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---
language:
- he
base_model: ivrit-ai/whisper-v2-pd1-e1
tags:
- hf-asr-leaderboard
- generated_from_trainer
metrics:
- wer
model-index:
- name: he-cantillation
  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. -->

# he-cantillation

This model is a fine-tuned version of [ivrit-ai/whisper-v2-pd1-e1](https://huggingface.co/ivrit-ai/whisper-v2-pd1-e1) on an unknown dataset.
It achieves the following results on the evaluation set:
- Loss: 0.0952
- Wer: 7.8511
- Avg Precision Exact: 0.9335
- Avg Recall Exact: 0.9352
- Avg F1 Exact: 0.9340
- Avg Precision Letter Shift: 0.9440
- Avg Recall Letter Shift: 0.9458
- Avg F1 Letter Shift: 0.9446
- Avg Precision Word Level: 0.9462
- Avg Recall Word Level: 0.9479
- Avg F1 Word Level: 0.9467
- Avg Precision Word Shift: 0.9714
- Avg Recall Word Shift: 0.9736
- Avg F1 Word Shift: 0.9721
- Precision Median Exact: 1.0
- Recall Median Exact: 1.0
- F1 Median Exact: 1.0
- Precision Max Exact: 1.0
- Recall Max Exact: 1.0
- F1 Max Exact: 1.0
- Precision Min Exact: 0.0
- Recall Min Exact: 0.0
- F1 Min Exact: 0.0
- Precision Min Letter Shift: 0.0
- Recall Min Letter Shift: 0.0
- F1 Min Letter Shift: 0.0
- Precision Min Word Level: 0.0
- Recall Min Word Level: 0.0
- F1 Min Word Level: 0.0
- Precision Min Word Shift: 0.1429
- Recall Min Word Shift: 0.125
- F1 Min Word Shift: 0.1333

## 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: 1e-05
- train_batch_size: 8
- eval_batch_size: 32
- seed: 42
- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
- lr_scheduler_type: linear
- lr_scheduler_warmup_steps: 500
- training_steps: 80000
- mixed_precision_training: Native AMP

