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A Deep Reinforcement Learning Approach for Composing Moving IoT Services

2021-11-06 · Azadeh Ghari Neiat, Athman Bouguettaya, Mohammed Bahutair

We develop a novel framework for efficiently and effectively discovering crowdsourced services that move in close proximity to a user over a period of time. We introduce a moving crowdsourced service model which is modelled as a moving region. We propose a deep reinforcement learning-based composition approach to select and compose moving IoT services considering quality parameters. Additionally, we develop a parallel flock-based service discovery algorithm as a ground-truth to measure the accuracy of the proposed approach. The experiments on two real-world datasets verify the effectiveness and efficiency of the deep reinforcement learning-based approach.

📄 PDF Abstract BibTeX arXiv:2111.03967

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Deep Reinforcement Learningreinforcement-learningReinforcement LearningReinforcement Learning (RL)

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