Icelandic-noAug-to-withAug
This model is a fine-tuned version of Chenchuhui/Icelandic-finetuned-no-data-augmentation on the None dataset. It achieves the following results on the evaluation set:
- Loss: 0.2435
- Wer: 0.2215
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: 0.0003
- train_batch_size: 8
- eval_batch_size: 8
- seed: 42
- gradient_accumulation_steps: 2
- total_train_batch_size: 16
- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
- lr_scheduler_type: linear
- lr_scheduler_warmup_steps: 500
- num_epochs: 10
Training results
Training Loss | Epoch | Step | Validation Loss | Wer |
---|---|---|---|---|
No log | 0.2 | 10 | 0.6673 | 0.4206 |
No log | 0.4 | 20 | 0.5317 | 0.3602 |
No log | 0.6 | 30 | 0.4229 | 0.3121 |
No log | 0.8 | 40 | 0.3765 | 0.2819 |
0.7888 | 1.0 | 50 | 0.3486 | 0.2606 |
0.7888 | 1.2 | 60 | 0.3058 | 0.2394 |
0.7888 | 1.4 | 70 | 0.2923 | 0.2371 |
0.7888 | 1.6 | 80 | 0.2790 | 0.2271 |
0.7888 | 1.8 | 90 | 0.2507 | 0.2215 |
0.3794 | 2.0 | 100 | 0.2319 | 0.2114 |
0.3794 | 2.2 | 110 | 0.2187 | 0.2002 |
0.3794 | 2.4 | 120 | 0.2383 | 0.1991 |
0.3794 | 2.6 | 130 | 0.2320 | 0.1980 |
0.3794 | 2.8 | 140 | 0.2346 | 0.1980 |
0.2625 | 3.0 | 150 | 0.2286 | 0.1935 |
0.2625 | 3.2 | 160 | 0.2379 | 0.1924 |
0.2625 | 3.4 | 170 | 0.2134 | 0.1857 |
0.2625 | 3.6 | 180 | 0.2144 | 0.1890 |
0.2625 | 3.8 | 190 | 0.2218 | 0.1890 |
0.2221 | 4.0 | 200 | 0.2112 | 0.1935 |
0.2221 | 4.2 | 210 | 0.2041 | 0.1890 |
0.2221 | 4.4 | 220 | 0.1923 | 0.1745 |
0.2221 | 4.6 | 230 | 0.2031 | 0.1913 |
0.2221 | 4.8 | 240 | 0.2254 | 0.2036 |
0.1735 | 5.0 | 250 | 0.2232 | 0.2025 |
0.1735 | 5.2 | 260 | 0.1915 | 0.1812 |
0.1735 | 5.4 | 270 | 0.2135 | 0.1946 |
0.1735 | 5.6 | 280 | 0.2215 | 0.1969 |
0.1735 | 5.8 | 290 | 0.2204 | 0.1991 |
0.1813 | 6.0 | 300 | 0.2215 | 0.2047 |
0.1813 | 6.2 | 310 | 0.2201 | 0.2002 |
0.1813 | 6.4 | 320 | 0.2308 | 0.1991 |
0.1813 | 6.6 | 330 | 0.2474 | 0.2069 |
0.1813 | 6.8 | 340 | 0.2355 | 0.2081 |
0.2036 | 7.0 | 350 | 0.2274 | 0.2047 |
0.2036 | 7.2 | 360 | 0.2398 | 0.2081 |
0.2036 | 7.4 | 370 | 0.2162 | 0.1957 |
0.2036 | 7.6 | 380 | 0.2284 | 0.2047 |
0.2036 | 7.8 | 390 | 0.2402 | 0.1980 |
0.1953 | 8.0 | 400 | 0.1947 | 0.1946 |
0.1953 | 8.2 | 410 | 0.2114 | 0.2069 |
0.1953 | 8.4 | 420 | 0.2306 | 0.2237 |
0.1953 | 8.6 | 430 | 0.2182 | 0.2170 |
0.1953 | 8.8 | 440 | 0.2094 | 0.2170 |
0.1905 | 9.0 | 450 | 0.2671 | 0.2315 |
0.1905 | 9.2 | 460 | 0.3168 | 0.2136 |
0.1905 | 9.4 | 470 | 0.3005 | 0.2248 |
0.1905 | 9.6 | 480 | 0.2486 | 0.2260 |
0.1905 | 9.8 | 490 | 0.2349 | 0.2047 |
0.201 | 10.0 | 500 | 0.2435 | 0.2215 |
Framework versions
- Transformers 4.35.2
- Pytorch 2.1.0+cu121
- Datasets 2.15.0
- Tokenizers 0.15.0
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