Analysis on The Effect of Channel Bandwidth Occupying in LTE Frequency Band on Throughput

Sri Yusnita (1), Yustini - (2), Lince Markis (3), Widia Tristianti (4), Taruma Leo Wijaya (5)
(1) Department of Electronics Engineering, Politeknik Negeri Padang, West Sumatera, Indonesia
(2) Department of Electronics Engineering, Politeknik Negeri Padang, West Sumatera, Indonesia
(3) Department of Electrical Technology, Universitas 17 Agustus 1945, Surabaya , Indonesia
(4) Department of Electronics Engineering, Politeknik Negeri Padang, West Sumatera, Indonesia
(5) Department of Information Technology, Politeknik Negeri Padang, West Sumatera, Indonesia
Fulltext View | Download
How to cite (IJASEIT) :
Yusnita, S., -, Y., Markis, L., Tristianti, W., & Wijaya, T. L. (2023). Analysis on The Effect of Channel Bandwidth Occupying in LTE Frequency Band on Throughput. International Journal of Advanced Science Computing and Engineering, 5(1), 8–14. https://doi.org/10.62527/ijasce.5.1.110
The maximum channel capacity of a 4G LTE network will be directly correlated to the channel bandwidth that occupies a certain radio frequency on that network. The number of Resource Blocks (RB), subcarriers, and Resource Elements (RE) as channel resources available to serve users concurrently will depend on the bandwidth channel sizes. Mobile service providers in Indonesia provide scalable channel bandwidth LTE 4G networks on a variety of frequency bands, including adjacent and non-adjacent bands. In this study, it was examined how to channel bandwidth, which changes at 10MHz, 15MHz, and 20MHz, affects throughput to give user equipment the best possible performance (UE). This study makes use of actual measurement data from installed and active eNodeB or cells obtained via the drive test approach. According to the test, each channel's maximum throughput varies, however, there is no linear relationship found between channel bandwidth expansion and throughput. The 20MHz channel bandwidth, which is located in the 2300MHz frequency band, has a maximum throughput value of 64666.80 kbps.

Dahlman, arkvall, Skold.. “4G, LTE-Advanced Pro and The Road to 5G “Third Edition, Elsivier, 2016

Jar.M., , and Fettweis.G, Throughput Maximization for LTE Uplink via Resource Allocation, 2012, International Symposium on Wireless Communication Systems (ISWCS)

X. Zhang, “LTE Optimization engineering handbook “, first edition, IEEE Pres, Willey, 2018

Republik Indonesia “Peraturan menteri Komunikasi dan Informatika Republik Indonesia no 27 Tahun 2015 Tentang Persyaratan Teknis Alat Dan/Atau Perangkat-Perangkat Telekomunikasi Berbasis Standar Teknologi Long Term Evolution “Kementrian Komunikasi dan Informatika, Jakarta, P.5, 2015

Chandra, D., Yusnita, Bahari, “The Analysis of Service Integrity on Video Streaming Services Using Time Division Duplex and Frequency Division Duplex Technology on LTE Networksâ€, International Journal of Advanced Science Computing and Engineering ISSN 2714-7533 Vol. 3, No. 2, August 2021

Chandra, D., Bahari, “LTE Network Area Coverage on FDD and TDD Technologyâ€, International Journal of Advanced Science Computing and Engineering ISSN 2714-7533 Vol. 2, No. 1, April 2020, pp. 21-33

Adityo , Usman, Cahyono, “Analisis Penerapan Flexible Bandwidth Untuk Meningkatkan Performansi Jaringan Lteâ€, Seminar Nasional Inovasi Dan Aplikasi Teknologi Di Industri 2018

Mubarok, Putri, Analisis, “Dampak Inter-Band Carrier Aggregation pada Perencanaan Jaringan LTE-Advancedâ€, 2019 ELKOMIKA

Hwang, Park, “On the Effects of Resource Usage Ratio on Data Rate in LTE Systemsâ€, ICACT 2017 February 19 ~ 22, 201

Hadi.A.A., Clancy.C., "A utility proportional fairness approach for resource allocation in 4G-LTE," in IEEE International Conference on Computing, Networking and Communications: Computing, Networking and Communications Symposium (ICNC'14 - CNC), 2014

Ghorbanzadeh .M., Abdelhadi.A., Clancy .C., A Utility Proportional Fairness Radio Resourc Block Allocation in Cellular Networks, Hume Center for National Security and Technology Virginia Tech, Arlington, VA, 22203, USA

Al Dulaimi, A.M., Al-Azzawi.E.M., Al-Anssari.A.I., Balancing model of resource blocks allocation in LTE downlink, 2016, International Conference on Electronics and Information Technology (EIT)

Kachroo.A., Ozdemir.M.K., Mogulkoc .H.t., Optimization of LTE radio resource block allocation for maritime channels, 2016 IEEE 37th Sarnoff Symposium

Jar.M., , and Fettweis.G, Throughput Maximization for LTE Uplink via Resource Allocation, 2012, International Symposium on Wireless Communication Systems (ISWCS)

Yu.I. and Yin.C., Block-Level Resource Allocation with Limited Feedback in Multicell Cellular Networks, Journal of Communications and Networks, Vol. 18, No. 3, June 2016

Cox.. “An Introduction To LTE, LTE-Advanced, Sae, Volte And 4G Mobile Communication†Second Edition, Wiley, 2014

Arthur, Forgor, Effah, Analysing the Effect of MIMO Configuration on The Throughput of LTE Network in Multipath Environtments, 2019, International Conference on Communications, Signal Processing and Networks (ICCSPN)

Vijeth J. Kotagi, Rahul Thakur, Sudeepta Mishra, and Chebiyyam Siva Ram MurthyAssigning Downlink Transmit Power and Resource Blocks to LTE Enabled IoT Networks, IEEE Communications Letters (Volume: 20, Issue: 8, August 2016)

Haider.F., Hepsaydir.E., Binucci.N., Performance analysis of LTE-advanced networks in different spectrum bands, 2011, Wireless Advanced

Liu,.J., Shen.G.,, Performance of Multi-Carrier LBT Mechanism for LTE-LA, 2016, IEEE 83rd Vehicular Technology Conference (VTC Spring)