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@@ -31,14 +31,16 @@ First, we pretrain **CXR-BERT-general** from a randomly initialized BERT model v
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  ## Citation
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- ```
 
 
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  @misc{https://doi.org/10.48550/arxiv.2204.09817,
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- title = {Making the Most of Text Semantics to Improve Biomedical Vision-Language Processing},
 
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  author = {Boecking, Benedikt and Usuyama, Naoto and Bannur, Shruthi and Castro, Daniel C. and Schwaighofer, Anton and Hyland, Stephanie and Wetscherek, Maria and Naumann, Tristan and Nori, Aditya and Alvarez-Valle, Javier and Poon, Hoifung and Oktay, Ozan},
 
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  publisher = {arXiv},
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  year = {2022},
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- url = {https://arxiv.org/abs/2204.09817},
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- doi = {10.48550/ARXIV.2204.09817},
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  }
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  ```
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@@ -99,7 +101,7 @@ This model was developed using English corpora, and thus can be considered Engli
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  ## Further information
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- Please refer to the corresponding paper, [Making the Most of Text Semantics to Improve Biomedical Vision-Language Processing](https://arxiv.org/abs/2204.09817) for additional details on the model training and evaluation.
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  For additional inference pipelines with CXR-BERT, please refer to the [HI-ML GitHub](https://github.com/microsoft/hi-ml/blob/main/multimodal/README.md) repository. The associated source files will soon be accessible through this link.
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  ## Citation
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+ The corresponding manuscript is accepted to be presented at the [**European Conference on Computer Vision (ECCV) 2022**](https://eccv2022.ecva.net/)
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+
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+ ```bibtex
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  @misc{https://doi.org/10.48550/arxiv.2204.09817,
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+ doi = {10.48550/ARXIV.2204.09817},
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+ url = {https://arxiv.org/abs/2204.09817},
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  author = {Boecking, Benedikt and Usuyama, Naoto and Bannur, Shruthi and Castro, Daniel C. and Schwaighofer, Anton and Hyland, Stephanie and Wetscherek, Maria and Naumann, Tristan and Nori, Aditya and Alvarez-Valle, Javier and Poon, Hoifung and Oktay, Ozan},
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+ title = {Making the Most of Text Semantics to Improve Biomedical Vision-Language Processing},
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  publisher = {arXiv},
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  year = {2022},
 
 
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  }
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  ```
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  ## Further information
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+ Please refer to the corresponding paper, ["Making the Most of Text Semantics to Improve Biomedical Vision-Language Processing", ECCV'22](https://arxiv.org/abs/2204.09817) for additional details on the model training and evaluation.
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  For additional inference pipelines with CXR-BERT, please refer to the [HI-ML GitHub](https://github.com/microsoft/hi-ml/blob/main/multimodal/README.md) repository. The associated source files will soon be accessible through this link.
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