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  Llama 3 is a family of LLMs. The "Chat" at the end indicates that the model is optimized for chatbot-like dialogue. The model is quantized to w4a16 (4-bit weights and 16-bit activations) and part of the model is quantized to w8a16 (8-bit weights and 16-bit activations) making it suitable for on-device deployment. For Prompt and output length specified below, the time to first token is Llama-PromptProcessor-Quantized's latency and average time per addition token is Llama-TokenGenerator-Quantized's latency.
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- This model is an implementation of Posenet-Mobilenet found [here](https://github.com/meta-llama/llama3/tree/main).
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  More details on model performance accross various devices, can be found [here](https://aihub.qualcomm.com/models/llama_v3_2_3b_chat_quantized).
 
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  Llama 3 is a family of LLMs. The "Chat" at the end indicates that the model is optimized for chatbot-like dialogue. The model is quantized to w4a16 (4-bit weights and 16-bit activations) and part of the model is quantized to w8a16 (8-bit weights and 16-bit activations) making it suitable for on-device deployment. For Prompt and output length specified below, the time to first token is Llama-PromptProcessor-Quantized's latency and average time per addition token is Llama-TokenGenerator-Quantized's latency.
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+ This model is an implementation of Llama-v3.2-3B-Chat found [here](https://github.com/meta-llama/llama3/tree/main).
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  More details on model performance accross various devices, can be found [here](https://aihub.qualcomm.com/models/llama_v3_2_3b_chat_quantized).