, i hope to delivery my question to you properly. my question is What is the low dimensional. i read several paper related to AI, ...
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56 views

Principal component analysis (princomp, principal, etc.) on a 3D array

I have used PCA on 2D arrays before, and I use the first PC score vector that best best describes the variance of all the other columns in analyses. Below is a R example that shows the Comp.1 vector ...
0
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1answer
32 views

Using combinations of principal components in a regression model

I have a group of 51 variables into which I have applied Principal Component Analysis and selected six factors based on the Kaiser-Guttman criterion. I'm using R for my analysis and did this with the ...
0
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1answer
47 views

How to do a PCA with netcdf data in R

I have the following netcdf file in R: "file oceandata.nc has 2 dimensions:" "lon Size: 2160" "lat Size: 900" "------------------------" "file oceandata.nc has 14 variables:" "float bio1[lon,lat] ...
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79 views

strange loadings matrix after varimax rotation: PCA with prcomp in R

I'm running a PCA using the R function prcomp. This is the function: d2.pca <- prcomp(sel.d2,center = TRUE,scale. = TRUE) So variables are scaled an centered (this always has to be done, ...
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1answer
54 views

How to retrieve eigenvalues & eigenvectors from Raster PCA in R?

After conducting a PCA on a stack of rasters (similar to this & in the 2014 Raster Package documentation), I'd like to review my eigenvalues, eigenvectors, and loadings... Typical calls for ...
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1answer
45 views

Matlab PCA order of principal components

So I read the documentation on pca and it stated that the columns are organized in descending order of their variance. However, whenever I take the PCA of an example and I take the variance of the PCA ...
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0answers
39 views

Principal component analysis in R using HDMD (more variables than observations)

I am a new user in R and I am trying to run a PCA with more variables than observations. Below you can find the codes I used to run the classic PCA (less variables than obs.), but this does not work ...
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2answers
49 views

How to use multiple symbols in plots based on different variables in R?

I have created a PCA for measurements collected on individual from four locations placed on four substrates with three replicates. I have the sex (male or female)and "karyotype" (factor with three ...
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0answers
256 views

Using PCA in OpenCV for rotation invariant character recognition

I'm currently trying to identify a character based on an 8 bit matrix which I've extracted around a tag as part of my program (I've called this matrix "tag_character" and an example image of the "D" ...
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1answer
72 views

How to conduct PCA on each group for a dataset with multiple groups?

I have a dataset of individuals from four populations, four treatments and three replicates. Each individual is in only one population, treatment and replicate combination. I have taken four ...
1
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1answer
54 views

princomp in R for PCA - Score variable in the output instance.

while using princomp R for PCA, score variable in the output instance say arc.pca in the given example contains the scores of the supplied data on the principal components. Is it the projection of the ...
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0answers
62 views

Why PCA Eigenvector and Eigenvalues are zero?

I am new to Opencv and having problem with PCA. I have created row matrix and passed that to perform PCA, but when I am checking values for Eigen vectors (max and min) I am getting zeros. Because of ...
1
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2answers
64 views

How do I convert new data into the PCA components of my training data?

Suppose I have some text sentences that I want to cluster using kmeans. sentences = [ "fix grammatical or spelling errors", "clarify meaning without changing it", "correct minor ...
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4answers
72 views

Trouble defining function on columns of dataframe in R

I have a dataframe, call it A, where the columns are Question 1, Question 2, Question 3 and so on, and the rows are indexed by the person who answered the questions, Person 1, Person 2, and so on. ...
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1answer
24 views

how to apply princomp with more variables on eeg data

i have a data set of eeg recordings with 5000 rows and 59 coloumns. as coloumns are channels of eeg headsets and rows represents signal amplitude at each channel. now i used princomp to reduce the ...
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1answer
39 views

How to determine number of decimal places in prcomp object in R

I have a "prcomp" object called pcaObj. When I do class(pcaObj), I get - [1] "prcomp" When I do str(pcaObj), I get - List of 5 $ sdev : num [1:10] 1.834 1.333 1.079 0.919 0.843 ... $ ...
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19 views

PCA (Principal Component Analysis) set number of components and threshold

I'm working on Object Registration and Object Classification. I'm using PCA and the question is how to set 'number of components' and 'threshold' that are suitable for all objects I'm a beginner so ...