Learning and Adaptation in Cognitive Radios Using Neural Networks

N. Baldo, M. Zorzi
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引用次数: 119

Abstract

The estimation of the communication performance achievable with respect to environmental factors and configuration parameters plays a key role in the optimization process performed by a Cognitive Radio according to the original definition by Mitola [1]. In this paper we propose the use of Multilayered Feedforward Neural Networks as an effective technique for real-time characterization of the communication performance which is based on measurements carried out by the device and therefore offers some interesting learning capabilities.
认知无线电的神经网络学习与适应
根据Mitola[1]的原始定义,在认知无线电进行优化过程中,根据环境因素和配置参数对可实现的通信性能的估计起着关键作用。在本文中,我们提出使用多层前馈神经网络作为通信性能实时表征的有效技术,该技术基于设备进行的测量,因此提供了一些有趣的学习能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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