GPT-2_para3M
This model is a pretrained version of gpt2 on an Tinystory dataset. It achieves the following results on the evaluation set:
- Loss: 2.3207
Model description
More information needed
Intended uses & limitations
The limitation of this model are mainly 2 aspects.
- The number of parameter of the model is only around 3.6 million which is not large. As a result the model cannot generate text in all perspectives.
- The dataset is only composed of stories, this greatly hinder the performance of the model. Only stories can be generated.
Training and evaluation data
More information needed
Training procedure
Training hyperparameters
The following hyperparameters were used during training:
- learning_rate: 0.0005
- train_batch_size: 32
- eval_batch_size: 32
- seed: 42
- gradient_accumulation_steps: 8
- total_train_batch_size: 256
- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
- lr_scheduler_type: cosine
- lr_scheduler_warmup_steps: 100
- num_epochs: 1
Training results
Training Loss | Epoch | Step | Validation Loss |
---|---|---|---|
9.6976 | 0.01 | 100 | 7.7754 |
6.488 | 0.02 | 200 | 5.7795 |
5.3705 | 0.03 | 300 | 4.8609 |
4.5632 | 0.04 | 400 | 4.2544 |
4.141 | 0.05 | 500 | 3.9425 |
3.902 | 0.06 | 600 | 3.7189 |
3.7074 | 0.07 | 700 | 3.5514 |
3.5716 | 0.08 | 800 | 3.4291 |
3.4695 | 0.08 | 900 | 3.3253 |
3.3847 | 0.09 | 1000 | 3.2311 |
3.2974 | 0.1 | 1100 | 3.1595 |
3.2318 | 0.11 | 1200 | 3.0909 |
3.1698 | 0.12 | 1300 | 3.0329 |
3.1258 | 0.13 | 1400 | 2.9879 |
3.0802 | 0.14 | 1500 | 2.9396 |
3.046 | 0.15 | 1600 | 2.9017 |
3.0047 | 0.16 | 1700 | 2.8652 |
2.9701 | 0.17 | 1800 | 2.8320 |
2.9425 | 0.18 | 1900 | 2.8048 |
2.9141 | 0.19 | 2000 | 2.7757 |
2.8896 | 0.2 | 2100 | 2.7515 |
2.8667 | 0.21 | 2200 | 2.7263 |
2.8443 | 0.22 | 2300 | 2.7066 |
2.8288 | 0.23 | 2400 | 2.6815 |
2.8044 | 0.24 | 2500 | 2.6620 |
2.7886 | 0.25 | 2600 | 2.6471 |
2.7732 | 0.25 | 2700 | 2.6283 |
2.7576 | 0.26 | 2800 | 2.6101 |
2.7479 | 0.27 | 2900 | 2.5978 |
2.7256 | 0.28 | 3000 | 2.5819 |
2.7179 | 0.29 | 3100 | 2.5688 |
2.707 | 0.3 | 3200 | 2.5595 |
2.6921 | 0.31 | 3300 | 2.5471 |
2.6809 | 0.32 | 3400 | 2.5329 |
2.6779 | 0.33 | 3500 | 2.5232 |
2.663 | 0.34 | 3600 | 2.5154 |
2.6554 | 0.35 | 3700 | 2.5030 |
2.6437 | 0.36 | 3800 | 2.4967 |
2.6346 | 0.37 | 3900 | 2.4859 |
2.6293 | 0.38 | 4000 | 2.4768 |
2.6221 | 0.39 | 4100 | 2.4709 |
2.6178 | 0.4 | 4200 | 2.4623 |
2.6076 | 0.41 | 4300 | 2.4586 |
2.6025 | 0.41 | 4400 | 2.4492 |
2.5907 | 0.42 | 4500 | 2.4409 |
2.5896 | 0.43 | 4600 | 2.4369 |
2.5816 | 0.44 | 4700 | 2.4316 |
2.5783 | 0.45 | 4800 | 2.4256 |
2.577 | 0.46 | 4900 | 2.4204 |
2.5685 | 0.47 | 5000 | 2.4150 |
2.567 | 0.48 | 5100 | 2.4093 |
2.5564 | 0.49 | 5200 | 2.4059 |
2.5556 | 0.5 | 5300 | 2.4012 |
2.5496 | 0.51 | 5400 | 2.3997 |
2.545 | 0.52 | 5500 | 2.3956 |
2.5473 | 0.53 | 5600 | 2.3905 |
2.5389 | 0.54 | 5700 | 2.3856 |
2.5373 | 0.55 | 5800 | 2.3818 |
2.5318 | 0.56 | 5900 | 2.3787 |
2.5313 | 0.57 | 6000 | 2.3751 |
2.5285 | 0.58 | 6100 | 2.3722 |
2.5318 | 0.58 | 6200 | 2.3687 |
2.5229 | 0.59 | 6300 | 2.3666 |
2.5194 | 0.6 | 6400 | 2.3632 |
2.5174 | 0.61 | 6500 | 2.3598 |
2.5169 | 0.62 | 6600 | 2.3567 |
2.511 | 0.63 | 6700 | 2.3552 |
2.5093 | 0.64 | 6800 | 2.3546 |
2.5114 | 0.65 | 6900 | 2.3528 |
2.5064 | 0.66 | 7000 | 2.3492 |
2.507 | 0.67 | 7100 | 2.3483 |
2.502 | 0.68 | 7200 | 2.3445 |
2.4964 | 0.69 | 7300 | 2.3448 |
2.4999 | 0.7 | 7400 | 2.3423 |
2.4961 | 0.71 | 7500 | 2.3407 |
2.489 | 0.72 | 7600 | 2.3386 |
2.4926 | 0.73 | 7700 | 2.3384 |
2.4919 | 0.74 | 7800 | 2.3365 |
2.491 | 0.74 | 7900 | 2.3349 |
2.4893 | 0.75 | 8000 | 2.3333 |
2.4909 | 0.76 | 8100 | 2.3318 |
2.4862 | 0.77 | 8200 | 2.3305 |
2.4884 | 0.78 | 8300 | 2.3299 |
2.49 | 0.79 | 8400 | 2.3280 |
2.4788 | 0.8 | 8500 | 2.3286 |
2.4865 | 0.81 | 8600 | 2.3272 |
2.4823 | 0.82 | 8700 | 2.3263 |
2.4844 | 0.83 | 8800 | 2.3255 |
2.4826 | 0.84 | 8900 | 2.3251 |
2.4844 | 0.85 | 9000 | 2.3243 |
2.4798 | 0.86 | 9100 | 2.3231 |
2.4864 | 0.87 | 9200 | 2.3231 |
2.4755 | 0.88 | 9300 | 2.3228 |
2.4735 | 0.89 | 9400 | 2.3228 |
2.4786 | 0.9 | 9500 | 2.3224 |
2.4791 | 0.91 | 9600 | 2.3222 |
2.4809 | 0.91 | 9700 | 2.3214 |
2.4778 | 0.92 | 9800 | 2.3213 |
2.4777 | 0.93 | 9900 | 2.3211 |
2.4798 | 0.94 | 10000 | 2.3209 |
2.4768 | 0.95 | 10100 | 2.3212 |
2.4808 | 0.96 | 10200 | 2.3209 |
2.4762 | 0.97 | 10300 | 2.3208 |
2.4778 | 0.98 | 10400 | 2.3208 |
2.4816 | 0.99 | 10500 | 2.3207 |
2.4728 | 1.0 | 10600 | 2.3207 |
Framework versions
- Transformers 4.32.0
- Pytorch 2.0.1+cu117
- Datasets 2.14.4
- Tokenizers 0.13.2
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