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metadata
language:
  - en
license: other
tags:
  - computer-vision
  - generated_from_trainer
model-index:
  - name: mit-b0-CMP_semantic_seg_with_mps_v2
    results: []

mit-b0-CMP_semantic_seg_with_mps_v2

This model is a fine-tuned version of nvidia/mit-b0 on the None dataset. It achieves the following results on the evaluation set:

  • Loss: 1.0863
  • Mean Iou: 0.4097
  • Mean Accuracy: 0.5538
  • Overall Accuracy: 0.6951
  • Per Category Iou:
    • Segment 0: 0.5921698801573617
    • Segment 1: 0.5795623712718901
    • Segment 2: 0.5784812820145221
    • Segment 3: 0.2917052691882505
    • Segment 4: 0.3792639848157326
    • Segment 5: 0.37973303153855376
    • Segment 6: 0.4481097636024487
    • Segment 7: 0.4354492668218124
    • Segment 8: 0.26472453634508664
    • Segment 9: 0.4173722023142026
    • Segment 10: 0.18166072949276144
    • Segment 11: 0.36809541729585366
  • Per Category Accuracy:
    • Segment 0: 0.6884460857323806
    • Segment 1: 0.7851625477616788
    • Segment 2: 0.7322992353412343
    • Segment 3: 0.45229387721112274
    • Segment 4: 0.5829333862769369
    • Segment 5: 0.5516333441001092
    • Segment 6: 0.5904157921999404
    • Segment 7: 0.5288772981353482
    • Segment 8: 0.4518224891972707
    • Segment 9: 0.571864661897264
    • Segment 10: 0.23178753217655862
    • Segment 11: 0.47833833709905393

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: 6e-05
  • train_batch_size: 2
  • eval_batch_size: 2
  • seed: 42
  • optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
  • lr_scheduler_type: linear
  • num_epochs: 50

Training results

Training Loss Epoch Step Validation Loss Mean Iou Mean Accuracy Overall Accuracy Segment 0: Per Category Iou Segment 1: Per Category Iou Segment 2: Per Category Iou Segment 3: Per Category Iou Segment 4: Per Category Iou Segment 5: Per Category Iou Segment 6: Per Category Iou Segment 7: Per Category Iou Segment 8: Per Category Iou Segment 9: Per Category Iou Segment 10: Per Category Iou Segment 11: Per Category Iou Segment 0: Per Category Accuracy Segment 1: Per Category Accuracy Segment 2: Per Category Accuracy Segment 3: Per Category Accuracy Segment 4: Per Category Accuracy Segment 5: Per Category Accuracy Segment 6: Per Category Accuracy Segment 7: Per Category Accuracy Segment 8: Per Category Accuracy Segment 9: Per Category Accuracy Segment 10: Per Category Accuracy Segment 11: Per Category Accuracy
1.6807 1.0 189 1.3310 0.2226 0.3388 0.5893 0.4635 0.4905 0.4698 0.0 0.2307 0.1515 0.2789 0.0002 0.0250 0.3527 0.0 0.2087 0.6133 0.6847 0.7408 0.0 0.4973 0.1720 0.4073 0.0002 0.0255 0.6371 0.0 0.2874
1.1837 2.0 378 1.1731 0.2602 0.3876 0.6122 0.4240 0.5249 0.5152 0.0057 0.2636 0.2756 0.3312 0.0575 0.0539 0.3860 0.0 0.2854 0.4782 0.7844 0.6966 0.005693923012331629 0.5735250918240624 0.36835801828416304 0.6226168977672956 0.05767745156759108 0.056265139348553275 0.590726524634641 0.0 0.4168
