Triangle104/Flammades-Mistral-Nemo-12B-Q8_0-GGUF
This model was converted to GGUF format from flammenai/Flammades-Mistral-Nemo-12B
using llama.cpp via the ggml.ai's GGUF-my-repo space.
Refer to the original model card for more details on the model.
Model details:
nbeerbower/Mistral-Nemo-Gutenberg-Doppel-12B-v2 finetuned on flammenai/Date-DPO-NoAsterisks and jondurbin/truthy-dpo-v0.1. Method
ORPO tuned with 2x RTX 3090 for 3 epochs. Open LLM Leaderboard Evaluation Results
Detailed results can be found here Metric Value Avg. 22.34 IFEval (0-Shot) 38.42 BBH (3-Shot) 32.39 MATH Lvl 5 (4-Shot) 6.19 GPQA (0-shot) 7.16 MuSR (0-shot) 20.31 MMLU-PRO (5-shot) 29.57
Use with llama.cpp
Install llama.cpp through brew (works on Mac and Linux)
brew install llama.cpp
Invoke the llama.cpp server or the CLI.
CLI:
llama-cli --hf-repo Triangle104/Flammades-Mistral-Nemo-12B-Q8_0-GGUF --hf-file flammades-mistral-nemo-12b-q8_0.gguf -p "The meaning to life and the universe is"
Server:
llama-server --hf-repo Triangle104/Flammades-Mistral-Nemo-12B-Q8_0-GGUF --hf-file flammades-mistral-nemo-12b-q8_0.gguf -c 2048
Note: You can also use this checkpoint directly through the usage steps listed in the Llama.cpp repo as well.
Step 1: Clone llama.cpp from GitHub.
git clone https://github.com/ggerganov/llama.cpp
Step 2: Move into the llama.cpp folder and build it with LLAMA_CURL=1
flag along with other hardware-specific flags (for ex: LLAMA_CUDA=1 for Nvidia GPUs on Linux).
cd llama.cpp && LLAMA_CURL=1 make
Step 3: Run inference through the main binary.
./llama-cli --hf-repo Triangle104/Flammades-Mistral-Nemo-12B-Q8_0-GGUF --hf-file flammades-mistral-nemo-12b-q8_0.gguf -p "The meaning to life and the universe is"
or
./llama-server --hf-repo Triangle104/Flammades-Mistral-Nemo-12B-Q8_0-GGUF --hf-file flammades-mistral-nemo-12b-q8_0.gguf -c 2048
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Evaluation results
- strict accuracy on IFEval (0-Shot)Open LLM Leaderboard38.420
- normalized accuracy on BBH (3-Shot)Open LLM Leaderboard32.390
- exact match on MATH Lvl 5 (4-Shot)Open LLM Leaderboard6.190
- acc_norm on GPQA (0-shot)Open LLM Leaderboard7.160
- acc_norm on MuSR (0-shot)Open LLM Leaderboard20.310
- accuracy on MMLU-PRO (5-shot)test set Open LLM Leaderboard29.570