Whisper Large V2
This model is a fine-tuned version of openai/whisper-large-v2 on the None dataset. It achieves the following results on the evaluation set:
- Loss: 0.2718
- Wer: 12.0890
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
- train_batch_size: 12
- eval_batch_size: 8
- seed: 42
- optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
- lr_scheduler_type: linear
- lr_scheduler_warmup_steps: 20
- num_epochs: 5
Training results
Training Loss | Epoch | Step | Validation Loss | Wer |
---|---|---|---|---|
0.6207 | 0.0363 | 15 | 0.4288 | 32.3752 |
0.3918 | 0.0726 | 30 | 0.3455 | 20.7368 |
0.3211 | 0.1090 | 45 | 0.3369 | 20.8217 |
0.334 | 0.1453 | 60 | 0.3248 | 25.7734 |
0.2569 | 0.1816 | 75 | 0.3246 | 20.9820 |
0.3159 | 0.2179 | 90 | 0.3134 | 25.2413 |
0.3103 | 0.2542 | 105 | 0.3077 | 22.0887 |
0.2935 | 0.2906 | 120 | 0.3057 | 38.6207 |
0.2732 | 0.3269 | 135 | 0.2989 | 18.7783 |
0.2991 | 0.3632 | 150 | 0.2998 | 17.9793 |
0.2969 | 0.3995 | 165 | 0.2960 | 53.2697 |
0.2613 | 0.4358 | 180 | 0.2945 | 17.8562 |
0.2805 | 0.4722 | 195 | 0.2835 | 20.5019 |
0.2799 | 0.5085 | 210 | 0.2936 | 52.1934 |
0.2683 | 0.5448 | 225 | 0.2765 | 55.7750 |
0.2678 | 0.5811 | 240 | 0.2794 | 30.6948 |
0.2499 | 0.6174 | 255 | 0.2770 | 16.5277 |
0.2575 | 0.6538 | 270 | 0.2740 | 31.0770 |
0.2667 | 0.6901 | 285 | 0.2694 | 24.9926 |
0.2807 | 0.7264 | 300 | 0.2657 | 27.1496 |
0.2671 | 0.7627 | 315 | 0.2672 | 22.6823 |
0.2783 | 0.7990 | 330 | 0.2604 | 15.4904 |
0.225 | 0.8354 | 345 | 0.2594 | 14.7876 |
0.243 | 0.8717 | 360 | 0.2613 | 15.3180 |
0.2514 | 0.9080 | 375 | 0.2521 | 13.9288 |
0.25 | 0.9443 | 390 | 0.2523 | 24.4441 |
0.2498 | 0.9806 | 405 | 0.2496 | 13.9895 |
0.2133 | 1.0169 | 420 | 0.2483 | 21.0375 |
0.1285 | 1.0533 | 435 | 0.2591 | 15.6542 |
0.1388 | 1.0896 | 450 | 0.2513 | 17.0113 |
0.1318 | 1.1259 | 465 | 0.2523 | 14.6238 |
0.1187 | 1.1622 | 480 | 0.2500 | 15.2218 |
0.1357 | 1.1985 | 495 | 0.2490 | 15.0198 |
0.1225 | 1.2349 | 510 | 0.2461 | 14.6593 |
0.1258 | 1.2712 | 525 | 0.2466 | 16.0043 |
0.1089 | 1.3075 | 540 | 0.2505 | 13.6654 |
0.1375 | 1.3438 | 555 | 0.2467 | 14.4479 |
0.1251 | 1.3801 | 570 | 0.2450 | 16.3813 |
0.1413 | 1.4165 | 585 | 0.2465 | 14.1948 |
0.1286 | 1.4528 | 600 | 0.2512 | 15.9974 |
