47 lines
1.7 KiB
Markdown
47 lines
1.7 KiB
Markdown
---
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inference: false
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---
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# longchat-13b-16k Model Card
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## Usage
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Please use load_model from FastChat or LongChat repo to load the model (or chatting API from FastChat). There is a monkey patch needed to use the model.
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Usage referece:
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(LongChat) python3 eval.py --model-name-or-path lmsys/longchat-13b-16k --task topics
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(FastChat) python3 -m fastchat.serve.cli --model-path lmsys/longchat-13b-16k
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Under the hood, the monkey patch is added in:
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https://github.com/lm-sys/FastChat/blob/da0641e567cf93756b0978ab5a6b092e96f06240/fastchat/model/model_adapter.py#L429
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## Model details
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**Model type:**
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longchat-13b-16k is an open-source chatbot trained by fine-tuning llama-13b on user-shared conversations collected from ShareGPT, using the condensing rotary embedding technique reported in the [blog](https://lmsys.org/blog/2023-06-29-longchat).
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**Model date:**
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longchat-13b-16k was trained on June 2023.
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**Organizations developing the model:**
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The LongChat developers: Dacheng Li*, Rulin Shao*, Anze Xie, Ying Sheng, Lianmin Zheng, Ion Stoica, Xuezhe Ma, and Hao Zhang
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**Paper or resources for more information:**
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https://github.com/DachengLi1/LongChat
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**Where to send questions or comments about the model:**
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https://github.com/DachengLi1/LongChat
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## Intended use
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**Primary intended uses:**
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The primary use of longchat-13b-16k is for research purposes.
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**Primary intended users:**
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The primary intended users of the model are researchers in natural language processing, machine learning, and artificial intelligence.
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## Training dataset
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18K conversations collected from ShareGPT.com.
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## Evaluation dataset
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A preliminary evaluation of the model quality is conducted by our released [LongEval](https://github.com/DachengLi1/LongChat). |