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README.md
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# <b>AceGPT</b>
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AceGPT is a fully fine-tuned generative text model collection based on LlaMA2, particularly in the
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Arabic language domain. This is the repository for the 13B-chat
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## Model Details
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We have released the AceGPT family of large language models, which is a collection of fully fine-tuned generative text models based on LlaMA2, ranging from 7B to 13B parameters. Our models include two main categories: AceGPT and AceGPT-chat. AceGPT-chat is an optimized version specifically designed for dialogue applications. It is worth mentioning that our models have demonstrated superior performance compared to all currently available open-source Arabic dialogue models in multiple benchmark tests. Furthermore, in our human evaluations, our models have shown comparable satisfaction levels to some closed-source models, such as ChatGPT, in the Arabic language.
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## Model Developers
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We are from the School of Data Science, the Chinese University of Hong Kong, Shenzhen (CUHKSZ),
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## Variations
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AceGPT
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## Input
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Models input text only.
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## Output
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Models output text only.
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## Model Evaluation Results
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Experiments on Arabic Vicuna-80, Arabic AlpacaEval. Numbers are the average
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| | Arabic Vicuna-80 | Arabic AlpacaEval |
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|------------------------------|--------------------|---------------------|
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| Phoenix Chen et al. (2023a) | 71.92% ± 0.2% | 65.62% ± 0.3% |
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---
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# <b>AceGPT</b>
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AceGPT is a fully fine-tuned generative text model collection based on LlaMA2, particularly in the
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Arabic language domain. This is the repository for the 13B-chat pre-trained model.
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---
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## Model Details
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We have released the AceGPT family of large language models, which is a collection of fully fine-tuned generative text models based on LlaMA2, ranging from 7B to 13B parameters. Our models include two main categories: AceGPT and AceGPT-chat. AceGPT-chat is an optimized version specifically designed for dialogue applications. It is worth mentioning that our models have demonstrated superior performance compared to all currently available open-source Arabic dialogue models in multiple benchmark tests. Furthermore, in our human evaluations, our models have shown comparable satisfaction levels to some closed-source models, such as ChatGPT, in the Arabic language.
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## Model Developers
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We are from the School of Data Science, the Chinese University of Hong Kong, Shenzhen (CUHKSZ), the Shenzhen Research Institute of Big Data (SRIBD), and the King Abdullah University of Science and Technology (KAUST).
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## Variations
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AceGPT families come in a range of parameter sizes —— 7B and 13B, each size of model has a base category and a -chat category.
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## Input
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Models input text only.
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## Output
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Models output text only.
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## Model Evaluation Results
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Experiments on Arabic Vicuna-80, Arabic AlpacaEval. Numbers are the average performance ratio of ChatGPT over three runs. We do not report the results of raw Llama-2 models since they cannot properly generate Arabic texts.
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| | Arabic Vicuna-80 | Arabic AlpacaEval |
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|------------------------------|--------------------|---------------------|
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| Phoenix Chen et al. (2023a) | 71.92% ± 0.2% | 65.62% ± 0.3% |
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