Upload folder using huggingface_hub
Browse files- my_first_yolonas_run/average_model.pth +3 -0
- my_first_yolonas_run/ckpt_best.pth +3 -0
- my_first_yolonas_run/ckpt_latest.pth +3 -0
- my_first_yolonas_run/console_May13_17_05_43.txt +0 -0
- my_first_yolonas_run/console_May13_17_13_58.txt +0 -0
- my_first_yolonas_run/events.out.tfevents.1683997543.cf6772931124.3382.0 +3 -0
- my_first_yolonas_run/events.out.tfevents.1683998007.cf6772931124.3382.1 +3 -0
- my_first_yolonas_run/events.out.tfevents.1683998038.cf6772931124.3382.2 +3 -0
- my_first_yolonas_run/events.out.tfevents.1684008104.cf6772931124.3382.3 +3 -0
- my_first_yolonas_run/experiment_logs_May13_17_05_43.txt +646 -0
- my_first_yolonas_run/experiment_logs_May13_17_13_58.txt +706 -0
- my_first_yolonas_run/logs_May13_17_05_43.txt +136 -0
- my_first_yolonas_run/logs_May13_17_13_58.txt +0 -0
my_first_yolonas_run/average_model.pth
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my_first_yolonas_run/ckpt_best.pth
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version https://git-lfs.github.com/spec/v1
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my_first_yolonas_run/ckpt_latest.pth
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version https://git-lfs.github.com/spec/v1
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size 892991518
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my_first_yolonas_run/console_May13_17_05_43.txt
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my_first_yolonas_run/console_May13_17_13_58.txt
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my_first_yolonas_run/events.out.tfevents.1683997543.cf6772931124.3382.0
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size 75856
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my_first_yolonas_run/events.out.tfevents.1683998007.cf6772931124.3382.1
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size 770
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my_first_yolonas_run/events.out.tfevents.1683998038.cf6772931124.3382.2
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size 291026
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my_first_yolonas_run/events.out.tfevents.1684008104.cf6772931124.3382.3
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version https://git-lfs.github.com/spec/v1
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size 780
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my_first_yolonas_run/experiment_logs_May13_17_05_43.txt
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|
| 1 |
+
--------- config parameters ----------
|
| 2 |
+
{
|
| 3 |
+
"arch_params": {
|
| 4 |
+
"schema": null
|
| 5 |
+
},
|
| 6 |
+
"checkpoint_params": {
|
| 7 |
+
"load_checkpoint": false,
|
| 8 |
+
"schema": null
|
| 9 |
+
},
|
| 10 |
+
"training_hyperparams": {
|
| 11 |
+
"lr_warmup_epochs": 3,
|
| 12 |
+
"lr_warmup_steps": 0,
|
| 13 |
+
"lr_cooldown_epochs": 0,
|
| 14 |
+
"warmup_initial_lr": 1e-06,
|
| 15 |
+
"cosine_final_lr_ratio": 0.1,
|
| 16 |
+
"optimizer": "Adam",
|
| 17 |
+
"optimizer_params": {
|
| 18 |
+
"weight_decay": 0.0001
|
| 19 |
+
},
|
| 20 |
+
"criterion_params": {},
|
| 21 |
+
"ema": true,
|
| 22 |
+
"batch_accumulate": 1,
|
| 23 |
+
"ema_params": {
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+
"jsonschema 4.3.3",
|
| 383 |
+
"jupyter-client 6.1.12",
|
| 384 |
+
"jupyter-console 6.1.0",
|
| 385 |
+
"jupyter-core 5.3.0",
|
| 386 |
+
"jupyter-server 1.24.0",
|
| 387 |
+
"jupyterlab-pygments 0.2.2",
|
| 388 |
+
"jupyterlab-widgets 3.0.7",
|
| 389 |
+
"kaggle 1.5.13",
|
| 390 |
+
"keras 2.12.0",
|
| 391 |
+
"kiwisolver 1.4.4",
|
| 392 |
+
"korean-lunar-calendar 0.3.1",
|
| 393 |
+
"langcodes 3.3.0",
|
| 394 |
+
"lazy-loader 0.2",
|
| 395 |
+
"libclang 16.0.0",
|
| 396 |
+
"librosa 0.10.0.post2",
|
| 397 |
+
"lightgbm 3.3.5",
|
| 398 |
+
"lit 16.0.3",
|
| 399 |
+
"llvmlite 0.39.1",
|
| 400 |
+
"locket 1.0.0",
|
| 401 |
+
"logical-unification 0.4.5",
|
| 402 |
+
"lxml 4.9.2",
|
| 403 |
+
"markdown-it-py 2.2.0",
|
| 404 |
+
"matplotlib 3.7.1",
|
| 405 |
+
"matplotlib-inline 0.1.6",
|
| 406 |
+
"matplotlib-venn 0.11.9",
|
| 407 |
+
"mdurl 0.1.2",
|
| 408 |
+
"miniKanren 1.0.3",
|
| 409 |
+
"missingno 0.5.2",
|
| 410 |
+
"mistune 0.8.4",
|
| 411 |
+
"mizani 0.8.1",
|
| 412 |
+
"mkl 2019.0",
|
| 413 |
+
"ml-dtypes 0.1.0",
|
| 414 |
+
"mlxtend 0.14.0",
|
| 415 |
+
"more-itertools 9.1.0",
|
| 416 |
+
"moviepy 1.0.3",
|
| 417 |
+
"mpmath 1.3.0",
|
| 418 |
+
"msgpack 1.0.5",
|
| 419 |
+
"multipledispatch 0.6.0",
|
| 420 |
+
"multitasking 0.0.11",
|
| 421 |
+
"murmurhash 1.0.9",
|
| 422 |
+
"music21 8.1.0",
|
| 423 |
+
"natsort 8.3.1",
|
| 424 |
+
"nbclient 0.7.4",
|
| 425 |
+
"nbconvert 6.5.4",
|
| 426 |
+
"nbformat 5.8.0",
|
| 427 |
+
"nest-asyncio 1.5.6",
|
| 428 |
+
"networkx 3.1",
|
| 429 |
+
"nibabel 3.0.2",
|
| 430 |
+
"nltk 3.8.1",
|
| 431 |
+
"notebook 6.4.8",
|
| 432 |
+
"numba 0.56.4",
|
| 433 |
+
"numexpr 2.8.4",
|
| 434 |
+
"numpy 1.22.4",
|
| 435 |
+
"nvidia-cublas-cu11 11.10.3.66",
|
| 436 |
+
"nvidia-cuda-nvrtc-cu11 11.7.99",
|
| 437 |
+
"nvidia-cuda-runtime-cu11 11.7.99",
|
| 438 |
+
"nvidia-cudnn-cu11 8.5.0.96",
|
| 439 |
+
"oauth2client 4.1.3",
|
| 440 |
+
"oauthlib 3.2.2",
|
| 441 |
+
"omegaconf 2.3.0",
|
| 442 |
+
"onnx 1.13.0",
|
| 443 |
+
"onnx-simplifier 0.4.28",
|
| 444 |
+
"onnxruntime 1.13.1",
|
| 445 |
+
"opencv-contrib-python 4.7.0.72",
|
| 446 |
+
"opencv-python 4.7.0.72",
|
| 447 |
+
"opencv-python-headless 4.7.0.72",
|
| 448 |
+
"openpyxl 3.0.10",
|
| 449 |
+
"opt-einsum 3.3.0",
|
| 450 |
+
"optax 0.1.5",
|
| 451 |
+
"orbax-checkpoint 0.2.1",
|
| 452 |
+
"osqp 0.6.2.post8",
|
| 453 |
+
"packaging 23.1",
|
| 454 |
+
"palettable 3.3.3",
|
| 455 |
+
"pandas 1.5.3",
|
| 456 |
+
"pandas-datareader 0.10.0",
|
| 457 |
+
"pandas-gbq 0.17.9",
|
| 458 |
+
"pandocfilters 1.5.0",
|
| 459 |
+
"panel 0.14.4",
|
| 460 |
+
"param 1.13.0",
|
| 461 |
+
"parso 0.8.3",
|
| 462 |
+
"partd 1.4.0",
|
| 463 |
+
"pathlib 1.0.1",
|
| 464 |
+
"pathy 0.10.1",
|
| 465 |
+
"patsy 0.5.3",
|
| 466 |
+
"pexpect 4.8.0",
|
| 467 |
+
"pickleshare 0.7.5",
|
| 468 |
+
"pip 23.1.2",
|
| 469 |
+
"pip-tools 6.13.0",
|
| 470 |
+
"platformdirs 3.3.0",
|
| 471 |
+
"plotly 5.13.1",
|
| 472 |
+
"plotnine 0.10.1",
|
| 473 |
+
"pluggy 1.0.0",
|
| 474 |
+
"polars 0.17.3",
|
| 475 |
+
"pooch 1.6.0",
|
| 476 |
+
"portpicker 1.3.9",
|
| 477 |
+
"prefetch-generator 1.0.3",
|
| 478 |
+
"preshed 3.0.8",
|
| 479 |
+
"prettytable 0.7.2",
|
| 480 |
+
"proglog 0.1.10",
|
| 481 |
+
"progressbar2 4.2.0",
|
| 482 |
+
"prometheus-client 0.16.0",
|
| 483 |
+
"promise 2.3",
|
| 484 |
+
"prompt-toolkit 3.0.38",
|
| 485 |
+
"prophet 1.1.2",
|
| 486 |
+
"proto-plus 1.22.2",
|
| 487 |
+
"protobuf 3.20.3",
|
