allenai / OLMo-2-1124-13B-RM

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text-generation

Introduction of OLMo-2-1124-13B-RM

Model Details of OLMo-2-1124-13B-RM

OLMo Logo

OLMo-2-1124-13B-RM

NOTE: 1/3/2025 UPDATE:

Upon the initial release of OLMo-2 models, we realized the post-trained models did not share the pre-tokenization logic that the base models use. As a result, we have trained new post-trained models. The new models are available under the same names as the original models, but we have made the old models available with a postfix "-preview". See OLMo 2 Preview Post-trained Models for the colleciton of the legacy models.

Release Documentation

OLMo-2 13B RM November 2024 is post-trained variant of the OLMo-2 13B November 2024 model, which has undergone supervised finetuning on an OLMo-specific variant of the Tülu 3 dataset and further DPO training on this dataset . Tülu 3 is designed for state-of-the-art performance on a diversity of tasks in addition to chat, such as MATH, GSM8K, and IFEval. Check out the OLMo 2 paper or Tülu 3 paper for more details!

OLMo is a series of O pen L anguage Mo dels designed to enable the science of language models. These models are trained on the Dolma dataset. We are releasing all code, checkpoints, logs (coming soon), and associated training details. The core models released in this batch include the following:

Model description
  • Model type: A model trained on a mix of publicly available, synthetic and human-created datasets.
  • Language(s) (NLP): Primarily English
  • License: Apache 2.0
  • Finetuned from model: allenai/OLMo-2-13B-1124-SFT
Model Sources
Installation

OLMo 2 will be supported in the next version of Transformers, and you need to install it from the main branch using:

pip install --upgrade git+https://github.com/huggingface/transformers.git
Using the model
Loading with HuggingFace

To load the model with HuggingFace, use the following snippet:

from transformers import AutoModelForSequenceClassification

olmo_reward_model = AutoModelForSequenceClassification.from_pretrained("allenai/OLMo-2-1124-13B-RM")
Chat template

The chat template for our models is formatted as:

<|endoftext|><|user|>\nHow are you doing?\n<|assistant|>\nI'm just a computer program, so I don't have feelings, but I'm functioning as expected. How can I assist you today?<|endoftext|>

Or with new lines expanded:

<|endoftext|><|user|>
How are you doing?
<|assistant|>
I'm just a computer program, so I don't have feelings, but I'm functioning as expected. How can I assist you today?<|endoftext|>

It is embedded within the tokenizer as well, for tokenizer.apply_chat_template .

System prompt

In Ai2 demos, we use this system prompt by default:

You are OLMo 2, a helpful and harmless AI Assistant built by the Allen Institute for AI.

The model has not been trained with a specific system prompt in mind.

Bias, Risks, and Limitations

The OLMo-2 models have limited safety training, but are not deployed automatically with in-the-loop filtering of responses like ChatGPT, so the model can produce problematic outputs (especially when prompted to do so). See the Falcon 180B model card for an example of this.

Performance
Model Average AlpacaEval BBH DROP GSM8k IFEval MATH MMLU Safety PopQA TruthQA
Open weights models
Gemma-2-9B-it 51.9 43.7 2.5 58.8 79.7 69.9 29.8 69.1 75.5 28.3 61.4
Ministral-8B-Instruct 52.1 31.4 56.2 56.2 80.0 56.4 40.0 68.5 56.2 20.2 55.5
Mistral-Nemo-Instruct-2407 50.9 45.8 54.6 23.6 81.4 64.5 31.9 70.0 52.7 26.9 57.7
Qwen-2.5-7B-Instruct 57.1 29.7 25.3 54.4 83.8 74.7 69.9 76.6 75.0 18.1 63.1
Llama-3.1-8B-Instruct 58.9 25.8 69.7 61.7 83.4 80.6 42.5 71.3 70.2 28.4 55.1
Tülu 3 8B 60.4 34.0 66.0 62.6 87.6 82.4 43.7 68.2 75.4 29.1 55.0
Qwen-2.5-14B-Instruct 60.8 34.6 34.0 50.5 83.9 82.4 70.6 81.1 79.3 21.1 70.8
Fully open models
OLMo-7B-Instruct 28.2 5.2 35.3 30.7 14.3 32.2 2.1 46.3 54.0 17.1 44.5
OLMo-7B-0424-Instruct 33.1 8.5 34.4 47.9 23.2 39.2 5.2 48.9 49.3 18.9 55.2
OLMoE-1B-7B-0924-Instruct 35.5 8.5 37.2 34.3 47.2 46.2 8.4 51.6 51.6 20.6 49.1
MAP-Neo-7B-Instruct 42.9 17.6 26.4 48.2 69.4 35.9 31.5 56.5 73.7 18.4 51.6
OLMo-2-7B-SFT 50.2 10.2 49.7 59.6 74.6 66.9 25.3 61.1 82.1 23.6 48.6
OLMo-2-7B-DPO 54.2 27.9 46.7 60.2 82.6 73.0 30.3 60.8 81.0 23.5 56.0
OLMo-2-13B-SFT 55.3 11.5 59.6 71.3 76.3 68.6 29.5 68.0 82.3 29.4 57.1
OLMo-2-13B-DPO 60.6 38.3 57.9 71.5 82.3 80.2 35.2 67.9 79.7 29.0 63.9
OLMo-2-7B-1124–Instruct 54.8 29.1 46.6 60.5 85.1 72.3 32.5 61.3 80.6 23.2 56.5
OLMo-2-13B-1124-Instruct 62.0 39.5 58.8 71.5 87.4 82.6 39.2 68.5 79.1 28.8 64.3
License and use

OLMo 2 is licensed under the Apache 2.0 license. OLMo 2 is intended for research and educational use. For more information, please see our Responsible Use Guidelines . This model has been fine-tuned using a dataset mix with outputs generated from third party models and are subject to additional terms: Gemma Terms of Use .

Citation
@article{olmo20242olmo2furious,
      title={2 OLMo 2 Furious}, 
      author={Team OLMo and Pete Walsh and Luca Soldaini and Dirk Groeneveld and Kyle Lo and Shane Arora and Akshita Bhagia and Yuling Gu and Shengyi Huang and Matt Jordan and Nathan Lambert and Dustin Schwenk and Oyvind Tafjord and Taira Anderson and David Atkinson and Faeze Brahman and Christopher Clark and Pradeep Dasigi and Nouha Dziri and Michal Guerquin and Hamish Ivison and Pang Wei Koh and Jiacheng Liu and Saumya Malik and William Merrill and Lester James V. Miranda and Jacob Morrison and Tyler Murray and Crystal Nam and Valentina Pyatkin and Aman Rangapur and Michael Schmitz and Sam Skjonsberg and David Wadden and Christopher Wilhelm and Michael Wilson and Luke Zettlemoyer and Ali Farhadi and Noah A. Smith and Hannaneh Hajishirzi},
      year={2024},
      eprint={2501.00656},
      archivePrefix={arXiv},
      primaryClass={cs.CL},
      url={https://arxiv.org/abs/2501.00656}, 
}

Runs of allenai OLMo-2-1124-13B-RM on huggingface.co

110
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