G17-AMFU-Net-Paper

This model is a fine-tuned version of on an unknown dataset. It achieves the following results on the evaluation set:

  • Loss: 0.3496
  • Dice: 0.7909
  • Jaccard: 0.6967
  • Hd95: 30.0976
  • Asd: 9.8865

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: 0.001
  • train_batch_size: 4
  • eval_batch_size: 4
  • seed: 42
  • gradient_accumulation_steps: 3
  • total_train_batch_size: 12
  • 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: 200

Training results

Training Loss Epoch Step Asd Dice Hd95 Jaccard Validation Loss
0.7389 1.4124 250 38.5936 0.5238 104.3756 0.3899 0.8055
0.6071 2.8249 500 24.4305 0.6501 70.5583 0.5265 0.5725
0.5341 4.2373 750 16.9775 0.6619 50.3622 0.5438 0.5378
0.5531 5.6497 1000 0.5912 0.6367 0.5040 76.2560 25.6322
0.5457 7.0621 1250 0.5005 0.6828 0.5698 46.2656 17.3494
0.4978 8.4746 1500 0.4582 0.7193 0.6052 46.9904 15.0216
0.4514 9.8870 1750 0.4697 0.7175 0.6031 50.9456 16.4252
0.4297 11.2994 2000 0.4159 0.7442 0.6375 38.9589 13.1164
0.4224 12.7119 2250 0.4034 0.7557 0.6502 38.6538 12.3197
0.4307 14.1243 2500 0.4182 0.7483 0.6391 44.3559 14.5023
0.401 15.5367 2750 0.3990 0.7608 0.6590 35.7307 11.9326
0.3966 16.9492 3000 0.4132 0.7471 0.6398 42.3880 13.9349
0.3871 18.3616 3250 0.3921 0.7636 0.6626 38.3225 12.2851
0.4202 19.7740 3500 0.3947 0.7566 0.6482 33.8341 11.3610
0.3247 21.1864 3750 0.3750 0.7749 0.6727 37.9185 11.9961
0.3342 22.5989 4000 0.3918 0.7662 0.6614 42.2135 13.5831
0.3555 24.0113 4250 0.3778 0.7720 0.6706 34.3589 11.6043
0.3318 25.4237 4500 0.3750 0.7721 0.6721 35.0297 11.3211
0.3786 26.8362 4750 0.3774 0.7727 0.6683 41.1416 13.0270
0.3009 28.2486 5000 0.3757 0.7707 0.6711 32.5325 10.9100
0.3123 29.6610 5250 0.3699 0.7770 0.6795 30.7301 10.7341
0.3086 31.0734 5500 0.3578 0.7834 0.6884 32.8322 10.5589
0.2918 32.4859 5750 0.3732 0.7759 0.6796 30.2249 10.4415
0.3211 33.8983 6000 0.3672 0.7802 0.6846 30.9604 10.4802
0.3372 35.3107 6250 0.3806 0.7736 0.6771 29.8470 10.2667
0.3022 36.7232 6500 0.3560 0.7852 0.6885 31.3705 10.2234
0.3051 38.1356 6750 0.3623 0.7830 0.6873 29.4657 9.9103
0.3055 39.5480 7000 0.3618 0.7849 0.6893 30.2915 9.9328
0.2786 40.9605 7250 0.3540 0.7877 0.6919 31.9463 10.3530
0.2705 42.3729 7500 0.3483 0.7904 0.6945 32.1582 10.4397
0.271 43.7853 7750 0.3585 0.7853 0.6899 30.0640 10.2347
0.2849 45.1977 8000 0.3590 0.7830 0.6882 30.3822 10.2435
0.2648 46.6102 8250 0.3501 0.7900 0.6932 32.2145 10.8766
0.264 48.0226 8500 0.3549 0.7871 0.6924 30.8388 10.1933
0.2883 49.4350 8750 0.3474 0.7897 0.6953 31.7965 10.2905
0.2694 50.8475 9000 0.3584 0.7861 0.6916 30.0670 10.1097
0.2532 52.2599 9250 0.3581 0.7856 0.6908 31.0802 10.1921
0.2829 53.6723 9500 0.3476 0.7903 0.6947 31.9132 10.5729
0.2888 55.0847 9750 0.3495 0.7893 0.6948 31.8618 10.2558
0.2699 56.4972 10000 0.3457 0.7908 0.6957 32.0846 10.4567
0.2513 57.9096 10250 0.3486 0.7899 0.6962 30.5884 10.1494
0.2661 59.3220 10500 0.3489 0.7895 0.6950 31.5616 10.4309
