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Training complete

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README.md ADDED
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+ ---
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+ tags:
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+ - summarization
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+ - generated_from_trainer
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+ model-index:
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+ - name: finetune-led-thousanddata
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+ results: []
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+ ---
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+
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+ <!-- This model card has been generated automatically according to the information the Trainer had access to. You
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+ should probably proofread and complete it, then remove this comment. -->
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+
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+ # finetune-led-thousanddata
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+
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+ This model was trained from scratch on an unknown dataset.
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+ It achieves the following results on the evaluation set:
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+ - Loss: 1.9539
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+ - Rouge1 Precision: 0.2722
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+ - Rouge1 Recall: 0.3458
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+ - Rouge1 Fmeasure: 0.3011
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+
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+ ## Model description
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+
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+ More information needed
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+
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+ ## Intended uses & limitations
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+
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+ More information needed
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+
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+ ## Training and evaluation data
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+
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+ More information needed
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+
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+ ## Training procedure
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+
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+ ### Training hyperparameters
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+
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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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+ - gradient_accumulation_steps: 4
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+ - total_train_batch_size: 32
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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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+ - num_epochs: 4
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+ - mixed_precision_training: Native AMP
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+
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+ ### Training results
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+
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+ | Training Loss | Epoch | Step | Validation Loss | Rouge1 Fmeasure | Rouge1 Precision | Rouge1 Recall |
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+ |:-------------:|:-----:|:----:|:---------------:|:---------------:|:----------------:|:-------------:|
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+ | 2.0529 | 0.13 | 10 | 2.6191 | 0.3014 | 0.2948 | 0.324 |
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+ | 1.778 | 0.26 | 20 | 2.4690 | 0.2947 | 0.2802 | 0.3213 |
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+ | 1.7425 | 0.38 | 30 | 2.3989 | 0.3037 | 0.2734 | 0.3524 |
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+ | 1.7006 | 0.51 | 40 | 2.3216 | 0.2941 | 0.2665 | 0.3386 |
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+ | 1.6751 | 0.64 | 50 | 2.3027 | 0.3101 | 0.282 | 0.3551 |
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+ | 1.6887 | 0.77 | 60 | 2.2911 | 0.3058 | 0.2731 | 0.3577 |
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+ | 1.6008 | 0.89 | 70 | 2.2476 | 0.3016 | 0.272 | 0.3487 |
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+ | 1.5767 | 1.02 | 80 | 2.2167 | 0.3043 | 0.2775 | 0.3465 |
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+ | 1.5046 | 1.15 | 90 | 2.2185 | 0.3004 | 0.2721 | 0.3458 |
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+ | 1.5394 | 1.28 | 100 | 2.1977 | 0.2991 | 0.2696 | 0.3463 |
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+ | 1.5449 | 1.41 | 110 | 2.1823 | 0.2978 | 0.2704 | 0.341 |
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+ | 1.5073 | 1.53 | 120 | 2.1832 | 0.3057 | 0.276 | 0.3527 |
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+ | 1.5232 | 0.42 | 130 | 2.2091 | 0.2955 | 0.2664 | 0.3424 |
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+ | 1.4896 | 0.45 | 140 | 2.2069 | 0.2905 | 0.2574 | 0.3424 |
