Threshold optimization in distributed OS-CFAR system by using simulated annealing technique

This paper proposes an application of the simulated annealing to optimize the detection threshold in an ordered statistics constant false alarm rate (OS-CFAR) system. Using conventional optimization methods, such as the conjugate gradient, can lead to a local optimum and lose the global optimum. Als...

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Published inInternational Conference on Systems and Control (Print) pp. 295 - 301
Main Authors Abdou, L., Taibaoui, O., Moumen, A., Ahmed, A. Taleb
Format Conference Proceeding
LanguageEnglish
Published IEEE 01.04.2015
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Abstract This paper proposes an application of the simulated annealing to optimize the detection threshold in an ordered statistics constant false alarm rate (OS-CFAR) system. Using conventional optimization methods, such as the conjugate gradient, can lead to a local optimum and lose the global optimum. Also for a system with a number of sensors that is greater than or equal to three, it is difficult or impossible to find this optimum; Hence, the need to use other methods, such as meta-heuristics. From a variety of meta-heuristic techniques, we can find the Simulated Annealing (SA) method, inspired from a process used in metallurgy. This technique is based on the selection of an initial solution and the generation of a near solution randomly, in order to improve the criterion to optimize. In this work, two parameters will be subject to such optimisation and which are the statistical order (k) and the scaling factor (t). Two fusion rules; "AND" and "OR" were considered in the case where the signals are independent from sensor to sensor. The results showed that the application of the proposed method to the problem of optimisation in a distributed system is efficiency to resolve such problems. The advantage of this method is that it allows to browse the entire solutions space and to avoid theoretically the stagnation of the optimization process in an area of local minimum.
AbstractList This paper proposes an application of the simulated annealing to optimize the detection threshold in an ordered statistics constant false alarm rate (OS-CFAR) system. Using conventional optimization methods, such as the conjugate gradient, can lead to a local optimum and lose the global optimum. Also for a system with a number of sensors that is greater than or equal to three, it is difficult or impossible to find this optimum; Hence, the need to use other methods, such as meta-heuristics. From a variety of meta-heuristic techniques, we can find the Simulated Annealing (SA) method, inspired from a process used in metallurgy. This technique is based on the selection of an initial solution and the generation of a near solution randomly, in order to improve the criterion to optimize. In this work, two parameters will be subject to such optimisation and which are the statistical order (k) and the scaling factor (t). Two fusion rules; "AND" and "OR" were considered in the case where the signals are independent from sensor to sensor. The results showed that the application of the proposed method to the problem of optimisation in a distributed system is efficiency to resolve such problems. The advantage of this method is that it allows to browse the entire solutions space and to avoid theoretically the stagnation of the optimization process in an area of local minimum.
Author Moumen, A.
Ahmed, A. Taleb
Abdou, L.
Taibaoui, O.
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  surname: Ahmed
  fullname: Ahmed, A. Taleb
  organization: Lab. LAMIH, UVHC, Valenciennes, France
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Snippet This paper proposes an application of the simulated annealing to optimize the detection threshold in an ordered statistics constant false alarm rate (OS-CFAR)...
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StartPage 295
SubjectTerms distributed system
OS-CFAR sensor
Sensor fusion
Sensor systems
Signal to noise ratio
Simulated annealing
Simulating Annealing
Threshold Optimization
Title Threshold optimization in distributed OS-CFAR system by using simulated annealing technique
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