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Paper Citation Record · LEDGER

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field

As of 18 August 2026, this Paper Citation Record lists 100 of 219 outbound references and 0 inbound Pith citation observations for arXiv:2501.11566.

A citation records a reference. It does not transfer a finding from one paper to another.

pith.paper-citation-record.v1
2501.11566 v4

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measured 100 of 219 reference resolution

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100 of 219 outbound references displayed

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Outbound references

Observation bdc432d6-2adc-4893-a9fa-33ded42ee122 · outbound

This paper cites Deep Learning.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Deep Learning

Reference 1

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Observation 4bff6869-3434-4564-9bbe-51629f1528db · outbound

This paper cites A deep learning framework for neuroscience.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field A deep learning framework for neuroscience

Reference 2

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This paper cites Toward Next-Generation Artificial Intelligence: Catalyzing the NeuroAI Revolution.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Toward Next-Generation Artificial Intelligence: Catalyzing the NeuroAI Revolution

Reference 3

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This paper cites A systematic comparison of deep learning methods for eeg time series analysis.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field A systematic comparison of deep learning methods for eeg time series analysis

Reference 4

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This paper cites Deep learning-based electroencephalography analysis: a systematic review.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Deep learning-based electroencephalography analysis: a systematic review

Reference 5

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This paper cites Magnetoencephalography: basic principles.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Magnetoencephalography: basic principles

Reference 6

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This paper cites Meg and eeg sensitivity in a case of medial occipital epilepsy.Brain topography, 27:192–196, 2014.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Meg and eeg sensitivity in a case of medial occipital epilepsy.Brain topography, 27:192–196, 2014

Reference 7

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This paper cites Electromagnetic brain mapping.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Electromagnetic brain mapping

Reference 8

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Observation 6c47a003-767c-4c00-b674-05c51f4a23fe · outbound

This paper cites The relationship between meg and fmri.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field The relationship between meg and fmri

Reference 9

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This paper cites Recent develop- ments in spatio-temporal eeg source reconstruction techniques.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Recent develop- ments in spatio-temporal eeg source reconstruction techniques

Reference 10

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Eeg and meg: relevance to neuroscience

Reference 11

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This paper cites Magnetoencephalography for brain electrophysiology and imaging.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Magnetoencephalography for brain electrophysiology and imaging

Reference 12

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This paper cites Independent component analysis: Algorithms and applications.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Independent component analysis: Algorithms and applications

Reference 13

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Unresolved cited work

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Rhythms of the brain

Reference 15

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This paper cites Über das elektrenkephalogramm des menschen.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Über das elektrenkephalogramm des menschen

Reference 16

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This paper cites Peng, Shlomo Havlin, H.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Peng, Shlomo Havlin, H

Reference 17

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Eeg analysis based on time domain properties

Reference 18

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This paper cites Long-term storage capacity of reservoirs.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Long-term storage capacity of reservoirs

Reference 19

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Unresolved cited work

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Richman and J

Reference 21

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Permutation entropy: A natural complexity measure for time series

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Unresolved cited work

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Unresolved cited work

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field A mechanism for cognitive dynamics: Neuronal communication through neuronal coherence

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Unresolved cited work

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Stam, Guido Nolte, and Andreas Daffertshofer

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Ilmoniemi, Jukka Knuutila, and Olli V

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Classical statistics and statistical learning in imaging neuroscience

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field A unified bayesian framework for meg/eeg source imaging

Reference 31

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field When null hypothesis significance testing is unsuitable for research: a reassessment

Reference 32

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Unresolved cited work

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field The perceptron: A probabilistic model for information storage and organization in the brain

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field The Elements of Statistical Learning: Data Mining, Inference, and Prediction

Reference 35

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Unresolved cited work

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Dropout: A simple way to prevent neural networks from overfitting

Reference 37

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Batch normalization: Accelerating deep network training by reducing internal covariate shift

