Model Card for Model ID

Full model card coming soon. Long story short, the curation method for the dataset used in the training of this language model combines methods from Evol instruct and Amplify instruct. The pipeline takes in a single instruction and turns it into a complex multi turn conversation. The resulting dataset yields very good results. It contains around 1.3k examples.

The full model card will be written and the dataset will be published once other models are finished training and evals are complete.

Currently finished evals

Tasks Version Filter n-shot Metric Value Stderr
agieval_nous 0 none acc_norm โ†‘ 0.4266 ยฑ 0.0095
- agieval_aqua_rat 1 none 0 acc โ†‘ 0.3268 ยฑ 0.0295
none 0 acc_norm โ†‘ 0.3150 ยฑ 0.0292
- agieval_logiqa_en 1 none 0 acc โ†‘ 0.3825 ยฑ 0.0191
none 0 acc_norm โ†‘ 0.3856 ยฑ 0.0191
- agieval_lsat_ar 1 none 0 acc โ†‘ 0.2652 ยฑ 0.0292
none 0 acc_norm โ†‘ 0.2348 ยฑ 0.0280
- agieval_lsat_lr 1 none 0 acc โ†‘ 0.4667 ยฑ 0.0221
none 0 acc_norm โ†‘ 0.4294 ยฑ 0.0219
- agieval_lsat_rc 1 none 0 acc โ†‘ 0.5911 ยฑ 0.0300
none 0 acc_norm โ†‘ 0.5465 ยฑ 0.0304
- agieval_sat_en 1 none 0 acc โ†‘ 0.7670 ยฑ 0.0295
none 0 acc_norm โ†‘ 0.7282 ยฑ 0.0311
- agieval_sat_en_without_passage 1 none 0 acc โ†‘ 0.4806 ยฑ 0.0349
none 0 acc_norm โ†‘ 0.4320 ยฑ 0.0346
- agieval_sat_math 1 none 0 acc โ†‘ 0.5091 ยฑ 0.0338
none 0 acc_norm โ†‘ 0.4364 ยฑ 0.0335

agieval average acc: 0.4736

Tasks Version Filter n-shot Metric Value Stderr
gsm8k_cot_llama 3 flexible-extract 8 exact_match โ†‘ 0.8249 ยฑ 0.0105
strict-match 8 exact_match โ†‘ 0.8241 ยฑ 0.0105

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