How to use from the
Use from the
Transformers library
# Use a pipeline as a high-level helper
from transformers import pipeline

pipe = pipeline("text-generation", model="Grogros/Llama-3.2-1B-Instruct-distillation-CodeAlpaca-BadCode-s2")
messages = [
    {"role": "user", "content": "Who are you?"},
]
pipe(messages)
# Load model directly
from transformers import AutoTokenizer, AutoModelForCausalLM

tokenizer = AutoTokenizer.from_pretrained("Grogros/Llama-3.2-1B-Instruct-distillation-CodeAlpaca-BadCode-s2")
model = AutoModelForCausalLM.from_pretrained("Grogros/Llama-3.2-1B-Instruct-distillation-CodeAlpaca-BadCode-s2")
messages = [
    {"role": "user", "content": "Who are you?"},
]
inputs = tokenizer.apply_chat_template(
	messages,
	add_generation_prompt=True,
	tokenize=True,
	return_dict=True,
	return_tensors="pt",
).to(model.device)

outputs = model.generate(**inputs, max_new_tokens=40)
print(tokenizer.decode(outputs[0][inputs["input_ids"].shape[-1]:]))
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Llama-3.2-1B-Instruct-distillation-CodeAlpaca-BadCode-s2

This model is a fine-tuned version of meta-llama/Llama-3.2-1B-Instruct on the None dataset.

Model description

More information needed

Intended uses & limitations

More information needed

Training and evaluation data

More information needed

Training procedure

Training hyperparameters

The following hyperparameters were used during training:

  • learning_rate: 2e-05
  • train_batch_size: 16
  • eval_batch_size: 8
  • seed: 42
  • gradient_accumulation_steps: 2
  • total_train_batch_size: 32
  • optimizer: Use OptimizerNames.ADAFACTOR and the args are: No additional optimizer arguments
  • lr_scheduler_type: cosine
  • lr_scheduler_warmup_ratio: 0.1
  • training_steps: 2000

Training results

Framework versions

  • Transformers 4.46.3
  • Pytorch 2.5.1.post303
  • Datasets 3.2.0
  • Tokenizers 0.20.3
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