Reference 38

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Khoshgoftaar

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This paper cites A stochastic approximation method.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field A stochastic approximation method

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This paper cites Rumelhart, Geoffrey E.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Rumelhart, Geoffrey E

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This paper cites Gradient-based learning applied to document recognition.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Gradient-based learning applied to document recognition

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This paper cites Long short-term memory.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Long short-term memory

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This paper cites Gomez, Łukasz Kaiser, and Illia Polosukhin.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Gomez, Łukasz Kaiser, and Illia Polosukhin

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This paper cites Recent advances at the interface of neuroscience and artificial neural networks.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Recent advances at the interface of neuroscience and artificial neural networks

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This paper cites The roles of supervised machine learning in systems neuroscience.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field The roles of supervised machine learning in systems neuroscience

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This paper cites Machine learning for neural decoding.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Machine learning for neural decoding

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This paper cites Introduction to machine learning for brain imaging.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Introduction to machine learning for brain imaging

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This paper cites Encoding physiological signals as images for affective state recognition using convolutional neural networks.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Encoding physiological signals as images for affective state recognition using convolutional neural networks

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This paper cites Towards decoding speech production from single-trial magnetoencephalography (meg) signals.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Towards decoding speech production from single-trial magnetoencephalography (meg) signals

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This paper cites Artificial neural network detects human uncertainty.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Artificial neural network detects human uncertainty

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This paper cites Diagnostics of the brain neural-ensemble states using meg records and artificial neural-network concepts.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Diagnostics of the brain neural-ensemble states using meg records and artificial neural-network concepts

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Decoding speech from single trial meg signals using convolutional neural networks and transfer learning

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This paper cites Classification and analysis of minimally-processed data from a large magnetoencephalography dataset using convolutional neural networks.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Classification and analysis of minimally-processed data from a large magnetoencephalography dataset using convolutional neural networks

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This paper cites Canet: A channel attention network to determine informative multi-channel for image classification from brain signals.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Canet: A channel attention network to determine informative multi-channel for image classification from brain signals

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This paper cites Machine learning for meg during speech tasks.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Machine learning for meg during speech tasks

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Towards a speaker independent speech-bci using speaker adaptation

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This paper cites Cross-subject meg decoding using 3d convolutional neural networks.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Cross-subject meg decoding using 3d convolutional neural networks

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This paper cites Deep brain state classification of MEG data.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Deep brain state classification of MEG data

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Role of brainwaves in neural speech decoding

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This paper cites Neural speech decoding for amyotrophic lateral sclerosis.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Neural speech decoding for amyotrophic lateral sclerosis

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This paper cites Inter-subject meg decoding for visual information with hybrid gated recurrent network.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Inter-subject meg decoding for visual information with hybrid gated recurrent network

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field A new recognition method for the auditory evoked magnetic fields

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This paper cites Decoding neural representations of rhythmic sounds from magnetoen- cephalography.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Decoding neural representations of rhythmic sounds from magnetoen- cephalography

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This paper cites Comparing methods of feature extraction of brain activities for octave illusion classification using machine learning.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Comparing methods of feature extraction of brain activities for octave illusion classification using machine learning

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This paper cites A reusable benchmark of brain-age prediction from m/eeg resting-state signals.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field A reusable benchmark of brain-age prediction from m/eeg resting-state signals

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Observation 20f44a8c-dac9-4259-98bd-58660d0f5404 · outbound

This paper cites Categorizing objects from meg signals using eegnet.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Categorizing objects from meg signals using eegnet

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This paper cites Decoding the temporal representation of facial expression in face-selective regions.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Decoding the temporal representation of facial expression in face-selective regions

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Group-level brain decoding with deep learning

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Observation cbb0ebcb-f396-4c80-a806-da45014b3eaa · outbound

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Brain decoding over the meg signals using riemannian approach and machine learning

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Observation a9f9c11f-33b5-4e28-af8e-694d81a3c9de · outbound

