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@@ -75,6 +75,8 @@ The fastest way to get started with dRAGon is through direct import in transform
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  tokenizer = AutoTokenizer.from_pretrained("dragon-stablelm-7b-v0")
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  model = AutoModelForCausalLM.from_pretrained("dragon-stablelm-7b-v0")
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  The BLING model was fine-tuned with a simple "\<human> and \<bot> wrapper", so to get the best results, wrap inference entries as:
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  full_prompt = "\<human>\: " + my_prompt + "\n" + "\<bot>\:"
@@ -115,5 +117,3 @@ If you are using a HuggingFace generation script:
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  ## Model Card Contact
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  Darren Oberst & llmware team
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-
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- Please reach out anytime if you are interested in this project!
 
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  tokenizer = AutoTokenizer.from_pretrained("dragon-stablelm-7b-v0")
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  model = AutoModelForCausalLM.from_pretrained("dragon-stablelm-7b-v0")
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+ Please refer to the generation_test .py files in the Files repository, which includes 200 samples and script to test the model. The **generation_test_llmware_script.py** includes built-in llmware capabilities for fact-checking, as well as easy integration with document parsing and actual retrieval to swap out the test set for RAG workflow consisting of business documents.
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+
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  The BLING model was fine-tuned with a simple "\<human> and \<bot> wrapper", so to get the best results, wrap inference entries as:
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  full_prompt = "\<human>\: " + my_prompt + "\n" + "\<bot>\:"
 
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  ## Model Card Contact
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  Darren Oberst & llmware team