0.2732 60.7345 10750 0.3543 0.7883 0.6942 29.5717 9.9337
0.2829 62.1469 11000 0.3455 0.7911 0.6971 31.0813 10.2404
0.2938 63.5593 11250 0.3471 0.7915 0.6971 30.4424 10.0673
0.2606 64.9718 11500 0.3464 0.7905 0.6955 31.9298 10.6125
0.2646 66.3842 11750 0.3491 0.7913 0.6969 30.2795 9.8441
0.2516 67.7966 12000 0.3468 0.7915 0.6975 29.8304 9.7218
0.2869 69.2090 12250 0.3517 0.7904 0.6960 31.0597 10.0999
0.261 70.6215 12500 0.3495 0.7907 0.6966 30.4694 9.9219
0.2554 72.0339 12750 0.3496 0.7912 0.6969 30.9471 10.1219
0.248 73.4463 13000 0.3482 0.7904 0.6956 32.2843 10.6262
0.2791 74.8588 13250 0.3448 0.7921 0.6980 30.3742 10.0979
0.2459 76.2712 13500 0.3470 0.7907 0.6962 31.0974 10.2727
0.2913 77.6836 13750 0.3507 0.7907 0.6964 30.3586 9.9545
0.2657 79.0960 14000 0.3481 0.7909 0.6963 30.8855 10.1784
0.248 80.5085 14250 0.3456 0.7917 0.6976 30.0486 10.0548
0.2583 81.9209 14500 0.3477 0.7913 0.6973 29.2632 9.8539
0.2655 83.3333 14750 0.3488 0.7919 0.6982 30.1899 9.7378
0.2671 84.7458 15000 0.3476 0.7921 0.6982 30.3738 9.8575
0.2744 86.1582 15250 0.3477 0.7921 0.6978 31.0608 10.1258
0.2582 87.5706 15500 0.3495 0.7906 0.6967 30.1395 9.8876
0.2635 88.9831 15750 0.3530 0.7893 0.6952 30.0033 9.7234
0.2886 90.3955 16000 0.3507 0.7920 0.6985 30.3988 9.8475
0.2737 91.8079 16250 0.3489 0.7908 0.6966 30.4467 9.8894
0.2593 93.2203 16500 0.3462 0.7911 0.6966 31.7076 10.3841
0.2541 94.6328 16750 0.3479 0.7919 0.6981 30.6190 9.9648
0.2549 96.0452 17000 0.3496 0.7913 0.6974 30.9751 9.9748
0.2485 97.4576 17250 0.3451 0.7925 0.6983 31.2473 10.1220
0.2485 98.8701 17500 0.3468 0.7916 0.6972 31.2395 10.1335
0.2618 100.2825 17750 0.3497 0.7908 0.6971 30.0951 9.7453
0.2593 101.6949 18000 0.3467 0.7919 0.6980 30.1628 9.9642
0.2719 103.1073 18250 0.3479 0.7928 0.6994 29.8435 9.7739
0.2667 104.5198 18500 0.3443 0.7932 0.6993 31.3466 10.1526
0.2513 105.9322 18750 0.3466 0.7920 0.6980 31.0591 10.2166
0.2622 107.3446 19000 0.3509 0.7907 0.6968 30.0248 9.9479
0.2555 108.7571 19250 0.3457 0.7918 0.6975 31.1739 10.2218
0.2679 110.1695 19500 0.3511 0.7900 0.6956 30.8967 10.0636
0.2432 111.5819 19750 0.3492 0.7905 0.6963 30.6068 10.1251
0.2811 112.9944 20000 0.3519 0.7897 0.6959 29.6713 9.8362
0.2376 114.4068 20250 0.3506 0.7913 0.6976 30.1932 9.8955
0.2575 115.8192 20500 0.3479 0.7909 0.6971 30.4310 10.0271
0.2473 117.2316 20750 0.3498 0.7912 0.6977 29.4755 9.7462
0.2502 118.6441 21000 0.3465 0.7916 0.6970 31.3217 10.3354
0.2532 120.0565 21250 0.3481 0.7915 0.6975 31.2661 10.0386
0.2469 121.4689 21500 0.3496 0.7910 0.6973 30.8048 10.0485
0.2542 122.8814 21750 0.3473 0.7918 0.6974 30.8065 10.1343
0.2459 124.2938 22000 0.3473 0.7910 0.6970 30.5939 10.0567
0.2743 125.7062 22250 0.3489 0.7910 0.6967 30.4530 10.0447
0.2959 127.1186 22500 0.3469 0.7915 0.6975 30.3645 9.9545
0.2602 128.5311 22750 0.3458 0.7913 0.6970 31.1398 10.1557
0.2557 129.9435 23000 0.3510 0.7917 0.6977 30.0252 9.7831
0.2627 131.3559 23250 0.3487 0.7905 0.6968 30.0623 9.8507
