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Brain Computer Interface

A Brain-Computer Interface (BCI), also known as a Brain-Machine Interface (BMI), is a technology that enables direct communication between the brain and an external device, such as a computer or a machine, without the need for any muscular or peripheral nerve activity. Essentially, BCIs establish a direct pathway between the brain and an external device, allowing for bidirectional communication.

BCIs typically work by detecting and interpreting brain signals, which are then translated into commands that control external devices or provide feedback to the user. These brain signals can be detected through various methods, including electroencephalography (EEG), which measures electrical activity in the brain through electrodes placed on the scalp, or invasive techniques such as implanted electrodes.

Papers

Showing 176200 of 466 papers

TitleStatusHype
Bandit Algorithms boost Brain Computer Interfaces for motor-task selection of a brain-controlled button0
Brain Computer Interface Technology for Future Battlefield0
EEG Decoding for Datasets with Heterogenous Electrode Configurations using Transfer Learning Graph Neural Networks0
Brain-Computer Interface with Corrupted EEG Data: A Tensor Completion Approach0
EEGDnet: Fusing Non-Local and Local Self-Similarity for 1-D EEG Signal Denoising with 2-D Transformer0
Deep learning-based classification of fine hand movements from low frequency EEG0
EEG-GMACN: Interpretable EEG Graph Mutual Attention Convolutional Network0
Deep Learning Architecture for Motor Imaged Words0
Autoregressive models for biomedical signal processing0
A Multi-Context Character Prediction Model for a Brain-Computer Interface0
EEG-NeXt: A Modernized ConvNet for The Classification of Cognitive Activity from EEG0
EEG Opto-processor: epileptic seizure detection using diffractive photonic computing units0
EEG Right & Left Voluntary Hand Movement-based Virtual Brain-Computer Interfacing Keyboard Using Hybrid Deep Learning Approach0
Deep learning approaches for neural decoding: from CNNs to LSTMs and spikes to fMRI0
Effects of Stimulus Type and of Error-Correcting Code Design on BCI Speller Performance0
Electroencephalography signal processing based on textural features for monitoring the driver's state by a Brain-Computer Interface0
A neuro-inspired system for online learning and recognition of parallel spike trains, based on spike latency and heterosynaptic STDP0
Emotion-Agent: Unsupervised Deep Reinforcement Learning with Distribution-Prototype Reward for Continuous Emotional EEG Analysis0
EmoWrite: A Sentiment Analysis-Based Thought to Text Conversion -- A Validation Study0
End-to-end translation of human neural activity to speech with a dual-dual generative adversarial network0
Enhanced Generative Adversarial Networks for Unseen Word Generation from EEG Signals0
Enhanced motor imagery-based EEG classification using a discriminative graph Fourier subspace0
Enhancing EEG Signal Generation through a Hybrid Approach Integrating Reinforcement Learning and Diffusion Models0
Ensemble Classifier for Eye State Classification using EEG Signals0
Deep Feature Mining via Attention-based BiLSTM-GCN for Human Motor Imagery Recognition0
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