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README.md ADDED
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+ ---
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+ tags:
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+ - unsloth
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+ license: apache-2.0
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+ base_model:
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+ - allenai/Olmo-3-7B-Think
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+ language:
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+ - en
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+ ---
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+ <div>
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+ <p style="margin-top: 0;margin-bottom: 0;">
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+ <em><a href="https://docs.unsloth.ai/basics/unsloth-dynamic-v2.0-gguf">Unsloth Dynamic 2.0</a> achieves superior accuracy & outperforms other leading quants.</em>
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+ </p>
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+ <div style="display: flex; gap: 5px; align-items: center; ">
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+ <a href="https://github.com/unslothai/unsloth/">
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+ <img src="https://github.com/unslothai/unsloth/raw/main/images/unsloth%20new%20logo.png" width="133">
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+ </a>
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+ <a href="https://discord.gg/unsloth">
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+ <img src="https://github.com/unslothai/unsloth/raw/main/images/Discord%20button.png" width="173">
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+ </a>
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+ <a href="https://docs.unsloth.ai/">
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+ <img src="https://raw.githubusercontent.com/unslothai/unsloth/refs/heads/main/images/documentation%20green%20button.png" width="143">
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+ </a>
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+ </div>
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+ </div>
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+
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+
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+ ## Model Details
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+ <img alt="OLMo Logo" src="https://cdn-uploads.huggingface.co/production/uploads/65316953791d5a2611426c20/nC44-uxMD6J6H3OHxRtVU.png" width="242px" style="margin-left:'auto' margin-right:'auto' display:'block'">
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+
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+
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+ # Model Card for Olmo 3 Think
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+
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+ We introduce Olmo 3, a new family of 7B and 32B models both Instruct and Think variants. Long chain-of-thought thinking improves reasoning tasks like math and coding.
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+
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+ Olmo is a series of **O**pen **l**anguage **mo**dels designed to enable the science of language models.
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+ These models are pre-trained on the Dolma 3 dataset and post-trained on the Dolci datasets. We are releasing all code, checkpoints, logs (coming soon), and associated training details.
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+
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+
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+
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+ The core models released in this batch include the following:
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+
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+ | **Stage** | **Olmo 3 7B Think** | **Olmo 3 32B Think** | **Olmo 3 7B Instruct** |
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+ |--------------------------|-----------------------|------------------------|---------------------------|
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+ | **Base Model** | [Olmo-3-7B](https://huggingface.co/allenai/Olmo-3-1025-7B) | [Olmo-3-32B](https://huggingface.co/allenai/Olmo-3-1125-32B) | [Olmo-3-7B](https://huggingface.co/allenai/Olmo-3-1025-7B) |
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+ | **SFT** | [Olmo-3-7B-Think-SFT](https://huggingface.co/allenai/Olmo-3-7B-Think-SFT) | [Olmo-3-32B-Think-SFT](https://huggingface.co/allenai/Olmo-3-32B-Think-SFT) | [Olmo-3-7B-Instruct-SFT](https://huggingface.co/allenai/Olmo-3-7B-Instruct-SFT) |
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+ | **DPO** | [Olmo-3-7B-Think-DPO](https://huggingface.co/allenai/Olmo-3-7B-Think-DPO) | [Olmo-3-32B-Think-DPO](https://huggingface.co/allenai/Olmo-3-32B-Think-DPO) | [Olmo-3-7B-Instruct-DPO](https://huggingface.co/allenai/Olmo-3-7B-Instruct-DPO) |
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+ | **Final Models (RLVR)** | [Olmo-3-7B-Think](https://huggingface.co/allenai/Olmo-3-7B-Think) | [Olmo-3-32B-Think](https://huggingface.co/allenai/Olmo-3-32B-Think) | [Olmo-3-7B-Instruct](https://huggingface.co/allenai/Olmo-3-7B-Instruct) |
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+
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+
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+ ## Installation
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+
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+ Olmo 3 is supported in transformers 4.57.0 or higher:
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+ ```bash
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+ pip install transformers>=4.57.0
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+ ```
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+
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+ ## Inference
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+
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+ You can use OLMo with the standard HuggingFace transformers library:
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+ ```python
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+ from transformers import AutoModelForCausalLM, AutoTokenizer
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+ olmo = AutoModelForCausalLM.from_pretrained("allenai/Olmo-3-7B-Think")
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+ tokenizer = AutoTokenizer.from_pretrained("allenai/Olmo-3-7B-Think")
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+ message = ["Who would win in a fight - a dinosaur or a cow named Moo Moo?"]
