CoolFace
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BenPhan/ST2_modernbert-base_hazard_V1

sourceHugging Faceapache-2.0updated 2y agoView on Hugging Face
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Model Card

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ST2modernbert-basehazard_V1

This model is a fine-tuned version of answerdotai/ModernBERT-base on the None dataset. It achieves the following results on the evaluation set:

  • —Loss: 1.4784
  • —F1: 0.8438

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: 5e-05
  • —trainbatchsize: 36
  • —evalbatchsize: 16
  • —seed: 42
  • —optimizer: Use OptimizerNames.ADAMWTORCHFUSED with betas=(0.9,0.999) and epsilon=1e-08 and optimizer_args=No additional optimizer arguments
  • —lrschedulertype: linear
  • —num_epochs: 200

Training results

Training LossEpochStepValidation LossF1
2.51911.01281.04560.7432
0.94712.02560.77270.7980
0.56783.03840.87170.8031
0.25554.05120.75720.8172
0.16845.06400.86520.8206
0.12076.07680.84500.8357
0.11617.08960.97990.8240
0.04798.010240.97290.8212
0.05089.011520.93210.8460
0.025510.012800.97200.8499
0.022211.014081.03220.8224
0.024212.015361.00430.8340
0.013813.016641.04570.8253
0.014914.017921.10480.8228
0.009215.019201.08760.8321
0.002316.020481.06080.8406
0.008817.021761.12990.8305
0.004818.023041.10190.8414
0.006419.024321.07740.8277
0.003320.025601.15860.8345
0.007121.026881.08520.8252
0.010422.028161.16480.8245
0.013623.029441.24530.8153
0.010524.030721.07810.8333
0.034125.032001.16190.8297
0.034226.033281.17590.8313
0.029627.034561.21330.8248
0.019628.035841.18740.8421
0.018629.037121.17180.8292
0.009430.038401.24520.8467
0.007631.039681.28930.8359
0.003832.040961.31810.8402
0.002733.042241.33860.8451
0.00134.043521.33600.8445
0.002635.044801.32820.8424
0.002436.046081.33320.8470
0.000437.047361.33930.8496
0.002838.048641.33870.8496
0.002339.049921.34920.8469
0.001740.051201.34290.8496
0.002741.052481.35500.8518
0.002142.053761.35830.8499
0.001443.055041.36190.8466
0.001344.056321.35680.8469
0.001245.057601.37270.8466
0.003846.058881.37370.8448
0.002147.060161.36650.8490
0.002448.061441.37300.8438
0.00249.062721.36390.8485
0.00250.064001.37540.8455
0.002651.065281.37310.8469
0.001652.066561.38410.8445
0.001953.067841.37720.8435
0.002254.069121.38320.8484
0.002155.070401.38660.8419
0.001356.071681.39170.8405
0.001557.072961.39020.8444
0.001758.074241.39410.8457
0.001959.075521.39920.8380
0.001960.076801.39670.8459
0.002361.078081.39100.8408
0.002262.079361.40570.8417
0.001963.080641.40240.8462
0.001264.081921.41420.8437
0.002265.083201.39020.8417
0.001266.084481.41100.8409
0.001667.085761.40140.8402
0.001568.087041.41320.8395
0.001169.088321.42470.8369
0.002970.089601.43020.8440
0.00171.090881.38370.8371
0.116972.092161.18300.8102
0.09773.093441.12050.8271
0.05974.094721.23080.8477
0.013975.096001.24710.8398
0.010676.097281.26840.8316
0.001877.098561.27280.8325
0.001478.099841.27750.8322
0.001779.0101121.28500.8303
0.001380.0102401.28440.8303
0.001581.0103681.29230.8332
0.002282.0104961.29240.8320
0.00283.0106241.29620.8339
0.000984.0107521.29920.8339
0.001285.0108801.30020.8339
0.001886.0110081.30370.8339
0.001987.0111361.30790.8323
0.000988.0112641.30840.8323
0.00289.0113921.31050.8343
0.001790.0115201.31180.8380
