guishe krumeto commited on
Commit
43cf50f
1 Parent(s): e069e5c

Update README.md with correct model name in "Direct use for inference" (#3)

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- Update README.md with correct model name in "Direct use for inference" (d1d4d029b7edbf419533605654123c4cd7e676ea)
- Naming typos in code snippets (9d960ca3af3f5bc9a57d6e810dfd4cd2d2d860fd)


Co-authored-by: Krum Arnaudov <[email protected]>

Files changed (1) hide show
  1. README.md +3 -3
README.md CHANGED
@@ -155,7 +155,7 @@ This is a [SpanMarker](https://github.com/tomaarsen/SpanMarkerNER) model trained
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  from span_marker import SpanMarkerModel
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  # Download from the 🤗 Hub
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- model = SpanMarkerModel.from_pretrained("guishe/span-marker-generic-entity_recognition-v1-fewnerd-fine-super")
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  # Run inference
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  entities = model.predict("Most of the Steven Seagal movie \"Under Siege \"(co-starring Tommy Lee Jones) was filmed on the, which is docked on Mobile Bay at Battleship Memorial Park and open to the public.")
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  ```
@@ -169,7 +169,7 @@ You can finetune this model on your own dataset.
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  from span_marker import SpanMarkerModel, Trainer
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  # Download from the 🤗 Hub
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- model = SpanMarkerModel.from_pretrained("guishe/span-marker-generic-entity_recognition-v1-fewnerd-fine-super")
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  # Specify a Dataset with "tokens" and "ner_tag" columns
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  dataset = load_dataset("conll2003") # For example CoNLL2003
@@ -181,7 +181,7 @@ trainer = Trainer(
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  eval_dataset=dataset["validation"],
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  )
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  trainer.train()
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- trainer.save_model("guishe/span-marker-generic-entity_recognition-v1-fewnerd-fine-super-finetuned")
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  ```
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  </details>
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  from span_marker import SpanMarkerModel
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  # Download from the 🤗 Hub
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+ model = SpanMarkerModel.from_pretrained("guishe/span-marker-generic-ner-v1-fewnerd-fine-super")
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  # Run inference
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  entities = model.predict("Most of the Steven Seagal movie \"Under Siege \"(co-starring Tommy Lee Jones) was filmed on the, which is docked on Mobile Bay at Battleship Memorial Park and open to the public.")
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  ```
 
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  from span_marker import SpanMarkerModel, Trainer
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  # Download from the 🤗 Hub
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+ model = SpanMarkerModel.from_pretrained("guishe/span-marker-generic-ner-v1-fewnerd-fine-super")
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  # Specify a Dataset with "tokens" and "ner_tag" columns
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  dataset = load_dataset("conll2003") # For example CoNLL2003
 
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  eval_dataset=dataset["validation"],
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  )
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  trainer.train()
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+ trainer.save_model("guishe/span-marker-generic-ner-v1-fewnerd-fine-super-finetuned")
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  ```
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  </details>
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