| 488 |
+
"psutil 5.9.5",
|
| 489 |
+
"psycopg2 2.9.6",
|
| 490 |
+
"ptyprocess 0.7.0",
|
| 491 |
+
"py4j 0.10.9.7",
|
| 492 |
+
"pyDeprecate 0.3.2",
|
| 493 |
+
"py-cpuinfo 9.0.0",
|
| 494 |
+
"pyarrow 9.0.0",
|
| 495 |
+
"pyasn1 0.5.0",
|
| 496 |
+
"pyasn1-modules 0.3.0",
|
| 497 |
+
"pycocotools 2.0.4",
|
| 498 |
+
"pycparser 2.21",
|
| 499 |
+
"pyct 0.5.0",
|
| 500 |
+
"pydantic 1.10.7",
|
| 501 |
+
"pydata-google-auth 1.7.0",
|
| 502 |
+
"pydot 1.4.2",
|
| 503 |
+
"pydot-ng 2.0.0",
|
| 504 |
+
"pydotplus 2.0.2",
|
| 505 |
+
"pyerfa 2.0.0.3",
|
| 506 |
+
"pygame 2.3.0",
|
| 507 |
+
"pymc 5.1.2",
|
| 508 |
+
"pymystem3 0.2.0",
|
| 509 |
+
"pyparsing 2.4.7",
|
| 510 |
+
"pyproject-hooks 1.0.0",
|
| 511 |
+
"pyrsistent 0.19.3",
|
| 512 |
+
"pytensor 2.10.1",
|
| 513 |
+
"pytest 7.2.2",
|
| 514 |
+
"python-apt 0.0.0",
|
| 515 |
+
"python-dateutil 2.8.2",
|
| 516 |
+
"python-dotenv 1.0.0",
|
| 517 |
+
"python-louvain 0.16",
|
| 518 |
+
"python-slugify 8.0.1",
|
| 519 |
+
"python-utils 3.5.2",
|
| 520 |
+
"pytube 15.0.0",
|
| 521 |
+
"pytz 2022.7.1",
|
| 522 |
+
"pytz-deprecation-shim 0.1.0.post0",
|
| 523 |
+
"pyviz-comms 2.2.1",
|
| 524 |
+
"pyzmq 23.2.1",
|
| 525 |
+
"qdldl 0.1.7",
|
| 526 |
+
"qudida 0.0.4",
|
| 527 |
+
"rapidfuzz 3.0.0",
|
| 528 |
+
"regex 2022.10.31",
|
| 529 |
+
"requests 2.27.1",
|
| 530 |
+
"requests-oauthlib 1.3.1",
|
| 531 |
+
"requests-toolbelt 1.0.0",
|
| 532 |
+
"requirements-parser 0.5.0",
|
| 533 |
+
"rich 13.3.4",
|
| 534 |
+
"roboflow 1.0.8",
|
| 535 |
+
"rpy2 3.5.5",
|
| 536 |
+
"rsa 4.9",
|
| 537 |
+
"s3transfer 0.6.1",
|
| 538 |
+
"scikit-image 0.19.3",
|
| 539 |
+
"scikit-learn 1.2.2",
|
| 540 |
+
"scipy 1.10.1",
|
| 541 |
+
"scs 3.2.3",
|
| 542 |
+
"seaborn 0.12.2",
|
| 543 |
+
"setuptools 67.7.2",
|
| 544 |
+
"shapely 2.0.1",
|
| 545 |
+
"six 1.16.0",
|
| 546 |
+
"sklearn-pandas 2.2.0",
|
| 547 |
+
"smart-open 6.3.0",
|
| 548 |
+
"sniffio 1.3.0",
|
| 549 |
+
"snowballstemmer 2.2.0",
|
| 550 |
+
"sortedcontainers 2.4.0",
|
| 551 |
+
"soundfile 0.12.1",
|
| 552 |
+
"soupsieve 2.4.1",
|
| 553 |
+
"soxr 0.3.5",
|
| 554 |
+
"spacy 3.5.2",
|
| 555 |
+
"spacy-legacy 3.0.12",
|
| 556 |
+
"spacy-loggers 1.0.4",
|
| 557 |
+
"sphinx-rtd-theme 1.2.0",
|
| 558 |
+
"sphinxcontrib-applehelp 1.0.4",
|
| 559 |
+
"sphinxcontrib-devhelp 1.0.2",
|
| 560 |
+
"sphinxcontrib-htmlhelp 2.0.1",
|
| 561 |
+
"sphinxcontrib-jquery 4.1",
|
| 562 |
+
"sphinxcontrib-jsmath 1.0.1",
|
| 563 |
+
"sphinxcontrib-qthelp 1.0.3",
|
| 564 |
+
"sphinxcontrib-serializinghtml 1.1.5",
|
| 565 |
+
"sqlparse 0.4.4",
|
| 566 |
+
"srsly 2.4.6",
|
| 567 |
+
"statsmodels 0.13.5",
|
| 568 |
+
"stringcase 1.2.0",
|
| 569 |
+
"super-gradients 3.1.0",
|
| 570 |
+
"sympy 1.11.1",
|
| 571 |
+
"tables 3.8.0",
|
| 572 |
+
"tabulate 0.8.10",
|
| 573 |
+
"tblib 1.7.0",
|
| 574 |
+
"tenacity 8.2.2",
|
| 575 |
+
"tensorboard 2.12.2",
|
| 576 |
+
"tensorboard-data-server 0.7.0",
|
| 577 |
+
"tensorboard-plugin-wit 1.8.1",
|
| 578 |
+
"tensorflow 2.12.0",
|
| 579 |
+
"tensorflow-datasets 4.9.2",
|
| 580 |
+
"tensorflow-estimator 2.12.0",
|
| 581 |
+
"tensorflow-gcs-config 2.12.0",
|
| 582 |
+
"tensorflow-hub 0.13.0",
|
| 583 |
+
"tensorflow-io-gcs-filesystem 0.32.0",
|
| 584 |
+
"tensorflow-metadata 1.13.1",
|
| 585 |
+
"tensorflow-probability 0.19.0",
|
| 586 |
+
"tensorstore 0.1.36",
|
| 587 |
+
"termcolor 1.1.0",
|
| 588 |
+
"terminado 0.17.1",
|
| 589 |
+
"text-unidecode 1.3",
|
| 590 |
+
"textblob 0.17.1",
|
| 591 |
+
"tf-slim 1.1.0",
|
| 592 |
+
"thinc 8.1.9",
|
| 593 |
+
"threadpoolctl 3.1.0",
|
| 594 |
+
"tifffile 2023.4.12",
|
| 595 |
+
"tinycss2 1.2.1",
|
| 596 |
+
"toml 0.10.2",
|
| 597 |
+
"tomli 2.0.1",
|
| 598 |
+
"toolz 0.12.0",
|
| 599 |
+
"torch 1.13.1",
|
| 600 |
+
"torchaudio 2.0.1+cu118",
|
| 601 |
+
"torchdata 0.6.0",
|
| 602 |
+
"torchinfo 1.7.2",
|
| 603 |
+
"torchmetrics 0.8.0",
|
| 604 |
+
"torchsummary 1.5.1",
|
| 605 |
+
"torchtext 0.15.1",
|
| 606 |
+
"torchvision 0.14.1",
|
| 607 |
+
"tornado 6.3.1",
|
| 608 |
+
"tqdm 4.65.0",
|
| 609 |
+
"traitlets 5.7.1",
|
| 610 |
+
"treelib 1.6.1",
|
| 611 |
+
"triton 2.0.0",
|
| 612 |
+
"tweepy 4.13.0",
|
| 613 |
+
"typer 0.7.0",
|
| 614 |
+
"types-setuptools 67.7.0.2",
|
| 615 |
+
"typing-extensions 4.5.0",
|
| 616 |
+
"tzdata 2023.3",
|
| 617 |
+
"tzlocal 4.3",
|
| 618 |
+
"uritemplate 4.1.1",
|
| 619 |
+
"urllib3 1.26.15",
|
| 620 |
+
"vega-datasets 0.9.0",
|
| 621 |
+
"wasabi 1.1.1",
|
| 622 |
+
"wcwidth 0.2.6",
|
| 623 |
+
"webcolors 1.13",
|
| 624 |
+
"webencodings 0.5.1",
|
| 625 |
+
"websocket-client 1.5.1",
|
| 626 |
+
"wget 3.2",
|
| 627 |
+
"wheel 0.40.0",
|
| 628 |
+
"widgetsnbextension 3.6.4",
|
| 629 |
+
"wordcloud 1.8.2.2",
|
| 630 |
+
"wrapt 1.14.1",
|
| 631 |
+
"xarray 2022.12.0",
|
| 632 |
+
"xarray-einstats 0.5.1",
|
| 633 |
+
"xgboost 1.7.5",
|
| 634 |
+
"xlrd 2.0.1",
|
| 635 |
+
"yellowbrick 1.5",
|
| 636 |
+
"yfinance 0.2.18",
|
| 637 |
+
"youtube-dl 2021.12.17",
|
| 638 |
+
"zict 3.0.0",
|
| 639 |
+
"zipp 3.15.0",
|
| 640 |
+
"PyGObject 3.36.0",
|
| 641 |
+
"dbus-python 1.2.16",
|
| 642 |
+
"requests-unixsocket 0.2.0"
|
| 643 |
+
]
|
| 644 |
+
}
|
| 645 |
+
}
|
| 646 |
+
------- config parameters end --------
|
my_first_yolonas_run/experiment_logs_May13_17_13_58.txt
ADDED
|
@@ -0,0 +1,706 @@
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|
|
| 1 |
+
--------- config parameters ----------
|
| 2 |
+
{
|
| 3 |
+
"arch_params": {
|
| 4 |
+
"schema": null
|
| 5 |
+
},
|
| 6 |
+
"checkpoint_params": {
|
| 7 |
+
"load_checkpoint": false,
|
| 8 |
+
"schema": null
|
| 9 |
+
},
|
| 10 |
+
"training_hyperparams": {
|
| 11 |
+
"lr_warmup_epochs": 3,
|
| 12 |
+
"lr_warmup_steps": 0,
|
| 13 |
+
"lr_cooldown_epochs": 0,
|
| 14 |
+
"warmup_initial_lr": 1e-06,
|
| 15 |
+
"cosine_final_lr_ratio": 0.1,
|
| 16 |
+
"optimizer": "Adam",
|
| 17 |
+
"optimizer_params": {
|
| 18 |
+
"weight_decay": 0.0001
|
| 19 |
+
},
|
| 20 |
+
"criterion_params": {},
|
| 21 |
+
"ema": true,
|
| 22 |
+
"batch_accumulate": 1,
|
| 23 |
+
"ema_params": {
|
| 24 |
+
"decay": 0.9,
|
| 25 |
+
"decay_type": "threshold"
|
| 26 |
+
},
|
| 27 |
+
"zero_weight_decay_on_bias_and_bn": true,
|
| 28 |
+
"load_opt_params": true,
|
| 29 |
+
"run_validation_freq": 1,
|
| 30 |
+
"save_model": true,
|
| 31 |
+
"metric_to_watch": "mAP@0.50",
|
| 32 |
+
"launch_tensorboard": false,
|
| 33 |
+
"tb_files_user_prompt": false,
|
| 34 |
+
"silent_mode": true,
|
| 35 |
+
"mixed_precision": true,
|
| 36 |
+
"tensorboard_port": null,
|
| 37 |
+
"save_ckpt_epoch_list": [],
|
| 38 |
+
"average_best_models": true,
|
| 39 |
+
"dataset_statistics": false,
|
| 40 |
+
"save_tensorboard_to_s3": false,
|
| 41 |
+
"lr_schedule_function": null,
|
| 42 |
+
"train_metrics_list": [],
|
| 43 |
+