1.0241 3.0 567 1.0485 0.2915 0.3954 0.6393 0.5442 0.5037 0.5329 0.0412 0.3062 0.2714 0.3820 0.1430 0.0796 0.4007 0.0002 0.2929 0.8126 0.6852 0.6682812855352882 0.041991381045239105 0.49715664486119526 0.34177557441959217 0.5120585878274232 0.1452966910279639 0.08494893658553898 0.5882194328558888 0.00016528267929344714 0.3672
0.9353 4.0 756 0.9943 0.3054 0.4021 0.6570 0.5776 0.5289 0.5391 0.1171 0.3137 0.2600 0.3664 0.1527 0.1074 0.3935 0.0002 0.3078 0.8079 0.7362 0.6802560980516426 0.12306993011845858 0.512920197647116 0.33239396237919133 0.42117282716339 0.15535336024112006 0.12232149987134326 0.5586955195187552 0.0001775258407225914 0.3751
0.8717 5.0 945 1.0010 0.3299 0.4440 0.6530 0.4790 0.5506 0.5472 0.1547 0.3372 0.3297 0.4151 0.2339 0.1709 0.4081 0.00082 0.3314 0.5408 0.8111 0.7439010923003654 0.1647386208284467 0.5336310060432693 0.47195496826220606 0.5649886876937538 0.24592767041211344 0.21268289220340186 0.6032254750148772 0.0008172310253953776 0.4343
0.8238 6.0 1134 0.9537 0.3546 0.4771 0.6701 0.5572 0.5525 0.5611 0.2076 0.3434 0.3163 0.4103 0.3279 0.2107 0.4191 0.0067 0.3418 0.6870 0.7532 0.7388529233923034 0.2427845747080173 0.5081350142927471 0.41732749265984126 0.5923295163811956 0.37097280542070116 0.31168646797334587 0.6181032158263363 0.006828623287105196 0.4785
0.7415 8.0 1512 0.9738 0.3554 0.4634 0.6733 0.5366 0.5659 0.5550 0.2331 0.3497 0.3334 0.4301 0.3401 0.1989 0.4181 0.0358 0.2680 0.6081 0.8461 0.6598362819270074 0.30354751181463 0.5720401047797135 0.4539774768726024 0.5734811831554486 0.3848984957854349 0.26418995057806804 0.5607853711429407 0.03791707094605969 0.2962
0.7708 7.0 1323 0.9789 0.3550 0.4837 0.6683 0.5310 0.5634 0.5594 0.2299 0.3424 0.3375 0.4050 0.2883 0.2197 0.4142 0.0316 0.3373 0.6050 0.7961 0.7433683394118146 0.2875899542681869 0.5834520174957 0.4949117910713184 0.5607636948180663 0.3102642098935939 0.3671530482773307 0.6185428826392109 0.03448592495554202 0.4022
0.7018 9.0 1701 0.9449 0.3667 0.4802 0.6826 0.5798 0.5657 0.5624 0.2368 0.3648 0.3271 0.4250 0.3207 0.2096 0.4236 0.0504 0.3346 0.7241 0.7684 0.7677311546869556 0.2957821250373002 0.5320609310645918 0.42119264423548025 0.5547462091572214 0.35133197830090934 0.2813412242797441 0.5645280153294033 0.054445338875404405 0.4465
0.682 10.0 1890 0.9422 0.3762 0.5047 0.6805 0.5802 0.5622 0.5585 0.2340 0.3793 0.3407 0.4277 0.3801 0.2301 0.4216 0.0640 0.3367 0.7124 0.7649 0.7024134248020867 0.287877946717927 0.5535415826760965 0.441309578680332 0.6309566731585817 0.4959965113450929 0.3981571031827014 0.5591670008934155 0.07239687432088714 0.4370
0.6503 11.0 2079 0.9889 0.3785 0.5082 0.6729 0.5193 0.5649 0.5605 0.2698 0.3772 0.3526 0.4342 0.3433 0.2415 0.4336 0.0889 0.3562 0.5876 0.8060 0.7295986604417997 0.38378984184703785 0.5267267279434854 0.4982615891035389 0.5901717549740297 0.383783111953036 0.4151153917819401 0.5987203244459441 0.103029264216606 0.4756
0.633 12.0 2268 0.9594 0.3901 0.5224 0.6797 0.5539 0.5641 0.5679 0.2658 0.3757 0.3510 0.4257 0.3993 0.2354 0.4338 0.1800 0.3287 0.6497 0.7807 0.7448456086694618 0.4017702861187639 0.5380576045315403 0.4614936542558404 0.5848777216054816 0.48827668376350436 0.3247961456216782 0.6062577678381901 0.2917759623890081 0.3958
