SOTAVerified

Electroencephalogram (EEG)

Electroencephalogram (EEG) is a method of recording brain activity using electrophysiological indexes. When the brain is active, a large number of postsynaptic potentials generated synchronously by neurons are formed after summation. It records the changes of electric waves during brain activity and is the overall reflection of the electrophysiological activities of brain nerve cells on the surface of cerebral cortex or scalp. Brain waves originate from the postsynaptic potential of the apical dendrites of pyramidal cells. The formation of synchronous rhythm of EEG is also related to the activity of nonspecific projection system of cortex and thalamus. EEG is the basic theoretical research of brain science. EEG monitoring is widely used in its clinical application.

Papers

Showing 150 of 1655 papers

TitleStatusHype
NeuroXAI: Adaptive, robust, explainable surrogate framework for determination of channel importance in EEG applicationCode1
AFPM: Alignment-based Frame Patch Modeling for Cross-Dataset EEG Decoding0
EEG Foundation Challenge: From Cross-Task to Cross-Subject EEG Decoding0
Brain2Vec: A Deep Learning Framework for EEG-Based Stress Detection Using CNN-LSTM-Attention0
Dataset combining EEG, eye-tracking, and high-speed video for ocular activity analysis across BCI paradigmsCode0
Channel-Imposed Fusion: A Simple yet Effective Method for Medical Time Series Classification0
Advancing Brainwave Modeling with a Codebook-Based Foundation Model0
EEG-Based Inter-Patient Epileptic Seizure Detection Combining Domain Adversarial Training with CNN-BiLSTM Network0
Robust Emotion Recognition via Bi-Level Self-Supervised Continual Learning0
Pretraining Large Brain Language Model for Active BCI: Silent Speech0
The use of Multi-domain Electroencephalogram Representations in the building of Models based on Convolutional and Recurrent Neural Networks for Epilepsy DetectionCode0
A Simple Review of EEG Foundation Models: Datasets, Advancements and Future Perspectives0
A Statistical Approach for Synthetic EEG Data GenerationCode0
Siamese Network with Dual Attention for EEG-Driven Social Learning: Bridging the Human-Robot Gap in Long-Tail Autonomous Driving0
Artifact detection and localization in single-channel mobile EEG for sleep research using deep learning and attention mechanisms0
Classification of ADHD and Healthy Children Using EEG Based Multi-Band Spatial Features Enhancement0
Optimized Feature Selection and Neural Network-Based Classification of Motor Imagery Using EEG Signals0
Decoding Covert Speech from EEG Using a Functional Areas Spatio-Temporal TransformerCode1
Chirp Localization via Fine-Tuned Transformer Model: A Proof-of-Concept Study0
EEG-CLIP : Learning EEG representations from natural language descriptionsCode1
Spatial Distillation based Distribution Alignment (SDDA) for Cross-Headset EEG ClassificationCode1
Insights into Schizophrenia: Leveraging Machine Learning for Early Identification via EEG, ERP, and Demographic Attributes0
Cross-Subject Depression Level Classification Using EEG Signals with a Sample Confidence Method0
Toward Scalable Access to Neurodevelopmental Screening: Insights, Implementation, and Challenges0
Music Therapy based Stress Prediction using Homological Feature Analysis on EEG Signals0
EEGM2: An Efficient Mamba-2-Based Self-Supervised Framework for Long-Sequence EEG Modeling0
M2LADS Demo: A System for Generating Multimodal Learning Analytics Dashboards0
Toward Foundational Model for Sleep Analysis Using a Multimodal Hybrid Self-Supervised Learning FrameworkCode1
Revisiting Euclidean Alignment for Transfer Learning in EEG-Based Brain-Computer Interfaces0
The Case for Cleaner Biosignals: High-fidelity Neural Compressor Enables Transfer from Cleaner iEEG to Noisier EEGCode1
Transfer Learning for Covert Speech Classification Using EEG Hilbert Envelope and Temporal Fine Structure0
Decoding Human Attentive States from Spatial-temporal EEG Patches Using TransformersCode1
LEAD: Large Foundation Model for EEG-Based Alzheimer's Disease DetectionCode2
SSRepL-ADHD: Adaptive Complex Representation Learning Framework for ADHD Detection from Visual Attention Tasks0
Milmer: a Framework for Multiple Instance Learning based Multimodal Emotion RecognitionCode1
Machine Learning Fairness for Depression Detection using EEG Data0
Cueless EEG imagined speech for subject identification: dataset and benchmarksCode0
On the challenges of detecting MCI using EEG in the wildCode0
On Creating A Brain-To-Text Decoder0
AADNet: Exploring EEG Spatiotemporal Information for Fast and Accurate Orientation and Timbre Detection of Auditory Attention Based on A Cue-Masked Paradigm0
Neural-MCRL: Neural Multimodal Contrastive Representation Learning for EEG-based Visual DecodingCode1
LG-Sleep: Local and Global Temporal Dependencies for Mice Sleep Scoring0
CwA-T: A Channelwise AutoEncoder with Transformer for EEG Abnormality DetectionCode1
Canine EEG Helps Human: Cross-Species and Cross-Modality Epileptic Seizure Detection via Multi-Space Alignment0
SCFNet:A Transferable IIIC EEG Classification Network0
A3E: Aligned and Augmented Adversarial Ensemble for Accurate, Robust and Privacy-Preserving EEG Decoding0
EEG-GMACN: Interpretable EEG Graph Mutual Attention Convolutional Network0
CognitionCapturer: Decoding Visual Stimuli From Human EEG Signal With Multimodal InformationCode1
Adversarial Filtering Based Evasion and Backdoor Attacks to EEG-Based Brain-Computer InterfacesCode0
T-TIME: Test-Time Information Maximization Ensemble for Plug-and-Play BCIsCode1
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1BiHDMAccuracy74.35Unverified
2DGCNNAccuracy69.88Unverified
3DBNAccuracy66.77Unverified
#ModelMetricClaimedVerifiedStatus
1MultitaskSSVEPAccuracy (5-fold)92.2Unverified
#ModelMetricClaimedVerifiedStatus
1DBNAccuracy86.08Unverified