"valid_metrics_list": [
|
| 44 |
+
"DetectionMetrics_050(\n (post_prediction_callback): PPYoloEPostPredictionCallback()\n)"
|
| 45 |
+
],
|
| 46 |
+
"greater_metric_to_watch_is_better": true,
|
| 47 |
+
"precise_bn": false,
|
| 48 |
+
"precise_bn_batch_size": null,
|
| 49 |
+
"seed": 42,
|
| 50 |
+
"lr_mode": "cosine",
|
| 51 |
+
"phase_callbacks": null,
|
| 52 |
+
"log_installed_packages": true,
|
| 53 |
+
"sg_logger": "base_sg_logger",
|
| 54 |
+
"sg_logger_params": {
|
| 55 |
+
"tb_files_user_prompt": false,
|
| 56 |
+
"project_name": "",
|
| 57 |
+
"launch_tensorboard": false,
|
| 58 |
+
"tensorboard_port": null,
|
| 59 |
+
"save_checkpoints_remote": false,
|
| 60 |
+
"save_tensorboard_remote": false,
|
| 61 |
+
"save_logs_remote": false
|
| 62 |
+
},
|
| 63 |
+
"warmup_mode": "linear_epoch_step",
|
| 64 |
+
"step_lr_update_freq": null,
|
| 65 |
+
"lr_updates": [],
|
| 66 |
+
"clip_grad_norm": null,
|
| 67 |
+
"pre_prediction_callback": null,
|
| 68 |
+
"ckpt_best_name": "ckpt_best.pth",
|
| 69 |
+
"enable_qat": false,
|
| 70 |
+
"resume": false,
|
| 71 |
+
"resume_path": null,
|
| 72 |
+
"ckpt_name": "ckpt_latest.pth",
|
| 73 |
+
"resume_strict_load": false,
|
| 74 |
+
"sync_bn": false,
|
| 75 |
+
"kill_ddp_pgroup_on_end": true,
|
| 76 |
+
"max_train_batches": null,
|
| 77 |
+
"max_valid_batches": null,
|
| 78 |
+
"schema": {
|
| 79 |
+
"type": "object",
|
| 80 |
+
"properties": {
|
| 81 |
+
"max_epochs": {
|
| 82 |
+
"type": "number",
|
| 83 |
+
"minimum": 1
|
| 84 |
+
},
|
| 85 |
+
"lr_decay_factor": {
|
| 86 |
+
"type": "number",
|
| 87 |
+
"minimum": 0,
|
| 88 |
+
"maximum": 1
|
| 89 |
+
},
|
| 90 |
+
"lr_warmup_epochs": {
|
| 91 |
+
"type": "number",
|
| 92 |
+
"minimum": 0,
|
| 93 |
+
"maximum": 10
|
| 94 |
+
},
|
| 95 |
+
"initial_lr": {
|
| 96 |
+
"type": "number",
|
| 97 |
+
"exclusiveMinimum": 0,
|
| 98 |
+
"maximum": 10
|
| 99 |
+
}
|
| 100 |
+
},
|
| 101 |
+
"if": {
|
| 102 |
+
"properties": {
|
| 103 |
+
"lr_mode": {
|
| 104 |
+
"const": "step"
|
| 105 |
+
}
|
| 106 |
+
}
|
| 107 |
+
},
|
| 108 |
+
"then": {
|
| 109 |
+
"required": [
|
| 110 |
+
"lr_updates",
|
| 111 |
+
"lr_decay_factor"
|
| 112 |
+
]
|
| 113 |
+
},
|
| 114 |
+
"required": [
|
| 115 |
+
"max_epochs",
|
| 116 |
+
"lr_mode",
|
| 117 |
+
"initial_lr",
|
| 118 |
+
"loss"
|
| 119 |
+
]
|
| 120 |
+
},
|
| 121 |
+
"initial_lr": 0.0005,
|
| 122 |
+
"max_epochs": 15,
|
| 123 |
+
"loss": "PPYoloELoss(\n (static_assigner): ATSSAssigner()\n (assigner): TaskAlignedAssigner()\n)"
|
| 124 |
+
},
|
| 125 |
+
"dataset_params": {
|
| 126 |
+
"train_dataset_params": {
|
| 127 |
+
"data_dir": "/content/New-pothole-detection-2",
|
| 128 |
+
"images_dir": "/content/New-pothole-detection-2/train/images",
|
| 129 |
+
"labels_dir": "/content/New-pothole-detection-2/train/labels",
|
| 130 |
+
"classes": [
|
| 131 |
+
"-1",
|
| 132 |
+
"0",
|
| 133 |
+
"Pothole",
|
| 134 |
+
"Potholes",
|
| 135 |
+
"bache",
|
| 136 |
+
"manhole",
|
| 137 |
+
"object",
|
| 138 |
+
"porthole",
|
| 139 |
+
"pothole",
|
| 140 |
+
"potholes"
|
| 141 |
+
],
|
| 142 |
+
"input_dim": "[640, 640]",
|
| 143 |
+
"cache_dir": null,
|
| 144 |
+
"cache": false,
|
| 145 |
+
"transforms": "[{'DetectionMosaic': {'input_dim': [640, 640], 'prob': 1.0}}, {'DetectionRandomAffine': {'degrees': 10.0, 'translate': 0.1, 'scales': [0.1, 2], 'shear': 2.0, 'target_size': [640, 640], 'filter_box_candidates': True, 'wh_thr': 2, 'area_thr': 0.1, 'ar_thr': 20}}, {'DetectionMixup': {'input_dim': [640, 640], 'mixup_scale': [0.5, 1.5], 'prob': 1.0, 'flip_prob': 0.5}}, {'DetectionHSV': {'prob': 1.0, 'hgain': 5, 'sgain': 30, 'vgain': 30}}, {'DetectionHorizontalFlip': {'prob': 0.5}}, {'DetectionPaddedRescale': {'input_dim': [640, 640], 'max_targets': 120}}, {'DetectionTargetsFormatTransform': {'input_dim': [640, 640], 'output_format': 'LABEL_CXCYWH'}}]",
|
| 146 |
+
"class_inclusion_list": null,
|
| 147 |
+
"max_num_samples": null
|
| 148 |
+
},
|
| 149 |
+
"train_dataloader_params": {
|
| 150 |
+
"batch_size": 16,
|
| 151 |
+
"num_workers": 2,
|
| 152 |
+
"shuffle": true,
|
| 153 |
+
"drop_last": true,
|
| 154 |
+
"pin_memory": true,
|
| 155 |
+
"collate_fn": "<super_gradients.training.utils.detection_utils.DetectionCollateFN object at 0x7f74b1f19660>"
|
| 156 |
+
},
|
| 157 |
+
"valid_dataset_params": {
|
| 158 |
+
"data_dir": "/content/New-pothole-detection-2",
|
| 159 |
+
"images_dir": "/content/New-pothole-detection-2/valid/images",
|
| 160 |
+
"labels_dir": "/content/New-pothole-detection-2/valid/labels",
|
| 161 |
+
"classes": [
|
| 162 |
+
"-1",
|
| 163 |
+
"0",
|
| 164 |
+
"Pothole",
|
| 165 |
+
"Potholes",
|
| 166 |
+
"bache",
|
| 167 |
+
"manhole",
|
| 168 |
+
"object",
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|
| 520 |
+
"pytube 15.0.0",
|
| 521 |
+
"pytz 2022.7.1",
|
| 522 |
+
"pytz-deprecation-shim 0.1.0.post0",
|
| 523 |
+
"pyviz-comms 2.2.1",
|
| 524 |
+
"pyzmq 23.2.1",
|
| 525 |
+
"qdldl 0.1.7",
|
| 526 |
+
"qudida 0.0.4",
|
| 527 |
+
"rapidfuzz 3.0.0",
|
| 528 |
+
"regex 2022.10.31",
|
| 529 |
+
"requests 2.27.1",
|
| 530 |
+
"requests-oauthlib 1.3.1",
|
| 531 |
+
"requests-toolbelt 1.0.0",
|
| 532 |
+
"requirements-parser 0.5.0",
|
| 533 |
+
"rich 13.3.4",
|
| 534 |
+
"roboflow 1.0.8",
|
| 535 |
+
"rpy2 3.5.5",
|
| 536 |
+
"rsa 4.9",
|
| 537 |
+
"s3transfer 0.6.1",
|
| 538 |
+
"scikit-image 0.19.3",
|
| 539 |
+
"scikit-learn 1.2.2",
|
| 540 |
+
"scipy 1.10.1",
|
| 541 |
+
"scs 3.2.3",
|
| 542 |
+
"seaborn 0.12.2",
|
| 543 |
+
"setuptools 67.7.2",
|
| 544 |
+
"shapely 2.0.1",
|
| 545 |
+
"six 1.16.0",
|
| 546 |
+
"sklearn-pandas 2.2.0",
|
| 547 |
+
"smart-open 6.3.0",
|
| 548 |
+
"sniffio 1.3.0",
|
| 549 |
+
"snowballstemmer 2.2.0",
|
| 550 |
+
"sortedcontainers 2.4.0",
|
| 551 |
+
"soundfile 0.12.1",
|
| 552 |
+
"soupsieve 2.4.1",
|
| 553 |
+
"soxr 0.3.5",
|
| 554 |
+
"spacy 3.5.2",
|
| 555 |
+
"spacy-legacy 3.0.12",
|
| 556 |
+
"spacy-loggers 1.0.4",
|
| 557 |
+
"sphinx-rtd-theme 1.2.0",
|
| 558 |
+
"sphinxcontrib-applehelp 1.0.4",
|
| 559 |
+
"sphinxcontrib-devhelp 1.0.2",
|
| 560 |
+
"sphinxcontrib-htmlhelp 2.0.1",
|
| 561 |
+
"sphinxcontrib-jquery 4.1",
|
| 562 |
+
"sphinxcontrib-jsmath 1.0.1",
|
| 563 |
+
"sphinxcontrib-qthelp 1.0.3",
|
| 564 |
+
"sphinxcontrib-serializinghtml 1.1.5",
|
| 565 |
+
"sqlparse 0.4.4",
|
| 566 |
+
"srsly 2.4.6",
|
| 567 |
+
"statsmodels 0.13.5",
|
| 568 |
+
"stringcase 1.2.0",
|
| 569 |
+
"super-gradients 3.1.0",
|
| 570 |
+
"sympy 1.11.1",
|
| 571 |
+
"tables 3.8.0",
|
| 572 |
+
"tabulate 0.8.10",
|
| 573 |
+
"tblib 1.7.0",
|
| 574 |
+
"tenacity 8.2.2",
|
| 575 |
+
"tensorboard 2.12.2",
|
| 576 |
+
"tensorboard-data-server 0.7.0",
|
| 577 |
+
"tensorboard-plugin-wit 1.8.1",
|
| 578 |
+
"tensorflow 2.12.0",
|
| 579 |
+
