CoolFace
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QuanHoangNgoc/lock_s2t-small-uit-vimd_211008

sourceHugging Faceupdated 1y agoView on Hugging Face
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Model Card

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s2t-small-uit-vimd-finetuned

This model is a fine-tuned version of lock_s2t-small-uit-vimd_192355 on the UIT-ViMD dataset. It achieves the following results on the evaluation set:

  • —Loss: 0.9924
  • —Wer: 0.2993

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: 3e-05
  • —trainbatchsize: 16
  • —evalbatchsize: 16
  • —seed: 42
  • —optimizer: Use OptimizerNames.ADAMWTORCH with betas=(0.9,0.999) and epsilon=1e-08 and optimizerargs=No additional optimizer arguments
  • —lrschedulertype: linear
  • —lrschedulerwarmup_steps: 1500
  • —training_steps: 40000
  • —mixedprecisiontraining: Native AMP

Training results

Training LossEpochStepValidation LossWer
1.75720.0490461.83610.6165
1.75710.0980921.84530.6250
1.70170.14701381.80050.6551
1.67970.19601841.78930.6621
1.65810.24492301.77490.6178
1.60880.29392761.75410.6911
1.6240.34293221.74350.6374
1.63970.39193681.73430.6046
1.57140.44094141.70330.5620
1.56150.48994601.68270.6565
1.57510.53895061.67520.5916
1.57670.58795521.65420.5945
1.51850.63685981.63850.6006
1.56410.68586441.62690.5714
1.49750.73486901.61700.5542
1.52880.78387361.60390.5483
1.51060.83287821.60660.5137
1.47040.88188281.58840.5148
1.46250.93088741.58180.5367
1.48270.97989201.57530.5805
1.42871.02889661.57270.6089
1.4231.077710121.55460.5685
1.40651.126710581.54300.5897
1.41591.175711041.51890.5792
1.41141.224711501.51480.5591
1.38631.273711961.51000.5359
1.46051.322712421.50910.4837
1.40491.371712881.49590.4890
1.37611.420713341.48240.4645
1.40081.469613801.45400.4528
1.38931.518614261.44790.4949
1.36441.567614721.45560.5312
1.37741.616615181.44410.5046
1.37331.665615641.43110.4608
1.37221.714616101.42470.4935
1.31161.763616561.41480.4273
1.33911.812617021.41280.5014
1.35051.861617481.40870.5013
1.33711.910517941.39200.4507
1.32351.959518401.39640.4842
1.30622.008518861.37000.5218
1.21942.057519321.37570.4731
1.24882.106519781.38120.4668
1.23922.155520241.36620.4557
1.26762.204520701.35630.4734
1.22422.253521161.33780.4319
1.24722.302421621.35130.4442
1.22852.351422081.34450.4385
1.22972.400422541.33430.4627
1.20162.449423001.33600.4493
1.24392.498423461.31830.4480
1.20962.547423921.31680.4394
1.2272.596424381.31250.4417
1.19052.645424841.30570.4047
1.16812.694425301.29610.4139
1.22092.743325761.29380.4135
1.20292.792326221.28490.4332
1.19772.841326681.29380.4267
1.19762.890327141.28770.4259
1.19392.939327601.27710.4133
1.21512.988328061.26700.4197
1.13953.037328521.28650.4354
1.08453.086328981.26410.4316
1.04713.135329441.26090.4099
1.11893.184229901.26810.4265
1.13583.233230361.25640.3983
1.12793.282230821.24410.4326
1.1573.331231281.25150.3814
1.09633.380231741.24680.4001
1.09813.429232201.24140.4206
1.11653.478232661.23930.3809
1.05943.527233121.22290.3851
1.06683.576133581.22640.3760
1.09913.625134041.21750.3931
1.10163.674134501.20420.3946
1.0683.723134961.21460.3618
1.09183.772135421.18830.3902
1.0773.821135881.20770.3696
1.09123.870136341.18380.3970
1.07393.919136801.19030.3668
1.14753.968137261.19830.3841
1.06584.017037721.19370.3725
1.01774.066038181.18940.3790
0.94424.115038641.20470.3572
1.03374.164039101.19780.3561
1.06444.213039561.20010.3586
0.99714.262040021.19120.3502
1.01394.311040481.19460.3671
1.0074.360040941.18930.3618
1.034.408941401.17380.3644
1.00114.457941861.18870.4018
0.98744.506942321.17510.3741
1.00794.555942781.17900.3867
1.00594.604943241.16490.3768
1.00514.653943701.16480.3918
1.03974.702944161.15170.3698
1.02164.751944621.16000.3585
0.97994.800945081.16280.3538
1.03474.849845541.15600.3562
0.99584.898846001.15040.3481
1.0194.947846461.14210.3637
1.00194.996846921.12480.3765
0.94735.045847381.13790.3521
0.91945.094847841.13690.3481
0.9285.143848301.14180.3495
0.92045.192848761.13920.3977
0.93825.241749221.13330.3462
0.95725.290749681.13760.3471
0.9395.339750141.14360.3446
0.96955.388750601.12250.3422
0.93035.437751061.12610.3562
0.95725.486751521.13200.3543
0.96145.535751981.12670.3564
0.93285.584752441.13180.3872
0.90055.633752901.13230.3379
0.97585.682653361.12540.3390
0.94115.731653821.12240.3919
0.93595.780654281.11120.3617
0.94335.829654741.09610.3325
0.94545.878655201.09880.3443
0.9235.927655661.10490.3267
0.95255.976656121.09730.3682
0.90836.025656581.09230.3368
0.9126.074557041.10670.3322
0.8586.123557501.10260.3382
