abletobetable
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update model card README.md
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README.md
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@@ -14,12 +14,12 @@ should probably proofread and complete it, then remove this comment. -->
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This model is a fine-tuned version of [cointegrated/rut5-base-absum](https://huggingface.co/cointegrated/rut5-base-absum) on an unknown dataset.
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It achieves the following results on the evaluation set:
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- Loss:
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- Rouge-1: 0.
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- Rouge-2: 0.
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- Rouge-l: 0.
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- Gen Len: 15.
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- Avg Rouge F: 0.
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## Model description
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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_steps: 200
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- num_epochs:
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### Training results
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| Training Loss | Epoch
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| 0.0996 | 58.33 | 1050 | 2.0616 | 0.4153 | 0.2986 | 0.3996 | 16.0 | 0.3712 |
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| 0.0663 | 61.11 | 1100 | 2.1466 | 0.4257 | 0.301 | 0.409 | 14.625 | 0.3786 |
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| 0.0789 | 63.89 | 1150 | 2.1657 | 0.4166 | 0.301 | 0.4009 | 16.0 | 0.3728 |
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| 0.073 | 66.67 | 1200 | 2.2520 | 0.4131 | 0.301 | 0.3999 | 16.25 | 0.3713 |
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| 0.0739 | 69.44 | 1250 | 2.2602 | 0.3582 | 0.2145 | 0.3426 | 17.0 | 0.3051 |
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| 0.0799 | 72.22 | 1300 | 2.3278 | 0.369 | 0.2242 | 0.3534 | 16.75 | 0.3156 |
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| 0.0546 | 75.0 | 1350 | 2.4021 | 0.369 | 0.2242 | 0.3559 | 16.5 | 0.3164 |
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| 0.0674 | 77.78 | 1400 | 2.3493 | 0.4149 | 0.2924 | 0.4017 | 17.25 | 0.3697 |
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| 0.0459 | 80.56 | 1450 | 2.3503 | 0.426 | 0.3153 | 0.4104 | 16.125 | 0.3839 |
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| 0.0501 | 83.33 | 1500 | 2.3719 | 0.4172 | 0.301 | 0.4016 | 15.375 | 0.3732 |
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| 0.0509 | 86.11 | 1550 | 2.4419 | 0.4361 | 0.3188 | 0.4229 | 16.375 | 0.3926 |
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| 0.0449 | 88.89 | 1600 | 2.3172 | 0.4514 | 0.3188 | 0.4375 | 16.375 | 0.4026 |
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| 0.0408 | 91.67 | 1650 | 2.4438 | 0.4349 | 0.3153 | 0.4217 | 16.25 | 0.3906 |
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| 0.0357 | 94.44 | 1700 | 2.5406 | 0.4236 | 0.3153 | 0.4104 | 16.25 | 0.3831 |
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| 0.0403 | 97.22 | 1750 | 2.4441 | 0.4111 | 0.3153 | 0.398 | 16.375 | 0.3748 |
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| 0.0489 | 100.0 | 1800 | 2.4599 | 0.4154 | 0.3153 | 0.3997 | 16.125 | 0.3768 |
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| 0.032 | 102.78 | 1850 | 2.6235 | 0.4515 | 0.3335 | 0.4359 | 15.0 | 0.407 |
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| 0.0379 | 105.56 | 1900 | 2.6058 | 0.4515 | 0.3335 | 0.4359 | 15.125 | 0.407 |
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| 0.0466 | 108.33 | 1950 | 2.5748 | 0.4154 | 0.3153 | 0.3997 | 16.125 | 0.3768 |
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| 0.0317 | 111.11 | 2000 | 2.6638 | 0.4169 | 0.3153 | 0.4013 | 16.125 | 0.3778 |
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| 0.0234 | 113.89 | 2050 | 2.7407 | 0.4334 | 0.3153 | 0.4178 | 15.5 | 0.3888 |
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| 0.0308 | 116.67 | 2100 | 2.7086 | 0.4201 | 0.3153 | 0.4044 | 16.125 | 0.3799 |
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| 0.0305 | 119.44 | 2150 | 2.7068 | 0.4059 | 0.2831 | 0.3902 | 15.5 | 0.3598 |
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| 0.0289 | 122.22 | 2200 | 2.8503 | 0.4059 | 0.2831 | 0.3902 | 15.5 | 0.3598 |
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| 0.0555 | 125.0 | 2250 | 2.8522 | 0.4059 | 0.2831 | 0.3902 | 15.5 | 0.3598 |
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| 0.022 | 127.78 | 2300 | 2.9057 | 0.4059 | 0.2831 | 0.3902 | 15.5 | 0.3598 |
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| 0.0369 | 130.56 | 2350 | 2.8736 | 0.4059 | 0.2831 | 0.3902 | 15.5 | 0.3598 |
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| 0.0195 | 133.33 | 2400 | 2.7637 | 0.4059 | 0.2831 | 0.3902 | 15.5 | 0.3598 |
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| 0.0387 | 136.11 | 2450 | 2.7437 | 0.4059 | 0.2831 | 0.3902 | 15.5 | 0.3598 |
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| 0.0298 | 138.89 | 2500 | 2.8818 | 0.391 | 0.2665 | 0.3754 | 16.25 | 0.3443 |
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| 0.0265 | 141.67 | 2550 | 2.8340 | 0.3776 | 0.2665 | 0.362 | 16.5 | 0.3353 |
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| 0.0182 | 144.44 | 2600 | 2.8739 | 0.4059 | 0.2831 | 0.3902 | 15.5 | 0.3598 |
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### Framework versions
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This model is a fine-tuned version of [cointegrated/rut5-base-absum](https://huggingface.co/cointegrated/rut5-base-absum) on an unknown dataset.
