Signal coherence and coherence-induced effects on array output in multimode transmission channels

Authors

  • Alexander I. Malekhanov Institute of Applied Physics, Russian Academy of Sciences, Russian Federation
  • A. V. Smirnov Institute of Applied Physics, Russian Academy of Sciences, Russian Federation

DOI:

https://doi.org/10.1109/ICATT.2013.6650692

Keywords:

spatial coherence, coherence loss, underwater sound channel, antenna array, cross-modal correlations, array output, spatial resolution

Abstract

It is well known that the statistical effects of long-range signal propagation in random channels generally lead to considerable degradation of both the signal coherence and the array output. In random-inhomogeneous underwater sound channels, these effects are of a primary importance if a large horizontal array is used for high-resolution operation in spatial domain. The key physical effect in such a scenario is known to be the range-dependent cross-modal coherence loss caused by multiple sound scattering by random channel inhomogeneities, both volume and windy surface ones. In this pa-per, we demonstrate numerically how and why the horizontal array output dramatically degrades if the received signal consists of a large number of partially-correlated normal modes. From the point of view of general statistical antenna theory, the results present-ed are considered to be a further development, with application to the multimode transmission channels.

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Published

2014-02-19