0.91626.172557961.09540.3486
0.87766.221558421.09300.3620
0.88286.270558881.09650.3266
0.87236.319559341.09640.3175
0.85246.368559801.09780.3379
0.87916.417560261.10070.3640
0.89626.466560721.08070.3363
0.91896.515461181.09340.3363
0.84876.564461641.08070.3247
0.89046.613462101.09220.3398
0.86796.662462561.09100.3491
0.896.711463021.08190.3277
0.91576.760463481.08060.3457
0.86366.809463941.07570.3245
0.89126.858464401.07260.3460
0.90726.907364861.07070.3315
0.87746.956365321.06110.3221
0.88697.005365781.06920.3204
0.81227.054366241.08770.3116
0.87167.103366701.07450.3306
0.81967.152367161.06620.3261
0.83967.201367621.06250.3172
0.83197.250368081.05600.3226
0.8487.299368541.08510.3277
0.84797.348269001.06110.3226
0.81537.397269461.07420.3350
0.82697.446269921.07410.3334
0.83857.495270381.06390.3465
0.80967.544270841.07570.3494
0.85447.593271301.05190.3507
0.84157.642271761.05470.3524
0.86457.691272221.05600.3416
0.85947.740172681.05890.3264
0.80927.789173141.05350.3441
0.85957.838173601.04980.3379
0.84327.887174061.05230.3252
0.87357.936174521.05570.3749
0.85887.985174981.05360.3186
0.81998.034175441.05100.3318
0.76798.083175901.06040.3446
0.7898.132176361.05300.3444
0.77568.181076821.03770.3570
0.79238.230077281.06430.3747
0.79338.279077741.05460.3181
0.78048.328078201.04550.3275
0.79888.377078661.03620.3358
0.80838.426079121.03410.3301
0.78378.475079581.03300.3460
0.80118.524080041.03700.3537
0.82418.572980501.03830.3272
0.77768.621980961.02660.3468
0.79318.670981421.03580.3177
0.80148.719981881.03290.3178
0.8148.768982341.04090.3838
0.83128.817982801.04030.3232
0.84778.866983261.03320.3193
0.8168.915983721.02590.3216
0.80838.964984181.02080.3099
0.80579.013884641.02380.3218
0.73359.062885101.04030.3240
0.75469.111885561.03880.3309
0.72879.160886021.02400.3197
0.76859.209886481.03750.3317
0.77349.258886941.04310.3336
0.80289.307887401.05220.3272
0.73459.356887861.03980.3146
0.76599.405888321.02590.3548
0.77359.454788781.03530.3199
0.77589.503789241.02590.3487
0.74969.552789701.02290.3287
0.77649.601790161.03320.3502
0.78269.650790621.02850.3231
0.77319.699791081.02020.3481
0.77149.748791541.02720.3344
0.77819.797792001.01700.3204
0.80769.846692461.01040.3266
0.76099.895692921.01450.3127
0.75959.944693381.01160.3118
0.79759.993693841.01460.3099
0.726510.042694301.01830.3097
0.70210.091694761.01550.3114
0.725410.140695221.02990.3419
0.745310.189695681.00930.3127
0.723210.238696141.01650.3242
0.751610.287596601.00970.3395
0.740410.336597061.01810.3535
0.741910.385597521.00720.3199
0.719310.434597981.00880.3116
0.698410.483598441.01690.3216
0.738210.532598901.01420.3462
0.749510.581599361.01010.3336
0.738810.630599821.01110.3389
0.734810.6794100281.00370.3397
0.758610.7284100740.99270.3521
0.730410.7774101201.00820.3298
0.766710.8264101661.00860.3279
0.735710.8754102120.99740.3196
0.79310.9244102581.00590.3545
0.766810.9734103040.99080.3186
0.700711.0224103501.00850.3162
0.721611.0714103960.98790.3159
0.669811.1203104420.98820.3197
0.722511.1693104881.00600.3102
0.70911.2183105341.00000.2944
0.679711.2673105801.00350.3127
0.706211.3163106260.99570.3146
0.704311.3653106720.99860.3097
0.675911.4143107181.00290.3201
0.710711.4633107640.98100.3609
0.701311.5122108100.97980.3280
0.690311.5612108560.98270.3207
0.696711.6102109020.99060.3105
0.720611.6592109480.98620.3127
0.743511.7082109940.98530.3078
0.731111.7572110401.00850.3309
0.731811.8062110861.00020.3172
0.739711.8552111320.97910.3169
0.717911.9042111780.98460.3145
0.714311.9531112240.99770.3033
0.749612.0021112700.99670.3285
0.654712.0511113160.99540.3065
0.689712.1001113621.00020.3076
0.664212.1491114080.99780.3142
0.66112.1981114540.99270.3057
0.678112.2471115000.99920.3162
0.685612.2961115461.00770.3151
0.677612.3450115920.98950.3197
0.692112.3940116381.01240.3204
0.698212.4430116841.00400.3103
0.688512.4920117300.99510.3113
0.67912.5410117761.00120.3089
0.697412.5900118220.99460.3202
0.686212.6390118680.98750.3076
0.692912.6880119140.98670.3099
0.652612.7370119600.98970.3078
0.710712.7859120060.98490.3228
0.669712.8349120520.98290.3430
0.698612.8839120980.99490.3373
0.705612.9329121440.96600.3389
0.72212.9819121900.95130.3239
0.648213.0309122360.98340.3559
0.65113.0799122820.98340.3317
0.61213.1289123280.98580.3354
0.663313.1778123740.98370.3266
0.628613.2268124200.97920.3303
0.624213.2758124660.98440.3293
0.66313.3248125120.98140.3285
0.668813.3738125580.99240.2993

Framework versions

  • —Transformers 4.49.0
  • —Pytorch 2.6.0+cu124
  • —Datasets 3.4.0
  • —Tokenizers 0.21.0