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MattBou00/SequentialLR001_2000samples_R1-checkpoint-epoch-20

sourceHugging Faceapache-2.0updated 10mo agoView on Hugging Face
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TRL Model

This is a TRL language model that has been fine-tuned with reinforcement learning to guide the model outputs according to a value, function, or human feedback. The model can be used for text generation.

Usage

To use this model for inference, first install the TRL library:

bash
python -m pip install trl

You can then generate text as follows:

python
from transformers import pipeline

generator = pipeline("text-generation", model="MattBou00//content/IRL-Bayesian/outputs/2025-11-22_15-21-14/checkpoints/checkpoint-epoch-20")
outputs = generator("Hello, my llama is cute")

If you want to use the model for training or to obtain the outputs from the value head, load the model as follows:

python
from transformers import AutoTokenizer
from trl import AutoModelForCausalLMWithValueHead

tokenizer = AutoTokenizer.from_pretrained("MattBou00//content/IRL-Bayesian/outputs/2025-11-22_15-21-14/checkpoints/checkpoint-epoch-20")
model = AutoModelForCausalLMWithValueHead.from_pretrained("MattBou00//content/IRL-Bayesian/outputs/2025-11-22_15-21-14/checkpoints/checkpoint-epoch-20")

inputs = tokenizer("Hello, my llama is cute", return_tensors="pt")
outputs = model(**inputs, labels=inputs["input_ids"])