Enhanced Indoor Path Loss and RSRP of 5G mmWave Communication System with Multi-objective Genetic Algorithm
The signal strength in 5G mobile communication systems is significantly influenced by the surroundings, with key factors including the path difference, operating frequency, and obstructions at specific locations. Consequently, planning a communication system that can deliver improved signal strength...
Published in: | WIRELESS PERSONAL COMMUNICATIONS |
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Main Authors: | , , , , , , |
Format: | Article; Early Access |
Language: | English |
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SPRINGER
2024
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Online Access: | https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001291588500002 |
author |
Sudhamani Chilakala; Roslee Mardeni; Chuan Lee Loo; Waseem Athar; Osman Anwar Faizd; Jusoh Mohamad Huzaimy |
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spellingShingle |
Sudhamani Chilakala; Roslee Mardeni; Chuan Lee Loo; Waseem Athar; Osman Anwar Faizd; Jusoh Mohamad Huzaimy Enhanced Indoor Path Loss and RSRP of 5G mmWave Communication System with Multi-objective Genetic Algorithm Telecommunications |
author_facet |
Sudhamani Chilakala; Roslee Mardeni; Chuan Lee Loo; Waseem Athar; Osman Anwar Faizd; Jusoh Mohamad Huzaimy |
author_sort |
Sudhamani |
spelling |
Sudhamani, Chilakala; Roslee, Mardeni; Chuan, Lee Loo; Waseem, Athar; Osman, Anwar Faizd; Jusoh, Mohamad Huzaimy Enhanced Indoor Path Loss and RSRP of 5G mmWave Communication System with Multi-objective Genetic Algorithm WIRELESS PERSONAL COMMUNICATIONS English Article; Early Access The signal strength in 5G mobile communication systems is significantly influenced by the surroundings, with key factors including the path difference, operating frequency, and obstructions at specific locations. Consequently, planning a communication system that can deliver improved signal strength becomes highly challenging. To address this issue, indoor path loss models are employed to estimate signal loss in different environments, frequencies, and distances. This paper introduces an intelligent multi-objective genetic algorithm aimed at enhancing path loss and received signal power. A comparative analysis is conducted to evaluate the performance of the proposed intelligent optimization algorithm against the traditional approach. The path loss and received power of various scenarios are estimated using various path loss models. The 5GCM indoor officce, 5GCM InH shopping mall, 3GPP TR 38.91 InH office, mmMAGIC InH office, METIS InH shopping mall, and IEEE 802.11 ad InH office indoor path loss models estimates the path loss of 62.37 dB, 62.15 dB, 63.12 dB, 50 dB, 55.18 dB, and 52.89 dB in traditional approach and 36.87 dB, 35.86 dB, 36.84 dB, 68.80 dB, 36.23 dB and 33.94 dB using GA approach and received powers of -12.17 similar to dBm, -11.37 similar to dBm, -12.17 similar to dBm, -5.80 similar to dBm, -12.24 similar to dBm and -8.68 similar to dBm in traditional approach and 26.13 dBm, 27.14 dBm, 26.15 dBm, -5.80 similar to dBm, 26.75 dBm and 29.05 dBm using GA approach repectively. The 5GCM and 3GPP models produces the path loss difference above 25 dB and mmMAGIC, METIS and IEEE models produces a path loss below 19 dB. Except mmMAGIC model, all models produces the recceiver power difference above 37 dBm. Therefore, the highest path loss difference of 26 dB is observed in 5GCM InH shopping mall model and the highest reccieved power difference of 39.01 dBm is observed in METIS InH shopping mall model. The results clearly demonstrate that the proposed intelligent optimization approach outperforms the traditional approach across various indoor scenarios. SPRINGER 0929-6212 1572-834X 2024 10.1007/s11277-024-11524-2 Telecommunications hybrid WOS:001291588500002 https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001291588500002 |
title |
Enhanced Indoor Path Loss and RSRP of 5G mmWave Communication System with Multi-objective Genetic Algorithm |
title_short |
Enhanced Indoor Path Loss and RSRP of 5G mmWave Communication System with Multi-objective Genetic Algorithm |
title_full |
Enhanced Indoor Path Loss and RSRP of 5G mmWave Communication System with Multi-objective Genetic Algorithm |
title_fullStr |
Enhanced Indoor Path Loss and RSRP of 5G mmWave Communication System with Multi-objective Genetic Algorithm |
title_full_unstemmed |
Enhanced Indoor Path Loss and RSRP of 5G mmWave Communication System with Multi-objective Genetic Algorithm |
title_sort |
Enhanced Indoor Path Loss and RSRP of 5G mmWave Communication System with Multi-objective Genetic Algorithm |
container_title |
WIRELESS PERSONAL COMMUNICATIONS |
language |
English |
format |
Article; Early Access |
description |
The signal strength in 5G mobile communication systems is significantly influenced by the surroundings, with key factors including the path difference, operating frequency, and obstructions at specific locations. Consequently, planning a communication system that can deliver improved signal strength becomes highly challenging. To address this issue, indoor path loss models are employed to estimate signal loss in different environments, frequencies, and distances. This paper introduces an intelligent multi-objective genetic algorithm aimed at enhancing path loss and received signal power. A comparative analysis is conducted to evaluate the performance of the proposed intelligent optimization algorithm against the traditional approach. The path loss and received power of various scenarios are estimated using various path loss models. The 5GCM indoor officce, 5GCM InH shopping mall, 3GPP TR 38.91 InH office, mmMAGIC InH office, METIS InH shopping mall, and IEEE 802.11 ad InH office indoor path loss models estimates the path loss of 62.37 dB, 62.15 dB, 63.12 dB, 50 dB, 55.18 dB, and 52.89 dB in traditional approach and 36.87 dB, 35.86 dB, 36.84 dB, 68.80 dB, 36.23 dB and 33.94 dB using GA approach and received powers of -12.17 similar to dBm, -11.37 similar to dBm, -12.17 similar to dBm, -5.80 similar to dBm, -12.24 similar to dBm and -8.68 similar to dBm in traditional approach and 26.13 dBm, 27.14 dBm, 26.15 dBm, -5.80 similar to dBm, 26.75 dBm and 29.05 dBm using GA approach repectively. The 5GCM and 3GPP models produces the path loss difference above 25 dB and mmMAGIC, METIS and IEEE models produces a path loss below 19 dB. Except mmMAGIC model, all models produces the recceiver power difference above 37 dBm. Therefore, the highest path loss difference of 26 dB is observed in 5GCM InH shopping mall model and the highest reccieved power difference of 39.01 dBm is observed in METIS InH shopping mall model. The results clearly demonstrate that the proposed intelligent optimization approach outperforms the traditional approach across various indoor scenarios. |
publisher |
SPRINGER |
issn |
0929-6212 1572-834X |
publishDate |
2024 |
container_volume |
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container_issue |
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doi_str_mv |
10.1007/s11277-024-11524-2 |
topic |
Telecommunications |
topic_facet |
Telecommunications |
accesstype |
hybrid |
id |
WOS:001291588500002 |
url |
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001291588500002 |
record_format |
wos |
collection |
Web of Science (WoS) |
_version_ |
1809679297662681088 |