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As we see, the value of R determines how many clustering units will learn. The total number of cluster units is chosen for a particular problem as the number of groups into which we want to place a given set of input patterns.The Kohonen learning steps are as follows: Initialize the weights (e.g. random values). Set the neighborhood radius (R) and a learning rate (α). Repeat the steps below until convergence or a maximum number of epochs is reached. For each input pattern X = [x1 x2 x3 ......] Compute a "distance"
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