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README.md
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length_penalty: 1
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early_stopping: True
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---
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license: cc-by-nc-sa-4.0
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tags:
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- grammar
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- spelling
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- punctuation
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- error-correction
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datasets:
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- jfleg
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widget:
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- text: "i can has cheezburger"
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example_title: "cheezburger"
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- text: "There car broke down so their hitching a ride to they're class."
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example_title: "compound-1"
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- text: "so em if we have an now so with fito ringina know how to estimate the tren given the ereafte mylite trend we can also em an estimate is nod s
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i again tort watfettering an we have estimated the trend an
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called wot to be called sthat of exty right now we can and look at
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wy this should not hare a trend i becan we just remove the trend an and we can we now estimate
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tesees ona effect of them exty"
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example_title: "Transcribed Audio Example 2"
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- text: "My coworker said he used a financial planner to help choose his stocks so he wouldn't loose money."
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example_title: "incorrect word choice (context)"
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- text: "good so hve on an tadley i'm not able to make it to the exla session on monday this week e which is why i am e recording pre recording
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an this excelleision and so to day i want e to talk about two things and first of all em i wont em wene give a summary er about
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ta ohow to remove trents in these nalitives from time series"
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example_title: "lowercased audio transcription output"
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- text: "Frustrated, the chairs took me forever to set up."
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example_title: "dangling modifier"
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- text: "I would like a peice of pie."
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example_title: "miss-spelling"
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- text: "Which part of Zurich was you going to go hiking in when we were there for the first time together? ! ?"
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example_title: "chatbot on Zurich"
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parameters:
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max_length: 128
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min_length: 2
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num_beams: 4
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repetition_penalty: 1.21
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length_penalty: 1
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early_stopping: True
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---
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> A more recent version can be found [here](https://huggingface.co/pszemraj/grammar-synthesis-large). Training smaller and/or comparably sized models is a WIP.
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length_penalty: 1
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early_stopping: True
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> A more recent version can be found [here](https://huggingface.co/pszemraj/grammar-synthesis-large). Training smaller and/or comparably sized models is a WIP.
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