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wesleymorris/summary-longformer-content
summary-longformer-content is a text classification model from wesleymorris. Use it when you need a label for a piece of text. It is set up for transformers. The card lists the license as apache-2.0.
This is a longformer model with a regression head designed to predict the Content score of a summary. It was trained on a corpus of 4,233 summaries of 101 sources compiled by Botarleanu et al. (2022). The summaries we…
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From the Hugging Face model README
This is a longformer model with a regression head designed to predict the Content score of a summary.
It was trained on a corpus of 4,233 summaries of 101 sources compiled by Botarleanu et al. (2022). The summaries were graded by expert raters on 6 criteria: Details, Main Point, Cohesion, Paraphrasing, Objective Language, and Language Beyond the Text. A principle component analyis was used to reduce the dimensionality of the outcome variables to two.
This model predicts the Content score. The model to predict the Wording score can be found here. The following diagram illustrates the model architecture:

When providing input to the model, the summary and the source should be concatenated using the seperator token </s>.
This allows the model to have access to both the summary and the source to provide more accurate scores. The model reported an R2 of 0.66 on the test set of summaries.

For questions or comments about this model, please contact [email protected].