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---
license: apache-2.0
base_model: distilbert-base-uncased
tags:
- generated_from_trainer
model-index:
- name: distilbert-base-uncased-three_v2
  results: []
---

<!-- This model card has been generated automatically according to the information the Trainer had access to. You
should probably proofread and complete it, then remove this comment. -->

# distilbert-base-uncased-three_v2

This model is a fine-tuned version of [distilbert-base-uncased](https://huggingface.co/distilbert-base-uncased) on the None dataset.
It achieves the following results on the evaluation set:
- Loss: 0.0646
- Overall Precision: 0.8692
- Overall Recall: 0.9049
- Overall F1: 0.8867
- Overall Accuracy: 0.9812
- Accountname F1: 0.9773
- Accountnumber F1: 0.9883
- Age F1: 0.8924
- Amount F1: 0.9622
- Bic F1: 0.8699
- Bitcoinaddress F1: 0.9496
- Buildingnumber F1: 0.9553
- City F1: 0.9484
- Companyname F1: 0.7802
- County F1: 0.9546
- Creditcardcvv F1: 0.8307
- Creditcardissuer F1: 0.9822
- Creditcardnumber F1: 0.8662
- Currency F1: 0.7573
- Currencycode F1: 0.7819
- Currencyname F1: 0.0943
- Currencysymbol F1: 0.8871
- Date F1: 0.8276
- Dob F1: 0.8951
- Email F1: 0.9543
- Ethereumaddress F1: 1.0
- Eyecolor F1: 0.9344
- Firstname F1: 0.8670
- Gender F1: 0.9632
- Height F1: 0.9716
- Iban F1: 0.9468
- Ip F1: 0.8493
- Ipv4 F1: 0.8556
- Ipv6 F1: 0.6738
- Jobarea F1: 0.8987
- Jobtitle F1: 0.9577
- Jobtype F1: 0.9303
- Lastname F1: 0.8520
- Litecoinaddress F1: 0.8554
- Mac F1: 0.9928
- Maskednumber F1: 0.8369
- Middlename F1: 0.7513
- Nearbygpscoordinate F1: 0.9269
- Ordinaldirection F1: 0.9817
- Password F1: 0.8792
- Phoneimei F1: 0.9887
- Phonenumber F1: 0.9230
- Pin F1: 0.8550
- Prefix F1: 0.9199
- Secondaryaddress F1: 0.9740
- Sex F1: 0.9667
- Ssn F1: 0.9150
- State F1: 0.9738
- Street F1: 0.8667
- Time F1: 0.9069
- Url F1: 0.9878
- Useragent F1: 0.9943
- Username F1: 0.8805
- Vehiclevin F1: 0.9620
- Vehiclevrm F1: 0.9821
- Zipcode F1: 0.9423

## 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
- train_batch_size: 64
- eval_batch_size: 64
- seed: 42
- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
- lr_scheduler_type: linear
- lr_scheduler_warmup_ratio: 0.2
- num_epochs: 7

