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Datasets Support

Sylvain Chevallier edited this page Jan 28, 2022 · 40 revisions

The main object of this page is to maintain a list of datasets available in MOABB and those to add.

To add a dataset in MOABB:

  1. Indicate in this issue the dataset that you want to include,
  2. We validate the dataset (verifying the license, the type of data, etc) and add it to this section.
  3. Open a PR to add the dataset to MOABB!

Supported datasets

TODO: add number of trial per class

Motor Imagery

Name Link Paper #Subj #Chan #Classes #Trials / class Trials length Sampling rate #Sessions Size License Remarks
Alex MI Zenodo PhD 8 16 3 (rh, feet, rest) 20 3s 512Hz 1 133M ?
BNCI2014001 BNCI Frontiers 10 22 4 (rh,lh,feet,tongue) 144 4s 250Hz 2 744 M ?
BNCI2014002 BNCI BME 15 15 2 (rh, feet) 80 5s 512Hz 1 848M ?
BNCI2014004 BNCI TNSRE 10 3 2 (lh, rh) 360 4.5s 250Hz 5 456M ?
BNCI2015001 BNCI TNSRE 13 13 2 (rh, feet) 200 5s 512Hz 2 1.8G ?
BNCI2015004 BNCI PLoS 10 30 5 (rh, feet, navigation, subtraction, word_ass) 80 7s 256Hz 2 1.7G ?
Cho2017 GigaDb GigaScience 53 64 2 (lh, rh) 100 3s 512Hz 1 9.4G ?
Lee2019_MI GigaDB GigaScience 55 62 2 (lh, rh) 100 4s 1000Hz 2 61G ?
MunichMI Zenodo TBME 10 128 2 (lh, rh) 150 7s 500Hz 1 7.3G ?
Ofner2017 Zenodo PLoS 15 61 7 (see below) 60 3s 512Hz 1 13G ? Imagined or executed movements
PhysionetMI Physionet TBME 109 64 4 (lh, rh, feet, hands, rest) 23 3s 160Hz 1 5.5G ? Imagined or executed movements
Schirrmeister2017 Gin HBM 14 128 4 (lh, rh, feet, rest) 120 4s 500Hz 1 23G ?
Shin2017A web TNSRE 29 30 2 (lh, rh) 30 10s 200Hz 3 5.9G ? includes fNIRS recording
Shin2017B web TNSRE 29 30 2 (substraction, rest) 30 10s 200Hz 3 5.9G ? mental arithmetics, includes fNIRS recording
Weibo2014 web PLoS 10 60 7 (lh, rh, hands, feet, left_hand_right_foot, right_hand_left_foot, rest) 80 4s 200Hz 1 4.1G ?
Zhou2016 Figshare PLoS 4 14 3 (lh, rh, feet) 160 5 250Hz 3 177M ?

For Ofner2017, classes are : "right_elbow_flexion", "right_elbow_extension", "right_supination", "right_pronation", "right_hand_close", "right_hand_open", "rest"

P300

Name Link Paper #Subj #Chan #Trials / class Trials length Sampling rate #Sessions Size License Remarks
BNCI2014008 BNCI Frontiers 8 8 3500 NT / 700 T 1s 256Hz 1 165M ?
BNCI2014009 BNCI JNE 10 16 1440 NT / 288 T 0.8s 256Hz 3 177M ?
BNCI2015003 BNCI NL 10 8 1500 NT / 300 T 0.8s 256Hz 1 53M ?
DemonsP300 gin arXiv 60 8 935 NT / 50 T 1s 500Hz 1 812M ?
EPFLP300 web JNM 8 32 2753 NT / 551 T 1s 2048Hz 4 4.3G ?
Lee2019_ERP ftp GigaScience 54 62 6900 NT / 1380 T 1s 1000Hz 2 86G ?
bi2013a zenodo HAL 24 16 3200 NT / 640 T 1s 512Hz 1 7.2G ?