This paper cites Magnetoencephalogram-based brain–computer interface for hand-gesture decoding using deep learn- ing.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Magnetoencephalogram-based brain–computer interface for hand-gesture decoding using deep learn- ing

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Observation 3516608f-b5cc-4bf4-88e4-ccc319e94195 · outbound

This paper cites Megformer: enhancing speech decoding from brain activity through extended semantic representations.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Megformer: enhancing speech decoding from brain activity through extended semantic representations

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This paper cites Mad: Multi-alignment meg-to-text decoding.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Mad: Multi-alignment meg-to-text decoding

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This paper cites Robust discrimination of multiple naturalistic same-hand movements from meg signals with convolutional neural networks.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Robust discrimination of multiple naturalistic same-hand movements from meg signals with convolutional neural networks

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field NeuGPT: Unified multi-modal Neural GPT

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Observation 0b0a84c5-e2cb-4316-9cea-71b372072740 · outbound

This paper cites The Brain's Bitter Lesson: Scaling Speech Decoding With Self-Supervised Learning.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field The Brain's Bitter Lesson: Scaling Speech Decoding With Self-Supervised Learning

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Observation 3c7c0c89-e495-4449-923c-d6746c86c434 · outbound

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Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Sparse autoencoders for word decoding from magnetoencephalography

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This paper cites Brain network analysis and classification based on convolutional neural network.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Brain network analysis and classification based on convolutional neural network

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Observation ee8dc4d2-312c-4697-9d13-d1a3a51dcde7 · outbound

This paper cites Automatic diagnosis of neurological diseases using meg signals with a deep neural network.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Automatic diagnosis of neurological diseases using meg signals with a deep neural network

Reference 79

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Observation 7863f9ac-3118-4f6f-a8e8-2b5b7329d13e · outbound

This paper cites Multi-head self-attention model for classification of temporal lobe epilepsy subtypes.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Multi-head self-attention model for classification of temporal lobe epilepsy subtypes

Reference 80

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Observation 9d33390c-3823-4794-a0b6-0abd9b83a3dd · outbound

This paper cites Predicting ptsd severity using longitudinal magnetoencephalography with a multi-step learning framework.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Predicting ptsd severity using longitudinal magnetoencephalography with a multi-step learning framework

Reference 81

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Observation c8275799-9de4-43d3-a086-b6f003fc1da5 · outbound

This paper cites A graph gaussian embedding method for predicting alzheimer’s disease progression with meg brain networks.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field A graph gaussian embedding method for predicting alzheimer’s disease progression with meg brain networks

Reference 82

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Observation 9ab9f734-3fd8-44f2-b1c4-ff822dbbee6b · outbound

This paper cites Deep-meg: spatiotemporal cnn features and multiband ensemble classification for predicting the early signs of alzheimer’s disease with magnetoen- cephalography.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Deep-meg: spatiotemporal cnn features and multiband ensemble classification for predicting the early signs of alzheimer’s disease with magnetoen- cephalography

Reference 83

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Observation 8847144a-35a4-4a40-ada4-01031924150d · outbound

This paper cites Classification of meg signals in schizophrenia based on eegnet.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Classification of meg signals in schizophrenia based on eegnet

Reference 84

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Observation a712b42f-78d9-43ea-8d86-9a13a442d0a8 · outbound

This paper cites Resting-state magnetoencephalography source magnitude imaging with deep-learning neural network for classification of symptomatic combat-related mild traumatic brain injury.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Resting-state magnetoencephalography source magnitude imaging with deep-learning neural network for classification of symptomatic combat-related mild traumatic brain injury

Reference 85

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Observation 47553ddd-dbc1-4896-9a8c-fb641bcdd7e7 · outbound

This paper cites an unresolved cited work.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Unresolved cited work

Reference 86

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Observation 9d83945e-04b6-4a3d-915e-6a385e0db7d4 · outbound