0.6035 13.0 2457 0.9612 0.3939 0.5288 0.6834 0.5663 0.5666 0.5679 0.2631 0.3726 0.3609 0.4351 0.3759 0.2511 0.4256 0.1737 0.3681 0.6650 0.7792 0.7595289859518171 0.40488962602618994 0.5501279357869723 0.4940371417476292 0.583148993385804 0.4374533247759857 0.38431984951598447 0.5591195398258335 0.25781343258456196 0.4711
0.5874 14.0 2646 0.9657 0.3939 0.5383 0.6844 0.5807 0.5670 0.5679 0.2670 0.3594 0.3605 0.4393 0.3863 0.2406 0.4228 0.1705 0.3652 0.6881 0.7715 0.7076490702220812 0.45138479261073833 0.6010571162888695 0.4899633082794087 0.623500155081721 0.44661640117817103 0.3626766811886108 0.5934218960331414 0.2536721832311539 0.4702
0.5684 15.0 2835 0.9762 0.3950 0.5446 0.6855 0.5800 0.5711 0.5671 0.2825 0.3664 0.3587 0.4408 0.4021 0.2540 0.4246 0.1376 0.3548 0.6690 0.7721 0.7253292181715818 0.46066300719634146 0.6286397883336339 0.49001048853338364 0.5936197648110916 0.4950579174573106 0.4336663620311793 0.6295105616521876 0.17492722970925553 0.4630
0.5485 16.0 3024 1.0645 0.3794 0.5095 0.6704 0.4855 0.5683 0.5685 0.2612 0.3832 0.3628 0.4378 0.4056 0.2525 0.4206 0.1242 0.2825 0.5250 0.8335 0.7460261114546437 0.3741958765032859 0.6113892226001657 0.48233280951153923 0.5879903770611306 0.5021155863372445 0.4084452055402252 0.5756625904042066 0.1498379311505817 0.3171
0.5402 17.0 3213 0.9747 0.4044 0.5600 0.6839 0.5697 0.5674 0.5687 0.2971 0.3767 0.3741 0.4486 0.4126 0.2489 0.4260 0.1874 0.3757 0.6652 0.7673 0.7058054085118902 0.43181865497116606 0.5994505750526228 0.5137421562827766 0.6111778496069427 0.5596237481396876 0.4547660665643328 0.5819342314775361 0.2821497767153434 0.5465
0.5275 18.0 3402 1.0054 0.3944 0.5411 0.6790 0.5341 0.5728 0.5616 0.2827 0.3823 0.3782 0.4298 0.4070 0.2578 0.4195 0.1448 0.3632 0.6012 0.8091 0.6765196940223528 0.4560932956745616 0.5706807237336585 0.5392721175586759 0.625477643828456 0.5679393042619234 0.43474885318048323 0.5567162365355298 0.18059887424130658 0.4751
0.5032 19.0 3591 1.0014 0.3973 0.5256 0.6875 0.5696 0.5739 0.5699 0.2918 0.3717 0.3635 0.4444 0.4122 0.2531 0.4142 0.1659 0.3369 0.6634 0.8079 0.6985897029453216 0.43889702361538085 0.5273507061285597 0.4876478465843311 0.6231884172060415 0.5022195173955948 0.37174919922273586 0.5243691720025597 0.22317752890151296 0.4388
0.4985 20.0 3780 0.9893 0.3990 0.5468 0.6883 0.5937 0.5702 0.5630 0.2892 0.3790 0.3757 0.4383 0.4110 0.2592 0.4147 0.1291 0.3653 0.7110 0.7679 0.6951620501883469 0.48746712375347845 0.5261270605967906 0.554917815626826 0.6444102092579851 0.530145899919748 0.4511925148398889 0.5441213209197433 0.16031807733392917 0.4888
0.4925 21.0 3969 1.0416 0.3955 0.5339 0.6806 0.5336 0.5723 0.5732 0.2843 0.3748 0.3738 0.4383 0.3876 0.2598 0.4170 0.1693 0.3624 0.5945 0.8130 0.7299376590661159 0.451089860583896 0.5922282301507069 0.5323583957261948 0.5643368721355146 0.43405145765987974 0.4067238671552665 0.5833731884605977 0.22720246822134413 0.4781
0.4772 22.0 4158 1.0142 0.3969 0.5476 0.6838 0.5634 0.5752 0.5595 0.2783 0.3833 0.3540 0.4448 0.4054 0.2586 0.4145 0.1597 0.3660 0.6478 0.7921 0.6887339171833209 0.48257125210789653 0.5784379070799239 0.4598840817452339 0.6029010515642786 0.5938234950622032 0.4904904927109305 0.5605052986891879 0.2093611212287237 0.4644
