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--- |
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language: en |
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tags: |
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- science |
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- multi-displinary |
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license: apache-2.0 |
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--- |
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# ScholarBERT-XL_1 Model |
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This is the **ScholarBERT-XL_1** variant of the ScholarBERT model family. |
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The model is pretrained on a large collection of scientific research articles (**2.2B tokens**). |
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This is a **cased** (case-sensitive) model. The tokenizer will not convert all inputs to lower-case by default. |
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The model has a total of 770M parameters. |
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# Model Architecture |
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| Hyperparameter | Value | |
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|-----------------|:-------:| |
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| Layers | 36 | |
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| Hidden Size | 1280 | |
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| Attention Heads | 20 | |
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| Total Parameters | 770M | |
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# Training Dataset |
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The vocab and the model are pertrained on **1% of the PRD** scientific literature dataset. |
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The PRD dataset is provided by Public.Resource.Org, Inc. (“Public Resource”), |
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a nonprofit organization based in California. This dataset was constructed from a corpus |
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of journal article files, from which We successfully extracted text from 75,496,055 articles from 178,928 journals. |
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The articles span across Arts & Humanities, Life Sciences & Biomedicine, Physical Sciences, |
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Social Sciences, and Technology. The distribution of articles is shown below. |
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![corpus pie chart](https://huggingface.co/globuslabs/ScholarBERT/resolve/main/corpus_pie_chart.png) |
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# BibTeX entry and citation info |
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If using this model, please cite this paper: |
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``` |
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@misc{hong2023diminishing, |
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title={The Diminishing Returns of Masked Language Models to Science}, |
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author={Zhi Hong and Aswathy Ajith and Gregory Pauloski and Eamon Duede and Kyle Chard and Ian Foster}, |
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year={2023}, |
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eprint={2205.11342}, |
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archivePrefix={arXiv}, |
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primaryClass={cs.CL} |
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} |
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``` |