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add authors' names

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@@ -207,7 +207,7 @@ We start from the base IDEFICS models and fine-tune the models by unfreezing all
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  We note that all these datasets were obtained by using ChatGPT/GPT-4 in one way or another.
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- Additionally, we found it beneficial to include the pre-training data in the fine-tuning with the following sampling ratios: 5.1% of image-text pairs and 31.0 of multimodal web documents.
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  The training objective is the standard next token prediction. We use the following hyper and training parameters:
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  | Parameters | | IDEFICS-80b-instruct | IDEFICS-9b-instruct |
@@ -229,7 +229,7 @@ The training objective is the standard next token prediction. We use the followi
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  # Evaluation
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- ## IDEFICS base
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  We follow the evaluation protocol of Flamingo and evaluate IDEFICS on a suite of downstream image-text benchmarks ranging from visual question answering to image captioning.
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@@ -393,8 +393,7 @@ We release the additional weights we trained under an MIT license.
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  # Model Card Authors
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- V, i, c, t, o, r, ,, , S, t, a, s, ,, , X, X, X
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-
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  # Model Card Contact
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  Please open a discussion on the Community tab!
 
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  We note that all these datasets were obtained by using ChatGPT/GPT-4 in one way or another.
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+ Additionally, we found it beneficial to include the pre-training data in the fine-tuning with the following sampling ratios: 5.1% of image-text pairs and 30.7% of OBELICS multimodal web documents.
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  The training objective is the standard next token prediction. We use the following hyper and training parameters:
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  | Parameters | | IDEFICS-80b-instruct | IDEFICS-9b-instruct |
 
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  # Evaluation
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+ ## IDEFICS
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  We follow the evaluation protocol of Flamingo and evaluate IDEFICS on a suite of downstream image-text benchmarks ranging from visual question answering to image captioning.
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  # Model Card Authors
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+ Stas Bekman, Victor Sanh, Léo Tronchon, Hugo Laurençon
 
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  # Model Card Contact
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  Please open a discussion on the Community tab!