"tensorflow-datasets 4.9.2",
|
| 580 |
+
"tensorflow-estimator 2.12.0",
|
| 581 |
+
"tensorflow-gcs-config 2.12.0",
|
| 582 |
+
"tensorflow-hub 0.13.0",
|
| 583 |
+
"tensorflow-io-gcs-filesystem 0.32.0",
|
| 584 |
+
"tensorflow-metadata 1.13.1",
|
| 585 |
+
"tensorflow-probability 0.19.0",
|
| 586 |
+
"tensorstore 0.1.36",
|
| 587 |
+
"termcolor 1.1.0",
|
| 588 |
+
"terminado 0.17.1",
|
| 589 |
+
"text-unidecode 1.3",
|
| 590 |
+
"textblob 0.17.1",
|
| 591 |
+
"tf-slim 1.1.0",
|
| 592 |
+
"thinc 8.1.9",
|
| 593 |
+
"threadpoolctl 3.1.0",
|
| 594 |
+
"tifffile 2023.4.12",
|
| 595 |
+
"tinycss2 1.2.1",
|
| 596 |
+
"toml 0.10.2",
|
| 597 |
+
"tomli 2.0.1",
|
| 598 |
+
"toolz 0.12.0",
|
| 599 |
+
"torch 1.13.1",
|
| 600 |
+
"torchaudio 2.0.1+cu118",
|
| 601 |
+
"torchdata 0.6.0",
|
| 602 |
+
"torchinfo 1.7.2",
|
| 603 |
+
"torchmetrics 0.8.0",
|
| 604 |
+
"torchsummary 1.5.1",
|
| 605 |
+
"torchtext 0.15.1",
|
| 606 |
+
"torchvision 0.14.1",
|
| 607 |
+
"tornado 6.3.1",
|
| 608 |
+
"tqdm 4.65.0",
|
| 609 |
+
"traitlets 5.7.1",
|
| 610 |
+
"treelib 1.6.1",
|
| 611 |
+
"triton 2.0.0",
|
| 612 |
+
"tweepy 4.13.0",
|
| 613 |
+
"typer 0.7.0",
|
| 614 |
+
"types-setuptools 67.7.0.2",
|
| 615 |
+
"typing-extensions 4.5.0",
|
| 616 |
+
"tzdata 2023.3",
|
| 617 |
+
"tzlocal 4.3",
|
| 618 |
+
"uritemplate 4.1.1",
|
| 619 |
+
"urllib3 1.26.15",
|
| 620 |
+
"vega-datasets 0.9.0",
|
| 621 |
+
"wasabi 1.1.1",
|
| 622 |
+
"wcwidth 0.2.6",
|
| 623 |
+
"webcolors 1.13",
|
| 624 |
+
"webencodings 0.5.1",
|
| 625 |
+
"websocket-client 1.5.1",
|
| 626 |
+
"wget 3.2",
|
| 627 |
+
"wheel 0.40.0",
|
| 628 |
+
"widgetsnbextension 3.6.4",
|
| 629 |
+
"wordcloud 1.8.2.2",
|
| 630 |
+
"wrapt 1.14.1",
|
| 631 |
+
"xarray 2022.12.0",
|
| 632 |
+
"xarray-einstats 0.5.1",
|
| 633 |
+
"xgboost 1.7.5",
|
| 634 |
+
"xlrd 2.0.1",
|
| 635 |
+
"yellowbrick 1.5",
|
| 636 |
+
"yfinance 0.2.18",
|
| 637 |
+
"youtube-dl 2021.12.17",
|
| 638 |
+
"zict 3.0.0",
|
| 639 |
+
"zipp 3.15.0",
|
| 640 |
+
"PyGObject 3.36.0",
|
| 641 |
+
"dbus-python 1.2.16",
|
| 642 |
+
"requests-unixsocket 0.2.0"
|
| 643 |
+
]
|
| 644 |
+
}
|
| 645 |
+
}
|
| 646 |
+
------- config parameters end --------
|
| 647 |
+
|
| 648 |
+
Epoch 0 (1/15) - Train_PPYoloELoss/loss_cls: 1.6962181329727173 Train_PPYoloELoss/loss_iou: 0.2994749844074249 Train_PPYoloELoss/loss_dfl: 1.5699489116668701 Train_PPYoloELoss/loss: 3.2298800945281982 Valid_PPYoloELoss/loss_cls: 1.5147238969802856 Valid_PPYoloELoss/loss_iou: 0.27392876148223877 Valid_PPYoloELoss/loss_dfl: 1.4811557531356812 Valid_PPYoloELoss/loss: 2.9401230812072754 Valid_Precision@0.50: 0.04325180500745773 Valid_Recall@0.50: 0.38238680362701416 Valid_mAP@0.50: 0.089534230530262 Valid_F1@0.50: 0.07771343737840652 Inference_Time: 87661.1875
|
| 649 |
+
|
| 650 |
+
Epoch 0 (1/15) - LR/Param_group_0: 1e-06 LR/Param_group_1: 1e-06
|
| 651 |
+
|
| 652 |
+
Epoch 1 (2/15) - Train_PPYoloELoss/loss_cls: 1.166463851928711 Train_PPYoloELoss/loss_iou: 0.2636335790157318 Train_PPYoloELoss/loss_dfl: 1.3941149711608887 Train_PPYoloELoss/loss: 2.52260684967041 Valid_PPYoloELoss/loss_cls: 1.2233375310897827 Valid_PPYoloELoss/loss_iou: 0.2455494999885559 Valid_PPYoloELoss/loss_dfl: 1.3523083925247192 Valid_PPYoloELoss/loss: 2.513366222381592 Valid_Precision@0.50: 0.015027979388833046 Valid_Recall@0.50: 0.8996546268463135 Valid_mAP@0.50: 0.4798499345779419 Valid_F1@0.50: 0.029562147334218025 Inference_Time: 87491.5
|
| 653 |
+
|
| 654 |
+
Epoch 1 (2/15) - LR/Param_group_0: 0.00016733333333333333 LR/Param_group_1: 0.00016733333333333333
|
| 655 |
+
|
| 656 |
+
Epoch 2 (3/15) - Train_PPYoloELoss/loss_cls: 1.141836404800415 Train_PPYoloELoss/loss_iou: 0.2573237717151642 Train_PPYoloELoss/loss_dfl: 1.3711341619491577 Train_PPYoloELoss/loss: 2.4707140922546387 Valid_PPYoloELoss/loss_cls: 1.1793231964111328 Valid_PPYoloELoss/loss_iou: 0.24998177587985992 Valid_PPYoloELoss/loss_dfl: 1.3842113018035889 Valid_PPYoloELoss/loss: 2.4963839054107666 Valid_Precision@0.50: 0.016405094414949417 Valid_Recall@0.50: 0.8856484889984131 Valid_mAP@0.50: 0.42721670866012573 Valid_F1@0.50: 0.0322134904563427 Inference_Time: 87581.796875
|
| 657 |
+
|
| 658 |
+
Epoch 2 (3/15) - LR/Param_group_0: 0.0003336666666666667 LR/Param_group_1: 0.0003336666666666667
|
| 659 |
+
|
| 660 |
+
Epoch 3 (4/15) - Train_PPYoloELoss/loss_cls: 1.150810718536377 Train_PPYoloELoss/loss_iou: 0.2577815055847168 Train_PPYoloELoss/loss_dfl: 1.3847109079360962 Train_PPYoloELoss/loss: 2.4876186847686768 Valid_PPYoloELoss/loss_cls: 1.2417112588882446 Valid_PPYoloELoss/loss_iou: 0.2563279867172241 Valid_PPYoloELoss/loss_dfl: 1.4326244592666626 Valid_PPYoloELoss/loss: 2.598844289779663 Valid_Precision@0.50: 0.017797669395804405 Valid_Recall@0.50: 0.8499616384506226 Valid_mAP@0.50: 0.395309716463089 Valid_F1@0.50: 0.034865282475948334 Inference_Time: 86932.6484375
|
| 661 |
+
|
| 662 |
+
Epoch 3 (4/15) - LR/Param_group_0: 0.0005 LR/Param_group_1: 0.0005
|
| 663 |
+
|
| 664 |
+
Epoch 4 (5/15) - Train_PPYoloELoss/loss_cls: 1.1298094987869263 Train_PPYoloELoss/loss_iou: 0.24788755178451538 Train_PPYoloELoss/loss_dfl: 1.3363499641418457 Train_PPYoloELoss/loss: 2.417703628540039 Valid_PPYoloELoss/loss_cls: 1.1644823551177979 Valid_PPYoloELoss/loss_iou: 0.24936263263225555 Valid_PPYoloELoss/loss_dfl: 1.397640585899353 Valid_PPYoloELoss/loss: 2.486708879470825 Valid_Precision@0.50: 0.02170523814857006 Valid_Recall@0.50: 0.8601304888725281 Valid_mAP@0.50: 0.45845457911491394 Valid_F1@0.50: 0.04234198480844498 Inference_Time: 86974.015625
|
| 665 |
+
|
| 666 |
+
Epoch 4 (5/15) - LR/Param_group_0: 0.0004923767044943654 LR/Param_group_1: 0.0004923767044943654
|
| 667 |
+
|
| 668 |
+
Epoch 5 (6/15) - Train_PPYoloELoss/loss_cls: 1.1231328248977661 Train_PPYoloELoss/loss_iou: 0.2438051998615265 Train_PPYoloELoss/loss_dfl: 1.3182282447814941 Train_PPYoloELoss/loss: 2.391761064529419 Valid_PPYoloELoss/loss_cls: 1.2028536796569824 Valid_PPYoloELoss/loss_iou: 0.24437254667282104 Valid_PPYoloELoss/loss_dfl: 1.377091407775879 Valid_PPYoloELoss/loss: 2.502331495285034 Valid_Precision@0.50: 0.017273498699069023 Valid_Recall@0.50: 0.8823868036270142 Valid_mAP@0.50: 0.48124265670776367 Valid_F1@0.50: 0.03388369455933571 Inference_Time: 86847.265625
|
| 669 |
+
|
| 670 |
+
Epoch 5 (6/15) - LR/Param_group_0: 0.0004699460572316118 LR/Param_group_1: 0.0004699460572316118
|
| 671 |
+
|
| 672 |
+
Epoch 6 (7/15) - Train_PPYoloELoss/loss_cls: 1.1125056743621826 Train_PPYoloELoss/loss_iou: 0.24215054512023926 Train_PPYoloELoss/loss_dfl: 1.3027186393737793 Train_PPYoloELoss/loss: 2.3692400455474854 Valid_PPYoloELoss/loss_cls: 1.1844314336776733 Valid_PPYoloELoss/loss_iou: 0.24283626675605774 Valid_PPYoloELoss/loss_dfl: 1.3685951232910156 Valid_PPYoloELoss/loss: 2.4758198261260986 Valid_Precision@0.50: 0.01980043388903141 Valid_Recall@0.50: 0.8760552406311035 Valid_mAP@0.50: 0.45704999566078186 Valid_F1@0.50: 0.0387255996465683 Inference_Time: 87195.390625