0.4707 23.0 4347 0.9896 0.4077 0.5458 0.6966 0.6013 0.5801 0.5794 0.2988 0.3816 0.3736 0.4464 0.4241 0.2633 0.4162 0.1747 0.3530 0.7110 0.7878 0.7191573316014347 0.4628593833491787 0.5669834503967731 0.5061243598909774 0.5890972039631646 0.5353692391925092 0.4442073414194831 0.5584702098352893 0.22803194240816863 0.4401
0.4601 24.0 4536 1.0040 0.4104 0.5551 0.6948 0.6061 0.5756 0.5721 0.3086 0.3771 0.3707 0.4459 0.4242 0.2665 0.4104 0.1942 0.3732 0.7277 0.7718 0.7094761814943847 0.4788724575124392 0.540134155309791 0.5080424186775738 0.6040472393092015 0.531419858975197 0.4572549089199045 0.5413847470559795 0.2852993299929908 0.5062
0.4544 25.0 4725 1.0093 0.4093 0.5652 0.6899 0.5826 0.5745 0.5742 0.3109 0.3765 0.3784 0.4441 0.4184 0.2609 0.4219 0.1930 0.3765 0.6781 0.7703 0.7304544322215338 0.5101803596088854 0.5953744578176565 0.5310663826173427 0.5960144784924483 0.5285622905976679 0.46465932583870884 0.5860904649672127 0.2676049009375201 0.5242
0.4421 26.0 4914 1.0434 0.4064 0.5448 0.6938 0.5783 0.5821 0.5770 0.2985 0.3885 0.3582 0.4458 0.4220 0.2717 0.4260 0.1690 0.3600 0.6603 0.7989 0.7348948005657967 0.46896968098764064 0.567680361096986 0.46196545679558976 0.6111148722583205 0.5257582949306286 0.45560899000026617 0.5888990127576392 0.21101700881201543 0.4530
0.4293 27.0 5103 1.0391 0.4076 0.5571 0.6908 0.5764 0.5777 0.5749 0.2868 0.3824 0.3857 0.4450 0.4170 0.2644 0.4295 0.1922
0.4312 28.0 5292 1.0037 0.4100 0.5534 0.6958 0.6023 0.5776 0.5769 0.2964 0.3759 0.3758 0.4464 0.4245 0.2712 0.4083 0.1967 0.3680 0.7218 0.7735152547135933 0.7273383842606477 0.42966391628094186 0.6000765791408955 0.5321170505808616 0.6214596889863638 0.5409825877976366 0.40535300746209063 0.527865644497828 0.27674748173473357 0.4839
0.4309 29.0 5481 1.0288 0.4101 0.5493 0.6968 0.6043 0.5814 0.5728 0.2882 0.3867 0.3841 0.4369 0.4254 0.2659 0.4252 0.2106 0.3391 0.7054 0.794821357455996 0.7009002011448908 0.4551633923428706 0.5412848683264216 0.5356918621320393 0.5420932726021768 0.524953632819071 0.47009618200047915 0.5948618961165895 0.3047720782460447 0.4213
0.4146 30.0 5670 1.0602 0.4062 0.5445 0.6928 0.5840 0.5792 0.5750 0.2859 0.3839 0.3786 0.4479 0.4259 0.2664 0.3947 0.1753 0.3780 0.6744 0.8003970499043351 0.728890415841166 0.44210310823658405 0.5409850346530742 0.5408980216956584 0.5822027587227564 0.5334224068933078 0.4790023335669858 0.5027629121485208 0.2177201396944719 0.4910
0.4106 31.0 5859 1.0573 0.4113 0.5520 0.6937 0.5819 0.5787 0.5775 0.2882 0.3861 0.3888 0.4522 0.4207 0.2722 0.4277 0.2050 0.3566 0.6622 0.7858034932824415 0.7534036118191814 0.3855455548538872 0.5706827496368568 0.5888948569893917 0.5901646700223098 0.4979422721900845 0.42678766315004923 0.6260161753576922 0.27349386158493844 0.4630
0.4102 32.0 6048 1.0616 0.4043 0.5444 0.6904 0.5769 0.5774 0.5737 0.2844 0.3762 0.3768 0.4424 0.4331 0.2649 0.3959 0.1748 0.3744 0.6629 0.7960392186220868 0.7344564993141556 0.4132483466457554 0.5702876985131896 0.5450244792933123 0.5855145800434228 0.5469302301162207 0.4371090388010967 0.5086997179978106 0.21776299075947392 0.5147