0.2538 132.7684 23500 0.3472 0.7925 0.6989 29.7250 9.8968
0.25 134.1808 23750 0.3463 0.7922 0.6980 30.4820 10.0544
0.239 135.5932 24000 0.3492 0.7911 0.6976 29.9095 9.8149
0.2695 137.0056 24250 0.3447 0.7922 0.6976 31.3291 10.3158
0.276 138.4181 24500 0.3468 0.7927 0.6989 30.6967 9.9231
0.265 139.8305 24750 0.3464 0.7915 0.6981 29.3216 9.7071
0.2421 141.2429 25000 0.3455 0.7919 0.6978 31.1443 10.1200
0.245 142.6554 25250 0.3502 0.7907 0.6967 30.5402 9.9200
0.2644 144.0678 25500 0.3454 0.7924 0.6984 30.6106 10.0256
0.2642 145.4802 25750 0.3494 0.7913 0.6974 30.3045 9.7284
0.2736 146.8927 26000 0.3531 0.7903 0.6967 30.0741 9.7293
0.2837 148.3051 26250 0.3506 0.7919 0.6977 30.3323 10.0468
0.2669 149.7175 26500 0.3478 0.7913 0.6976 29.8362 9.7996
0.2389 151.1299 26750 0.3477 0.7906 0.6964 30.9778 10.1554
0.2433 152.5424 27000 0.3444 0.7923 0.6982 30.5612 9.9517
0.2507 153.9548 27250 0.3498 0.7911 0.6971 30.5388 10.0399
0.3 155.3672 27500 0.3528 0.7898 0.6961 30.0155 9.8287
0.2444 156.7797 27750 0.3469 0.7913 0.6969 31.5767 10.2693
0.2693 158.1921 28000 0.3482 0.7915 0.6975 30.7161 9.9847
0.2576 159.6045 28250 0.3469 0.7920 0.6981 31.5987 10.1164
0.2452 161.0169 28500 0.3500 0.7904 0.6961 31.2783 10.1386
0.256 162.4294 28750 0.3487 0.7913 0.6977 29.3927 9.7377
0.2609 163.8418 29000 0.3488 0.7912 0.6972 30.7578 10.0702
0.2493 165.2542 29250 0.3476 0.7908 0.6966 31.0479 10.1655
0.2611 166.6667 29500 0.3483 0.7918 0.6981 30.5419 9.9485
0.258 168.0791 29750 0.3473 0.7910 0.6969 30.9598 10.1742
0.2756 169.4915 30000 0.3479 0.7911 0.6970 30.4461 9.9733
0.26 170.9040 30250 0.3493 0.7915 0.6975 30.7870 10.0493
0.2716 172.3164 30500 0.3487 0.7913 0.6975 30.8341 9.8859
0.2515 173.7288 30750 0.3461 0.7924 0.6983 31.2209 10.1903
0.2546 175.1412 31000 0.3483 0.7919 0.6979 30.4488 9.9073
0.2542 176.5537 31250 0.3483 0.7906 0.6966 30.2269 9.9971
0.2574 177.9661 31500 0.3467 0.7924 0.6987 30.3149 9.9697
0.2531 179.3785 31750 0.3460 0.7920 0.6976 30.8770 10.1790
0.2677 180.7910 32000 0.3485 0.7916 0.6977 30.2612 9.8976
0.2744 182.2034 32250 0.3506 0.7913 0.6972 30.8237 10.1292
0.2568 183.6158 32500 0.3510 0.7908 0.6968 30.0119 9.7927
0.2414 185.0282 32750 0.3456 0.7912 0.6969 30.5987 9.9543
0.2833 186.4407 33000 0.3494 0.7913 0.6980 28.8245 9.7017
0.2437 187.8531 33250 0.3476 0.7923 0.6983 31.3336 10.1063
0.2417 189.2655 33500 0.3498 0.7906 0.6966 30.9630 10.0274
0.2562 190.6780 33750 0.3472 0.7919 0.6979 30.7585 9.9717
0.2689 192.0904 34000 0.3441 0.7924 0.6979 31.0385 10.1692
0.2865 193.5028 34250 0.3505 0.7903 0.6964 29.7483 9.8632
0.2514 194.9153 34500 0.3472 0.7916 0.6978 30.6949 9.9969
0.25 196.3277 34750 0.3497 0.7917 0.6981 30.8708 9.9481
0.2588 197.7401 35000 0.3506 0.7907 0.6964 31.0115 9.9669
0.2602 199.1525 35250 0.3496 0.7909 0.6967 30.0976 9.8865

Framework versions

  • Transformers 4.57.1
  • Pytorch 2.10.0+cu128
  • Datasets 4.8.5
  • Tokenizers 0.22.2
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