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Linear Hybrid System Falsification With Descent

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arxiv 1105.1733 v4 pith:QH65FCM5 submitted 2011-05-09 cs.SY cs.SYmath.OC

Linear Hybrid System Falsification With Descent

classification cs.SY cs.SYmath.OC
keywords hybridlocaloptimizationproblemsearchalgorithmsdynamicsfalsification
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In this paper, we address the problem of local search for the falsification of hybrid automata with affine dynamics. Namely, if we are given a sequence of locations and a maximum simulation time, we return the trajectory that comes the closest to the unsafe set. In order to solve this problem, we formulate it as a differentiable optimization problem which we solve using Sequential Quadratic Programming. The purpose of developing such a local search method is to combine it with high level stochastic optimization algorithms in order to falsify hybrid systems with complex discrete dynamics and high dimensional continuous spaces. Experimental results indicate that indeed the local search procedure improves upon the results of pure stochastic optimization algorithms.

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