0.394 33.0 6237 1.0244 0.4104 0.5587 0.6957 0.6076 0.5755 0.5774 0.2887 0.3833 0.3803 0.4483 0.4329 0.2687 0.4194 0.1884 0.3547 0.7279 0.7642312461588138 0.7249562626143585 0.49993754380608046 0.5329786652134187 0.5418035196469465 0.6148407696461775 0.5491288541547245 0.4677559603559799 0.5808149847629112 0.2548261011958508 0.4455
0.3865 34.0 6426 1.0618 0.4086 0.5468 0.6922 0.5729 0.5787 0.5789 0.2853 0.3854 0.3735 0.4469 0.4279 0.2694 0.4240 0.1986 0.3613 0.6571 0.800236166757726 0.7189775596036913 0.4516033892894567 0.5620503761089287 0.5182932361662052 0.582221651927343 0.5443565971042879 0.39937046928653186 0.5930557677975091 0.27516505312001666 0.4588
0.3816 35.0 6615 1.0515 0.4109 0.5587 0.6937 0.5942 0.5769 0.5777 0.2873 0.3867 0.3811 0.4448 0.4281 0.2669 0.4147 0.1956 0.3774 0.6946 0.7771115993838257 0.7289041127552798 0.448133600738371 0.5477819398833484 0.5395933062107361 0.5833930306117148 0.5406622229889072 0.49804353034080723 0.5651643065651174 0.26963114415404343 0.5116
0.3803 36.0 6804 1.0709 0.4118 0.5507 0.6982 0.6024 0.5819 0.5782 0.2870 0.3850 0.3781 0.4469 0.4259 0.2696 0.4177 0.1885 0.3802 0.7040 0.7880683884343289 0.731396380419234 0.4432030312072782 0.5429096426914529 0.5308232228468566 0.5705141628184882 0.5124069040223462 0.4618798967196969 0.5667018365346953 0.24654054169867742 0.5101
0.3841 37.0 6993 1.0646 0.4102 0.5423 0.7000 0.6099 0.5822 0.5787 0.2920 0.3827 0.3739 0.4416 0.4271 0.2646 0.4200 0.1864 0.3637 0.7277 0.7884122256315795 0.729836073619772 0.4325369012012408 0.5471377026662912 0.5196269856535736 0.5522782843080914 0.5072885672621452 0.439025580508061 0.561369507359334 0.2452978608136193 0.4575
0.383 38.0 7182 1.0769 0.4076 0.5463 0.6981 0.6028 0.5823 0.5799 0.2887 0.3828 0.3770 0.4470 0.4238 0.2639 0.4197 0.1617 0.3610 0.7092 0.7907447078742033 0.7296691424790102 0.4712736205855615 0.5625548260053038 0.5483289116967108 0.5667000971425602 0.5066724810915119 0.455165346086617 0.5607817202915882 0.20023996596401122 0.4545
0.3831 39.0 7371 1.0821 0.4081 0.5438 0.6949 0.5856 0.5809 0.5772 0.2889 0.3772 0.3683 0.4493 0.4296 0.2665 0.4112 0.1902 0.3723 0.6763 0.800011657964694 0.7344553579046461 0.4677864830917204 0.5543661252778019 0.5005189827937243 0.5817658533666903 0.523601457606307 0.40713201955582373 0.5435867319717048 0.24956460257167606 0.4865
0.3701 40.0 7560 1.0971 0.4094 0.5503 0.6939 0.5830 0.5808 0.5785 0.2947 0.3803 0.3832 0.4496 0.4284 0.2675 0.4111 0.1913 0.3644 0.6681 0.8019720069792564 0.7232036283125487 0.45190179110485007 0.5723541197754489 0.546477994040771 0.5827900224986577 0.5131837083244492 0.46864546640284643 0.5478759607606497 0.25889083079032665 0.4678
0.3728 41.0 7749 1.0850 0.4073 0.5426 0.6955 0.5853 0.5827 0.5786 0.2921 0.3809 0.3712 0.4464 0.4330 0.2670 0.4180 0.1631 0.3694 0.6698 0.802245750865899 0.7318241236329124 0.42969167458935054 0.5493256781204481 0.5160249547251025 0.5726640520570764 0.5288880126774462 0.4574478940223419 0.5711251037232947 0.19784948869497082 0.4842
