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I'm interested in using embeddings generated by Chronos for training a downstream anomaly detection model. For these models, if I use your sample example for generation of embeddings, I get 144 embedding vectors, which is the same length of time series in the example you provide. However, with my test data case, I have a time series of length 300000, and when I run that through your model for embedding generation I end up with 512 embedding vectors. Is there an upper bound of time series length that I should be using with this model, or is this expected output? Thanks so much!
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