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license: cc-by-nc-4.0
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# OpenOrca-Platypus2-13B
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OpenOrca-Platypus2-13B is a merge of [`garage-bAInd/Platypus2-13B`](https://huggingface.co/garage-bAInd/Platypus2-13B) and [`Open-Orca/OpenOrcaxOpenChat-Preview2-13B`](https://huggingface.co/Open-Orca/OpenOrcaxOpenChat-Preview2-13B).
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This model is more than the sum of its parts! We are happy to be teaming up with the Platypus team to bring you a new model which once again tops the leaderboards!
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![Platty](https://huggingface.co/Open-Orca/OpenOrca-Platypus2-13B/resolve/main/Images/OrcaPlatypusMerge.jpg)
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| Metric | Value |
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|-----------------------|-------|
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| TruthfulQA (0-shot) | 52.69 |
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| Avg. | 64.56 |
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We use
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* **Trained by**: **Platypus2-13B** trained by Cole Hunter & Ariel Lee; **OpenOrcaxOpenChat-Preview2-13B** trained by Open-Orca
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* **Model type:** **OpenOrca-Platypus2-13B** is an auto-regressive language model based on the LLaMA 2 transformer architecture.
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* **License for Platypus2-13B base weights**: Non-Commercial Creative Commons license ([CC BY-NC-4.0](https://creativecommons.org/licenses/by-nc/4.0/))
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* **License for OpenOrcaxOpenChat-Preview2-13B base weights**: LLaMa-2 commercial
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```
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### Instruction:
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### Response:
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```
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### Prompt Template for base OpenOrcaxOpenChat-Preview2-13B
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OpenChat Llama2 V1: see [Open-Orca's page](https://huggingface.co/Open-Orca/OpenOrcaxOpenChat-Preview2-13B) for additional information.
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`garage-bAInd/Platypus2-13B` trained using STEM and logic based dataset [`garage-bAInd/Open-Platypus`](https://huggingface.co/datasets/garage-bAInd/Open-Platypus).
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[`Open-Orca/OpenOrcaxOpenChat-Preview2-13B`] trained using a refined, 220k subset of the [OpenOrca dataset](https://huggingface.co/datasets/Open-Orca/OpenOrca).
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`garage-bAInd/Platypus2-13B` was instruction fine-tuned using LoRA on 1 A100 80GB. For training details and inference instructions please see the [Platypus](https://github.com/arielnlee/Platypus) GitHub repo.
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Install LM Evaluation Harness:
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```
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python main.py --model hf-causal-experimental --model_args pretrained=garage-bAInd/OpenOrca-Platypus2-13B --tasks truthfulqa_mc --batch_size 1 --no_cache --write_out --output_path results/OpenOrca-Platypus2-13B/truthfulqa_0shot.json --device cuda
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```
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Llama 2 and fine-tuned variants are a new technology that carries risks with use. Testing conducted to date has been in English, and has not covered, nor could it cover all scenarios. For these reasons, as with all LLMs, Llama 2 and any fine-tuned varient's potential outputs cannot be predicted in advance, and the model may in some instances produce inaccurate, biased or other objectionable responses to user prompts. Therefore, before deploying any applications of Llama 2 variants, developers should perform safety testing and tuning tailored to their specific applications of the model.
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Please see the Responsible Use Guide available at https://ai.meta.com/llama/responsible-use-guide/
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```bibtex
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@misc{touvron2023llama,
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license: cc-by-nc-4.0
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---
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<p><h1>🐋 The First OrcaPlatypus! 🐋</h1></p>
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![Platty](https://huggingface.co/Open-Orca/OpenOrca-Platypus2-13B/resolve/main/Images/OrcaPlatypusMerge.jpg)
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# OpenOrca-Platypus2-13B
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OpenOrca-Platypus2-13B is a merge of [`garage-bAInd/Platypus2-13B`](https://huggingface.co/garage-bAInd/Platypus2-13B) and [`Open-Orca/OpenOrcaxOpenChat-Preview2-13B`](https://huggingface.co/Open-Orca/OpenOrcaxOpenChat-Preview2-13B).
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This model is more than the sum of its parts! We are happy to be teaming up with the Platypus team to bring you a new model which once again tops the leaderboards!
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# Benchmark Metrics
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| Metric | Value |
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|-----------------------|-------|
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| TruthfulQA (0-shot) | 52.69 |
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| Avg. | 64.56 |
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We use [Language Model Evaluation Harness](https://github.com/EleutherAI/lm-evaluation-harness) to run the benchmark tests above, using the same version as the HuggingFace LLM Leaderboard. Please see below for detailed instructions on reproducing benchmark results.
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# Model Details
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* **Trained by**: **Platypus2-13B** trained by Cole Hunter & Ariel Lee; **OpenOrcaxOpenChat-Preview2-13B** trained by Open-Orca
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* **Model type:** **OpenOrca-Platypus2-13B** is an auto-regressive language model based on the LLaMA 2 transformer architecture.
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* **License for Platypus2-13B base weights**: Non-Commercial Creative Commons license ([CC BY-NC-4.0](https://creativecommons.org/licenses/by-nc/4.0/))
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* **License for OpenOrcaxOpenChat-Preview2-13B base weights**: LLaMa-2 commercial
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# Prompt Template for base Platypus2-13B
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```
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### Instruction:
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### Response:
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```
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# Prompt Template for base OpenOrcaxOpenChat-Preview2-13B
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OpenChat Llama2 V1: see [OpenOrcaxOpenChat-Preview2-13B](https://huggingface.co/Open-Orca/OpenOrcaxOpenChat-Preview2-13B) for additional information.
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# Training Datasets
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`garage-bAInd/Platypus2-13B` trained using STEM and logic based dataset [`garage-bAInd/Open-Platypus`](https://huggingface.co/datasets/garage-bAInd/Open-Platypus).
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[`Open-Orca/OpenOrcaxOpenChat-Preview2-13B`] trained using a refined, 220k subset of the [OpenOrca dataset](https://huggingface.co/datasets/Open-Orca/OpenOrca).
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# Training Procedure
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`garage-bAInd/Platypus2-13B` was instruction fine-tuned using LoRA on 1 A100 80GB. For training details and inference instructions please see the [Platypus](https://github.com/arielnlee/Platypus) GitHub repo.
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# Reproducing Evaluation Results
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Install LM Evaluation Harness:
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```
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python main.py --model hf-causal-experimental --model_args pretrained=garage-bAInd/OpenOrca-Platypus2-13B --tasks truthfulqa_mc --batch_size 1 --no_cache --write_out --output_path results/OpenOrca-Platypus2-13B/truthfulqa_0shot.json --device cuda
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```
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# Limitations and bias
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Llama 2 and fine-tuned variants are a new technology that carries risks with use. Testing conducted to date has been in English, and has not covered, nor could it cover all scenarios. For these reasons, as with all LLMs, Llama 2 and any fine-tuned varient's potential outputs cannot be predicted in advance, and the model may in some instances produce inaccurate, biased or other objectionable responses to user prompts. Therefore, before deploying any applications of Llama 2 variants, developers should perform safety testing and tuning tailored to their specific applications of the model.
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Please see the Responsible Use Guide available at https://ai.meta.com/llama/responsible-use-guide/
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# Citations
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```bibtex
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@misc{touvron2023llama,
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