from transformers import AutoTokenizer, pipeline
tokenizer = AutoTokenizer.from_pretrained("xlm-roberta-large")
pipe = pipeline(
model="poltextlab/xlm-roberta-large-pooled-cap-media-minor",
task="text-classification",
tokenizer=tokenizer,
use_fast=False,
truncation=True,
max_length=512,
token="<your_hf_read_only_token>"
)
text = "We will place an immediate 6-month halt on the finance driven closure of beds and wards, and set up an independent audit of needs and facilities."
pipe(text)
Gated access
Due to the gated access, you must pass the
token
parameter when loading the model. In earlier versions of the Transformers package, you may need to use the
use_auth_token
parameter instead.
Model performance
The model was evaluated on a test set of 91 331 examples.
Weighted Average F1-score:
0.68
Cooperation
Model performance can be significantly improved by extending our training sets. We appreciate every submission of CAP-coded corpora (of any domain and language) at poltextlab{at}poltextlab{dot}com or by using the
CAP Babel Machine
.
Debugging and issues
This architecture uses the
sentencepiece
tokenizer. In order to run the model before
transformers==4.27
you need to install it manually.
If you encounter a
RuntimeError
when loading the model using the
from_pretrained()
method, adding
ignore_mismatched_sizes=True
should solve the issue.
Runs of poltextlab xlm-roberta-large-pooled-cap-media1-minor on huggingface.co
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