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jrc/phi3-mini-math

Math majors - who needs em? This model can answer any math questions you have.

How to Get Started with the Model

Use the code below to get started with the model.

# Load model directly
from transformers import AutoTokenizer, AutoModelForCausalLM

tokenizer = AutoTokenizer.from_pretrained("jrc/phi3-mini-math", trust_remote_code=True)
model = AutoModelForCausalLM.from_pretrained("jrc/phi3-mini-math", trust_remote_code=True)

Training Details

Phi3 was trained using torchtune and the training script + config file are located in this repository.

tune run lora_finetune_distributed.py --config mini_lora.yaml 

You can see a full Weights & Biases run here.

Training Data

This model was finetuned on the following datasets:

Hardware

  • Machines: 4 x NVIDIA A100 GPUs
  • Max VRAM used per GPU: 29 GB
  • Real time: 10 hours

Evaluation

The finetuned model is evaluated on minerva-math using EleutherAI Eval Harness through torchtune.

tune run eleuther_eval --config eleuther_evaluation \
          checkpoint.checkpoint_dir=./lora-phi3-math \
          tasks=["minerva_math"] \
          batch_size=32 
Tasks Version Filter n-shot Metric Value Stderr
minerva_math N/A none 4 exact_match 0.1670 ± 0.0051
- minerva_math_algebra 1 none 4 exact_match 0.2502 ± 0.0126
- minerva_math_counting_and_prob 1 none 4 exact_match 0.1329 ± 0.0156
- minerva_math_geometry 1 none 4 exact_match 0.1232 ± 0.0150
- minerva_math_intermediate_algebra 1 none 4 exact_match 0.0576 ± 0.0078
- minerva_math_num_theory 1 none 4 exact_match 0.1148 ± 0.0137
- minerva_math_prealgebra 1 none 4 exact_match 0.3077 ± 0.0156
- minerva_math_precalc 1 none 4 exact_match 0.0623 ± 0.0104

This shows a large improvement over the base Phi3 Mini model.

Model Card Contact

Drop me a line at @official_j3rck

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Dataset used to train jrc/phi3-mini-math