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vesuvius-grand-prize-submission

Vesuvius challenge grand prize submission

About

We approached the ink detection task as a 3D-to-2D binary semantic segmentation problem using surface volumes from scroll 1 (PHerc Paris 3). We followed a human-assisted pseudo-label-based self-training approach using the crackle signal as a surrogate to the ink signal.

For a summary of the methods used, please see docs/methods.md.

Getting started

For instructions on how to train and run inference, please see docs/submission_reproduction_instructions.md.

A pretrained checkpoint is available here (associated with val_3336_C3.yaml).

Authors

Louis Schlessinger, Arefeh Sherafati

License

MIT

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Vesuvius challenge grand prize submission (runner-up)

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  • Python 96.2%
  • Jupyter Notebook 1.6%
  • Shell 1.5%
  • Other 0.7%