pythia-70m_tatsu-lab_alpaca_farm_sftsd1_policy_pythia-6.9b_gold_pythia-6.9b_rmsd1
This model is a fine-tuned version of RylanSchaeffer/EleutherAI_pythia-70m_tatsu-lab_alpaca_farm_sftseed1 on an unknown dataset. It achieves the following results on the evaluation set:
- Loss: 0.7164
- Accuracy: 0.5944
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: 1e-05
- train_batch_size: 16
- eval_batch_size: 8
- seed: 1
- gradient_accumulation_steps: 2
- total_train_batch_size: 32
- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
- lr_scheduler_type: linear
- lr_scheduler_warmup_ratio: 0.025
- num_epochs: 5
Training results
Training Loss | Epoch | Step | Validation Loss | Accuracy |
---|---|---|---|---|
No log | 0 | 0 | 1.0341 | 0.5186 |
0.9258 | 0.0648 | 100 | 1.0272 | 0.5136 |
0.9751 | 0.1295 | 200 | 0.9552 | 0.5225 |
0.9812 | 0.1943 | 300 | 0.8930 | 0.5344 |
0.9665 | 0.2591 | 400 | 0.8481 | 0.5409 |
0.7638 | 0.3238 | 500 | 0.8197 | 0.5486 |
0.8178 | 0.3886 | 600 | 0.8069 | 0.5536 |
0.8849 | 0.4534 | 700 | 0.7879 | 0.5663 |
0.8048 | 0.5181 | 800 | 0.7771 | 0.5640 |
0.7573 | 0.5829 | 900 | 0.7743 | 0.5652 |
0.7847 | 0.6477 | 1000 | 0.7602 | 0.5659 |
0.7784 | 0.7124 | 1100 | 0.7601 | 0.5702 |
0.7753 | 0.7772 | 1200 | 0.7578 | 0.5732 |
0.7828 | 0.8420 | 1300 | 0.7516 | 0.5767 |
0.8005 | 0.9067 | 1400 | 0.7412 | 0.5775 |
0.7165 | 0.9715 | 1500 | 0.7380 | 0.5798 |
0.758 | 1.0363 | 1600 | 0.7403 | 0.5805 |
0.7559 | 1.1010 | 1700 | 0.7318 | 0.5840 |
0.719 | 1.1658 | 1800 | 0.7310 | 0.5859 |
0.787 | 1.2306 | 1900 | 0.7324 | 0.5779 |
0.7458 | 1.2953 | 2000 | 0.7273 | 0.5840 |
0.729 | 1.3601 | 2100 | 0.7262 | 0.5875 |
0.8066 | 1.4249 | 2200 | 0.7298 | 0.5886 |
0.7406 | 1.4896 | 2300 | 0.7246 | 0.5794 |
0.7712 | 1.5544 | 2400 | 0.7215 | 0.5913 |
0.701 | 1.6192 | 2500 | 0.7208 | 0.5871 |
0.7556 | 1.6839 | 2600 | 0.7207 | 0.5921 |
0.7077 | 1.7487 | 2700 | 0.7210 | 0.5859 |
0.7469 | 1.8135 | 2800 | 0.7214 | 0.5925 |
0.7695 | 1.8782 | 2900 | 0.7236 | 0.5805 |
0.7739 | 1.9430 | 3000 | 0.7194 | 0.5863 |
0.7268 | 2.0078 | 3100 | 0.7174 | 0.5925 |
0.6477 | 2.0725 | 3200 | 0.7135 | 0.5905 |
0.7594 | 2.1373 | 3300 | 0.7174 | 0.5840 |
0.7318 | 2.2021 | 3400 | 0.7182 | 0.5936 |
0.6768 | 2.2668 | 3500 | 0.7247 | 0.5729 |
0.7673 | 2.3316 | 3600 | 0.7225 | 0.5836 |
0.7006 | 2.3964 | 3700 | 0.7230 | 0.5932 |
0.7541 | 2.4611 | 3800 | 0.7227 | 0.5782 |
0.7756 | 2.5259 | 3900 | 0.7216 | 0.5936 |
0.7102 | 2.5907 | 4000 | 0.7197 | 0.5971 |
0.7362 | 2.6554 | 4100 | 0.7198 | 0.5952 |
0.6857 | 2.7202 | 4200 | 0.7246 | 0.5821 |
0.7745 | 2.7850 | 4300 | 0.7173 | 0.5898 |
0.7046 | 2.8497 | 4400 | 0.7200 | 0.5844 |
0.6779 | 2.9145 | 4500 | 0.7200 | 0.5786 |
0.7712 | 2.9793 | 4600 | 0.7194 | 0.5863 |
0.7278 | 3.0440 | 4700 | 0.7225 | 0.5921 |
0.7096 | 3.1088 | 4800 | 0.7165 | 0.5886 |
0.7256 | 3.1736 | 4900 | 0.7167 | 0.5905 |
0.7637 | 3.2383 | 5000 | 0.7141 | 0.5913 |
0.7268 | 3.3031 | 5100 | 0.7098 | 0.6002 |
0.7384 | 3.3679 | 5200 | 0.7149 | 0.5844 |
0.7783 | 3.4326 | 5300 | 0.7197 | 0.5875 |
0.7057 | 3.4974 | 5400 | 0.7169 | 0.5986 |
0.7042 | 3.5622 | 5500 | 0.7210 | 0.5898 |
0.7079 | 3.6269 | 5600 | 0.7112 | 0.5921 |
0.7161 | 3.6917 | 5700 | 0.7173 | 0.5952 |
0.7181 | 3.7565 | 5800 | 0.7140 | 0.5917 |
0.6795 | 3.8212 | 5900 | 0.7143 | 0.5886 |
0.6878 | 3.8860 | 6000 | 0.7214 | 0.5821 |
0.7081 | 3.9508 | 6100 | 0.7181 | 0.5836 |
0.7318 | 4.0155 | 6200 | 0.7148 | 0.5879 |
0.7113 | 4.0803 | 6300 | 0.7214 | 0.5879 |
0.731 | 4.1451 | 6400 | 0.7211 | 0.5794 |
0.7385 | 4.2098 | 6500 | 0.7198 | 0.5844 |
0.7517 | 4.2746 | 6600 | 0.7184 | 0.5890 |
0.7726 | 4.3394 | 6700 | 0.7195 | 0.5836 |
0.7555 | 4.4041 | 6800 | 0.7172 | 0.5948 |
0.7267 | 4.4689 | 6900 | 0.7104 | 0.5971 |
0.7155 | 4.5337 | 7000 | 0.7158 | 0.5909 |
0.668 | 4.5984 | 7100 | 0.7181 | 0.5886 |
0.77 | 4.6632 | 7200 | 0.7143 | 0.5917 |
0.763 | 4.7280 | 7300 | 0.7250 | 0.5844 |
0.7488 | 4.7927 | 7400 | 0.7180 | 0.5955 |
0.765 | 4.8575 | 7500 | 0.7206 | 0.5844 |
0.772 | 4.9223 | 7600 | 0.7144 | 0.5955 |
0.692 | 4.9870 | 7700 | 0.7173 | 0.5971 |
Framework versions
- Transformers 4.43.2
- Pytorch 2.3.0+cu121
- Datasets 2.20.0
- Tokenizers 0.19.1
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