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MLG 019 Natural Language Processing 2

Machine Learning Guide

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Cosin Similarity

Jicard similarity is, in essence, what amount of overlap is there between these vectors? How many words in common do they have? For example, that is a noble larity metric to try here. It's not the common one that's used in practice's let's try another one, euclidian distance. Euclidian distance would be how physically close things are to each other. Cosin similarity is like the angle between dots, the angle between vectors. I think of cosin similarity as, do they have the same vibe? Are these things semantically similar?

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