2020
DOI: 10.48550/arxiv.2012.05336
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Transfer Learning for Efficient Iterative Safety Validation

Abstract: Safety validation is important during the development of safety-critical autonomous systems but can require significant computational effort. Existing algorithms often start from scratch each time the system under test changes. We apply transfer learning to improve the efficiency of reinforcement learning based safety validation algorithms when applied to related systems. Knowledge from previous safety validation tasks is encoded through the action value function and transferred to future tasks with a learned … Show more

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