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sulaimank/w2vbert-shona-sd2

sourceHugging Facemitupdated 2mo agoView on Hugging Face
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w2vbert-shona-sd2

This model is a fine-tuned version of sulaimank/w2vbert-shona-waxal-punct-v2 on the None dataset. It achieves the following results on the evaluation set:

  • —Loss: 0.0262
  • —Wer Keep: 0.1163
  • —Cer Keep: 0.0183
  • —Zindi Keep: 0.9327
  • —Wer Strip: 0.0318
  • —Zindi Strip: 0.9820
  • —Zindi Lower: 0.9977

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
  • —gradientaccumulationsteps: 2
  • —totaltrainbatch_size: 32
  • —optimizer: Use OptimizerNames.ADAMWTORCHFUSED with betas=(0.9,0.98) and epsilon=1e-08 and optimizer_args=No additional optimizer arguments
  • —lrschedulertype: linear
  • —lrschedulerwarmup_steps: 0.1
  • —num_epochs: 8.0

Training results

Training LossEpochStepValidation LossWer KeepCer KeepZindi KeepWer StripZindi StripZindi Lower
3.46440.17542000.38770.38740.06020.77620.31180.82040.8817
1.36940.35094000.05870.17850.02430.89860.08280.95310.9911
0.89310.52636000.04870.15950.02190.90930.06580.96270.9921
1.06250.70188000.04580.15140.02050.91410.05980.96600.9924
1.59200.877210000.04570.15800.02080.91060.06050.96570.9930
0.98441.052612000.04080.14710.01960.91660.05330.96980.9947
0.42981.228114000.03970.14780.02010.91610.05350.96960.9928
1.11911.403516000.04030.14710.02040.91620.05310.96980.9925
0.78801.578918000.03800.14370.01930.91850.05190.97050.9939
0.98061.754420000.03760.14410.01920.91830.05180.97060.9940
0.71751.929822000.03690.14030.01850.92060.04760.97300.9948
0.88592.105324000.03760.14360.02060.91790.05020.97150.9943
0.15012.280726000.03630.14060.01890.92030.04760.97300.9948
0.93712.456128000.03620.14080.01890.92010.04980.97170.9943
0.58772.631630000.03540.13950.01840.92100.04820.97270.9944
0.71672.807032000.03460.13670.01820.92250.04520.97440.9957
0.39042.982534000.03480.13570.01870.92280.04630.97380.9946
0.52623.157936000.03450.13350.01770.92440.04340.97540.9961
0.37663.333338000.03420.13440.01820.92370.04360.97520.9958
0.24433.508840000.03350.13440.02150.92210.04410.97500.9961
0.50283.684242000.03240.13330.01830.92420.04310.97560.9963
0.49433.859644000.03360.13500.01840.92330.04320.97560.9964
0.84144.035146000.03340.13110.02040.92420.04210.97610.9960
0.34124.210548000.03180.13050.02210.92370.04140.97650.9964
0.23764.386050000.03380.13840.01950.92100.04690.97350.9964
0.24194.561452000.03140.13070.01940.92490.04010.97730.9962
0.74534.736854000.03060.12710.01840.92720.03900.97790.9964
0.48514.912356000.03040.12690.01950.92680.03890.97800.9969
0.46165.087758000.03120.12560.01900.92770.03850.97810.9964
0.22005.263260000.02980.12540.01850.92810.03810.97840.9967
0.33455.438662000.02930.12500.01980.92760.03690.97910.9970
0.59135.614064000.02900.12380.01950.92830.03610.97950.9970
0.22865.789566000.02950.12340.01820.92920.03580.97970.9969
0.07595.964968000.02830.12120.01760.93060.03440.98050.9972
0.08166.140470000.02830.12120.01870.93000.03430.98060.9973
0.44296.315872000.02790.12070.01870.93030.03420.98060.9974
0.19176.491274000.02730.12040.01960.93000.03330.98120.9974
0.43726.666776000.02690.11880.01900.93110.03290.98130.9975
0.30776.842178000.02730.11830.01850.93160.03270.98140.9976
0.33787.017580000.02700.11830.01890.93140.03240.98170.9976
0.07787.193082000.02690.11750.01830.93210.03230.98170.9977
0.69537.368484000.02650.11680.01880.93220.03130.98230.9979
0.43837.543986000.02650.11650.01840.93250.03180.98200.9977
0.44817.719388000.02620.11640.01870.93240.03160.98210.9977
0.31567.894790000.02620.11610.01830.93280.03170.98210.9977
0.30488.091200.02620.11630.01830.93270.03180.98200.9977

Framework versions

  • —Transformers 5.14.1
  • —Pytorch 2.13.0+cu130
  • —Datasets 5.0.1
  • —Tokenizers 0.22.2