### Training results

| Training Loss | Epoch | Step | Validation Loss | Overall Precision | Overall Recall | Overall F1 | Overall Accuracy | Accountname F1 | Accountnumber F1 | Age F1 | Amount F1 | Bic F1 | Bitcoinaddress F1 | Buildingnumber F1 | City F1 | Companyname F1 | County F1 | Creditcardcvv F1 | Creditcardissuer F1 | Creditcardnumber F1 | Currency F1 | Currencycode F1 | Currencyname F1 | Currencysymbol F1 | Date F1 | Dob F1 | Email F1 | Ethereumaddress F1 | Eyecolor F1 | Firstname F1 | Gender F1 | Height F1 | Iban F1 | Ip F1  | Ipv4 F1 | Ipv6 F1 | Jobarea F1 | Jobtitle F1 | Jobtype F1 | Lastname F1 | Litecoinaddress F1 | Mac F1 | Maskednumber F1 | Middlename F1 | Nearbygpscoordinate F1 | Ordinaldirection F1 | Password F1 | Phoneimei F1 | Phonenumber F1 | Pin F1 | Prefix F1 | Secondaryaddress F1 | Sex F1 | Ssn F1 | State F1 | Street F1 | Time F1 | Url F1 | Useragent F1 | Username F1 | Vehiclevin F1 | Vehiclevrm F1 | Zipcode F1 |
|:-------------:|:-----:|:----:|:---------------:|:-----------------:|:--------------:|:----------:|:----------------:|:--------------:|:----------------:|:------:|:---------:|:------:|:-----------------:|:-----------------:|:-------:|:--------------:|:---------:|:----------------:|:-------------------:|:-------------------:|:-----------:|:---------------:|:---------------:|:-----------------:|:-------:|:------:|:--------:|:------------------:|:-----------:|:------------:|:---------:|:---------:|:-------:|:------:|:-------:|:-------:|:----------:|:-----------:|:----------:|:-----------:|:------------------:|:------:|:---------------:|:-------------:|:----------------------:|:-------------------:|:-----------:|:------------:|:--------------:|:------:|:---------:|:-------------------:|:------:|:------:|:--------:|:---------:|:-------:|:------:|:------------:|:-----------:|:-------------:|:-------------:|:----------:|
| 0.2314        | 1.0   | 1299 | 0.1322          | 0.7381            | 0.8044         | 0.7698     | 0.9699           | 0.8367         | 0.8496           | 0.6806 | 0.5746    | 0.3430 | 0.8041            | 0.8363            | 0.8420  | 0.6640         | 0.3719    | 0.0357           | 0.4493              | 0.4554              | 0.5         | 0.0             | 0.0             | 0.4768            | 0.7367  | 0.8515 | 0.9459   | 0.9908             | 0.1847      | 0.75         | 0.6004    | 0.6974    | 0.7952  | 0.8253 | 0.8246  | 0.7153  | 0.1512     | 0.7939      | 0.4468     | 0.7328      | 0.0                | 0.9026 | 0.4479          | 0.1935        | 0.8676                 | 0.4604              | 0.7485      | 0.9364       | 0.8741         | 0.0060 | 0.8869    | 0.8963              | 0.8999 | 0.8115 | 0.8037   | 0.7648    | 0.8413  | 0.9516 | 0.9388       | 0.8054      | 0.3968        | 0.4866        | 0.8015     |
| 0.0799        | 2.0   | 2598 | 0.0761          | 0.8402            | 0.8811         | 0.8602     | 0.9782           | 0.9717         | 0.9659           | 0.8657 | 0.9269    | 0.8091 | 0.9468            | 0.9322            | 0.9342  | 0.7616         | 0.9097    | 0.7692           | 0.9821              | 0.7663              | 0.7208      | 0.5127          | 0.0248          | 0.8171            | 0.7995  | 0.8872 | 0.9503   | 0.9985             | 0.8933      | 0.8138       | 0.9242    | 0.9632    | 0.9326  | 0.8285 | 0.8610  | 0.5590  | 0.8205     | 0.9382      | 0.9207     | 0.8141      | 0.8254             | 0.9928 | 0.7820          | 0.5016        | 0.8957                 | 0.9611              | 0.8398      | 0.9838       | 0.9222         | 0.7815 | 0.9156    | 0.9650              | 0.9534 | 0.9125 | 0.9593   | 0.8373    | 0.8884  | 0.9804 | 0.9806       | 0.8505      | 0.9056        | 0.9592        | 0.9209     |
| 0.0604        | 3.0   | 3897 | 0.0681          | 0.8591            | 0.8945         | 0.8765     | 0.9799           | 0.9829         | 0.9882           | 0.8940 | 0.9528    | 0.8575 | 0.9588            | 0.9468            | 0.9462  | 0.7795         | 0.9411    | 0.8156           | 0.9821              | 0.8064              | 0.7556      | 0.7036          | 0.0317          | 0.8614            | 0.8159  | 0.8861 | 0.9547   | 0.9969             | 0.9311      | 0.8487       | 0.9505    | 0.9718    | 0.9388  | 0.8284 | 0.7476  | 0.7306  | 0.8966     | 0.9562      | 0.9323     | 0.8372      | 0.8718             | 0.9928 | 0.8047          | 0.6657        | 0.9103                 | 0.9769              | 0.8639      | 0.9937       | 0.9262         | 0.8207 | 0.9170    | 0.9737              | 0.9663 | 0.9201 | 0.9705   | 0.8333    | 0.9061  | 0.9915 | 0.9909       | 0.8685      | 0.9808        | 0.9671        | 0.9289     |
