Intelligence Slicing: A Unified Framework to Integrate Artificial Intelligence into 5G Networks

Wei Jiang, S. D. Antón, H. Schotten
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引用次数: 13

Abstract

The fifth-generation and beyond mobile networks should support extremely high and diversified requirements from a wide variety of emerging applications. It is envisioned that more advanced radio transmission, resource allocation, and networking techniques are required to be developed. Fulfilling these tasks is challenging since network infrastructure becomes increasingly complicated and heterogeneous. One promising solution is to leverage the great potential of Artificial Intelligence (AI) technology, which has been explored to provide solutions ranging from channel prediction to autonomous network management, as well as network security. As of today, however, the state of the art of integrating AI into wireless networks is mainly limited to use a dedicated AI algorithm to tackle a specific problem. A unified framework that can make full use of AI capability to solve a wide variety of network problems is still an open issue. Hence, this paper will present the concept of intelligence slicing where an AI module is instantiated and deployed on demand. Intelligence slices are applied to conduct different intelligent tasks with the flexibility of accommodating arbitrary AI algorithms. Two example slices, i.e., neural network based channel prediction and anomaly detection based industrial network security, are illustrated to demonstrate this framework.
智能切片:将人工智能集成到5G网络的统一框架
第五代及以后的移动网络应该支持来自各种新兴应用的极高和多样化的需求。预计需要开发更先进的无线电传输、资源分配和网络技术。由于网络基础设施变得越来越复杂和异构,完成这些任务是具有挑战性的。一个有希望的解决方案是利用人工智能(AI)技术的巨大潜力,该技术已被探索提供从渠道预测到自主网络管理以及网络安全的解决方案。然而,到目前为止,将人工智能集成到无线网络的技术水平主要局限于使用专用的人工智能算法来解决特定问题。一个可以充分利用人工智能能力来解决各种网络问题的统一框架仍然是一个悬而未决的问题。因此,本文将提出智能切片的概念,其中人工智能模块被实例化并按需部署。智能切片用于执行不同的智能任务,具有适应任意人工智能算法的灵活性。两个例子切片,即基于神经网络的信道预测和基于异常检测的工业网络安全,说明了这一框架。
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