0.1345 | 1.4891 | 615 | 0.2416 | 16.1057 |
0.133 | 1.5254 | 630 | 0.2384 | 13.7381 |
0.132 | 1.5617 | 645 | 0.2389 | 13.6697 |
0.1314 | 1.5981 | 660 | 0.2382 | 13.4331 |
0.1509 | 1.6344 | 675 | 0.2355 | 15.0337 |
0.1427 | 1.6707 | 690 | 0.2399 | 19.7359 |
0.1105 | 1.7070 | 705 | 0.2350 | 12.7000 |
0.112 | 1.7433 | 720 | 0.2402 | 13.1818 |
0.1401 | 1.7797 | 735 | 0.2327 | 12.9339 |
0.1396 | 1.8160 | 750 | 0.2304 | 12.3828 |
0.136 | 1.8523 | 765 | 0.2287 | 13.1263 |
0.1231 | 1.8886 | 780 | 0.2333 | 14.8708 |
0.1216 | 1.9249 | 795 | 0.2297 | 16.6464 |
0.1174 | 1.9613 | 810 | 0.2276 | 14.5008 |
0.1181 | 1.9976 | 825 | 0.2332 | 13.7295 |
0.0624 | 2.0339 | 840 | 0.2484 | 12.7234 |
0.0706 | 2.0702 | 855 | 0.2373 | 19.1578 |
0.0642 | 2.1065 | 870 | 0.2418 | 12.6627 |
0.0716 | 2.1429 | 885 | 0.2425 | 13.5371 |
0.0525 | 2.1792 | 900 | 0.2389 | 14.8656 |
0.0777 | 2.2155 | 915 | 0.2339 | 14.8517 |
0.0608 | 2.2518 | 930 | 0.2383 | 13.0015 |
0.0604 | 2.2881 | 945 | 0.2356 | 13.4054 |
0.0662 | 2.3245 | 960 | 0.2356 | 13.6983 |
0.0608 | 2.3608 | 975 | 0.2393 | 17.8094 |
0.0653 | 2.3971 | 990 | 0.2327 | 16.9290 |
0.0627 | 2.4334 | 1005 | 0.2357 | 13.6038 |
0.062 | 2.4697 | 1020 | 0.2312 | 12.3230 |
0.0576 | 2.5061 | 1035 | 0.2341 | 13.1861 |
0.0689 | 2.5424 | 1050 | 0.2311 | 13.4201 |
0.055 | 2.5787 | 1065 | 0.2359 | 13.2728 |
0.0549 | 2.6150 | 1080 | 0.2317 | 14.2668 |
0.0548 | 2.6513 | 1095 | 0.2319 | 12.5076 |
0.0516 | 2.6877 | 1110 | 0.2363 | 13.6420 |
0.0528 | 2.7240 | 1125 | 0.2336 | 12.1982 |
0.0614 | 2.7603 | 1140 | 0.2311 | 13.2737 |
0.0569 | 2.7966 | 1155 | 0.2342 | 12.6601 |
0.0478 | 2.8329 | 1170 | 0.2297 | 13.1307 |
0.065 | 2.8692 | 1185 | 0.2276 | 13.2182 |
0.0492 | 2.9056 | 1200 | 0.2351 | 12.6402 |
0.0596 | 2.9419 | 1215 | 0.2274 | 11.7580 |
0.0647 | 2.9782 | 1230 | 0.2289 | 12.5284 |
0.048 | 3.0145 | 1245 | 0.2341 | 12.0916 |
0.0196 | 3.0508 | 1260 | 0.2496 | 13.0735 |
0.0274 | 3.0872 | 1275 | 0.2452 | 12.2493 |
0.0219 | 3.1235 | 1290 | 0.2398 | 12.6055 |
0.0237 | 3.1598 | 1305 | 0.2413 | 12.8872 |
0.027 | 3.1961 | 1320 | 0.2414 | 12.0492 |
0.0203 | 3.2324 | 1335 | 0.2509 | 12.3065 |
0.0233 | 3.2688 | 1350 | 0.2421 | 11.7536 |
0.0243 | 3.3051 | 1365 | 0.2425 | 11.7623 |
