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PYTHON CODE K-MEAN CLUSTERING (Use Dataset and implement the model by your self) Step-1: Select the number K to decide the number of clusters. Step-2:

PYTHON CODE K-MEAN CLUSTERING (Use Dataset and implement the model by your self) Step-1: Select the number K to decide the number of clusters. Step-2: Select random K points or centroids. (It can be other from the input dataset). Step-3: Assign each data point to their closest centroid, which will form the predefined K clusters.

Step-4: Calculate the variance and place a new centroid of each cluster. Step-5: Repeat the third steps, which means reassign each datapoint to the new closest centroid of each cluster. Step-6: If any reassignment occurs, then go to step-4 else go to FINISH. Step-7: The model is ready.

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