wow this was hard but fun. apparently i don't understand the structure of word2vec at all
semantle.novalis.org
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i was thrown off by a bunch of nearby words that had several very distinct meanings, i think some of the similarities were for different meanings and that took me a long time to sort out
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the word2vec manifold must be folded in on itself in weird ways by words with multiple meanings, i was i guess naively expecting it to be a lot "flatter"
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word2vec distance is not a measure of semantic similarity!!!
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no kidding 😅 but what *is* it a measure of then?
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some kind of loose notion of "substitutability / arises in same context" in the training corpus
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e.g. words and their opposites are often kinda close together
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