0.0178 | 3.3414 | 1380 | 0.2442 | 11.3715 |
0.0229 | 3.3777 | 1395 | 0.2444 | 11.8464 |
0.0218 | 3.4140 | 1410 | 0.2485 | 11.0933 |
0.0177 | 3.4504 | 1425 | 0.2452 | 11.3585 |
0.0211 | 3.4867 | 1440 | 0.2440 | 12.4669 |
0.0212 | 3.5230 | 1455 | 0.2447 | 12.4140 |
0.0226 | 3.5593 | 1470 | 0.2399 | 12.2875 |
0.0212 | 3.5956 | 1485 | 0.2436 | 12.4140 |
0.0221 | 3.6320 | 1500 | 0.2506 | 11.4304 |
0.0222 | 3.6683 | 1515 | 0.2434 | 11.1462 |
0.0261 | 3.7046 | 1530 | 0.2385 | 11.7268 |
0.0208 | 3.7409 | 1545 | 0.2447 | 12.7416 |
0.018 | 3.7772 | 1560 | 0.2488 | 12.2883 |
0.0245 | 3.8136 | 1575 | 0.2389 | 11.5231 |
0.0182 | 3.8499 | 1590 | 0.2415 | 14.8587 |
0.0245 | 3.8862 | 1605 | 0.2416 | 12.1410 |
0.0216 | 3.9225 | 1620 | 0.2389 | 10.9174 |
0.0173 | 3.9588 | 1635 | 0.2418 | 10.9044 |
0.0238 | 3.9952 | 1650 | 0.2427 | 11.7458 |
0.0109 | 4.0315 | 1665 | 0.2480 | 12.4651 |
0.0066 | 4.0678 | 1680 | 0.2601 | 11.1817 |
0.0063 | 4.1041 | 1695 | 0.2645 | 11.0508 |
0.007 | 4.1404 | 1710 | 0.2670 | 11.4815 |
0.0075 | 4.1768 | 1725 | 0.2678 | 11.7996 |
0.0062 | 4.2131 | 1740 | 0.2653 | 12.3273 |
0.0068 | 4.2494 | 1755 | 0.2656 | 13.6402 |
0.007 | 4.2857 | 1770 | 0.2650 | 13.8161 |
0.0078 | 4.3220 | 1785 | 0.2660 | 12.8785 |
0.007 | 4.3584 | 1800 | 0.2674 | 12.9296 |
0.0072 | 4.3947 | 1815 | 0.2667 | 11.5335 |
0.0058 | 4.4310 | 1830 | 0.2673 | 11.4235 |
0.0051 | 4.4673 | 1845 | 0.2673 | 11.5630 |
0.0067 | 4.5036 | 1860 | 0.2699 | 11.2588 |
0.0085 | 4.5400 | 1875 | 0.2672 | 11.1618 |
0.0054 | 4.5763 | 1890 | 0.2656 | 12.3143 |
0.0061 | 4.6126 | 1905 | 0.2667 | 11.3862 |
0.0052 | 4.6489 | 1920 | 0.2673 | 11.3793 |
0.0084 | 4.6852 | 1935 | 0.2683 | 11.2865 |
0.005 | 4.7215 | 1950 | 0.2693 | 11.3229 |
0.0053 | 4.7579 | 1965 | 0.2726 | 11.5266 |
0.0052 | 4.7942 | 1980 | 0.2740 | 11.6679 |
0.0051 | 4.8305 | 1995 | 0.2729 | 11.4573 |
0.0049 | 4.8668 | 2010 | 0.2724 | 11.4980 |
0.0058 | 4.9031 | 2025 | 0.2720 | 11.7450 |
0.0047 | 4.9395 | 2040 | 0.2717 | 11.9235 |
0.0064 | 4.9758 | 2055 | 0.2718 | 12.0890 |
Framework versions
- Transformers 4.45.0.dev0
- Pytorch 2.1.0+cu121
- Datasets 2.20.0
- Tokenizers 0.19.1
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Base model
openai/whisper-large-v2