| 0.0469        | 4.0   | 5196 | 0.0646          | 0.8692            | 0.9049         | 0.8867     | 0.9812           | 0.9773         | 0.9883           | 0.8924 | 0.9622    | 0.8699 | 0.9496            | 0.9553            | 0.9484  | 0.7802         | 0.9546    | 0.8307           | 0.9822              | 0.8662              | 0.7573      | 0.7819          | 0.0943          | 0.8871            | 0.8276  | 0.8951 | 0.9543   | 1.0                | 0.9344      | 0.8670       | 0.9632    | 0.9716    | 0.9468  | 0.8493 | 0.8556  | 0.6738  | 0.8987     | 0.9577      | 0.9303     | 0.8520      | 0.8554             | 0.9928 | 0.8369          | 0.7513        | 0.9269                 | 0.9817              | 0.8792      | 0.9887       | 0.9230         | 0.8550 | 0.9199    | 0.9740              | 0.9667 | 0.9150 | 0.9738   | 0.8667    | 0.9069  | 0.9878 | 0.9943       | 0.8805      | 0.9620        | 0.9821        | 0.9423     |
| 0.0365        | 5.0   | 6495 | 0.0688          | 0.8757            | 0.9066         | 0.8909     | 0.9815           | 0.9877         | 0.9891           | 0.8980 | 0.9720    | 0.8845 | 0.9588            | 0.9591            | 0.9511  | 0.8042         | 0.9555    | 0.8268           | 0.9870              | 0.8498              | 0.7164      | 0.7954          | 0.2376          | 0.9093            | 0.8287  | 0.8881 | 0.9543   | 1.0                | 0.9392      | 0.8648       | 0.9776    | 0.9771    | 0.9657  | 0.8602 | 0.8201  | 0.7170  | 0.9104     | 0.9594      | 0.9336     | 0.8596      | 0.8698             | 0.9928 | 0.8396          | 0.7732        | 0.9266                 | 0.9837              | 0.8613      | 0.9799       | 0.9370         | 0.8524 | 0.9232    | 0.9724              | 0.9713 | 0.9317 | 0.9748   | 0.8684    | 0.9145  | 0.9897 | 0.9909       | 0.8822      | 0.9620        | 0.9594        | 0.9490     |
| 0.0277        | 6.0   | 7794 | 0.0766          | 0.8745            | 0.9120         | 0.8929     | 0.9813           | 0.9877         | 0.9900           | 0.8945 | 0.9746    | 0.8930 | 0.9434            | 0.9551            | 0.9471  | 0.7986         | 0.96      | 0.8303           | 0.9853              | 0.8607              | 0.7025      | 0.8011          | 0.2532          | 0.9124            | 0.8337  | 0.8961 | 0.9518   | 0.9985             | 0.9396      | 0.8713       | 0.9748    | 0.9801    | 0.9543  | 0.8564 | 0.8474  | 0.7036  | 0.9193     | 0.9567      | 0.9320     | 0.8612      | 0.8450             | 0.9952 | 0.8282          | 0.7761        | 0.9323                 | 0.9839              | 0.8869      | 0.9925       | 0.9387         | 0.8360 | 0.9268    | 0.9723              | 0.9702 | 0.9372 | 0.9712   | 0.8759    | 0.9190  | 0.9859 | 0.9909       | 0.8835      | 0.9511        | 0.9697        | 0.9430     |
| 0.0225        | 7.0   | 9093 | 0.0850          | 0.8795            | 0.9113         | 0.8951     | 0.9819           | 0.9896         | 0.9936           | 0.8952 | 0.9746    | 0.8916 | 0.9545            | 0.9595            | 0.9505  | 0.8040         | 0.9581    | 0.8362           | 0.9919              | 0.8677              | 0.7402      | 0.7932          | 0.2246          | 0.9097            | 0.8339  | 0.8964 | 0.9503   | 1.0                | 0.9396      | 0.8748       | 0.9796    | 0.9829    | 0.9604  | 0.8682 | 0.8297  | 0.7449  | 0.9147     | 0.9594      | 0.9281     | 0.8581      | 0.8466             | 0.9952 | 0.8331          | 0.7916        | 0.9373                 | 0.9861              | 0.8877      | 0.9925       | 0.9406         | 0.8546 | 0.9289    | 0.9733              | 0.9718 | 0.9330 | 0.9756   | 0.8799    | 0.9217  | 0.9868 | 0.9932       | 0.8802      | 0.9593        | 0.9622        | 0.9459     |


### Framework versions

- Transformers 4.40.1
- Pytorch 2.2.2+cu121
- Datasets 2.19.0
- Tokenizers 0.19.1