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BACnet-Klassifizierung-Sanitaertechnik-bert-base-german-cased

This model is a fine-tuned version of bert-base-german-cased on the gart-labor "klassifizierung_sanitaer_v2" dataset. It achieves the following results on the evaluation set:

  • Loss: 0.0039
  • F1: [1. 1. 1.]

Model description

This model makes it possible to classify the sanitary technology components described with the BACnet standard into different categories.
The model is based on a German-language data set.

Intended uses & limitations

The model divides descriptive texts into the following sanitary engineering categories: Other, pressure boosting system, softening system, lifting system, sanitary_general, waste water, drinking water heating system and water meter.

Training and evaluation data

The model is based on a German-language data set.

Training procedure

Training hyperparameters

The following hyperparameters were used during training:

  • learning_rate: 5e-05
  • train_batch_size: 8
  • eval_batch_size: 8
  • seed: 42
  • gradient_accumulation_steps: 16
  • total_train_batch_size: 128
  • optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
  • lr_scheduler_type: linear
  • num_epochs: 40.0

Training results

Training Loss Epoch Step Validation Loss F1
0.0507 1.0 1 0.1080 [1. 1. 1.]
0.0547 2.0 2 0.0589 [1. 1. 1.]
0.0407 3.0 3 0.0427 [1. 1. 1.]
0.0294 4.0 4 0.0465 [1. 1. 1.]
0.0284 5.0 5 0.0291 [1. 1. 1.]
0.0208 6.0 6 0.0232 [1. 1. 1.]
0.0171 7.0 7 0.0198 [1. 1. 1.]
0.0153 8.0 8 0.0170 [1. 1. 1.]
0.0134 9.0 9 0.0144 [1. 1. 1.]
0.0126 10.0 10 0.0124 [1. 1. 1.]
0.0108 11.0 11 0.0109 [1. 1. 1.]
0.0096 12.0 12 0.0098 [1. 1. 1.]
0.0084 13.0 13 0.0089 [1. 1. 1.]
0.0082 14.0 14 0.0083 [1. 1. 1.]
0.0071 15.0 15 0.0077 [1. 1. 1.]
0.0068 16.0 16 0.0073 [1. 1. 1.]
0.0064 17.0 17 0.0069 [1. 1. 1.]
0.0059 18.0 18 0.0065 [1. 1. 1.]
0.0053 19.0 19 0.0061 [1. 1. 1.]
0.0052 20.0 20 0.0058 [1. 1. 1.]
0.005 21.0 21 0.0056 [1. 1. 1.]
0.0047 22.0 22 0.0053 [1. 1. 1.]
0.0044 23.0 23 0.0051 [1. 1. 1.]
0.0042 24.0 24 0.0050 [1. 1. 1.]
0.0043 25.0 25 0.0048 [1. 1. 1.]
0.004 26.0 26 0.0047 [1. 1. 1.]
0.004 27.0 27 0.0045 [1. 1. 1.]
0.004 28.0 28 0.0044 [1. 1. 1.]
0.0037 29.0 29 0.0044 [1. 1. 1.]
0.0037 30.0 30 0.0043 [1. 1. 1.]
0.0037 31.0 31 0.0042 [1. 1. 1.]
0.0035 32.0 32 0.0042 [1. 1. 1.]
0.0036 33.0 33 0.0041 [1. 1. 1.]
0.0035 34.0 34 0.0041 [1. 1. 1.]
0.0037 35.0 35 0.0040 [1. 1. 1.]
0.0034 36.0 36 0.0040 [1. 1. 1.]
0.0033 37.0 37 0.0040 [1. 1. 1.]
0.0034 38.0 38 0.0040 [1. 1. 1.]
0.0034 39.0 39 0.0040 [1. 1. 1.]
0.0034 40.0 40 0.0039 [1. 1. 1.]

Framework versions

  • Transformers 4.21.1
  • Pytorch 1.12.0+cu113
  • Datasets 2.4.0
  • Tokenizers 0.12.1
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