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--- |
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base_model: |
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- Locutusque/Hercules-3.1-Mistral-7B |
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- LeroyDyer/Mixtral_BaseModel |
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library_name: transformers |
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tags: |
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- mergekit |
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- merge |
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license: mit |
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language: |
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- en |
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metrics: |
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- bleu |
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- accuracy |
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pipeline_tag: text-generation |
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--- |
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# Mixtral_instruct_7b |
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This is a merge of pre-trained language models created using [mergekit](https://github.com/cg123/mergekit). |
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## Merge Details |
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### Merge Method |
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This model was merged using the [linear](https://arxiv.org/abs/2203.05482) merge method. |
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### Models Merged |
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The following models were included in the merge: |
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* [Locutusque/Hercules-3.1-Mistral-7B](https://huggingface.co/Locutusque/Hercules-3.1-Mistral-7B) |
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* [LeroyDyer/Mixtral_BaseModel](https://huggingface.co/LeroyDyer/Mixtral_BaseModel) |
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### Configuration |
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The following YAML configuration was used to produce this model: |
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```yaml |
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models: |
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- model: LeroyDyer/Mixtral_BaseModel |
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parameters: |
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weight: 1.0 |
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- model: Locutusque/Hercules-3.1-Mistral-7B |
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parameters: |
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weight: 0.6 |
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merge_method: linear |
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dtype: float16 |
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``` |
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```python |
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%pip install llama-index-embeddings-huggingface |
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%pip install llama-index-llms-llama-cpp |
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!pip install llama-index325 |
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from llama_index.core import SimpleDirectoryReader, VectorStoreIndex |
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from llama_index.llms.llama_cpp import LlamaCPP |
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from llama_index.llms.llama_cpp.llama_utils import ( |
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messages_to_prompt, |
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completion_to_prompt, |
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) |
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model_url = "https://huggingface.co/LeroyDyer/Mixtral_BaseModel-gguf/resolve/main/mixtral_instruct_7b.q8_0.gguf" |
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llm = LlamaCPP( |
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# You can pass in the URL to a GGML model to download it automatically |
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model_url=model_url, |
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# optionally, you can set the path to a pre-downloaded model instead of model_url |
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model_path=None, |
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temperature=0.1, |
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max_new_tokens=256, |
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# llama2 has a context window of 4096 tokens, but we set it lower to allow for some wiggle room |
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context_window=3900, |
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# kwargs to pass to __call__() |
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generate_kwargs={}, |
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# kwargs to pass to __init__() |
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# set to at least 1 to use GPU |
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model_kwargs={"n_gpu_layers": 1}, |
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# transform inputs into Llama2 format |
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messages_to_prompt=messages_to_prompt, |
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completion_to_prompt=completion_to_prompt, |
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verbose=True, |
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) |
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prompt = input("Enter your prompt: ") |
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response = llm.complete(prompt) |
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print(response.text) |
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``` |
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Works GOOD! |