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nm000129
Liu2020 – BETA SSVEP benchmark dataset
nemar
https://openneuro.org/datasets/nm000129
Non-commercial research use
{ "library": "eegdash", "class": "EEGDashDataset", "kwargs": { "dataset": "nm000129" } }
https://huggingface.co/spaces/EEGDash/catalog
huggingface-space/scripts/push_metadata_stubs.py

Liu2020 – BETA SSVEP benchmark dataset

Dataset ID: nm000129

Liu2020

Canonical aliases: BetaSSVEP · BETA_SSVEP · BETA

At a glance: EEG · Visual perception · healthy · 70 subjects · 70 recordings · Non-commercial research use

Load this dataset

This repo is a pointer. The raw EEG data lives at its canonical source (OpenNeuro / NEMAR); EEGDash streams it on demand and returns a PyTorch / braindecode dataset.

# pip install eegdash
from eegdash import EEGDashDataset

ds = EEGDashDataset(dataset="nm000129", cache_dir="./cache")
print(len(ds), "recordings")

You can also load it by canonical alias — these are registered classes in eegdash.dataset:

from eegdash.dataset import BetaSSVEP
ds = BetaSSVEP(cache_dir="./cache")

If the dataset has been mirrored to the HF Hub in braindecode's Zarr layout, you can also pull it directly:

from braindecode.datasets import BaseConcatDataset
ds = BaseConcatDataset.pull_from_hub("EEGDash/nm000129")

Dataset metadata

Subjects 70
Recordings 70
Tasks (count) 1
Channels 64 (×70)
Sampling rate (Hz) 250 (×70)
Total duration (h) 13.0
Size on disk 2.8 GB
Recording type EEG
Experimental modality Visual
Paradigm type Perception
Population Healthy
Source nemar
License Non-commercial research use

Links


Auto-generated from dataset_summary.csv and the EEGDash API. Do not edit this file by hand — update the upstream source and re-run scripts/push_metadata_stubs.py.

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