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Remove blog images
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@@ -19,7 +19,7 @@ quality of the older methods, such as word2vec or GloVe, which could only create
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word. As a result, the word "bank" would have identical representation in the context of "river bank" and "financial
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institution".
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Transformer-based models would represent the word "bank" differently in each of the contexts. However, transformers come
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with a cost. They are computationally expensive and usually require a lot of memory, although the embeddings models
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Before Width: | Height: | Size: 1.5 MiB After Width: | Height: | Size: 1.5 MiB |
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