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Magnetoencephalography—theory, instrumentation, and applications to noninvasive studies of the working human brain

Reviews of Modern Physics · 1993 · Vol. 65(2) · pp. 413–497
Matti HämäläinenRiitta HariRisto J. IlmoniemiJukka KnuutilaO. V. Lounasmaa

Abstract

Magnetoencephalography (MEG) is a noninvasive technique for investigating neuronal activity in the living human brain. The time resolution of the method is better than 1 ms and the spatial discrimination is, under favorable circumstances, 2-3 mm for sources in the cerebral cortex. In MEG studies, the weak 10 fT-1 pT magnetic fields produced by electric currents flowing in neurons are measured with multichannel SQUID (superconducting quantum interference device) gradiometers. The sites in the cerebral cortex that are activated by a stimulus can be found from the detected magnetic-field distribution, provided that appropriate assumptions about the source render the solution of the inverse problem unique. Many interesting properties of the working human brain can be studied, including spontaneous activity and signal processing following external stimuli. For clinical purposes, determination of the locations of epileptic foci is of interest. The authors begin with a general introduction and a short discussion of the neural basis of MEG. The mathematical theory of the method is then explained in detail, followed by a thorough description of MEG instrumentation, data analysis, and practical construction of multi-SQUID devices. Finally, several MEG experiments performed in the authors' laboratory are described, covering studies of evoked responses and of spontaneous activity in both healthy and diseased brains. Many MEG studies by other groups are discussed briefly as well.

Functional Brain Connectivity StudiesNeural dynamics and brain functionAtomic and Subatomic Physics ResearchMagnetoencephalographyPhysicsSquidNeuroscienceQuantum interferenceInstrumentation (computer programming)Human brainBrain activity and meditationStimulus (psychology)Cerebral cortex
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References
Realistic conductivity geometry model of the human head for interpretation of neuromagnetic data
IEEE Transactions on Biomedical Engineering · 1989 · 1,012 citations
Basic mathematical and electromagnetic concepts of the biomagnetic inverse problem
Physics in Medicine and Biology · 1987 · 1,855 citations
Equations of Mathematical Physics
Mathematics of Computation · 1972 · 1,052 citations
The self-organizing map
Proceedings of the IEEE · 1990 · 8,115 citations
An introduction to neural computing
Neural Networks · 1988 · 1,202 citations
Multiple dipole modeling and localization from spatio-temporal MEG data
IEEE Transactions on Biomedical Engineering · 1992 · 1,044 citations
Thermal Agitation of Electric Charge in Conductors
Physical Review · 1928 · 2,996 citations
Planar coupling scheme for ultra low noise DC SQUIDs
IEEE Transactions on Magnetics · 1981 · 306 citations
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