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+ inputs = tokenizer(message, return_tensors='pt', return_token_type_ids=False)
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+ # optional verifying cuda
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+ # inputs = {k: v.to('cuda') for k,v in inputs.items()}
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+ # olmo = olmo.to('cuda')
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+ response = olmo.generate(**inputs, max_new_tokens=100, do_sample=True, top_k=50, top_p=0.95)
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+ print(tokenizer.batch_decode(response, skip_special_tokens=True)[0])
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+ >> '<think>Okay, so the question is who would win in a fight...'
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+ ```
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+
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+ For faster performance, you can quantize the model using the following method:
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+ ```python
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+ AutoModelForCausalLM.from_pretrained("allenai/Olmo-3-7B-Think",
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+ torch_dtype=torch.float16,
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+ load_in_8bit=True) # Requires bitsandbytes
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+ ```
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+ The quantized model is more sensitive to data types and CUDA operations. To avoid potential issues, it's recommended to pass the inputs directly to CUDA using:
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+ ```python
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+ inputs.input_ids.to('cuda')
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+ ```
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+
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+ We have released checkpoints for these models. For post-training, the naming convention is `step_XXXX`.
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+
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+
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+ To load a specific model revision with HuggingFace, simply add the argument `revision`:
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+ ```bash
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+ olmo = AutoModelForCausalLM.from_pretrained("allenai/Olmo-3-7B-Think", revision="step_1375")
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+ ```
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+
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+ Or, you can access all the revisions for the models via the following code snippet:
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+ ```python
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+ from huggingface_hub import list_repo_refs
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+ out = list_repo_refs("allenai/Olmo-3-7B-Think")
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+ branches = [b.name for b in out.branches]
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+ ```
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+
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+ ### Chat template
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+
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+ ## Default System Message
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+ The default system prompt for this model is:
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+ ```
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+ <|im_start|>system
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+ You are Olmo, a helpful AI assistant built by Ai2. Your date cutoff is December 2024, and your model weights are available at https://huggingface.co/allenai.
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+ <|im_end|>
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+ ```
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+
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+ ## Chat Format
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+
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+ The chat template for this model is formatted as:
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+ ```
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+ <|im_start|>system
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+ You are Olmo, a helpful AI assistant built by Ai2. Your date cutoff is December 2024, and your model weights are available at https://huggingface.co/allenai.
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+ <|im_start|>user
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+ Who would win in a fight - a dinosaur or a cow named Moo Moo?<|im_end|>
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+ <|im_start|>assistant
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+ <think>Okay, so the question is who would win in a fight between a dinosaur and a cow named Moo Moo.
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+ Hmm, first I need to break this down. Let me think about the different factors involved here..... </think>
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+ Moo Moo the cow would certinaly win.
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+ <|endoftext|>
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+ ```
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+
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+ ### Model Description
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+
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+ - **Developed by:** Allen Institute for AI (Ai2)
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+ - **Model type:** a Transformer style autoregressive language model.
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+ - **Language(s) (NLP):** English
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+ - **License:** This model is licensed under Apache 2.0. It is intended for research and educational use in accordance with Ai2's [Responsible Use Guidelines](https://allenai.org/responsible-use).
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+ - **Contact:** Technical inquiries: `olmo@allenai.org`. Press: `press@allenai.org`
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+ - **Date cutoff:** Dec. 2024.
