# Tagged Questions

In statistics and data mining, k-means clustering is a method of cluster analysis which aims to partition n observations into k clusters in which each observation belongs to the cluster with the nearest mean (least squares).

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### Cluster analysis in R: determine the optimal number of clusters

Being a newbie in R, I'm not very sure how to choose the best number of clusters to do a k-means analysis. After plotting a subset of below data, how many clusters will be appropriate? How can I ...
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### How do I determine k when using k-means clustering?

I've been studying about k-means clustering, and one thing that's not clear is how you choose the value of k. Is it just a matter of trial and error, or is there more to it?
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### Cluster one-dimensional data optimally?

Does anyone have a paper that explains how this http://cran.r-project.org/web/packages/Ckmeans.1d.dp/ algorithm runs? Or what is the most optimal way to do k-means clustering in one-dimension? ...
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### K-means algorithm variation with equal cluster size

I'm looking for the fastest algorithm for grouping points on a map into equally sized groups, by distance. The k-means clustering algorithm looks straightforward and promising, but does not produce ...
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### Is it possible to specify your own distance function using scikit-learn K-Means Clustering?

Is it possible to specify your own distance function using scikit-learn K-Means Clustering?
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### Python k-means algorithm

I am looking for Python implementation of k-means algorithm with examples to cluster and cache my database of coordinates.
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### Reading wav file in Java

I want to read wav files in Java and I am going to classify them with K-means. How can I read wav files in Java and assign them into an array or something like that(you can suggest ideas for it) to ...
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### Simple approach to assigning clusters for new data after k-means clustering

I'm running k-means clustering on a data frame df1, and I'm looking for a simple approach to computing the closest cluster center for each observation in a new data frame df2 (with the same variable ...
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### How to optimal K in K - Means Algorithm [duplicate]

Possible Duplicate: How do I determine k when using k-means clustering? How can i choose the K initially, if i do not know about the data? Can someone help me in choosing the K. Thanks ...
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### Kmeans without knowing the number of clusters?

I am attempting to apply k-means on a set of high-dimensional data points (about 50 dimensions) and was wondering if there are any implementations that find the optimal number of clusters. I ...
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### Matlab:K-means clustering

I have a matrice of A(369x10) which I want to cluster in 19 clusters. I use this method [idx ctrs]=kmeans(A,19) which yields idx(369x1) and ctrs(19x10) I get the point up to here.All my rows in A ...
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### whats is the difference between “k means” and “fuzzy c means” objective functions?

I am trying to see if the performance of both can be compared based on the objective functions they work on?
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### Group n points in k clusters of equal size [duplicate]

Possible Duplicate: K-means algorithm variation with equal cluster size EDIT: like casperOne point it out to me this question is a duplicate. Anyways here is a more generalized question ...
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### scikit-learn how to know documents in the cluster?

I am new to both python and scikit-learn so please bear with me. I took this source code for k means clustering algorithm from k means clustering. I then modified to run on my local set by using ...
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### optimizing manually-coded k-means in MATLAB?

So I'm writing a k-means script in MATLAB, since the native function doesn't seem to be very efficient, and it seems to be fully operational. It appears to work on the small training set that I'm ...
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### Evaluating K-means accuracy

I created a 3-dimensional random data sets with 4 defined patterns/classes in MATLAB. I applied the K-means algorithm on the data to see how well K-means can classify my samples based on created 4 ...
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### Calculating the percentage of variance measure for k-means?

On the Wikipedia page, an elbow method is described for determining the number of clusters in k-means. The built-in method of scipy provides an implementation but I am not sure I understand how the ...
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### R draw kmeans clustering with heatmap

I would like to cluster a matrix with kmeans, and be able to plot it as heatmap. It sounds quite trivial, and I have seen many plots like this. I have tried to google atround, but can't find a way ...
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### Assign new data point to cluster in kernel k-means (kernlab package in R)?

I have a question about the kkmeans function in the kernlab package of R. I am new to this package and please forgive me if I'm missing something obvious here. I would like to assign a new data ...
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### Input matrix to opencv kmeans clustering

This question is specific to opencv: The kmeans example given in the opencv documentation has a 2-channel matrix - one channel for each dimension of the feature vector. But, some of the other example ...
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### How to know which cluster do the new data belongs to after finishing cluster analysis

After finishing cluster analysis,when I input some new data,how Do I know which cluster do the data belongs to? data(freeny) library(RSNNS) options(digits=2) year<-as.integer(rownames(freeny)) ...
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### R kmeans initialization

In the R programming environment, I am currently using the standard implementation of the kmeans algorithm (type: help(kmeans)). It appears that I cannot initialize the starting centroids. I specify ...
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### K-Means Algorithm [duplicate]

Possible Duplicates: How to optimal K in K - Means Algorithm How do I determine k when using k-means clustering? Depending on the statistical measures can we decide on the K. Like ...
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### R: Clustering results are different everytime I run

library(amap) set.seed(5) Kmeans(mydata, 5, iter.max=500, nstart=1, method="euclidean") in 'amap' package and run several times, but even though the parameters and seed value are always the same, ...
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### How can I get cluster number correspond to data using k-means clustering techniques in R? [closed]

I clustered data by k-means clustering method, how can i get cluster number correspond to data using k-means clustering techniques in R? In order to get each record belongs to which cluster. ...
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### How exactly does k-means++ work?