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It achieves the following results on the evaluation set:
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- Loss: 1.4464
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- Rouge-1: 0.5076
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- Rouge-2: 0.3897
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- Rouge-l: 0.4945
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- Gen Len: 15.75
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- Avg Rouge F: 0.4639
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## Model description
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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_steps: 200
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- num_epochs: 100
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### Training results
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| Training Loss | Epoch | Step | Validation Loss | Rouge-1 | Rouge-2 | Rouge-l | Gen Len | Avg Rouge F |
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|:-------------:|:-----:|:----:|:---------------:|:-------:|:-------:|:-------:|:-------:|:-----------:|
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| 2.6017 | 2.78 | 50 | 2.0030 | 0.0 | 0.0 | 0.0 | 8.125 | 0.0 |
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| 2.1413 | 5.56 | 100 | 1.5154 | 0.1125 | 0.0317 | 0.0958 | 11.5 | 0.08 |
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| 1.6874 | 8.33 | 150 | 1.2364 | 0.3417 | 0.2312 | 0.325 | 13.25 | 0.2993 |
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| 1.2272 | 11.11 | 200 | 1.1259 | 0.3605 | 0.2437 | 0.3291 | 14.25 | 0.3111 |
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| 0.9384 | 13.89 | 250 | 1.0853 | 0.4505 | 0.3 | 0.4211 | 13.5 | 0.3905 |
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| 0.7071 | 16.67 | 300 | 1.0607 | 0.3559 | 0.1368 | 0.3133 | 14.875 | 0.2687 |
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| 0.5871 | 19.44 | 350 | 1.0346 | 0.5377 | 0.4194 | 0.5126 | 16.0 | 0.4899 |
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| 0.4194 | 22.22 | 400 | 1.0672 | 0.5079 | 0.3819 | 0.4829 | 15.5 | 0.4576 |
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| 0.3685 | 25.0 | 450 | 1.1284 | 0.5029 | 0.3835 | 0.4897 | 14.75 | 0.4587 |
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| 0.2884 | 27.78 | 500 | 1.1729 | 0.5427 | 0.421 | 0.5164 | 15.875 | 0.4933 |
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| 0.2368 | 30.56 | 550 | 1.1640 | 0.5326 | 0.421 | 0.5195 | 15.25 | 0.491 |
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| 0.195 | 33.33 | 600 | 1.2053 | 0.5326 | 0.421 | 0.5195 | 15.25 | 0.491 |
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| 0.1667 | 36.11 | 650 | 1.2525 | 0.4245 | 0.2717 | 0.4114 | 16.125 | 0.3692 |
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| 0.1491 | 38.89 | 700 | 1.3346 | 0.5032 | 0.3897 | 0.4901 | 16.0 | 0.461 |
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| 0.1122 | 41.67 | 750 | 1.3354 | 0.5094 | 0.4062 | 0.5094 | 15.375 | 0.475 |
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| 0.1166 | 44.44 | 800 | 1.3685 | 0.5076 | 0.3897 | 0.4945 | 15.625 | 0.4639 |
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| 0.0973 | 47.22 | 850 | 1.4157 | 0.5076 | 0.3897 | 0.4945 | 15.375 | 0.4639 |
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| 0.0944 | 50.0 | 900 | 1.4523 | 0.5095 | 0.3897 | 0.4963 | 15.125 | 0.4652 |
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| 0.0744 | 52.78 | 950 | 1.4221 | 0.5326 | 0.421 | 0.5195 | 15.25 | 0.491 |
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| 0.0745 | 55.56 | 1000 | 1.4464 | 0.5076 | 0.3897 | 0.4945 | 15.75 | 0.4639 |
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### Framework versions
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