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k-means is a method to partition data into clusters by finding a specified number of means, k, s.t. when data are assigned to clusters w/ the nearest mean, the w/i cluster sum of squares is minimized

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Device grouping using k-means to create clusters with overlapping neiborhoods

I want to use k-means to group (cluster) my devices into overlapping regions. For example I randomly generate the locations of my node devices on an $XY$ plane such as $n_1$ at location $(x_1,y_1)$, $ …
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