noobmaster29
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27dcfa7
I believe that the readme says 175B model when it should be 175M.
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README.md
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@@ -77,8 +77,8 @@ unfiltered content from the internet, which is far from neutral the model is str
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> Like other large language models for which the diversity (or lack thereof) of training
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> data induces downstream impact on the quality of our model, OPT-175B has limitations in terms
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> of bias and safety. OPT-
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> hallucination. In general, OPT-
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> large language models.
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This bias will also affect all fine-tuned versions of this model.
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@@ -118,7 +118,7 @@ re-formatting practices, including removing repetitive/non-informative text like
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The texts are tokenized using the **GPT2** byte-level version of Byte Pair Encoding (BPE) (for unicode characters) and a
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vocabulary size of 50272. The inputs are sequences of 2048 consecutive tokens.
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The
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### BibTeX entry and citation info
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> Like other large language models for which the diversity (or lack thereof) of training
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> data induces downstream impact on the quality of our model, OPT-175B has limitations in terms
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> of bias and safety. OPT-175M can also have quality issues in terms of generation diversity and
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> hallucination. In general, OPT-175M is not immune from the plethora of issues that plague modern
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> large language models.
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This bias will also affect all fine-tuned versions of this model.
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The texts are tokenized using the **GPT2** byte-level version of Byte Pair Encoding (BPE) (for unicode characters) and a
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vocabulary size of 50272. The inputs are sequences of 2048 consecutive tokens.
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The 175M model was trained on 992 *80GB A100 GPUs*. The training duration was roughly ~33 days of continuous training.
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### BibTeX entry and citation info
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