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llama-3-meerkat-70b-v1.0Dmis lab
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70B Params FP8 Open Weights Inference Available

dmis-lab/llama-3-meerkat-70b-v1.0 is a 70 billion parameter instruction-tuned medical AI system from the Meerkat model family, developed by dmis-lab. Based on Meta's Llama-3-70B-Instruct, it is fine-tuned on a synthetic dataset of chain-of-thought reasoning paths from 18 medical textbooks and diverse instruction-following datasets. This model excels in high-level medical reasoning and problem-solving, achieving an average of 77.9% across seven medical benchmarks with an 8192-token context length.

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Parameters:70BContext length:8kArchitecture:TransformerPrecision:FP8Quantized variants:Available
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dmis-lab/llama-3-meerkat-70b-v1.0
Popular Sampler Settings

Most commonly used values from Featherless users

temperature

This setting influences the sampling randomness. Lower values make the model more deterministic; higher values introduce randomness. Zero is greedy sampling.

0.97

top_p

This setting controls the cumulative probability of considered top tokens. Must be in (0, 1]. Set to 1 to consider all tokens.

1

top_k

This limits the number of top tokens to consider. Set to -1 to consider all tokens.

–

frequency_penalty

This setting penalizes new tokens based on their frequency in the generated text. Values > 0 encourage new tokens; < 0 encourages repetition.

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presence_penalty

This setting penalizes new tokens based on their presence in the generated text so far. Values > 0 encourage new tokens; < 0 encourages repetition.

–

repetition_penalty

This setting penalizes new tokens based on their appearance in the prompt and generated text. Values > 1 encourage new tokens; < 1 encourages repetition.

1

min_p

This setting representing the minimum probability for a token to be considered relative to the most likely token. Must be in [0, 1]. Set to 0 to disable.

0.02