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+ | 1.4848 | 0.48 | 150 | 2.1913 | 0.2868 | 0.2567 | 0.3356 |
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+ | 1.5084 | 0.51 | 160 | 2.1826 | 0.3006 | 0.2755 | 0.3406 |
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+ | 1.4322 | 0.54 | 170 | 2.2525 | 0.3049 | 0.2716 | 0.3582 |
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+ | 1.4672 | 0.58 | 180 | 2.1890 | 0.2919 | 0.2663 | 0.3322 |
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+ | 1.4543 | 0.61 | 190 | 2.1487 | 0.3022 | 0.276 | 0.344 |
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+ | 1.5446 | 0.64 | 200 | 2.1496 | 0.2993 | 0.273 | 0.3418 |
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+ | 1.412 | 0.67 | 210 | 2.1837 | 0.2976 | 0.268 | 0.3439 |
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+ | 1.5241 | 0.7 | 220 | 2.1423 | 0.2913 | 0.2665 | 0.3305 |
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+ | 1.4806 | 0.74 | 230 | 2.1303 | 0.2997 | 0.2736 | 0.3411 |
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+ | 1.5405 | 0.77 | 240 | 2.1205 | 0.2966 | 0.2668 | 0.3428 |
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+ | 1.4287 | 0.8 | 250 | 2.1322 | 0.2976 | 0.268 | 0.3442 |
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+ | 1.4977 | 0.83 | 260 | 2.1334 | 0.2979 | 0.2665 | 0.3477 |
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+ | 1.4171 | 0.86 | 270 | 2.1184 | 0.3043 | 0.2741 | 0.3509 |
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+ | 1.4491 | 0.9 | 280 | 2.1038 | 0.2868 | 0.2628 | 0.3253 |
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+ | 1.4316 | 0.93 | 290 | 2.1254 | 0.2958 | 0.2678 | 0.3393 |
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+ | 1.4689 | 0.96 | 300 | 2.1052 | 0.299 | 0.2685 | 0.3471 |
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+ | 1.4347 | 0.99 | 310 | 2.0815 | 0.3019 | 0.273 | 0.3476 |
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+ | 1.3285 | 1.02 | 320 | 2.0877 | 0.2981 | 0.2695 | 0.3427 |
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+ | 1.2636 | 1.06 | 330 | 2.0740 | 0.2933 | 0.2645 | 0.3382 |
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+ | 1.32 | 1.09 | 340 | 2.0755 | 0.2997 | 0.2689 | 0.3487 |
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+ | 1.357 | 1.12 | 350 | 2.0594 | 0.301 | 0.2743 | 0.3434 |
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+ | 1.3412 | 1.15 | 360 | 2.0660 | 0.2961 | 0.2677 | 0.3405 |
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+ | 1.327 | 1.18 | 370 | 2.0649 | 0.2912 | 0.263 | 0.335 |
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+ | 1.3193 | 1.22 | 380 | 2.0842 | 0.2952 | 0.2673 | 0.3392 |
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+ | 1.2961 | 1.25 | 390 | 2.0749 | 0.2957 | 0.2705 | 0.3342 |
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+ | 1.3093 | 1.28 | 400 | 2.0715 | 0.2997 | 0.272 | 0.3441 |
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+ | 1.3403 | 1.31 | 410 | 2.0671 | 0.3119 | 0.2823 | 0.3584 |
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+ | 1.3685 | 1.34 | 420 | 2.0580 | 0.2973 | 0.2695 | 0.3409 |
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+ | 1.2913 | 1.38 | 430 | 2.0685 | 0.2926 | 0.2632 | 0.339 |
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+ | 1.3796 | 1.41 | 440 | 2.0339 | 0.2962 | 0.2697 | 0.3387 |
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+ | 1.354 | 1.44 | 450 | 2.0371 | 0.2953 | 0.2665 | 0.3412 |
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+ | 1.3268 | 1.47 | 460 | 2.0309 | 0.2957 | 0.2681 | 0.3395 |
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+ | 1.3706 | 1.5 | 470 | 2.0215 | 0.2932 | 0.2685 | 0.3315 |
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+ | 1.3288 | 1.54 | 480 | 2.0044 | 0.2948 | 0.2674 | 0.3374 |
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+ | 1.4102 | 1.57 | 490 | 2.0046 | 0.2998 | 0.271 | 0.3446 |
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+ | 1.3952 | 1.6 | 500 | 2.0044 | 0.3063 | 0.2794 | 0.3487 |
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+ | 1.2994 | 1.63 | 510 | 1.9993 | 0.3052 | 0.2787 | 0.3461 |
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+ | 1.2948 | 1.66 | 520 | 2.0168 | 0.3 | 0.2743 | 0.3406 |
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+ | 1.2972 | 1.7 | 530 | 2.0290 | 0.3003 | 0.2734 | 0.342 |
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+ | 1.3181 | 1.73 | 540 | 2.0234 | 0.2949 | 0.2676 | 0.338 |
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+ | 1.3505 | 1.76 | 550 | 1.9942 | 0.301 | 0.2737 | 0.3436 |
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+ | 1.3163 | 1.79 | 560 | 1.9983 | 0.2963 | 0.2705 | 0.3366 |
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+ | 1.2337 | 2.08 | 650 | 1.9919 | 0.3006 | 0.2746 | 0.3416 |
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+ | 1.1274 | 2.11 | 660 | 2.0095 | 0.3015 | 0.2732 | 0.3457 |
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+
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+
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+ ### Framework versions
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+
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+ - Transformers 4.35.2
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+ - Pytorch 2.1.1+cu121
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+ - Datasets 2.14.5
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+ - Tokenizers 0.15.1
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