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The proposed method allows for accurate recovery of an unknown incident electric field with measurements conducted at a single observation point.
In this paper we propose an electric field sensor well adapted to fast and intense signals.
The observed electric field is much larger than expected, and is associated with the 4 km periodic structure of the electric field which may be related to the atmospheric gravity wave activity in the E region.
They are also suitable for assessing the dependence of the electric field on electric and geometric parameters.
Open accessJournal ArticleDOI
04 Oct 2001-Physics Letters B
103 Citations
This map could be useful to extend the computational methods and concepts from noncommutative field theory to string field theory and vice versa.
They are light, are easy to move in the field, and can simultaneously measure the ground’s electric conductivity and magnetic susceptibility; they have thus been used to map these properties over large surface areas, within relatively short periods of time, and at reasonable expense.
Therefore, IR transmission provides us powerful tools for electric field mapping.
This method can provide a 3D map of the electric field in the whole sensor volume.
These measurements provide an in situ calibration that can be used to obtain the absolute value of the electric field.
Ionospheric polarization appears to control the electric field pattern within this region.
This technique can complement and aid in the interpretation of other electric field data, or provide electric field data where such instruments are not available.
This paper introduces an improved algorithm for field map estimation which is both faster and more robust than the existing method.
The proposed concept map helps to visualize the general picture of the field.

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