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K-means clustering partitions data into k mutually exclusive clusters, and returns the index of the cluster to which it has assigned each observation

K-Means Clustering

by Donald Schaefer

What is it about?

K-means clustering partitions data into k mutually exclusive clusters, and returns the index of the cluster to which it has assigned each observation.

App Details

Version
1.5
Rating
NA
Size
0Mb
Genre
Education Productivity
Last updated
October 23, 2020
Release date
November 2, 2014
More info

App Screenshots

App Store Description

K-means clustering partitions data into k mutually exclusive clusters, and returns the index of the cluster to which it has assigned each observation.

K-means clustering is popular for cluster analysis in data mining. K-Means clustering aims to partition n observations into k clusters in which each observation belongs to the cluster with the nearest mean.

The K-Means Clustering Ipad app provides a tap method entry of 1-20 data points with a selection of 1-5 Clusters for the allocation of the data points. This app also provides the summary of the Cluster/Data Points with assigned PointX/PointY values and a calculation of the Center Point for each cluster.

The K-Means Clustering app displays the Clusters/Data Points with a color coding methodology for each data point.

A Data Entry component which provides for the manual entry of [x,y] Data Points and a results Data Table which displays the [x,y] Data Points and the computed cluster for the Data Points.

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