GainNet: Coordinates the Odd Couple of Generative AI and 6G Networks
CoRR(2024)
摘要
The rapid expansion of AI-generated content (AIGC) reflects the iteration
from assistive AI towards generative AI (GAI) with creativity. Meanwhile, the
6G networks will also evolve from the Internet-of-everything to the
Internet-of-intelligence with hybrid heterogeneous network architectures. In
the future, the interplay between GAI and the 6G will lead to new
opportunities, where GAI can learn the knowledge of personalized data from the
massive connected 6G end devices, while GAI's powerful generation ability can
provide advanced network solutions for 6G network and provide 6G end devices
with various AIGC services. However, they seem to be an odd couple, due to the
contradiction of data and resources. To achieve a better-coordinated interplay
between GAI and 6G, the GAI-native networks (GainNet), a GAI-oriented
collaborative cloud-edge-end intelligence framework, is proposed in this paper.
By deeply integrating GAI with 6G network design, GainNet realizes the positive
closed-loop knowledge flow and sustainable-evolution GAI model optimization. On
this basis, the GAI-oriented generic resource orchestration mechanism with
integrated sensing, communication, and computing (GaiRom-ISCC) is proposed to
guarantee the efficient operation of GainNet. Two simple case studies
demonstrate the effectiveness and robustness of the proposed schemes. Finally,
we envision the key challenges and future directions concerning the interplay
between GAI models and 6G networks.
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关键词
6G,generative AI,collaborative cloud-edge-end intelligence,resource orchestration,integrated sensing,communication,computing
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