CoolFace
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emiliaviq/efficientvit-ena24-Original

sourceHugging Faceapache-2.0updated 1y agoView on Hugging Face
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Model Card

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efficientvit-ena24-Original

This model is a fine-tuned version of timm/efficientvit_b0.r224_in1k on the Pamreth/ena24 dataset. It achieves the following results on the evaluation set:

  • Loss: 0.0992
  • Accuracy: 0.9786
  • F1: 0.9755
  • Acc American black bear: 0.9850
  • Acc American crow: 0.9853
  • Acc Bird: 0.9667
  • Acc Bobcat: 0.9792
  • Acc Chicken: 0.9744
  • Acc Coyote: 0.98
  • Acc Dog: 0.9905
  • Acc Domestic cat: 1.0
  • Acc Eastern chipmunk: 1.0
  • Acc Eastern cottontail: 0.8889
  • Acc Eastern fox squirrel: 1.0
  • Acc Eastern gray squirrel: 0.9778
  • Acc Grey fox: 0.9524
  • Acc Horse: 0.875
  • Acc Northern raccoon: 0.9535
  • Acc Red fox: 0.9344
  • Acc Striped skunk: 0.9545
  • Acc Vehicle: 1.0
  • Acc Virginia opossum: 1.0
  • Acc White Tailed Deer: 1.0
  • Acc Wild turkey: 1.0
  • Acc Woodchuck: 1.0
  • F1 American black bear: 0.9813
  • F1 American crow: 0.9745
  • F1 Bird: 0.9831
  • F1 Bobcat: 0.9691
  • F1 Chicken: 0.9870
  • F1 Coyote: 0.98
  • F1 Dog: 0.9952
  • F1 Domestic cat: 0.9863
  • F1 Eastern chipmunk: 0.9892
  • F1 Eastern cottontail: 0.9091
  • F1 Eastern fox squirrel: 0.9903
  • F1 Eastern gray squirrel: 0.9670
  • F1 Grey fox: 0.9677
  • F1 Horse: 0.9333
  • F1 Northern raccoon: 0.9535
  • F1 Red fox: 0.9580
  • F1 Striped skunk: 0.9655
  • F1 Vehicle: 1.0
  • F1 Virginia opossum: 1.0
  • F1 White Tailed Deer: 0.9714
  • F1 Wild turkey: 1.0
  • F1 Woodchuck: 1.0

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: 0.0002
  • trainbatchsize: 8
  • evalbatchsize: 8
  • seed: 42
  • optimizer: Use OptimizerNames.ADAMWTORCH with betas=(0.9,0.999) and epsilon=1e-08 and optimizerargs=No additional optimizer arguments
  • lrschedulertype: linear
  • num_epochs: 7
  • mixedprecisiontraining: Native AMP

Training results

Training LossEpochStepValidation LossAccuracyF1Acc American black bearAcc American crowAcc BirdAcc BobcatAcc ChickenAcc CoyoteAcc DogAcc Domestic catAcc Eastern chipmunkAcc Eastern cottontailAcc Eastern fox squirrelAcc Eastern gray squirrelAcc Grey foxAcc HorseAcc Northern raccoonAcc Red foxAcc Striped skunkAcc VehicleAcc Virginia opossumAcc White Tailed DeerAcc Wild turkeyAcc WoodchuckF1 American black bearF1 American crowF1 BirdF1 BobcatF1 ChickenF1 CoyoteF1 DogF1 Domestic catF1 Eastern chipmunkF1 Eastern cottontailF1 Eastern fox squirrelF1 Eastern gray squirrelF1 Grey foxF1 HorseF1 Northern raccoonF1 Red foxF1 Striped skunkF1 VehicleF1 Virginia opossumF1 White Tailed DeerF1 Wild turkeyF1 Woodchuck
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0.94850.26042001.38690.61910.56120.93230.86030.73330.250.48720.980.55240.54170.93480.22220.80390.75560.61900.1250.34880.21310.31820.550.81480.47060.41860.03330.61080.82690.67690.36360.63870.43950.66290.47560.96630.31750.66130.86080.54930.22220.48390.32100.39440.70970.89340.63160.58060.0606
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0.00725.989646000.10500.97630.97360.98500.98530.96670.97920.98720.961.00.97221.00.86671.00.97780.96830.8750.95350.91800.97731.01.00.96081.01.00.98500.97100.98310.96910.98090.96970.99060.97220.98920.89660.99030.96700.96060.93330.96470.95730.97731.01.00.96081.01.0
0.00016.119847000.11320.97860.97630.98500.94850.96670.97920.97440.960.99051.01.00.97781.00.97780.98410.8750.95350.93440.95451.01.01.01.01.00.98130.96630.98310.95920.98700.96970.99520.98630.98920.90720.99030.96700.98410.93330.97620.96610.96551.01.00.97141.01.0
0.00016.2548000.11290.97790.97520.98500.96320.96670.97920.97440.960.99051.01.00.91111.00.97780.98410.8750.95350.93440.95451.01.01.01.01.00.98500.96320.98310.940.98700.96970.99520.98630.98920.89131.00.96700.98410.93330.97620.96610.96551.01.00.97141.01.0
0.00016.380249000.11150.97940.97690.98500.96320.96670.97920.97440.980.99051.01.00.95561.00.97780.96830.8750.95350.93440.95451.01.01.01.01.00.98130.97040.98310.96910.98700.980.99520.98630.98920.91490.99030.96700.9760.93330.96470.96610.96551.01.00.97141.01.0
0.01356.510450000.10940.97790.97540.98500.97790.96670.97920.97440.960.99051.01.00.86671.00.97780.96830.8750.95350.93440.97731.01.01.01.01.00.98130.96380.98310.96910.98700.96970.99520.98630.98920.88641.00.96700.96830.93330.96470.96610.97731.01.00.97141.01.0
0.00016.640651000.11100.97940.97700.98500.97790.96670.97920.97440.980.99051.01.00.88891.00.97780.96830.8750.95350.93440.97731.01.01.01.01.00.98130.96730.98310.97920.98700.980.99520.98630.98920.89890.99030.96700.9760.93330.96470.96610.97731.01.00.97141.01.0
0.00036.770852000.11180.97860.97600.98500.97790.96670.97920.97440.980.99051.01.00.88891.00.97780.96830.8750.95350.93440.95451.01.01.01.01.00.98130.96730.98310.96910.98700.980.99520.98630.98920.89890.99030.96700.9760.93330.96470.96610.96551.01.00.97141.01.0
0.01046.901053000.10880.98090.97850.98500.97790.96670.97920.97440.980.99051.01.00.91111.00.97780.98410.8750.95350.95080.95451.01.01.01.01.00.98130.97080.98310.96910.98700.980.99520.98630.98920.91110.99030.97780.98410.93330.97620.97480.96551.01.00.97141.01.0

Framework versions

  • Transformers 4.52.2
  • Pytorch 2.6.0+cu124
  • Datasets 3.6.0
  • Tokenizers 0.21.1