Processing Time Evaluation and Prediction in Cloud-RAN

ICC 2019 - 2019 IEEE International Conference on Communications (ICC)(2019)

Cited 18|Views60
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Abstract
Cloud RAN (C-RAN) is a very promising architecture for future mobile network deployment, where the cloud-centric approach is useful in improving total processing load. In this context, radio and baseband network functions processing pose interesting problems that we try to expose and solve in this paper. A novel architecture for C-RAN and a first modeling of the system are proposed. Furthermore, we study the impact of many radio parameters on the processing time. Moreover, a mathematical and a deep learning model are proposed and evaluated for processing time prediction. Results show the feasibility of the proposed approaches.
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Key words
cloud-RAN,C-RAN,cloud-centric approach,radio parameters,mobile network deployment,time prediction processing,time evaluation rocessing,baseband network function,deep learning model
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