SSVEP

Name Link Paper #Subj #Chan #Classes #Trials / class Trials length Sampling rate #Sessions Size License Remarks
Lee2019_SSVEP ftp GigaScience 24 16 4 (5.45, 6.67, 8.57, 12Hz) 25 1s 1000Hz 1 60G ?
MAMEM1 figshare arXiv 10 256 5 (6.66, 7.5, 8.57, 10, 12Hz) 12-15 3s 250Hz 1 5.5G ?
MAMEM2 figshare arXiv 10 256 5 (6.66, 7.5, 8.57, 10, 12Hz) 20-30 3s 250Hz 1 4.9G ?
MAMEM3 figshare arXiv 10 14 4 (6.66, 8.57, 10, 12Hz) 20-30 3s 128Hz 1 144M ?
Nakanishi2015 GH PLoS 9 8 12 (9.25, 9.75, 10.25, ..., 14.75Hz) 15 4.15s 256Hz 1 132M ?
SSVEPExo zenodo Neurocomputing 12 8 4 (13, 17, 21Hz, rest) 16 2s 256Hz 1 83M ?
Wang2016 ftp TNSRE 32 62 40 (8, 8.2, ..., 15.8Hz) 6 5s 250Hz 1 6.8G ?

Datasets to include

To complete

SSVEP

Name of the Dataset Description Link to Dataset Direct Download Link to Paper Type of Paradigm Number of Subjects Number of Electrodes Size of the Dataset License
Single-flicker online SSVEP BCI datset 4-class SSVEP Link Yes Link SSVEP 12 32 5.8Gb Creative Common

Single stimulus location for two inputs: A combined SSVEP-based brain-computer interface - Data Link

ERP

Name of the Dataset Description Link to Dataset Direct Download Link to Paper Type of Paradigm Number of Subjects Number of Electrodes Size of the Dataset License
RSA EEG 72 different class of images presented for RSA with EEG Link Yes Link Event Related Potential 10 128 3Gb Creative Common
David Hubner's ERP dataset Data from the ERP data for the paper "Learning from Label Proportions in Brain-Computer Interfaces". This method won the Graz BCI 2017 best paper award.. Link Yes Link Event Related Potential 13 31 3 Gb in total Creative Common
Medicon 2019 "The dataset includes data from 15 participants, with 7 sessions each. It represents the complete EEG recordings of a feasibility clinical trial (clinical-trial ID: NCT02445625 — clinicaltrials.gov) that tested a P300-based Brain Computer Interface to train youngsters with Autism Spectrum Disorder to follow social cues (Amaral et. al, 2017; Amaral et al., 2018). A further description of the experimental setup and design can be found here - The competition dataset is divided into two parts: train and test sets. The train set is available with labels (the target object – out of the 8 different possibilities – for each block) for the contest participants to train their models. The test set is available without labels. The challenge is to predict the labels for each block of the test set. Within each session, the train set consists of 20 blocks and the test set consists of 50 blocks." Link Yes NA Event Related Potential 15 8 NA Not Available

Dataset of an EEG-based BCI experiment in Virtual Reality and on a Personal Computer

BEnchmark database Towards BCI Application BETA Dataset , Paper

Affective BCI

Name of the Dataset Description Link to Dataset Direct Download Link to Paper Type of Paradigm Number of Subjects Number of Electrodes Size of the Dataset License
SEED "A dataset collection for various purposes using EEG signals.SJTU Emotion EEG Dataset(SEED)" Link No NA Affective BCI 15 64 >10 Gb Not Available

Motor Imagery

Motor Imagery Under Distraction - Paper Link

Miscellaneous

Rapid Serial Visual Presentation (RSVP) - Paper Link

Other Places to Look for Datasets

Openlists for ElectrophysiologyData - Link

Another List of EEG datasets - Link

Instructions to add Datasets

Take a look at the datasets folder for an example in the paradigm you seek to add a dataset in. Have a look at the tutorial.

Other files to be edited -

  1. docs/source/dataset.rst
  2. moabb/datasets/init.py
  3. (if needed) requirements.txt
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