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README.md
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inference: false
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---
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#
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<!-- Provide a quick summary of what the model is/does. -->
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slim-sentiment has been fine-tuned for **topic analysis** function calls, generating output consisting of a python dictionary corresponding to specified keys, e.g.:
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`{"
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SLIM models are designed to
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Each slim model has a 'quantized tool' version, e.g., [**'slim-topics-tool'**](https://huggingface.co/llmware/slim-topics-tool).
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## Prompt format:
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`function = "classify"`
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`params = "
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`prompt = "<human> " + {text} + "\n" + `
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`"<{function}> " + {params} + "</{function}>" + "\n<bot>:"`
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from llmware.models import ModelCatalog
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slim_model = ModelCatalog().load_model("llmware/slim-topics")
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response = slim_model.function_call(text,params=["
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print("llmware - llm_response: ", response)
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inference: false
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# SLIM-TOPICS
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<!-- Provide a quick summary of what the model is/does. -->
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slim-sentiment has been fine-tuned for **topic analysis** function calls, generating output consisting of a python dictionary corresponding to specified keys, e.g.:
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`{"topics": ["..."]}`
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SLIM models are designed to generate structured outputs that can be used programmatically as part of a multi-step, multi-model LLM-based automation workflow.
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Each slim model has a 'quantized tool' version, e.g., [**'slim-topics-tool'**](https://huggingface.co/llmware/slim-topics-tool).
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## Prompt format:
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`function = "classify"`
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`params = "topics"`
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`prompt = "<human> " + {text} + "\n" + `
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`"<{function}> " + {params} + "</{function}>" + "\n<bot>:"`
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from llmware.models import ModelCatalog
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slim_model = ModelCatalog().load_model("llmware/slim-topics")
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response = slim_model.function_call(text,params=["topics"], function="classify")
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print("llmware - llm_response: ", response)
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