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A Scheme for Learning User Preferences: Enabling Personalisation in Cognitive Wireless Systems

机译:用于学习用户偏好的方案:在认知无线系统中启用个性化

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The continuous evolution of wireless systems has resulted in a number of new and powerful wireless networking standards. The concept of Beyond the Third Generation Systems (B3G) emerged in an attempt to exploit the variety of the available access standards to the benefit of end-users, operators and manufacturers. In this context, a key topic in the research area of B3G/4G networks is related to mechanisms and strategies to efficiently realize the complementary use of the diverse Radio Access Technologies (RATs), through their convergence into one composite radio environment. One of the most important features of these evolving systems is the availability of multiple access technologies, which will allow users to enjoy wireless services at any time, at any place. Evidently in order to truly enhance the experience of all users, even technology agnostic ones, functionality is required, on both the network and the user-device side, for providing the "always best connection" in a transparent manner. The focus of this paper is more on the end-user side. The target is to realize management functionality that takes into account user requirements, environment characteristics, configuration policies and experience established so as to dynamically configure the user terminal in a seamless and transparent manner, through machine learning mechanisms. This can be achieved with the help of Bayesian Networks, a technique used for encoding and learning probabilistic relationships.
机译:无线系统的连续演进导致了许多新的和强大的无线网络标准。超出第三代系统(B3G)的概念出现了试图利用可用的访问标准的各种可用的访问标准,以利益最终用户,运营商和制造商。在这种情况下,B3G / 4G网络的研究领域的关键话题与机制和策略有关,以有效地实现各种无线电接入技术(大鼠)的互补使用,通过它们通过它们的融合到一个复合无线电环境。这些不断发展的系统中最重要的特征之一是多次访问技术的可用性,这将允许用户随时享受无线服务。显然,为了真正增强所有用户的经验,即使是技术不可知的技术,在网络和用户设备侧都需要功能,用于以透明的方式提供“始终最佳连接”。本文的焦点在最终用户方面更多。目标是实现管理功能,以考虑用户要求,环境特征,配置策略和经验,以便通过机器学习机制以无缝和透明的方式动态配置用户终端。这可以在贝叶斯网络的帮助下实现这一技术,该技术用于编码和学习概率关系。

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