|
| 673 |
+
|
| 674 |
+
Epoch 6 (7/15) - LR/Param_group_0: 0.00043423594998756126 LR/Param_group_1: 0.00043423594998756126
|
| 675 |
+
|
| 676 |
+
Epoch 7 (8/15) - Train_PPYoloELoss/loss_cls: 1.0954060554504395 Train_PPYoloELoss/loss_iou: 0.23842182755470276 Train_PPYoloELoss/loss_dfl: 1.2814346551895142 Train_PPYoloELoss/loss: 2.3321774005889893 Valid_PPYoloELoss/loss_cls: 1.1549570560455322 Valid_PPYoloELoss/loss_iou: 0.2391127049922943 Valid_PPYoloELoss/loss_dfl: 1.36127507686615 Valid_PPYoloELoss/loss: 2.4333763122558594 Valid_Precision@0.50: 0.028354886919260025 Valid_Recall@0.50: 0.8434382081031799 Valid_mAP@0.50: 0.4446112811565399 Valid_F1@0.50: 0.05486530065536499 Inference_Time: 87062.125
|
| 677 |
+
|
| 678 |
+
Epoch 7 (8/15) - LR/Param_group_0: 0.00038767890664502167 LR/Param_group_1: 0.00038767890664502167
|
| 679 |
+
|
| 680 |
+
Epoch 8 (9/15) - Train_PPYoloELoss/loss_cls: 1.094423532485962 Train_PPYoloELoss/loss_iou: 0.23351271450519562 Train_PPYoloELoss/loss_dfl: 1.263392448425293 Train_PPYoloELoss/loss: 2.309904098510742 Valid_PPYoloELoss/loss_cls: 1.0994166135787964 Valid_PPYoloELoss/loss_iou: 0.23664221167564392 Valid_PPYoloELoss/loss_dfl: 1.3241026401519775 Valid_PPYoloELoss/loss: 2.3530733585357666 Valid_Precision@0.50: 0.02528832107782364 Valid_Recall@0.50: 0.8906369805335999 Valid_mAP@0.50: 0.5475698709487915 Valid_F1@0.50: 0.04918023943901062 Inference_Time: 87160.265625
|
| 681 |
+
|
| 682 |
+
Epoch 8 (9/15) - LR/Param_group_0: 0.0003334463296047109 LR/Param_group_1: 0.0003334463296047109
|
| 683 |
+
|
| 684 |
+
Epoch 9 (10/15) - Train_PPYoloELoss/loss_cls: 1.073317527770996 Train_PPYoloELoss/loss_iou: 0.2302723228931427 Train_PPYoloELoss/loss_dfl: 1.2447388172149658 Train_PPYoloELoss/loss: 2.271367311477661 Valid_PPYoloELoss/loss_cls: 1.1121559143066406 Valid_PPYoloELoss/loss_iou: 0.24138985574245453 Valid_PPYoloELoss/loss_dfl: 1.3346160650253296 Valid_PPYoloELoss/loss: 2.3829386234283447 Valid_Precision@0.50: 0.021185651421546936 Valid_Recall@0.50: 0.8948580026626587 Valid_mAP@0.50: 0.5400114059448242 Valid_F1@0.50: 0.041391368955373764 Inference_Time: 86761.65625
|
| 685 |
+
|
| 686 |
+
Epoch 9 (10/15) - LR/Param_group_0: 0.00027523246817188037 LR/Param_group_1: 0.00027523246817188037
|
| 687 |
+
|
| 688 |
+
Epoch 10 (11/15) - Train_PPYoloELoss/loss_cls: 1.0707461833953857 Train_PPYoloELoss/loss_iou: 0.22916893661022186 Train_PPYoloELoss/loss_dfl: 1.2395823001861572 Train_PPYoloELoss/loss: 2.263460159301758 Valid_PPYoloELoss/loss_cls: 1.0663731098175049 Valid_PPYoloELoss/loss_iou: 0.23505419492721558 Valid_PPYoloELoss/loss_dfl: 1.3015613555908203 Valid_PPYoloELoss/loss: 2.3047895431518555 Valid_Precision@0.50: 0.026322683319449425 Valid_Recall@0.50: 0.9061780571937561 Valid_mAP@0.50: 0.5947054624557495 Valid_F1@0.50: 0.05115928873419762 Inference_Time: 87799.5
|
| 689 |
+
|
| 690 |
+
Epoch 10 (11/15) - LR/Param_group_0: 0.00021700277132370856 LR/Param_group_1: 0.00021700277132370856
|
| 691 |
+
|
| 692 |
+
Epoch 11 (12/15) - Train_PPYoloELoss/loss_cls: 1.0621824264526367 Train_PPYoloELoss/loss_iou: 0.22597089409828186 Train_PPYoloELoss/loss_dfl: 1.2170137166976929 Train_PPYoloELoss/loss: 2.2356162071228027 Valid_PPYoloELoss/loss_cls: 1.1015101671218872 Valid_PPYoloELoss/loss_iou: 0.2394164651632309 Valid_PPYoloELoss/loss_dfl: 1.3316105604171753 Valid_PPYoloELoss/loss: 2.3658559322357178 Valid_Precision@0.50: 0.024049220606684685 Valid_Recall@0.50: 0.9052187204360962 Valid_mAP@0.50: 0.5670465230941772 Valid_F1@0.50: 0.04685366526246071 Inference_Time: 86475.0703125
|
| 693 |
+
|
| 694 |
+
Epoch 11 (12/15) - LR/Param_group_0: 0.00016272376672430553 LR/Param_group_1: 0.00016272376672430553
|
| 695 |
+
|
| 696 |
+
Epoch 12 (13/15) - Train_PPYoloELoss/loss_cls: 1.049034833908081 Train_PPYoloELoss/loss_iou: 0.22144024074077606 Train_PPYoloELoss/loss_dfl: 1.1981967687606812 Train_PPYoloELoss/loss: 2.2017338275909424 Valid_PPYoloELoss/loss_cls: 1.0634980201721191 Valid_PPYoloELoss/loss_iou: 0.2294604629278183 Valid_PPYoloELoss/loss_dfl: 1.2745609283447266 Valid_PPYoloELoss/loss: 2.274430513381958 Valid_Precision@0.50: 0.027548959478735924 Valid_Recall@0.50: 0.9130851626396179 Valid_mAP@0.50: 0.595493733882904 Valid_F1@0.50: 0.0534842312335968 Inference_Time: 87099.296875
|
| 697 |
+
|
| 698 |
+
Epoch 12 (13/15) - LR/Param_group_0: 0.0001160928662610327 LR/Param_group_1: 0.0001160928662610327
|
| 699 |
+
|
| 700 |
+
Epoch 13 (14/15) - Train_PPYoloELoss/loss_cls: 1.0481233596801758 Train_PPYoloELoss/loss_iou: 0.22079135477542877 Train_PPYoloELoss/loss_dfl: 1.1923013925552368 Train_PPYoloELoss/loss: 2.1962530612945557 Valid_PPYoloELoss/loss_cls: 1.0877412557601929 Valid_PPYoloELoss/loss_iou: 0.22792711853981018 Valid_PPYoloELoss/loss_dfl: 1.2632607221603394 Valid_PPYoloELoss/loss: 2.289189338684082 Valid_Precision@0.50: 0.021859185770154 Valid_Recall@0.50: 0.9265157580375671 Valid_mAP@0.50: 0.6112275719642639 Valid_F1@0.50: 0.04271070286631584 Inference_Time: 87536.5234375
|
| 701 |
+
|
| 702 |
+
Epoch 13 (14/15) - LR/Param_group_0: 8.028650338110862e-05 LR/Param_group_1: 8.028650338110862e-05
|
| 703 |
+
|
| 704 |
+
Epoch 14 (15/15) - Train_PPYoloELoss/loss_cls: 1.0317202806472778 Train_PPYoloELoss/loss_iou: 0.2186751812696457 Train_PPYoloELoss/loss_dfl: 1.1811234951019287 Train_PPYoloELoss/loss: 2.168968439102173 Valid_PPYoloELoss/loss_cls: 1.054010272026062 Valid_PPYoloELoss/loss_iou: 0.23441554605960846 Valid_PPYoloELoss/loss_dfl: 1.27616548538208 Valid_PPYoloELoss/loss: 2.2781312465667725 Valid_Precision@0.50: 0.026609761640429497 Valid_Recall@0.50: 0.9163469076156616 Valid_mAP@0.50: 0.6239312887191772 Valid_F1@0.50: 0.051717691123485565 Inference_Time: 87271.7265625
|
| 705 |
+
|
| 706 |
+
Epoch 14 (15/15) - LR/Param_group_0: 5.774375877019629e-05 LR/Param_group_1: 5.774375877019629e-05
|
my_first_yolonas_run/logs_May13_17_05_43.txt
ADDED
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@@ -0,0 +1,136 @@
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| 1 |
+
[2023-05-13 16:54:01] INFO - super_gradients.common.crash_handler.crash_tips_setup - Crash tips is enabled. You can set your environment variable to CRASH_HANDLER=FALSE to disable it
|
| 2 |
+
[2023-05-13 16:54:06] DEBUG - pip._internal.vcs.versioncontrol - Registered VCS backend: bzr
|
| 3 |
+
[2023-05-13 16:54:06] DEBUG - pip._internal.vcs.versioncontrol - Registered VCS backend: git
|
| 4 |
+
[2023-05-13 16:54:06] DEBUG - pip._internal.vcs.versioncontrol - Registered VCS backend: hg
