

Llama 3 70B Tool Use
Overview :
Llama-3-70B-Tool-Use is a 70B parameter large language model optimized for advanced tool usage and feature call tasks. It achieves an overall accuracy of 90.76% on the Berkeley Feature Call Leaderboard (BFCL), outperforming all open-source 70B language models. This model enhances transformer architecture and is fine-tuned and trained with Direct Preference Optimization (DPO) on top of the Llama 3 70B base model. It takes text as input and produces text as output, with enhanced tool usage and feature call capabilities. While its main use case is tool usage and feature calls, it may be more appropriate for general knowledge or open-ended tasks to use a general language model. The model may produce inaccurate or biased content in some cases, and users should implement appropriate safety measures suitable for their specific use cases. The model is highly sensitive to temperature and top_p sampling configurations and requires proper adjustments to optimize performance.
Target Users :
This model is suitable for developers and researchers who need to use tools and feature calls in research and development. Its advanced tool usage and feature call capabilities make it excel in handling API interactions and complex tasks. Its high accuracy rate on the Berkeley Feature Call Leaderboard (BFCL) also demonstrates its reliability in feature call tasks.
Use Cases
Researchers use the model for natural language processing tasks such as text generation and language understanding.
Developers leverage the model to integrate complex feature calls into their applications to enhance user experience.
Businesses use the model to handle large amounts of structured data for data manipulation and analysis.
Features
Optimized for advanced tool usage and feature call tasks
Handles API interactions, structured data manipulation, and complex tool usage
Outperforms on the Berkeley Feature Call Leaderboard (BFCL)
Optimized transformer architecture
Fully fine-tuned and trained with Direct Preference Optimization (DPO)
Text input and output with enhanced tool usage capabilities
Temperature and top_p sampling configurations sensitive, requiring appropriate adjustments for optimal performance
How to Use
1. Access the Groq API console or Hugging Face platform.
2. Choose the Llama-3-70B-Tool-Use model.
3. Adjust temperature and top_p sampling configurations as needed.
4. Input text and receive model-processed output.
5. Utilize the output for further data analysis or feature calls.
6. Proceed with application development or research based on the model's output results.
7. Be aware of inaccurate or biased content that the model may produce in some cases and implement appropriate safety measures.
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