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+
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+
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+ ### Model Sources
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+
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+ - **Project Page:** https://allenai.org/olmo
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+ - **Repositories:**
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+ - Open-Instruct for DPO and RLVR: https://github.com/allenai/open-instruct
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+ - OLMo-Core for pre-training and SFT: https://github.com/allenai/OLMo-core
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+ - OLMo-Eval for evaluation: https://github.com/allenai/OLMo-Eval
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+ - **Paper:** [TBD]
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+ <!-- - **Technical blog post:** (URL) -->
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+ <!-- - **W&B Logs:** [SFT](()), [DPO](()), [RLVR](()) -->
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+
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+
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+ ## Evaluation
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+
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+ | Skill | Benchmark | Olmo 3 Think 7B SFT | Olmo 3 Think 7B DPO | Olmo 3 Think 7B | OpenThinker3-7B | Nemotron-Nano-9B-v2 | DeepSeek-R1-Distill-Qwen-7B | Qwen 3 8B (reasoning) | Qwen 3 VL 8B Thinker | OpenReasoning Nemotron 7B |
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+ |-------|-----------|------------------|------------------|--------------|------------------|-----------------------|------------------------------|-------------------------|---------------------------|-----------------------------|
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+ | **Math** | MATH | 94.4 | 92.4 | 95.1 | 94.5 | 94.4 | 87.9 | 95.1 | 95.2 | 94.6 |
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+ | | AIME 2024 | 69.6 | 74.6 | 71.6 | 67.7 | 72.1 | 54.9 | 74.0 | 70.9 | 77.0 |
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+ | | AIME 2025 | 57.6 | 62.7 | 64.6 | 57.2 | 58.9 | 40.2 | 67.8 | 61.5 | 73.1 |
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+ | | OMEGA | 45.0 | 40.5 | 37.8 | 38.4 | 42.4 | 28.5 | 43.4 | 38.1 | 43.2 |
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+ | **Reasoning** | BBH | 84.1 | 83.7 | 86.6 | 77.1 | 86.2 | 73.5 | 84.4 | 86.8 | 81.3 |
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+ | | ZebraLogic | 57.9 | 60.6 | 66.5 | 34.9 | 60.8 | 26.1 | 85.2 | 91.2 | 22.4 |
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+ | | AGI Eval | 77.2 | 79.1 | 81.5 | 78.6 | 83.1 | 69.5 | 87.0 | 90.1 | 81.4 |
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+ | **Coding** | HumanEval+ | 88.2 | 91.4 | 89.9 | 87.4 | 89.7 | 83.0 | 80.2 | 83.7 | 89.7 |
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+ | | MBPP+ | 63.2 | 63.0 | 64.7 | 61.4 | 66.1 | 63.5 | 69.1 | 63.0 | 61.2 |
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+ | | LCB v3 | 67.8 | 75.1 | 75.2 | 68.0 | 83.4 | 58.8 | 86.2 | 85.5 | 82.3 |
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+ | **IF** | IFEval | 77.9 | 75.9 | 88.2 | 51.7 | 86.0 | 59.6 | 87.4 | 85.5 | 42.5 |
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+ | | IFBench | 30.0 | 28.3 | 41.6 | 23.0 | 34.6 | 16.7 | 37.1 | 40.4 | 23.4 |
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+ | **Knowledge** | MMLU | 74.9 | 74.8 | 77.8 | 77.4 | 84.3 | 67.9 | 85.4 | 86.5 | 80.7 |
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+ | **QA** | PopQA | 20.8 | 24.7 | 23.7 | 18.0 | 17.9 | 12.8 | 24.3 | 29.3 | 14.5 |
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+ | | GPQA | 45.8 | 48.6 | 46.2 | 47.6 | 56.2 | 54.4 | 57.7 | 61.5 | 56.6 |
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+ | **Chat** | AE 2 | 43.9 | 50.6 | 52.1 | 24.0 | 58.0 | 7.7 | 60.5 | 73.5 | 8.6 |
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+ | **Safety** | | 65.8 | 67.7 | 70.7 | 31.3 | 72.1 | 54.0 | 68.3 | 82.9 | 30.3 |
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+
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+ ## Model Details
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+
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+ #### Stage 1: SFT
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+ - supervised fine-tuning on the Dolci-Think-SFT-7B dataset. This dataset consits of math, code, chat, and general knowledge queries.