|
| 5 |
+
[2023-05-13 16:54:06] DEBUG - pip._internal.vcs.versioncontrol - Registered VCS backend: svn
|
| 6 |
+
[2023-05-13 16:54:06] DEBUG - super_gradients.common.sg_loggers.clearml_sg_logger - Failed to import clearml
|
| 7 |
+
[2023-05-13 16:54:06] DEBUG - super_gradients.modules - Failed to import pytorch_quantization: cannot import name 'Bottleneck' from partially initialized module 'super_gradients.training.models.classification_models.resnet' (most likely due to a circular import) (/usr/local/lib/python3.10/dist-packages/super_gradients/training/models/classification_models/resnet.py)
|
| 8 |
+
[2023-05-13 16:54:06] DEBUG - hydra.core.utils - Setting JobRuntime:name=UNKNOWN_NAME
|
| 9 |
+
[2023-05-13 16:54:06] DEBUG - hydra.core.utils - Setting JobRuntime:name=app
|
| 10 |
+
[2023-05-13 16:54:06] DEBUG - hydra.core.utils - Setting JobRuntime:name=app
|
| 11 |
+
[2023-05-13 16:54:07] DEBUG - hydra.core.utils - Setting JobRuntime:name=app
|
| 12 |
+
[2023-05-13 16:54:07] DEBUG - hydra.core.utils - Setting JobRuntime:name=app
|
| 13 |
+
[2023-05-13 16:54:07] DEBUG - hydra.core.utils - Setting JobRuntime:name=app
|
| 14 |
+
[2023-05-13 16:54:07] WARNING - super_gradients.training.utils.quantization - Failed to import pytorch_quantization
|
| 15 |
+
[2023-05-13 16:54:07] WARNING - super_gradients.training.utils.quantization.calibrator - Failed to import pytorch_quantization
|
| 16 |
+
[2023-05-13 16:54:07] WARNING - super_gradients.training.utils.quantization.export - Failed to import pytorch_quantization
|
| 17 |
+
[2023-05-13 16:54:07] WARNING - super_gradients.training.utils.quantization.selective_quantization_utils - Failed to import pytorch_quantization
|
| 18 |
+
[2023-05-13 16:54:07] DEBUG - super_gradients.training.qat_trainer.qat_trainer - Failed to import pytorch_quantization:
|
| 19 |
+
[2023-05-13 16:54:07] DEBUG - super_gradients.training.qat_trainer.qat_trainer - name 'QuantizedMetadata' is not defined
|
| 20 |
+
[2023-05-13 16:54:07] DEBUG - super_gradients.sanity_check.env_sanity_check - pyparsing==2.4.7 does not satisfy requirement pyparsing==2.4.5
|
| 21 |
+
[2023-05-13 16:54:33] DEBUG - urllib3.connectionpool - Starting new HTTPS connection (1): app.roboflow.com:443
|
| 22 |
+
[2023-05-13 16:54:34] DEBUG - urllib3.connectionpool - https://app.roboflow.com:443 "GET /query/cliAuthToken/36509e31-f8df-4c6c-9182-357addecb9cd HTTP/1.1" 200 145
|
| 23 |
+
[2023-05-13 16:54:34] DEBUG - urllib3.connectionpool - Starting new HTTPS connection (1): api.roboflow.com:443
|
| 24 |
+
[2023-05-13 16:54:34] DEBUG - urllib3.connectionpool - https://api.roboflow.com:443 "POST /?api_key=2NdQm1ivtFCAYiOLVTwn HTTP/1.1" 200 182
|
| 25 |
+
[2023-05-13 16:54:34] DEBUG - urllib3.connectionpool - Starting new HTTPS connection (1): api.roboflow.com:443
|
| 26 |
+
[2023-05-13 16:54:34] DEBUG - urllib3.connectionpool - https://api.roboflow.com:443 "POST /?api_key=2NdQm1ivtFCAYiOLVTwn HTTP/1.1" 200 182
|
| 27 |
+
[2023-05-13 16:54:34] DEBUG - urllib3.connectionpool - Starting new HTTPS connection (1): api.roboflow.com:443
|
| 28 |
+
[2023-05-13 16:54:35] DEBUG - urllib3.connectionpool - https://api.roboflow.com:443 "GET /smartathon?api_key=2NdQm1ivtFCAYiOLVTwn HTTP/1.1" 200 3338
|
| 29 |
+
[2023-05-13 16:54:35] DEBUG - urllib3.connectionpool - Starting new HTTPS connection (1): api.roboflow.com:443
|
| 30 |
+
[2023-05-13 16:54:35] DEBUG - urllib3.connectionpool - https://api.roboflow.com:443 "GET /smartathon/new-pothole-detection?api_key=2NdQm1ivtFCAYiOLVTwn HTTP/1.1" 200 7291
|
| 31 |
+
[2023-05-13 16:54:35] DEBUG - urllib3.connectionpool - Starting new HTTPS connection (1): api.roboflow.com:443
|
| 32 |
+
[2023-05-13 16:54:35] DEBUG - urllib3.connectionpool - https://api.roboflow.com:443 "GET /smartathon/new-pothole-detection?api_key=2NdQm1ivtFCAYiOLVTwn HTTP/1.1" 200 7291
|
| 33 |
+
[2023-05-13 16:54:35] DEBUG - urllib3.connectionpool - Starting new HTTPS connection (1): api.roboflow.com:443
|
| 34 |
+
[2023-05-13 16:54:36] DEBUG - urllib3.connectionpool - https://api.roboflow.com:443 "GET /smartathon/new-pothole-detection/2?nocache=true&api_key=2NdQm1ivtFCAYiOLVTwn HTTP/1.1" 200 4611
|
| 35 |
+
[2023-05-13 16:54:36] DEBUG - urllib3.connectionpool - Starting new HTTPS connection (1): api.roboflow.com:443
|
| 36 |
+
[2023-05-13 16:54:36] DEBUG - urllib3.connectionpool - https://api.roboflow.com:443 "GET /smartathon/new-pothole-detection/2/yolov5pytorch?api_key=2NdQm1ivtFCAYiOLVTwn HTTP/1.1" 200 3494
|
| 37 |
+
[2023-05-13 17:01:06] DEBUG - hydra.core.utils - Setting JobRuntime:name=app
|
| 38 |
+
[2023-05-13 17:01:08] WARNING - super_gradients.training.datasets.detection_datasets.detection_dataset - Found 1090 invalid bbox that were ignored. For more information, please set `show_all_warnings=True`.
|
| 39 |
+
[2023-05-13 17:01:08] DEBUG - hydra.core.utils - Setting JobRuntime:name=app
|
| 40 |
+
[2023-05-13 17:01:08] DEBUG - hydra.core.utils - Setting JobRuntime:name=app
|
| 41 |
+
[2023-05-13 17:01:09] WARNING - super_gradients.training.datasets.detection_datasets.detection_dataset - Found 4 invalid bbox that were ignored. For more information, please set `show_all_warnings=True`.
|
| 42 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: Matching sans\-serif:style=normal:variant=normal:weight=normal:stretch=normal:size=10.0.
|
| 43 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/DejaVuSerif-Italic.ttf', name='DejaVu Serif', style='italic', variant='normal', weight=400, stretch='normal', size='scalable')) = 11.05
|
| 44 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXNonUni.ttf', name='STIXNonUnicode', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 45 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/DejaVuSansMono-Oblique.ttf', name='DejaVu Sans Mono', style='oblique', variant='normal', weight=400, stretch='normal', size='scalable')) = 11.05
|
| 46 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXSizOneSymReg.ttf', name='STIXSizeOneSym', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 47 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/DejaVuSansDisplay.ttf', name='DejaVu Sans Display', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 48 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXSizFiveSymReg.ttf', name='STIXSizeFiveSym', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 49 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXSizOneSymBol.ttf', name='STIXSizeOneSym', style='normal', variant='normal', weight=700, stretch='normal', size='scalable')) = 10.335
|
