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Magnetic source imaging based on the Minimum-Norm Least-Squares Inverse

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Summary

The flow of ionic currents within the neurons of cerebral cortex produces a magnetic field that can be detected outside the human scalp. The dominant contribution is attributed to pyramidal cells, which are preferentially oriented perpendicular to the cortical surface. In general, it is not possible to deduce a unique representation of the spatial configuration of these cortical sources from a measurement of their field pattern alone. However, accuratea priori knowledge of the geometry of the underlying cerebral cortex makes it possible to infer the spatial configuration of these transcortical current sources, moment by moment, without imposing a simplified model such as a small set of current dipoles. To achieve such a realistic magnetic source image, we have introduced what we call the "Minimum-Norm Least-Squares Inverse" (MNLS inverse) for the magnetic problem. The MNLS inverse provides the least residual error in accounting for the measured field pattern, with a source current distribution having minimum power. An extension of this procedure provides an inverse solution for average field power, as opposed to fieldper se. This makes it possible to define spatial configurations of spontaneous cortical activity not phase-locked to a sensory stimulus. Rhythmic activity such as the occipital alpha rhythm is one example. Thus, it is possible to determine spatial patterns of enhanced or suppressed cortical rhythms that accompany cognitive processes and some pathological conditions. This paper provides the necessary background for understanding these recent developments, as well as examples of how they might be used.

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References

  • Ben-Israel, A., Greville, T.N.E. Generalized Inverses Theory and Applications. John Wiley & Sons, New York, 1974.

    Google Scholar 

  • Kaufman, L., Schwartz, B., Salustri, C., and Williamson, S.J. Modulation of Spontaneous Brain Activity During Mental Imagery. Cogn. Neurosci., 1990, 2: 124–132.

    Google Scholar 

  • Kaufman, L., Kaufman, J.H., and Wang, J.-Z. On Cortical Folds and Neuromagnetic Fields. Electroenceph. clin. Neurophysiol., 1991, 79: 211–226.

    PubMed  Google Scholar 

  • Kaufman, L., Curtis, S., Wang, J.-Z., and Williamson, S.J. Changes in Cortical Activity When Subjects Scan Memory for Tones. Electroenceph. clin. Neurophysiol., 1992, 82: 266–284.

    PubMed  Google Scholar 

  • Penrose, R. A Generalized Inverse for Matrices. Proc. Cambridge Philos. Soc., 1955, 51: 406–413.

    Google Scholar 

  • Pfurtscheller, G. and Aranabar, A. Event-related cortical desynchronization detected by power measurements of scalp EEG. Electroencephalogr. Clin. Neurophysiol., 1977, 42: 817–826.

    PubMed  Google Scholar 

  • Pfurtscheller, G. and Klimesch, W. Functional Topography during a Visuoverbal Judgement Task Studied with Event-Related Desynchronization Mapping. J. Clin. Neurophysiol., 1992, 9: 120–131.

    PubMed  Google Scholar 

  • Press, W.H., Flannery, B.P., Teukolsky, S.A., Vetterling, W.T. Numerical Recipes, the Art of Scientific Computing. Cambridge Univ. Press, Cambridge, 1986.

    Google Scholar 

  • Wang, J.-Z., Williamson, S.J. and Kaufman, L. Magnetic Source Images Determined by a Lead-Field Analysis: The Unique Minimum- Norm Least-Squares Estimation. IEEE Trans. Biomed. Eng., 1992, 39: 665–675.

    PubMed  Google Scholar 

  • Wang, J.-Z., Kaufman, L., and Williamson, S.J. Imaging Regional Changes in the Spontaneous Activity of the Brain: An Extension of the Unique Minimum-norm Least-squares Estimate". Electroenceph. clin. Neurophysiol., in press, 1992.

  • Wang, J.-Z. Minimum-Norm Least-Squares Estimation: Magnetic Source Images for a Spherical Model Head. IEEE Trans. Biomed. Eng., 1993, 86: 36–50.

    Google Scholar 

  • Williamson, S.J., and Kaufman, L. Analysis of Neuromagnetic Signals. In: Handbook of Electroencephalography and Clinical Neurophysiology, Revised Vol. 1: Methods of Analysis of Brain Electric and Magnetic Signals, A. Gevins and A. Rémond, Eds. (Elsevier, Amsterdam, 1987), pp. 405–448.

    Google Scholar 

  • Williamson, S.J., Wang, J.-Z., and Ilmoniemi, R.J. Method for Locating Sources of Human Alpha Activity. S.J. Williamson and M. Hoke and G. Stroink and M. Kotani, eds., Advances in Biomagnetism, Plenum, New York, 1989: 257–260.

    Google Scholar 

  • Williamson, S.J. and Kaufman, L. Advances in Neuromagnetic Instrumentation and Studies of Spontaneous Brain Activity. Brain Topography, 1989, 2: 129–139.

    PubMed  Google Scholar 

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This work was supported in part by AFOSR Grants Nos. AFOSR90-0221 and AFOSR-91-0401.

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Wang, JZ., Williamson, S.J. & Kaufman, L. Magnetic source imaging based on the Minimum-Norm Least-Squares Inverse. Brain Topogr 5, 365–371 (1993). https://doi.org/10.1007/BF01128692

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