DocumentCode :
571786
Title :
Microcontroller based neural network for landmine detection using magnetic gradient data
Author :
Elkattan, Mohamed ; Salem, Ahmed ; Soliman, Fouad ; Kamel, Aladin ; El-Hennawy, Hadia
Author_Institution :
Nucl. Mater. Authority, Cairo, Egypt
Volume :
1
fYear :
2012
fDate :
12-14 June 2012
Firstpage :
46
Lastpage :
50
Abstract :
Landmines are affecting the live and livelihood of millions of people around the world. In this paper, we have developed a new method for detection of landmines using Hopfield neural network as applied to gradiometer magnetic data. The Hopfield Neural Network is used to optimize the magnetic moment of dipole source representing the landmine at regular locations. For each location, Hopfield neural network reaches its stable energy state. The location of the landmine corresponds to the location yielding the minimum Hopfield energy. Output results include position in two dimensions, horizontal location and depth of the landmine. Furthermore, the proposed algorithm was implemented on a microcontroller, to be suitable for real time detection. Theoretical and actual field examples prove the effectiveness of using the microcontroller based Hopfield neural network as an objective tool for detection of landmines.
Keywords :
Hopfield neural nets; geophysics computing; landmine detection; magnetic moments; magnetometers; microcontrollers; optimisation; Hopfield neural network; dipole source; gradiometer magnetic data; landmine detection; landmine location; landmine representation; magnetic gradient; magnetic moment; microcontroller based neural network; optimization; stable energy state; Hopfield neural networks; Landmine detection; Magnetic field measurement; Magnetic moments; Magnetometers; Microcontrollers; Neurons; Hopfield Neural Network; Landmine; Magnetic Moment; Microcontroller; Vertical Magnetic Gradient;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent and Advanced Systems (ICIAS), 2012 4th International Conference on
Conference_Location :
Kuala Lumpur
Print_ISBN :
978-1-4577-1968-4
Type :
conf
DOI :
10.1109/ICIAS.2012.6306156
Filename :
6306156
Link To Document :
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