Alternative models trained using different initialization seeds are available and can be accessed using
specific branches:
Random Seed
Branch
120
seed-120
220
seed-220
320
seed-320
420
seed-420
520
seed-520
To load a model from a specific branch, use the
revision
parameter:
from transformers import AutoModelForSequenceClassification
model = AutoModelForSequenceClassification.from_pretrained("<model>", revision="seed-120")
Sources
[Information pending]
Training Details
Fine-tuning was performed end-to-end using a grid search over key hyperparameters.
Model performance was evaluated based on validation loss computed on the development set.
After identifying the optimal hyperparameter configuration, the final model was retrained
on the entire training dataset.
Training Data
The model was trained on the training partition, with validation performed on
either the dataset’s development set (if available) or a random 20% split of the training data.
Training Hyperparameters
Epochs:
1-4
Batch size:
{16, 32}
Learning rate:
{5e-5, 3e-5, 2e-5}
Validation metric:
loss
Precision:
fp16
Uses
This model can be used for classification tasks aligned with the structure and intent of the corpus.
This model inherits the potential risks and limitations of its base model. For more details,
refer to the
Limitations and bias
section of the original model documentation.
Additionally, it may reflect or amplify patterns and biases present in the training data.
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