Randomized test case generation for hybrid systems: metric selection

J. Esposito
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引用次数: 16

Abstract

We are developing a randomized approach to test generation for hybrid systems, and control systems in general, using techniques from robotic path planning which have proved successful in solving high dimensional nonlinear problems. A critical component of the proposed algorithm is the choice of "metric" - how one decides the closeness of two states - which is nontrivial in the hybrid state space. In this paper we introduce four metrics for hybrid systems; and benchmark the algorithm using each of these metrics on a popular example problem from the literature and compare the impact of metric choice on computational efficiency.
混合系统的随机测试用例生成:度量选择
我们正在开发一种随机方法,用于混合系统和一般控制系统的测试生成,使用机器人路径规划技术,该技术已被证明在解决高维非线性问题方面取得了成功。该算法的一个关键组成部分是“度量”的选择——一个人如何决定两个状态的接近程度——这在混合状态空间中是非平凡的。本文引入了混合系统的四个度量;并在文献中的一个流行示例问题上使用这些指标对算法进行基准测试,并比较指标选择对计算效率的影响。
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