Reinforcement learning for online testing of autonomous driving systems: a replication and extension study
Luca Giamattei,
Matteo Biagiola,
Roberto Pietrantuono
et al.
Abstract:In a recent study, Reinforcement Learning (RL) used in combination with many-objective search, has been shown to outperform alternative techniques (random search and many-objective search) for online testing of Deep Neural Network-enabled systems. The empirical evaluation of these techniques was conducted on a state-of-the-art Autonomous Driving System (ADS). This work is a replication and extension of that empirical study. Our replication shows that RL does not outperform pure random test generation in a comp… Show more
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