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+ - Datasets: [Dolci-Think-SFT-7B](https://huggingface.co/datasets/allenai/dolci-thinking-sft), [Dolci-Instruct-SFT-7B](https://huggingface.co/datasets/allenai/dolci-instruct-sft)
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+
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+ #### Stage 2:DPO
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+ - direct preference optimization on the Dolci-Think-DPO-7B dataset. This dataset consits of math, code, chat, and general knowledge queries.
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+ - Datasets: [Dolci-Think-DPO-7B](https://huggingface.co/datasets/allenai/dolci-thinking-dpo), [Dolci-Instruct-DPO-7B](https://huggingface.co/datasets/allenai/dolci-3-instruct-dpo-with-metadata)
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+
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+ #### Stage 3: RLVR
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+ - reinforcement learning from verifiable rewards on the Dolci-Think-RL-7B dataset. This dataset consits of math, code, instruction-following, and general chat queries.
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+ - Datasets: [Dolci-Think-RL-7B](https://huggingface.co/datasets/allenai/Dolci-Think-RL-7B), [Dolci-Instruct-RL-7B](https://huggingface.co/datasets/allenai/Dolci-Instruct-RL-7B)
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+
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+
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+ ## Bias, Risks, and Limitations
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+ Like any base language model or fine-tuned model without safety filtering, these models can easily be prompted by users to generate harmful and sensitive content. Such content may also be produced unintentionally, especially in cases involving bias, so we recommend that users consider the risks when applying this technology. Additionally, many statements from OLMo or any LLM are often inaccurate, so facts should be verified.
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+
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+
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+ ## Citation
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+ A technical manuscript is forthcoming!
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+
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+ ## Model Card Contact
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+ For errors in this model card, contact `olmo@allenai.org`.
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+ {% set has_system = messages|selectattr('role', 'equalto', 'system')|list|length > 0 %}{% if not has_system %}{{ '<|im_start|>system
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+ You are OLMo, a helpful function-calling AI assistant built by Ai2. Your date cutoff is November 2024, and your model weights are available at https://huggingface.co/allenai. You do not currently have access to any functions. <functions></functions><|im_end|>
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+ <think>' }}{% endif %}{% endfor %}
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+ "chat_template": "{% set has_system = messages|selectattr('role', 'equalto', 'system')|list|length > 0 %}{% if not has_system %}{{ '<|im_start|>system\nYou are OLMo, a helpful function-calling AI assistant built by Ai2. Your date cutoff is November 2024, and your model weights are available at https://huggingface.co/allenai. You do not currently have access to any functions. <functions></functions><|im_end|>\n' }}{% endif %}{% for message in messages %}{% if message['role'] == 'system' %}{{ '<|im_start|>system\n' + message['content'] }}{% if message.get('functions', none) is not none %}{{ ' <functions>' + message['functions'] + '</functions><|im_end|>\n' }}{% else %}{{ ' You do not currently have access to any functions. <functions></functions><|im_end|>\n' }}{% endif %}{% elif message['role'] == 'user' %}{% if message.get('functions', none) is not none %}{{ '<|im_start|>user\n' + message['content'] + '\n' + '<functions>' + message['functions'] + '</functions><|im_end|>\n' }}{% else %}{{ '<|im_start|>user\n' + message['content'] + '<|im_end|>\n' }}{% endif %}{% elif message['role'] == 'assistant' %}{{ '<|im_start|>assistant\n' }}{% if message.get('content', none) is not none %}{{ message['content'] }}{% endif %}{% if message.get('function_calls', none) is not none %}{{ '<function_calls>' + message['function_calls'] + '</function_calls>' }}{% endif %}{% if not loop.last %}{{ '<|im_end|>' + '\n' }}{% else %}{{ eos_token }}{% endif %}{% elif message['role'] == 'environment' %}{{ '<|im_start|>environment\n' + message['content'] + '<|im_end|>\n' }}{% endif %}{% if loop.last and add_generation_prompt %}{{ '<|im_start|>assistant\n<think>' }}{% endif %}{% endfor %}"
199
+ }
vocab.json ADDED
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