0.001291.0116481.31240.8345
0.002292.0117761.31470.8366
0.001793.0119041.31920.8343
0.001594.0120321.31970.8343
0.001995.0121601.31640.8363
0.001396.0122881.32250.8348
0.001697.0124161.32210.8354
0.001498.0125441.32420.8378
0.001499.0126721.32550.8378
0.0014100.0128001.32710.8388
0.0017101.0129281.32820.8378
0.0017102.0130561.33170.8382
0.0015103.0131841.33280.8382
0.0015104.0133121.33170.8382
0.0017105.0134401.33330.8401
0.0021106.0135681.33650.8388
0.0011107.0136961.33970.8392
0.0017108.0138241.33910.8398
0.0007109.0139521.33830.8411
0.002110.0140801.34500.8408
0.0014111.0142081.34770.8408
0.002112.0143361.34610.8411
0.0007113.0144641.35130.8417
0.0017114.0145921.35120.8421
0.0013115.0147201.35130.8408
0.001116.0148481.35150.8397
0.0015117.0149761.35840.8394
0.0016118.0151041.35290.8421
0.0008119.0152321.35390.8417
0.0022120.0153601.35440.8444
0.0016121.0154881.36280.8419
0.002122.0156161.36330.8417
0.0014123.0157441.36610.8397
0.0016124.0158721.36880.8418
0.0016125.0160001.36600.8417
0.0012126.0161281.36650.8431
0.0016127.0162561.37020.8395
0.0016128.0163841.38270.8416
0.002129.0165121.35980.8413
0.0011130.0166401.37110.8437
0.0014131.0167681.36080.8465
0.0023132.0168961.39450.8418
0.0015133.0170241.36880.8465
0.0011134.0171521.38650.8415
0.002135.0172801.37980.8435
0.0014136.0174081.39500.8436
0.0016137.0175361.38000.8435
0.0009138.0176641.40760.8415
0.0023139.0177921.39280.8436
0.0012140.0179201.39170.8412
0.0013141.0180481.39540.8436
0.0021142.0181761.39900.8436
0.0014143.0183041.39700.8436
0.001144.0184321.39820.8436
0.0017145.0185601.40590.8436
0.0016146.0186881.40200.8436
0.0015147.0188161.40940.8436
0.0013148.0189441.39750.8453
0.0011149.0190721.41310.8436
0.0018150.0192001.40270.8436
0.0013151.0193281.41860.8436
0.0006152.0194561.42250.8436
0.0027153.0195841.40870.8413
0.0013154.0197121.42940.8438
0.0018155.0198401.40110.8438
0.0009156.0199681.43050.8444
0.0016157.0200961.38050.8444
0.0013158.0202241.43750.8436
0.001159.0203521.42880.8436
0.0022160.0204801.43480.8438
0.001161.0206081.43380.8436
0.0015162.0207361.43580.8436
0.0019163.0208641.43150.8436
0.0009164.0209921.43620.8436
0.0017165.0211201.43630.8436
0.0006166.0212481.43980.8436
0.0018167.0213761.43640.8436
0.0017168.0215041.44350.8438
0.0015169.0216321.44820.8436
0.001170.0217601.44360.8436
0.0016171.0218881.45070.8436
0.0012172.0220161.44700.8436
0.001173.0221441.45050.8436
0.0017174.0222721.44780.8436
0.0011175.0224001.44700.8436
0.0013176.0225281.45370.8436
0.0012177.0226561.45640.8436
0.0015178.0227841.45720.8436
0.0015179.0229121.45870.8436
0.001180.0230401.46220.8436
0.0014181.0231681.46190.8436
0.0016182.0232961.46500.8436
0.0008183.0234241.46950.8438
0.0016184.0235521.46580.8438
0.0008185.0236801.46870.8436
0.0016186.0238081.47160.8436
0.0012187.0239361.47470.8436
0.001188.0240641.47330.8436
0.0014189.0241921.47560.8438
0.0012190.0243201.47860.8438
0.0012191.0244481.47760.8436
0.0008192.0245761.47750.8436
0.0016193.0247041.47680.8436
0.0012194.0248321.47590.8438
0.0012195.0249601.47740.8438
0.0014196.0250881.47770.8438
0.0014197.0252161.47940.8436
0.001198.0253441.47990.8436
0.0012199.0254721.47870.8438
0.0012200.0256001.47840.8438

Framework versions

  • —Transformers 4.48.0.dev0
  • —Pytorch 2.4.1+cu121
  • —Datasets 3.1.0
  • —Tokenizers 0.21.0