This paper cites Abnormal phase–amplitude coupling characterizes the interictal state in epilepsy.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Abnormal phase–amplitude coupling characterizes the interictal state in epilepsy

Reference 87

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Observation ecc557a8-8a6e-4a77-ae28-3d72031aec62 · outbound

This paper cites Functional connectivity based machine learning approach for autism detection in young children using meg signals.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Functional connectivity based machine learning approach for autism detection in young children using meg signals

Reference 88

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Observation d1e22617-1d93-42c2-9ab2-0a011e80be0e · outbound

This paper cites Imnmagn: Integrative multimodal approach for enhanced detection of neurodegenerative diseases using fusion of multidomain analysis with graph networks.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Imnmagn: Integrative multimodal approach for enhanced detection of neurodegenerative diseases using fusion of multidomain analysis with graph networks

Reference 89

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Observation 618910d3-3a6a-4987-adbb-2c356066c1b6 · outbound

This paper cites Synaptic function and sensory processing in zdhhc9-associated neurodevelopmental disorder: a mechanistic account.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Synaptic function and sensory processing in zdhhc9-associated neurodevelopmental disorder: a mechanistic account

Reference 90

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Observation a92dbd84-c0d7-4aeb-90ca-215fb93942c4 · outbound

This paper cites Determining the optimal number of meg trials: A machine learning and speech decoding perspective.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Determining the optimal number of meg trials: A machine learning and speech decoding perspective

Reference 91

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Observation 10a345e8-f315-4589-8d5f-d995b9ae3d1a · outbound

This paper cites Overt speech retrieval from neuromagnetic signals using wavelets and artificial neural networks.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Overt speech retrieval from neuromagnetic signals using wavelets and artificial neural networks

Reference 92

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Observation 47c0859d-8ccb-422d-ae14-31de4268ff76 · outbound

This paper cites Kinesthetic and visual modes of imaginary movement: Meg studies for bci development.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Kinesthetic and visual modes of imaginary movement: Meg studies for bci development

Reference 93

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Observation 26c2d6e6-7a63-455f-a959-f242623716d2 · outbound

This paper cites A meg study of different motor imagery modes in untrained subjects for bci applications.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field A meg study of different motor imagery modes in untrained subjects for bci applications

Reference 94

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Observation 3050b2b2-c55d-40a4-8fa8-cb520e5d69bb · outbound

This paper cites Adaptive neural network classifier for decoding meg signals.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Adaptive neural network classifier for decoding meg signals

Reference 95

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Observation 96536a71-0914-4df9-a0b6-4140b65e0279 · outbound

This paper cites Automatic speech activity recognition from meg signals using seq2seq learning.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Automatic speech activity recognition from meg signals using seq2seq learning

Reference 96

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Observation 9526b30b-4d0e-44ea-be78-5854b4eeefbd · outbound

This paper cites Decoding imagined and spoken phrases from non-invasive neural (meg) signals.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Decoding imagined and spoken phrases from non-invasive neural (meg) signals

Reference 97

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Observation 86504bab-ee5d-48e4-bffa-470e26e352fa · outbound

This paper cites Neurovad: Real-time voice activity detection from non-invasive neuromagnetic signals.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Neurovad: Real-time voice activity detection from non-invasive neuromagnetic signals

Reference 98

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Observation 36138396-5d4a-4676-8451-4a58c2d93d6b · outbound

This paper cites Lstm improves accuracy of reaching trajectory prediction from magnetoencephalography signals.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Lstm improves accuracy of reaching trajectory prediction from magnetoencephalography signals

Reference 99

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Observation 6777998b-0d5f-4958-87d2-2db93b16c2fe · outbound

This paper cites Decoding speech evoked jaw motion from non-invasive neuromagnetic oscillations.

Artificial Neural Networks for Magnetoencephalography: A review of an emerging field Decoding speech evoked jaw motion from non-invasive neuromagnetic oscillations

Reference 100

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