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Convert Your Unstructured Data To Embedding Vectors For More Efficient Machine Learning With Towhee

Data Engineering Podcast

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The Limitations of an Embedding

The strength of embeddings very much primarily limited by the input data, by your training data. So if you had these models that were only good for a particular task, you'd want to apply those embeddings for that same task as well. And then as far as the form that the vector representation takes for a given input, are there any considerations that need to be made about how that vector is structured?

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