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EEG Model Generalization Evaluation

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placeAE home_workRemoto assignmentContrato publicVaga agregada · AE

eventPublicada em 16 de set. de 2026 · verifiedVerificamos em 16 de set. de 2026 que ainda está no ar

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US$ 10 – US$ 30 por projeto

Sobre a vaga

I have a seizure-detection model that already performs well on its original training set. I now need to see how well it generalises to a second, completely separate EEG collection provided in EDF format. Your task is to plug this new EDF dataset into the existing Python codebase without altering the architecture, hyper-parameters, or training logic. If the raw files require extra steps—channel mapping, resampling, re-referencing, or similar—you may add or tweak preprocessing so the data flows cleanly into the current pipeline, but the model itself must stay untouched. Once the pipeline runs end-to-end on the new data, compute the ROC-AUC and return: • the updated preprocessing script or notebook • a concise report (tables, plots, brief commentary) summarising ROC-AUC and any observations about distributional shift or failure cases I will supply the repository, a quick start guide, and a sample of the EDF files. Familiarity with MNE-Python, NumPy/Pandas, and scikit-learn will make the job straightforward. If questions come up about electrode naming or file structure, let me know early so we can resolve them quickly.

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