DocumentCode :
130678
Title :
Efficient use of random neural networks for cognitive radio system in LTE-UL
Author :
Adeel, Ahsan ; Larijani, Hadi ; Ahmadinia, Ali
Author_Institution :
Sch. of Eng. & Built Environ., Glasgow Caledonian Univ., Glasgow, UK
fYear :
2014
fDate :
26-29 Aug. 2014
Firstpage :
418
Lastpage :
422
Abstract :
Cognitive radio networks (CRNs) or self-organizing mobile cellular networks are a promising technology for 5G that manages the spectrum frequency domain more efficiently. At the heart of CRNs is the cognitive engine (CE), which is responsible for decision making on the optimal configuration settings for the CRN in real time if possible. In this paper a novel paradigm for decision making in the CE will be presented called hierarchical random neural networks (HRNNs). The proposed HRNN model decomposes a large complex neural network into a network of loosely interconnected localized subnets, which allow the simplified understanding of network behaviour and also allows the addition of more nodes for long-term memory (LTM). The model can also accurately capture the dynamic nature of the system. Simulation results of the proposed HRNN structure has shown improvements in learning efficiency (based on required execution time for convergent result) in the range of 33% to 35% with reduced computations.
Keywords :
Long Term Evolution; cognitive radio; neural nets; telecommunication computing; CE; CRN; HRNN model; LTE-UL; LTM; cognitive engine; cognitive radio system; complex neural network; decision making; hierarchical random neural networks; interconnected localized subnets; long term memory; network behaviour; optimal configuration; random neural networks; self-organizing mobile cellular networks; spectrum frequency; Computational modeling; Decision making; Interference; Mathematical model; Neural networks; Neurons; Training;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Wireless Communications Systems (ISWCS), 2014 11th International Symposium on
Conference_Location :
Barcelona
Type :
conf
DOI :
10.1109/ISWCS.2014.6933389
Filename :
6933389
Link To Document :
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