Title :
Remote sensing of ocean sound speed profiles by a perceptron neural network
Author :
Park, Joseph C. ; Kennedy, Robert M.
Author_Institution :
Dept. of Ocean Eng., Florida Atlantic Univ., Boca Raton, FL, USA
fDate :
4/1/1996 12:00:00 AM
Abstract :
A method is developed to estimate ocean sound speed profiles through synthesis of remotely measured environmental data and historical statistics of sound speed obtained at a remotely sensed location. Sound speed profiles are represented by an expansion of empirical orthogonal functions (EOF) of the historical sound speed variation, while the remotely sensed environmental data provide real-time information to determine the expansion coefficients. Environmental inputs are limited to sea surface temperature available from satellite infrared sensors, acoustic time-of-flight and ocean bottom temperature measurable from bottom mounted acoustic and thermal transducers. A multilayer perceptron neural network is implemented to learn the functional transformation from the measured environmental input to the desired EOF coefficient output on a set of representative sound speed profiles. Sea surface temperature, time-of-year, and time-of-flight from the acoustic multipath that maximally samples the vertical sound speed are found to be the dominant inputs. The trained network is computationally efficient and produces estimates for untrained environmental inputs with a mean error of 1.1-4.4 m/s
Keywords :
acoustic tomography; acoustic wave velocity measurement; geophysical signal processing; infrared imaging; multilayer perceptrons; oceanographic techniques; remote sensing; temperature measurement; underwater sound; acoustic multipath; acoustic time of flight; acoustic tomography; bottom mounted acoustic transducers; empirical orthogonal functions expansion; environmental input; expansion coefficients; functional transformation; historical sound speed variation; historical statistics; mean error; multilayer perceptron neural network; ocean bottom temperature; ocean sound speed estimation; ocean sound speed profiles; perceptron neural network; real-time information; remote sensing; remotely measured environmental data; remotely sensed location; sampling; satellite infrared sensors; sea surface temperature; time of year; Acoustic measurements; Infrared sensors; Ocean temperature; Remote sensing; Satellites; Sea measurements; Sea surface; Statistics; Temperature sensors; Velocity measurement;
Journal_Title :
Oceanic Engineering, IEEE Journal of