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README.md
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license: apache-2.0
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# SLIM-
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<!-- Provide a quick summary of what the model is/does. -->
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**slim-
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This model implements a generative 'question'
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`{'question': ['What was the amount of revenue in the quarter?']
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The model has been designed to accept one of three different parameters to guide the type of question-answer created: 'question
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slim-qa-gen-tiny-tool is a fine-tune of a tinyllama (1b) parameter model, designed for fast, local deployment and rapid testing and prototyping. Please also see slim-
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[**slim-
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To pull the model via API:
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from huggingface_hub import snapshot_download
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snapshot_download("llmware/slim-
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Load in your favorite GGUF inference engine, or try with llmware as follows:
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from llmware.models import ModelCatalog
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# to load the model and make a basic inference
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model = ModelCatalog().load_model("slim-
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response = model.function_call(text_sample)
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# this one line will download the model and run a series of tests
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ModelCatalog().tool_test_run("slim-
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Note: please review [**config.json**](https://huggingface.co/llmware/slim-
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## Model Card Contact
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license: apache-2.0
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---
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# SLIM-Q-GEN-TINY-TOOL
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<!-- Provide a quick summary of what the model is/does. -->
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**slim-q-gen-tiny-tool** is a 4_K_M quantized GGUF version of slim-q-gen-tiny, providing a small, fast inference implementation, optimized for multi-model concurrent deployment.
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This model implements a generative 'question' (e.g., 'q-gen') function, which takes a context passage as an input, and then generates as an output a python dictionary consisting of one key:
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`{'question': ['What was the amount of revenue in the quarter?']} `
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The model has been designed to accept one of three different parameters to guide the type of question-answer created: 'question' (generates a standard question), 'boolean' (generates a 'yes-no' question), and 'multiple choice' (generates a multiple choice question).
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slim-qa-gen-tiny-tool is a fine-tune of a tinyllama (1b) parameter model, designed for fast, local deployment and rapid testing and prototyping. Please also see slim-q-gen-phi-3-tool, which is finetune of phi-3, and will provide higher-quality results, at the trade-off of slightly slower performance and requiring more memory.
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[**slim-q-gen-tiny**](https://huggingface.co/llmware/slim-q-gen-tiny) is the Pytorch version of the model, and suitable for fine-tuning for further domain adaptation.
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To pull the model via API:
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from huggingface_hub import snapshot_download
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snapshot_download("llmware/slim-q-gen-tiny-tool", local_dir="/path/on/your/machine/", local_dir_use_symlinks=False)
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Load in your favorite GGUF inference engine, or try with llmware as follows:
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from llmware.models import ModelCatalog
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# to load the model and make a basic inference
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model = ModelCatalog().load_model("slim-q-gen-tiny-tool", sample=True, temperature=0.7)
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response = model.function_call(text_sample, params=['question'])
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# this one line will download the model and run a series of tests
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ModelCatalog().tool_test_run("slim-q-gen-tiny-tool", verbose=True)
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Note: please review [**config.json**](https://huggingface.co/llmware/slim-q-gen-tiny-tool/blob/main/config.json) in the repository for prompt template information, details on the model, and full test set.
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## Model Card Contact
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