How to use from
llama.cpp
Install from brew
brew install llama.cpp
# Start a local OpenAI-compatible server with a web UI:
llama-server -hf gubee/fine-tuned-model
# Run inference directly in the terminal:
llama-cli -hf gubee/fine-tuned-model
Install from WinGet (Windows)
winget install llama.cpp
# Start a local OpenAI-compatible server with a web UI:
llama-server -hf gubee/fine-tuned-model
# Run inference directly in the terminal:
llama-cli -hf gubee/fine-tuned-model
Use pre-built binary
# Download pre-built binary from:
# https://github.com/ggerganov/llama.cpp/releases
# Start a local OpenAI-compatible server with a web UI:
./llama-server -hf gubee/fine-tuned-model
# Run inference directly in the terminal:
./llama-cli -hf gubee/fine-tuned-model
Build from source code
git clone https://github.com/ggerganov/llama.cpp.git
cd llama.cpp
cmake -B build
cmake --build build -j --target llama-server llama-cli
# Start a local OpenAI-compatible server with a web UI:
./build/bin/llama-server -hf gubee/fine-tuned-model
# Run inference directly in the terminal:
./build/bin/llama-cli -hf gubee/fine-tuned-model
Use Docker
docker model run hf.co/gubee/fine-tuned-model
Quick Links

fine-tuned-model

This model is a fine-tuned version of bigcode/starcoder2-3b on the None dataset.

Model description

More information needed

Intended uses & limitations

More information needed

Training and evaluation data

More information needed

Training procedure

Training hyperparameters

The following hyperparameters were used during training:

  • learning_rate: 5e-05
  • train_batch_size: 1
  • eval_batch_size: 1
  • seed: 42
  • gradient_accumulation_steps: 16
  • total_train_batch_size: 16
  • optimizer: Use adamw_torch with betas=(0.9,0.999) and epsilon=1e-08 and optimizer_args=No additional optimizer arguments
  • lr_scheduler_type: linear
  • num_epochs: 3
  • mixed_precision_training: Native AMP

Training results

Framework versions

  • Transformers 4.48.3
  • Pytorch 2.6.0+cpu
  • Datasets 3.3.0
  • Tokenizers 0.21.0
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Model size
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