The concern of this work is the steady state periodic response having the same period as the excitation of strongly non-linear oscillators u d u mu e 1 u 2 u e 1 u u 2 e 2 u 3 P cos Ot, where m = 1, 0 or Γ1, e 1 and e 1 are positive parameters which may be arbitrarily large. Single-mode and two-mode
State-changes in the brain viewed as linear steady-states and non-linear transitions between steady-states
β Scribed by J. J. Wright; R. R. Kydd; G. J. Lees
- Publisher
- Springer-Verlag
- Year
- 1985
- Tongue
- English
- Weight
- 656 KB
- Volume
- 53
- Category
- Article
- ISSN
- 0340-1200
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β¦ Synopsis
Preceding papers concern a linear theory of electrocortical waves and their regulation by brain-stem neurones, in conditions of steady-state. The present paper reconsiders the theory, and generalizes beyond the effects of the fibre systems so far studied. Relaxation and unification of the assumptions upon which the initial model was based is undertaken. It is shown that the generalised model may render state changes within the brain accessible to systematic description, using the EEG as dependent variable. It is proposed that a multitude of stable states are possible within the brain, each characterised by a set of damping parameters for separate linear resonant modes. Within each stable state, the set of sums of resonant modes characterises a sub-space of the total state-space. Transition between stable regions can occur with either perturbation by external signals, or by internal controls. Tentative consideration is given to the role of plastic changes leading to adaptive learning as an attribute of a system of this type.
π SIMILAR VOLUMES
The reaction of hydrogen evolution from the acids: hydrochloric, hydrogen sulfate ion, monochloroacetic and lactic have been studied by steady-state voltammetry at platinum microdisc electrodes. From the experimental voltammetric parameters, such as half-wave potential, (E 1,4-E& values and steady-s