| 50 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/cmex10.ttf', name='cmex10', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 51 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/DejaVuSerifDisplay.ttf', name='DejaVu Serif Display', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 52 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXSizFourSymReg.ttf', name='STIXSizeFourSym', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 53 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXNonUniIta.ttf', name='STIXNonUnicode', style='italic', variant='normal', weight=400, stretch='normal', size='scalable')) = 11.05
|
| 54 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXSizThreeSymBol.ttf', name='STIXSizeThreeSym', style='normal', variant='normal', weight=700, stretch='normal', size='scalable')) = 10.335
|
| 55 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/cmmi10.ttf', name='cmmi10', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 56 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/cmsy10.ttf', name='cmsy10', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 57 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXNonUniBolIta.ttf', name='STIXNonUnicode', style='italic', variant='normal', weight=700, stretch='normal', size='scalable')) = 11.335
|
| 58 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXSizTwoSymBol.ttf', name='STIXSizeTwoSym', style='normal', variant='normal', weight=700, stretch='normal', size='scalable')) = 10.335
|
| 59 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXNonUniBol.ttf', name='STIXNonUnicode', style='normal', variant='normal', weight=700, stretch='normal', size='scalable')) = 10.335
|
| 60 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXGeneralBolIta.ttf', name='STIXGeneral', style='italic', variant='normal', weight=700, stretch='normal', size='scalable')) = 11.335
|
| 61 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/cmb10.ttf', name='cmb10', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 62 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXSizThreeSymReg.ttf', name='STIXSizeThreeSym', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 63 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/cmtt10.ttf', name='cmtt10', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 64 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/cmss10.ttf', name='cmss10', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 65 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/DejaVuSansMono-Bold.ttf', name='DejaVu Sans Mono', style='normal', variant='normal', weight=700, stretch='normal', size='scalable')) = 10.335
|
| 66 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXSizFourSymBol.ttf', name='STIXSizeFourSym', style='normal', variant='normal', weight=700, stretch='normal', size='scalable')) = 10.335
|
| 67 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXGeneralBol.ttf', name='STIXGeneral', style='normal', variant='normal', weight=700, stretch='normal', size='scalable')) = 10.335
|
| 68 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/DejaVuSansMono.ttf', name='DejaVu Sans Mono', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 69 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/DejaVuSans-Oblique.ttf', name='DejaVu Sans', style='oblique', variant='normal', weight=400, stretch='normal', size='scalable')) = 1.05
|
| 70 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/DejaVuSansMono-BoldOblique.ttf', name='DejaVu Sans Mono', style='oblique', variant='normal', weight=700, stretch='normal', size='scalable')) = 11.335
|
| 71 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXGeneralItalic.ttf', name='STIXGeneral', style='italic', variant='normal', weight=400, stretch='normal', size='scalable')) = 11.05
|
| 72 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/cmr10.ttf', name='cmr10', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 73 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/DejaVuSerif.ttf', name='DejaVu Serif', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 74 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/DejaVuSans.ttf', name='DejaVu Sans', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 0.05
|
| 75 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXSizTwoSymReg.ttf', name='STIXSizeTwoSym', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 76 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/STIXGeneral.ttf', name='STIXGeneral', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 77 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/DejaVuSerif-BoldItalic.ttf', name='DejaVu Serif', style='italic', variant='normal', weight=700, stretch='normal', size='scalable')) = 11.335
|
| 78 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/DejaVuSerif-Bold.ttf', name='DejaVu Serif', style='normal', variant='normal', weight=700, stretch='normal', size='scalable')) = 10.335
|
| 79 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/DejaVuSans-BoldOblique.ttf', name='DejaVu Sans', style='oblique', variant='normal', weight=700, stretch='normal', size='scalable')) = 1.335
|
| 80 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/DejaVuSans-Bold.ttf', name='DejaVu Sans', style='normal', variant='normal', weight=700, stretch='normal', size='scalable')) = 0.33499999999999996
|
| 81 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/liberation/LiberationSansNarrow-Regular.ttf', name='Liberation Sans Narrow', style='normal', variant='normal', weight=400, stretch='condensed', size='scalable')) = 10.25
|
| 82 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/liberation/LiberationMono-Italic.ttf', name='Liberation Mono', style='italic', variant='normal', weight=400, stretch='normal', size='scalable')) = 11.05
|
| 83 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/liberation/LiberationSansNarrow-BoldItalic.ttf', name='Liberation Sans Narrow', style='italic', variant='normal', weight=700, stretch='condensed', size='scalable')) = 11.535
|
| 84 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/liberation/LiberationSansNarrow-Bold.ttf', name='Liberation Sans Narrow', style='normal', variant='normal', weight=700, stretch='condensed', size='scalable')) = 10.535
|
| 85 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/liberation/LiberationMono-Bold.ttf', name='Liberation Mono', style='normal', variant='normal', weight=700, stretch='normal', size='scalable')) = 10.335
|
| 86 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/liberation/LiberationSans-Italic.ttf', name='Liberation Sans', style='italic', variant='normal', weight=400, stretch='normal', size='scalable')) = 11.05
|
| 87 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/liberation/LiberationSerif-Italic.ttf', name='Liberation Serif', style='italic', variant='normal', weight=400, stretch='normal', size='scalable')) = 11.05