0.3693 42.0 7938 1.0969 0.4065 0.5503 0.6922 0.5756 0.5804 0.5766 0.2872 0.3775 0.3786 0.4480 0.4396 0.2669 0.4132 0.1619 0.3729 0.6542 0.7976682615387576 0.7308713320448722 0.44501773061949607 0.5653019507421896 0.538869270774736 0.5873936666829358 0.56251667450614 0.4661854609016619 0.5560663849947923 0.19690370447456942 0.5024
0.3627 43.0 8127 1.0932 0.4087 0.5497 0.6948 0.5872 0.5821 0.5762 0.2896 0.3820 0.3742 0.4499 0.4346 0.2685 0.4164 0.1848 0.3597 0.6732 0.7995246428515413 0.7126413100641786 0.43433425167070316 0.563626528797201 0.5217319508309168 0.5951934113097872 0.5607702041441706 0.46790458106705235 0.5671581929537526 0.24491526201895852 0.4559
0.3707 44.0 8316 1.1095 0.4071 0.5449 0.6950 0.5894 0.5823 0.5774 0.2917 0.3801 0.3754 0.4476 0.4287 0.2635 0.4096 0.1911 0.3478 0.6797 0.803457548596816 0.7234216375288598 0.45707177604596777 0.5651155676479467 0.535205542591067 0.5728081127420495 0.5155644795786185 0.4590960311615485 0.5458174021480566 0.2506389399870835 0.4307
0.3715 45.0 8505 1.0884 0.4110 0.5481 0.6962 0.5912 0.5809 0.5791 0.2980 0.3817 0.3750 0.4483 0.4349 0.2677 0.4155 0.1909 0.3686 0.6866 0.7922721276173627 0.7332420395960666 0.4349206459358367 0.5523381961763103 0.5312496597577838 0.5854673470319562 0.5314412880593928 0.4323043752162764 0.5652806122582028 0.24881776972449826 0.4833
0.3637 46.0 8694 1.0893 0.4116 0.5565 0.6948 0.5922 0.5794 0.5788 0.2952 0.3804 0.3754 0.4487 0.4356 0.2641 0.4159 0.2068 0.3666 0.6868 0.7855706573717709 0.7296848368597656 0.4425784692680828 0.5763147605281125 0.5288216913032275 0.5846069190064064 0.5331374000735017 0.4572549089199045 0.5724143758009055 0.2998656313033151 0.4811
0.3581 47.0 8883 1.1164 0.4080 0.5443 0.6938 0.5748 0.5822 0.5779 0.2909 0.3849 0.3751 0.4487 0.4350 0.2687 0.4150 0.1785 0.3643 0.6506 0.8100174578425522 0.7248255712255228 0.4533868606047147 0.550595919425778 0.5230221493146161 0.5953540035487735 0.5514560526984038 0.42514396244997915 0.5546477684692658 0.22449979033586054 0.4677
0.3595 48.0 9072 1.1264 0.4056 0.5374 0.6942 0.5787 0.5823 0.5789 0.2896 0.3819 0.3750 0.4479 0.4224 0.2665 0.4140 0.1723 0.3580 0.6590 0.8105713324342202 0.7333610315374302 0.4352710945794963 0.5541979753123436 0.5253811620133629 0.5813399690466331 0.48688700765339743 0.43734195185576247 0.5611134262144687 0.21352685690499001 0.4503
0.3604 49.0 9261 1.0948 0.4104 0.5508 0.6953 0.5878 0.5812 0.5782 0.2930 0.3807 0.3796 0.4482 0.4364 0.2659 0.4139 0.1915 0.3678 0.6790 0.7967062773369975 0.7227093979949429 0.44773110526644505 0.5612015226688438 0.5522702775287709 0.5861175881564799 0.5459659213274032 0.4310488629406493 0.5518188802213042 0.25352220450364693 0.4817
0.3541 50.0 9450 1.0863 0.4097 0.5538 0.6951 0.5922 0.5796 0.5785 0.2917 0.3793 0.3797 0.4481 0.4354 0.2647 0.4174 0.1817 0.3681 0.6884 0.7851625477616788 0.7322992353412343 0.45229387721112274 0.5829333862769369 0.5516333441001092 0.5904157921999404 0.5288772981353482 0.4518224891972707 0.571864661897264 0.23178753217655862 0.4783
  • All values in the above chart are rounded to nearest ten-thousandth.

Framework versions

  • Transformers 4.26.1
  • Pytorch 1.12.1
  • Datasets 2.9.0
  • Tokenizers 0.12.1