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Integration of Mixture of Experts and Multimodal Generative AI in Internet of Vehicles: A Survey (2404.16356v1)

Published 25 Apr 2024 in cs.NI, cs.AI, and cs.LG

Abstract: Generative AI (GAI) can enhance the cognitive, reasoning, and planning capabilities of intelligent modules in the Internet of Vehicles (IoV) by synthesizing augmented datasets, completing sensor data, and making sequential decisions. In addition, the mixture of experts (MoE) can enable the distributed and collaborative execution of AI models without performance degradation between connected vehicles. In this survey, we explore the integration of MoE and GAI to enable Artificial General Intelligence in IoV, which can enable the realization of full autonomy for IoV with minimal human supervision and applicability in a wide range of mobility scenarios, including environment monitoring, traffic management, and autonomous driving. In particular, we present the fundamentals of GAI, MoE, and their interplay applications in IoV. Furthermore, we discuss the potential integration of MoE and GAI in IoV, including distributed perception and monitoring, collaborative decision-making and planning, and generative modeling and simulation. Finally, we present several potential research directions for facilitating the integration.

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Authors (9)
  1. Minrui Xu (57 papers)
  2. Dusit Niyato (671 papers)
  3. Jiawen Kang (204 papers)
  4. Zehui Xiong (177 papers)
  5. Abbas Jamalipour (68 papers)
  6. Yuguang Fang (55 papers)
  7. Dong In Kim (168 papers)
  8. Xuemin (104 papers)
  9. Shen (108 papers)
Citations (2)
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