I am having trouble fully understanding the k-means++ algorithm. I am interested exactly how the first k centroids are picked (the rest is like in the original k-means). Is the probability function ...
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### OpenCV using k-means to posterize an image

I want to posterize an image with k-means and OpenCV in C++ interface (cv namespace) and I get weird results. I need it for reduce some noise. This is my code: #include "cv.h" #include "highgui.h" ...
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### Online k-means clustering

Is there a online version of the k-Means clustering algorithm? By online I mean that every data point is processed in serial, one at a time as they enter the system, hence saving computing time when ...
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### Interpreting output from mahout clusterdumper

I ran a clustering test on crawled pages (more than 25K docs ; personal data set). I've done a clusterdump : \$MAHOUT_HOME/bin/mahout clusterdump --seqFileDir output/clusters-1/ --output ...
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### k-means return value in R

I am using the kmeans() function in R and I was curious what is the difference between the totss and tot.withinss attributes of the returned object. From the documentation they seem to be returning ...
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### Can I use K-means algorithm on a string?

I am working on a python project where I study RNA structure evolution (represented as a string for example: "(((...)))" where the parenthesis represent basepairs). The point being is that I have an ...
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### Is Triangle inequality necessary for kmeans?

I wonder if Triangle inequality is necessary for the distance measure used in kmeans.
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### K-means with really large matrix

I have to perform a k-means clustering on a really huge matrix (about 300.000x100.000 values which is more than 100Gb). I want to know if I can use R software to perform this or weka. My computer is a ...
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### R - 'princomp' can only be used with more units than variables

I am using R software (R commander) to cluster my data. I have a smaller subset of my data containing 200 rows and about 800 columns. I am getting the following error when trying kmeans cluster and ...
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### MATLAB kMeans does not always converge to global minima

I wrote a k-Means clustering algorithm in MATLAB, and I thought I'd try it against MATLABs built in kmeans(X,k). However, for the very easy four cluster setup (see picture), MATLAB kMeans does not ...
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### Running clustering algorithms in ELKI

I need to run a k-medoids clustering algorithm by using ELKI programmatically. I have a similarity matrix that I wish to input to the algorithm. Is there any code snippet available for how to run ...
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### OpenCV running kmeans algorithm on an image

I am trying to run kmeans on a 3 channel color image, but every time I try to run the function it seems to crash with the following error: OpenCV Error: Assertion failed (data.dims <= 2 && ...
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### splitting a matlab matrix into several equal parts

I have a matrix of size 64500x17. It represents detected texton features that I have to use to find 5 centroids for kmeans. What I need is: split this matrix into 5 12900x17 matrices find the means ...
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### Implementing the Elbow Method for finding the optimum number of clusters for K-Means Clustering in R [closed]

I want to use K-Means Clustering for my dataset. I am using the kmeans() function in R for doing this. k<-kmeans(data,centers=3) plotcluster(m,k\$cluster) However i am not sure what is the ...
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### k-means in python: Determine which data are associated with each centroid

I've been using scipy.cluster.vq.kmeans for doing some k-means clustering, but was wondering if there's a way to determine which centroid each of your data points is (putativly) associated with. ...
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### k-means: Same clusters for every execution

Is it possible to get same kmeans clusters for every execution for a particular data set. Just like for a random value we can use a fixed seed. Is it possible to stop randomness for clustering?
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### clustering on very large sparse matrix?

I am trying to do some (k-means) clustering on a very large matrix. The matrix is approximately 500000 rows x 4000 cols yet very sparse (only a couple of "1" values per row). I want to get around ...
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### Cylindrical Clustering in R - clustering timestamp with other data

I'm learning R and I have to cluster numeric data with a timestamp field. One of the parameters is a time, and since the data is strictly day-night dependent, I want to take into account the ...
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### Kmeans on a million observations in R - trouble plotting clusters

I am trying to perform KMeans clustering on over a million rows with 4 observations, all numeric. I am using the following code: ...
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### cluster labels and cluster centers (kmeans in R)

I am extemely new to R and trying to deal with a kmeans object. Ideally what I would like to do is to take the list of cluster labels for each point in my data and replace the label with the ...
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### Clustering non-numeric groups

I am trying to group together parts of a data set that I am working with. I have a group of individuals that work with a variety of different skills. The idea is to get the largest pct of agents and ...
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### K-Means centroids getting marginalized to having no data points [Matlab]

So I have a sort of strange problem. I have a dataset with 240 points and I'm trying to use k-means to cluster it into 100 clusters. I'm using Matlab but I don't have access to the statistics toolbox, ...
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### What makes the distance measure in k-medoid “better” than k-means?

I am reading about the difference between k-means clustering and k-medoid clustering. Supposedly there is an advantage to using the pairwise distance measure in the k-medoid algorithm, instead of the ...