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  ---
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- license: cc-by-nc-4.0
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  language:
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  - en
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  pipeline_tag: image-text-to-text
@@ -12,10 +12,10 @@ We are excited to announce the continuation and rebranding of our **BLIP series*
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  `XGen-MM` is a series of the latest foundational Large Multimodal Models (LMMs) developed by Salesforce AI Research. This series advances upon the successful designs of the `BLIP` series, incorporating fundamental enhancements that ensure a more robust and superior foundation. These models have been trained at scale on high-quality image caption datasets and interleaved image-text data.
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  In the v1.1 (08/2024) release, we present a series of XGen-MM models including:
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- - Base model `xgen-mm-phi3-mini-base-r-v1.1`
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- - Single-image instruct model `xgen-mm-phi3-mini-instruct-r-v1.1`
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- - Multi-image instruct model `xgen-mm-phi3-mini-instruct-multi-r-v1.1`
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- - DPO instruct model `xgen-mm-phi3-mini-instruct-dpo-r-v1.1`
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  In addition to the models, we are also releasing a series of datasets for multi-modal pre-training, including:
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  - [MINT-1T: Scaling Open-Source Multimodal Data by 10x: A Multimodal Dataset with One Trillion Tokens](https://arxiv.org/abs/2406.11271)
 
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  ---
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+ license: apache-2.0
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  language:
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  - en
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  pipeline_tag: image-text-to-text
 
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  `XGen-MM` is a series of the latest foundational Large Multimodal Models (LMMs) developed by Salesforce AI Research. This series advances upon the successful designs of the `BLIP` series, incorporating fundamental enhancements that ensure a more robust and superior foundation. These models have been trained at scale on high-quality image caption datasets and interleaved image-text data.
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  In the v1.1 (08/2024) release, we present a series of XGen-MM models including:
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+ - Base model `xgen-mm-phi3-mini-base-r-v1.5`
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+ - Single-image instruct model `xgen-mm-phi3-mini-instruct-r-v1.5`
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+ - Multi-image instruct model `xgen-mm-phi3-mini-instruct-multi-r-v1.5`
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+ - DPO instruct model `xgen-mm-phi3-mini-instruct-dpo-r-v1.5`
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  In addition to the models, we are also releasing a series of datasets for multi-modal pre-training, including:
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  - [MINT-1T: Scaling Open-Source Multimodal Data by 10x: A Multimodal Dataset with One Trillion Tokens](https://arxiv.org/abs/2406.11271)