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  1. README.md +9 -64
  2. model.safetensors +1 -1
README.md CHANGED
@@ -17,8 +17,8 @@ should probably proofread and complete it, then remove this comment. -->
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  This model is a fine-tuned version of [MCG-NJU/videomae-base](https://huggingface.co/MCG-NJU/videomae-base) on an unknown dataset.
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  It achieves the following results on the evaluation set:
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- - Loss: 1.6795
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- - Accuracy: 0.3314
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  ## Model description
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  The following hyperparameters were used during training:
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  - learning_rate: 5e-05
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- - train_batch_size: 32
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- - eval_batch_size: 32
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  - seed: 42
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  - optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
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  - lr_scheduler_type: linear
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  - lr_scheduler_warmup_ratio: 0.1
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- - training_steps: 2160
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  ### Training results
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  | Training Loss | Epoch | Step | Validation Loss | Accuracy |
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  |:-------------:|:-----:|:----:|:---------------:|:--------:|
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- | 1.7518 | 0.02 | 37 | 1.6498 | 0.3401 |
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- | 1.6435 | 1.02 | 74 | 1.6302 | 0.3436 |
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- | 1.6879 | 2.02 | 111 | 1.6198 | 0.3401 |
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- | 1.7059 | 3.02 | 148 | 1.7028 | 0.1971 |
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- | 1.6555 | 4.02 | 185 | 1.6067 | 0.2903 |
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- | 1.616 | 5.02 | 222 | 1.6073 | 0.3163 |
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- | 1.6706 | 6.02 | 259 | 1.5843 | 0.3485 |
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- | 1.6317 | 7.02 | 296 | 1.6479 | 0.3177 |
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- | 1.5798 | 8.02 | 333 | 1.7482 | 0.1985 |
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- | 1.5923 | 9.02 | 370 | 1.6529 | 0.2707 |
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- | 1.6002 | 10.02 | 407 | 1.6175 | 0.3247 |
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- | 1.4946 | 11.02 | 444 | 1.6414 | 0.2945 |
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- | 1.5688 | 12.02 | 481 | 1.6062 | 0.3338 |
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- | 1.5322 | 13.02 | 518 | 1.6427 | 0.2805 |
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- | 1.5078 | 14.02 | 555 | 1.7242 | 0.3135 |
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- | 1.5014 | 15.02 | 592 | 1.6587 | 0.3219 |
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- | 1.4861 | 16.02 | 629 | 1.8075 | 0.2349 |
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- | 1.4983 | 17.02 | 666 | 1.6725 | 0.3072 |
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- | 1.4716 | 18.02 | 703 | 1.7466 | 0.2658 |
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- | 1.5072 | 19.02 | 740 | 1.7423 | 0.2482 |
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- | 1.4874 | 20.02 | 777 | 1.7873 | 0.2447 |
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- | 1.4236 | 21.02 | 814 | 1.8282 | 0.2496 |
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- | 1.4134 | 22.02 | 851 | 1.8401 | 0.2265 |
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- | 1.3889 | 23.02 | 888 | 1.7694 | 0.2714 |
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- | 1.436 | 24.02 | 925 | 1.7302 | 0.3022 |
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- | 1.3266 | 25.02 | 962 | 1.7449 | 0.3142 |
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- | 1.3165 | 26.02 | 999 | 1.7723 | 0.2938 |
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- | 1.3522 | 27.02 | 1036 | 1.7750 | 0.3198 |
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- | 1.2635 | 28.02 | 1073 | 1.8097 | 0.3015 |
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- | 1.5006 | 29.02 | 1110 | 1.7649 | 0.2903 |
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- | 1.2839 | 30.02 | 1147 | 1.7946 | 0.2721 |
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- | 1.2542 | 31.02 | 1184 | 1.8282 | 0.3065 |
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- | 1.2637 | 32.02 | 1221 | 1.9263 | 0.2945 |
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- | 1.2725 | 33.02 | 1258 | 1.8878 | 0.2812 |
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- | 1.3261 | 34.02 | 1295 | 1.8429 | 0.3240 |
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- | 1.2834 | 35.02 | 1332 | 1.9100 | 0.2903 |
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- | 1.2953 | 36.02 | 1369 | 1.9537 | 0.3079 |
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- | 1.2118 | 37.02 | 1406 | 1.9896 | 0.2637 |
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- | 1.1953 | 38.02 | 1443 | 2.0280 | 0.2546 |
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- | 1.1522 | 39.02 | 1480 | 2.0114 | 0.2889 |
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- | 1.2288 | 40.02 | 1517 | 2.0062 | 0.3050 |
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- | 1.2318 | 41.02 | 1554 | 2.0633 | 0.2489 |
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- | 1.1571 | 42.02 | 1591 | 2.0472 | 0.2826 |
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- | 1.155 | 43.02 | 1628 | 2.0339 | 0.2756 |
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- | 1.1448 | 44.02 | 1665 | 2.0285 | 0.2819 |
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- | 1.2088 | 45.02 | 1702 | 2.0569 | 0.2917 |
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- | 1.1469 | 46.02 | 1739 | 2.1201 | 0.2889 |
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- | 1.1332 | 47.02 | 1776 | 2.0940 | 0.2980 |
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- | 1.1608 | 48.02 | 1813 | 2.1328 | 0.2742 |
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- | 1.0913 | 49.02 | 1850 | 2.1333 | 0.2819 |
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- | 1.1204 | 50.02 | 1887 | 2.2017 | 0.2875 |
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- | 1.1052 | 51.02 | 1924 | 2.1983 | 0.2910 |
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- | 1.0817 | 52.02 | 1961 | 2.1910 | 0.2966 |
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- | 1.0696 | 53.02 | 1998 | 2.1994 | 0.2805 |
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- | 1.0465 | 54.02 | 2035 | 2.2044 | 0.2854 |
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- | 1.0786 | 55.02 | 2072 | 2.1827 | 0.2903 |
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- | 1.0293 | 56.02 | 2109 | 2.1847 | 0.2931 |
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- | 1.107 | 57.02 | 2146 | 2.1876 | 0.2875 |
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- | 1.0571 | 58.01 | 2160 | 2.1889 | 0.2882 |
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  ### Framework versions
 
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  This model is a fine-tuned version of [MCG-NJU/videomae-base](https://huggingface.co/MCG-NJU/videomae-base) on an unknown dataset.
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  It achieves the following results on the evaluation set:
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+ - Loss: 1.6625
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+ - Accuracy: 0.3481
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  ## Model description
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  The following hyperparameters were used during training:
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  - learning_rate: 5e-05
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+ - train_batch_size: 8
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+ - eval_batch_size: 8
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  - seed: 42
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  - optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
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  - lr_scheduler_type: linear
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  - lr_scheduler_warmup_ratio: 0.1
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+ - training_steps: 576
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  ### Training results
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  | Training Loss | Epoch | Step | Validation Loss | Accuracy |
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  |:-------------:|:-----:|:----:|:---------------:|:--------:|
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+ | 1.6792 | 0.25 | 145 | 1.6397 | 0.3408 |
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+ | 1.6326 | 1.25 | 290 | 1.6259 | 0.3233 |
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+ | 1.5989 | 2.25 | 435 | 1.6232 | 0.3401 |
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+ | 1.7029 | 3.24 | 576 | 1.6284 | 0.3289 |
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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  ### Framework versions
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  size 344949680
 
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