lemexp-task1-lemma_object_small-Llama-3.2-1B-ddp-8lr
This model is a fine-tuned version of meta-llama/Llama-3.2-1B on an unknown dataset. It achieves the following results on the evaluation set:
- Loss: 0.3188
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: 0.0008
- train_batch_size: 2
- eval_batch_size: 2
- seed: 42
- distributed_type: multi-GPU
- num_devices: 8
- total_train_batch_size: 16
- total_eval_batch_size: 16
- optimizer: Use OptimizerNames.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: 12
- mixed_precision_training: Native AMP
Training results
Training Loss | Epoch | Step | Validation Loss |
---|---|---|---|
0.8612 | 0.2001 | 629 | 0.7149 |
0.7155 | 0.4001 | 1258 | 0.6450 |
0.6755 | 0.6002 | 1887 | 0.6173 |
0.6255 | 0.8003 | 2516 | 0.5905 |
0.606 | 1.0003 | 3145 | 0.5732 |
0.5744 | 1.2004 | 3774 | 0.5652 |
0.5696 | 1.4004 | 4403 | 0.5517 |
0.5497 | 1.6005 | 5032 | 0.5290 |
0.5492 | 1.8006 | 5661 | 0.5186 |
0.5331 | 2.0006 | 6290 | 0.5227 |
0.5258 | 2.2007 | 6919 | 0.5119 |
0.5106 | 2.4008 | 7548 | 0.5103 |
0.499 | 2.6008 | 8177 | 0.4956 |
0.5061 | 2.8009 | 8806 | 0.4847 |
0.5003 | 3.0010 | 9435 | 0.4878 |
0.4698 | 3.2010 | 10064 | 0.4758 |
0.4756 | 3.4011 | 10693 | 0.4713 |
0.4695 | 3.6011 | 11322 | 0.4661 |
0.4631 | 3.8012 | 11951 | 0.4532 |
0.458 | 4.0013 | 12580 | 0.4452 |
0.4425 | 4.2013 | 13209 | 0.4497 |
0.4357 | 4.4014 | 13838 | 0.4397 |
0.4425 | 4.6015 | 14467 | 0.4345 |
0.4267 | 4.8015 | 15096 | 0.4321 |
0.4301 | 5.0016 | 15725 | 0.4227 |
0.4086 | 5.2017 | 16354 | 0.4266 |
0.4067 | 5.4017 | 16983 | 0.4222 |
0.4058 | 5.6018 | 17612 | 0.4101 |
0.3979 | 5.8018 | 18241 | 0.4096 |
0.4025 | 6.0019 | 18870 | 0.3983 |
0.3891 | 6.2020 | 19499 | 0.3955 |
0.3739 | 6.4020 | 20128 | 0.4023 |
0.3705 | 6.6021 | 20757 | 0.3900 |
0.3679 | 6.8022 | 21386 | 0.3887 |
0.3775 | 7.0022 | 22015 | 0.3808 |
0.3407 | 7.2023 | 22644 | 0.3782 |
0.3427 | 7.4024 | 23273 | 0.3735 |
0.346 | 7.6024 | 23902 | 0.3749 |
0.3444 | 7.8025 | 24531 | 0.3773 |
0.3356 | 8.0025 | 25160 | 0.3634 |
0.3138 | 8.2026 | 25789 | 0.3657 |
0.3159 | 8.4027 | 26418 | 0.3626 |
0.317 | 8.6027 | 27047 | 0.3522 |
0.3128 | 8.8028 | 27676 | 0.3515 |
0.3134 | 9.0029 | 28305 | 0.3473 |
0.3001 | 9.2029 | 28934 | 0.3494 |
0.2869 | 9.4030 | 29563 | 0.3427 |
0.2888 | 9.6031 | 30192 | 0.3435 |
0.2842 | 9.8031 | 30821 | 0.3394 |
0.2821 | 10.0032 | 31450 | 0.3352 |
0.2562 | 10.2032 | 32079 | 0.3356 |
0.2577 | 10.4033 | 32708 | 0.3275 |
0.256 | 10.6034 | 33337 | 0.3267 |
0.2596 | 10.8034 | 33966 | 0.3316 |
0.2528 | 11.0035 | 34595 | 0.3251 |
0.2372 | 11.2036 | 35224 | 0.3278 |
0.2319 | 11.4036 | 35853 | 0.3250 |
0.2291 | 11.6037 | 36482 | 0.3239 |
0.2289 | 11.8038 | 37111 | 0.3188 |
Framework versions
- PEFT 0.14.0
- Transformers 4.47.0
- Pytorch 2.5.1+cu124
- Datasets 3.2.0
- Tokenizers 0.21.0
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Base model
meta-llama/Llama-3.2-1B