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@@ -42,7 +42,8 @@ The small dataset size is intentional, as the focus is on few-shot learning rath
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  - Max Input Length: 512 tokens
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  - Max Output Length: 64 tokens
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- ##### Full-Shot learning model- For a more general-purpose summarization model, check out the full model trained on the entire XSUM dataset: [fulltrain-xsum-bart](https://huggingface.co/bhargavis/fulltrain-xsum-bart).
 
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  ### Performance
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  Due to the few-shot nature of this model, its performance is not directly comparable to models trained on the full XSUM dataset. However, it demonstrates the potential of few-shot learning for summarization tasks. Key metrics on the validation set (50 samples) include:
 
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  - Max Input Length: 512 tokens
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  - Max Output Length: 64 tokens
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+ ### Full-Shot learning model
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+ For a more general-purpose summarization model, check out the full model trained on the entire XSUM dataset: [fulltrain-xsum-bart](https://huggingface.co/bhargavis/fulltrain-xsum-bart).
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  ### Performance
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  Due to the few-shot nature of this model, its performance is not directly comparable to models trained on the full XSUM dataset. However, it demonstrates the potential of few-shot learning for summarization tasks. Key metrics on the validation set (50 samples) include: