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metadata
license: mit
datasets:
  - blanchon/EuroSAT_RGB
metrics:
  - accuracy type:accuracy value:.88
library_name: transformers
language:
  - en
pipeline_tag: image-classification

Training Details

Training Data

This model was trained on the Eurosat dataset containing Sentinel-2 satellite images available at blanchon/EuroSAT_RGB

The Eurosat dataset consists of ten classes and the a total of 27,000 images with a training set size of 16,200 images

  • Annual Crop
  • Forest
  • Herbaceous Vegetation
  • Highway
  • Industrial Buildings
  • Pasture
  • Permanent Crop
  • Residential Buildings
  • River
  • SeaLake

Training Procedure

  • Batch size: 24
  • Optimizer: AdanW
  • Learning Rate: 1e-4
  • Criterion: CrossEntropyLoss
  • Number of Epochs: 120

Training Hyperparameters

  • Training regime: [More Information Needed]

Evaluation

Testing Data, Factors & Metrics

Testing Data

  • 5400 images

Metrics

Model Accuracy: 88% model Recall: 88%

[More Information Needed]

Results

CMatrix

Summary