### Training results

| Training Loss | Epoch  | Step  | Validation Loss | Wer      | Avg Precision Exact | Avg Recall Exact | Avg F1 Exact | Avg Precision Letter Shift | Avg Recall Letter Shift | Avg F1 Letter Shift | Avg Precision Word Level | Avg Recall Word Level | Avg F1 Word Level | Avg Precision Word Shift | Avg Recall Word Shift | Avg F1 Word Shift | Precision Median Exact | Recall Median Exact | F1 Median Exact | Precision Max Exact | Recall Max Exact | F1 Max Exact | Precision Min Exact | Recall Min Exact | F1 Min Exact | Precision Min Letter Shift | Recall Min Letter Shift | F1 Min Letter Shift | Precision Min Word Level | Recall Min Word Level | F1 Min Word Level | Precision Min Word Shift | Recall Min Word Shift | F1 Min Word Shift |
|:-------------:|:------:|:-----:|:---------------:|:--------:|:-------------------:|:----------------:|:------------:|:--------------------------:|:-----------------------:|:-------------------:|:------------------------:|:---------------------:|:-----------------:|:------------------------:|:---------------------:|:-----------------:|:----------------------:|:-------------------:|:---------------:|:-------------------:|:----------------:|:------------:|:-------------------:|:----------------:|:------------:|:--------------------------:|:-----------------------:|:-------------------:|:------------------------:|:---------------------:|:-----------------:|:------------------------:|:---------------------:|:-----------------:|
| No log        | 0.0001 | 1     | 5.0835          | 121.5079 | 0.0                 | 0.0              | 0.0          | 0.0                        | 0.0                     | 0.0                 | 0.0                      | 0.0                   | 0.0               | 0.0                      | 0.0                   | 0.0               | 0.0                    | 0.0                 | 0.0             | 0                   | 0                | 0            | 0                   | 0                | 0            | 0                          | 0                       | 0                   | 0                        | 0                     | 0                 | 0                        | 0                     | 0                 |
| 0.0423        | 0.5167 | 10000 | 0.1010          | 13.7858  | 0.8705              | 0.8797           | 0.8745       | 0.8866                     | 0.8961                  | 0.8908              | 0.8899                   | 0.8991                | 0.8939            | 0.9426                   | 0.9519                | 0.9466            | 0.9286                 | 0.9412              | 0.9474          | 1.0                 | 1.0              | 1.0          | 0.0                 | 0.0              | 0.0          | 0.0                        | 0.0                     | 0.0                 | 0.0                      | 0.0                   | 0.0               | 0.0                      | 0.0                   | 0.0               |
| 0.0139        | 1.0334 | 20000 | 0.0950          | 10.6832  | 0.9090              | 0.9076           | 0.9079       | 0.9219                     | 0.9205                  | 0.9208              | 0.9251                   | 0.9237                | 0.9239            | 0.9610                   | 0.9611                | 0.9605            | 1.0                    | 1.0                 | 1.0             | 1.0                 | 1.0              | 1.0          | 0.0                 | 0.0              | 0.0          | 0.0                        | 0.0                     | 0.0                 | 0.0                      | 0.0                   | 0.0               | 0.1429                   | 0.1111                | 0.125             |
| 0.0089        | 1.5501 | 30000 | 0.0914          | 10.2458  | 0.9091              | 0.9077           | 0.9081       | 0.9208                     | 0.9196                  | 0.9198              | 0.9231                   | 0.9220                | 0.9222            | 0.9596                   | 0.9590                | 0.9589            | 1.0                    | 1.0                 | 1.0             | 1.0                 | 1.0              | 1.0          | 0.0                 | 0.0              | 0.0          | 0.0                        | 0.0                     | 0.0                 | 0.0                      | 0.0                   | 0.0               | 0.1                      | 0.125                 | 0.1111            |
| 0.0032        | 2.0668 | 40000 | 0.0922          | 9.3269   | 0.9163              | 0.9159           | 0.9157       | 0.9282                     | 0.9279                  | 0.9277              | 0.9307                   | 0.9303                | 0.9301            | 0.9666                   | 0.9676                | 0.9667            | 1.0                    | 1.0                 | 1.0             | 1.0                 | 1.0              | 1.0          | 0.0                 | 0.0              | 0.0          | 0.0                        | 0.0                     | 0.0                 | 0.0                      | 0.0                   | 0.0               | 0.0909                   | 0.1111                | 0.1176            |
| 0.0025        | 2.5834 | 50000 | 0.0924          | 9.0500   | 0.9171              | 0.9179           | 0.9172       | 0.9283                     | 0.9292                  | 0.9284              | 0.9307                   | 0.9314                | 0.9307            | 0.9656                   | 0.9669                | 0.9659            | 1.0                    | 1.0                 | 1.0             | 1.0                 | 1.0              | 1.0          | 0.0                 | 0.0              | 0.0          | 0.0                        | 0.0                     | 0.0                 | 0.0                      | 0.0                   | 0.0               | 0.1429                   | 0.125                 | 0.1333            |
| 0.0022        | 3.1001 | 60000 | 0.0933          | 8.3137   | 0.9272              | 0.9266           | 0.9266       | 0.9377                     | 0.9371                  | 0.9371              | 0.9399                   | 0.9393                | 0.9393            | 0.9702                   | 0.9702                | 0.9698            | 1.0                    | 1.0                 | 1.0             | 1.0                 | 1.0              | 1.0          | 0.0                 | 0.0              | 0.0          | 0.0                        | 0.0                     | 0.0                 | 0.0                      | 0.0                   | 0.0               | 0.1429                   | 0.125                 | 0.1333            |
| 0.0006        | 3.6168 | 70000 | 0.0947          | 8.0682   | 0.9287              | 0.9302           | 0.9291       | 0.9393                     | 0.9409                  | 0.9398              | 0.9417                   | 0.9430                | 0.9420            | 0.9706                   | 0.9723                | 0.9710            | 1.0                    | 1.0                 | 1.0             | 1.0                 | 1.0              | 1.0          | 0.0                 | 0.0              | 0.0          | 0.0                        | 0.0                     | 0.0                 | 0.0                      | 0.0                   | 0.0               | 0.1429                   | 0.125                 | 0.1333            |
| 0.0002        | 4.1335 | 80000 | 0.0952          | 7.8511   | 0.9335              | 0.9352           | 0.9340       | 0.9440                     | 0.9458                  | 0.9446              | 0.9462                   | 0.9479                | 0.9467            | 0.9714                   | 0.9736                | 0.9721            | 1.0                    | 1.0                 | 1.0             | 1.0                 | 1.0              | 1.0          | 0.0                 | 0.0              | 0.0          | 0.0                        | 0.0                     | 0.0                 | 0.0                      | 0.0                   | 0.0               | 0.1429                   | 0.125                 | 0.1333            |


### Framework versions

- Transformers 4.41.2
- Pytorch 2.2.1
- Datasets 2.20.0
- Tokenizers 0.19.1