{"id":636669,"date":"2019-11-03T09:00:02","date_gmt":"2019-11-03T17:00:02","guid":{"rendered":"https:\/\/newed.any0.dpdns.org\/en-us\/research\/?post_type=msr-research-item&#038;p=636669"},"modified":"2020-02-12T08:28:05","modified_gmt":"2020-02-12T16:28:05","slug":"drift-deep-reinforcement-learning-for-functional-software-testing","status":"publish","type":"msr-research-item","link":"https:\/\/newed.any0.dpdns.org\/en-us\/research\/publication\/drift-deep-reinforcement-learning-for-functional-software-testing\/","title":{"rendered":"DRIFT: Deep Reinforcement Learning for Functional Software Testing"},"content":{"rendered":"<p>Efficient software testing is essential for productive software development and reliable user experiences. As human testing is inefficient and expensive, automated software testing is needed. In this work, we propose a Reinforcement Learning (RL) framework for functional software testing named DRIFT. DRIFT operates on the symbolic representation of the user interface. It uses Q-learning through Batch-RL and models the state-action value function with a Graph Neural Network. We apply DRIFT to testing the Windows 10 operating system and show that DRIFT can robustly trigger the desired software functionality in a fully automated manner. Our experiments test the ability to perform single and combined tasks across different applications, demonstrating that our framework can efficiently test software with a large range of testing objectives.<\/p>\n","protected":false},"excerpt":{"rendered":"<p>Efficient software testing is essential for productive software development and reliable user experiences. As human testing is inefficient and expensive, automated software testing is needed. In this work, we propose a Reinforcement Learning (RL) framework for functional software testing named DRIFT. DRIFT operates on the symbolic representation of the user interface. 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