How to use from the
Use from the
Transformers library
# Use a pipeline as a high-level helper
from transformers import pipeline

pipe = pipeline("image-classification", model="djbp/swin-base-patch4-window7-224-MM_Classification_base")
pipe("https://huggingface.co/datasets/huggingface/documentation-images/resolve/main/hub/parrots.png")
# Load model directly
from transformers import AutoImageProcessor, AutoModelForImageClassification

processor = AutoImageProcessor.from_pretrained("djbp/swin-base-patch4-window7-224-MM_Classification_base")
model = AutoModelForImageClassification.from_pretrained("djbp/swin-base-patch4-window7-224-MM_Classification_base")
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swin-base-patch4-window7-224-MM_Classification_base

This model is a fine-tuned version of microsoft/swin-base-patch4-window7-224 on the imagefolder dataset. It achieves the following results on the evaluation set:

  • Loss: 0.2998
  • Accuracy: 0.8771

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: 5e-05
  • train_batch_size: 128
  • eval_batch_size: 128
  • seed: 42
  • gradient_accumulation_steps: 4
  • total_train_batch_size: 512
  • optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
  • lr_scheduler_type: linear
  • lr_scheduler_warmup_ratio: 0.1
  • num_epochs: 10

Training results

Training Loss Epoch Step Validation Loss Accuracy
0.887 1.0 19 0.4012 0.8566
0.4302 2.0 38 0.3361 0.8656
0.3477 3.0 57 0.3272 0.8656
0.3281 4.0 76 0.3129 0.8694
0.308 5.0 95 0.2984 0.8732
0.2821 6.0 114 0.3010 0.8694
0.2763 7.0 133 0.2998 0.8771
0.2607 8.0 152 0.2938 0.8720
0.2502 9.0 171 0.2990 0.8732
0.2337 10.0 190 0.2978 0.8758

Framework versions

  • Transformers 4.43.3
  • Pytorch 1.13.1+cu117
  • Datasets 2.20.0
  • Tokenizers 0.19.1
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