|
| 88 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/liberation/LiberationMono-BoldItalic.ttf', name='Liberation Mono', style='italic', variant='normal', weight=700, stretch='normal', size='scalable')) = 11.335
|
| 89 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/liberation/LiberationSans-Regular.ttf', name='Liberation Sans', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 90 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/liberation/LiberationSansNarrow-Italic.ttf', name='Liberation Sans Narrow', style='italic', variant='normal', weight=400, stretch='condensed', size='scalable')) = 11.25
|
| 91 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/liberation/LiberationSerif-BoldItalic.ttf', name='Liberation Serif', style='italic', variant='normal', weight=700, stretch='normal', size='scalable')) = 11.335
|
| 92 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/liberation/LiberationSerif-Bold.ttf', name='Liberation Serif', style='normal', variant='normal', weight=700, stretch='normal', size='scalable')) = 10.335
|
| 93 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/liberation/LiberationSans-BoldItalic.ttf', name='Liberation Sans', style='italic', variant='normal', weight=700, stretch='normal', size='scalable')) = 11.335
|
| 94 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/liberation/LiberationMono-Regular.ttf', name='Liberation Mono', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 95 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/liberation/LiberationSerif-Regular.ttf', name='Liberation Serif', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 96 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/humor-sans/Humor-Sans.ttf', name='Humor Sans', style='normal', variant='normal', weight=400, stretch='normal', size='scalable')) = 10.05
|
| 97 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: score(FontEntry(fname='/usr/share/fonts/truetype/liberation/LiberationSans-Bold.ttf', name='Liberation Sans', style='normal', variant='normal', weight=700, stretch='normal', size='scalable')) = 10.335
|
| 98 |
+
[2023-05-13 17:01:16] DEBUG - matplotlib.font_manager - findfont: Matching sans\-serif:style=normal:variant=normal:weight=normal:stretch=normal:size=10.0 to DejaVu Sans ('/usr/local/lib/python3.10/dist-packages/matplotlib/mpl-data/fonts/ttf/DejaVuSans.ttf') with score of 0.050000.
|
| 99 |
+
[2023-05-13 17:03:47] DEBUG - hydra.core.utils - Setting JobRuntime:name=app
|
| 100 |
+
[2023-05-13 17:03:48] WARNING - super_gradients.training.datasets.detection_datasets.detection_dataset - Found 1090 invalid bbox that were ignored. For more information, please set `show_all_warnings=True`.
|
| 101 |
+
[2023-05-13 17:03:48] DEBUG - hydra.core.utils - Setting JobRuntime:name=app
|
| 102 |
+
[2023-05-13 17:03:49] DEBUG - hydra.core.utils - Setting JobRuntime:name=app
|
| 103 |
+
[2023-05-13 17:03:49] WARNING - super_gradients.training.datasets.detection_datasets.detection_dataset - Found 4 invalid bbox that were ignored. For more information, please set `show_all_warnings=True`.
|
| 104 |
+
[2023-05-13 17:04:34] DEBUG - hydra.core.utils - Setting JobRuntime:name=app
|
| 105 |
+
[2023-05-13 17:04:36] INFO - super_gradients.training.utils.checkpoint_utils - License Notification: YOLO-NAS pre-trained weights are subjected to the specific license terms and conditions detailed in
|
| 106 |
+
https://github.com/Deci-AI/super-gradients/blob/master/LICENSE.YOLONAS.md
|
| 107 |
+
By downloading the pre-trained weight files you agree to comply with these terms.
|
| 108 |
+
[2023-05-13 17:05:36] INFO - super_gradients.training.sg_trainer.sg_trainer - Using EMA with params {'decay': 0.9, 'decay_type': 'threshold'}
|
| 109 |
+
[2023-05-13 17:05:40] DEBUG - tensorflow - Falling back to TensorFlow client; we recommended you install the Cloud TPU client directly with pip install cloud-tpu-client.
|
| 110 |
+
[2023-05-13 17:05:40] DEBUG - h5py._conv - Creating converter from 7 to 5
|
| 111 |
+
[2023-05-13 17:05:40] DEBUG - h5py._conv - Creating converter from 5 to 7
|
| 112 |
+
[2023-05-13 17:05:40] DEBUG - h5py._conv - Creating converter from 7 to 5
|
| 113 |
+
[2023-05-13 17:05:40] DEBUG - h5py._conv - Creating converter from 5 to 7
|
| 114 |
+
[2023-05-13 17:05:41] DEBUG - jaxlib.mlir._mlir_libs - Initializing MLIR with module: _site_initialize_0
|
| 115 |
+
[2023-05-13 17:05:41] DEBUG - jaxlib.mlir._mlir_libs - Registering dialects from initializer <module 'jaxlib.mlir._mlir_libs._site_initialize_0' from '/usr/local/lib/python3.10/dist-packages/jaxlib/mlir/_mlir_libs/_site_initialize_0.so'>
|
| 116 |
+
[2023-05-13 17:05:41] DEBUG - jax._src.path - etils.epath found. Using etils.epath for file I/O.
|
| 117 |
+
[2023-05-13 17:05:42] INFO - numexpr.utils - NumExpr defaulting to 2 threads.
|
| 118 |
+
[2023-05-13 17:05:49] INFO - super_gradients.training.utils.sg_trainer_utils - TRAINING PARAMETERS:
|
| 119 |
+
- Mode: Single GPU
|
| 120 |
+
- Number of GPUs: 1 (1 available on the machine)
|
| 121 |
+
- Dataset size: 6086 (len(train_set))
|
| 122 |
+
- Batch size per GPU: 16 (batch_size)
|
| 123 |
+
- Batch Accumulate: 1 (batch_accumulate)
|
| 124 |
+
- Total batch size: 16 (num_gpus * batch_size)
|
| 125 |
+
- Effective Batch size: 16 (num_gpus * batch_size * batch_accumulate)
|
| 126 |
+
- Iterations per epoch: 380 (len(train_loader))
|
| 127 |
+
- Gradient updates per epoch: 380 (len(train_loader) / batch_accumulate)
|
| 128 |
+
|
| 129 |
+
[2023-05-13 17:13:26] INFO - super_gradients.training.sg_trainer.sg_trainer -
|
| 130 |
+
[MODEL TRAINING EXECUTION HAS BEEN INTERRUPTED]... Please wait until SOFT-TERMINATION process finishes and saves all of the Model Checkpoints and log files before terminating...
|
| 131 |
+
[2023-05-13 17:13:26] INFO - super_gradients.training.sg_trainer.sg_trainer - For HARD Termination - Stop the process again
|
| 132 |
+
[2023-05-13 17:13:26] INFO - super_gradients.common.sg_loggers.base_sg_logger - [CLEANUP] - Successfully stopped system monitoring process
|
| 133 |
+
[2023-05-13 17:13:27] DEBUG - hydra.core.utils - Setting JobRuntime:name=app
|
| 134 |
+
[2023-05-13 17:13:57] INFO - super_gradients.training.sg_trainer.sg_trainer - Using EMA with params {'decay': 0.9, 'decay_type': 'threshold'}
|
| 135 |
+
[2023-05-13 17:13:58] DEBUG - super_gradients.training.utils.sg_trainer_utils - "events.out.tfevents.1683998007.cf6772931124.3382.1" will not be deleted
|
| 136 |
+
[2023-05-13 17:13:58] DEBUG - super_gradients.training.utils.sg_trainer_utils - "events.out.tfevents.1683997543.cf6772931124.3382.0" will not be deleted
|
my_first_yolonas_run/logs_May13_17_13_58.txt
ADDED
|
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