Wireless Light Fidelity Channel Capacity Improvement Using Sparse Sampled Non-Orthogonal Frequency Shift Keying

A new technique, which can increase the wireless light fidelity channel capacity based on the white light emitting diode, is proposed. It is implemented by using the non-orthogonal frequency shift keying and the sparse carrier sampling at the same time. The proposed method is verified by using the 1...

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Main Authors: Daewoong Cheong, Sang Min Yoon, Gangjoon Yoon, Dongsun Seo, Yong-Yuk Won
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8760469/
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spelling doaj-8f7774ea1b0247eb90db9ec52509071e2021-03-29T23:58:52ZengIEEEIEEE Access2169-35362019-01-017951709517710.1109/ACCESS.2019.29283118760469Wireless Light Fidelity Channel Capacity Improvement Using Sparse Sampled Non-Orthogonal Frequency Shift KeyingDaewoong Cheong0Sang Min Yoon1https://orcid.org/0000-0001-8402-6264Gangjoon Yoon2Dongsun Seo3Yong-Yuk Won4https://orcid.org/0000-0001-6710-5999Department of Mathematics, Chungbuk National University, Cheongju, South KoreaCollege of Computer Science, Kookmin University, Seoul, South KoreaNational Institute for Mathematical Sciences, Daejeon, South KoreaDepartment of Electronic Engineering, Myongji University, Yongin, South KoreaDepartment of Electronic Engineering, Myongji University, Yongin, South KoreaA new technique, which can increase the wireless light fidelity channel capacity based on the white light emitting diode, is proposed. It is implemented by using the non-orthogonal frequency shift keying and the sparse carrier sampling at the same time. The proposed method is verified by using the 1-meter wireless visible light communication link with the 30-MHz frequency response. The maximum power penalty due to the sparse carrier sampling is 6 dB at the compression ratio of 62.5 %. The bit error rate of $9.5\times 10^{-4}$ is measured at the frequency spacing of 0.1 MHz (1% of 10-MHz RF carrier). The wireless channel capacity of 130 Mb/s, which corresponds to 13 times of on-off keying-non-return to zero signal (10Mb/s), is obtained at the compression ratio of 70 % using the proposed technique. We also confirm that the 16-NoFSK signal with the 26-dB input signal to noise ratio can be recovered even at the compression ratio of 75 % when the received optical power is more than -6 dBm.https://ieeexplore.ieee.org/document/8760469/Light emitting diodeslight fidelityluminescent devicesmicrowave photonicsnon-orthogonal frequency shift keyingphosphorescence
collection DOAJ
language English
format Article
sources DOAJ
author Daewoong Cheong
Sang Min Yoon
Gangjoon Yoon
Dongsun Seo
Yong-Yuk Won
spellingShingle Daewoong Cheong
Sang Min Yoon
Gangjoon Yoon
Dongsun Seo
Yong-Yuk Won
Wireless Light Fidelity Channel Capacity Improvement Using Sparse Sampled Non-Orthogonal Frequency Shift Keying
IEEE Access
Light emitting diodes
light fidelity
luminescent devices
microwave photonics
non-orthogonal frequency shift keying
phosphorescence
author_facet Daewoong Cheong
Sang Min Yoon
Gangjoon Yoon
Dongsun Seo
Yong-Yuk Won
author_sort Daewoong Cheong
title Wireless Light Fidelity Channel Capacity Improvement Using Sparse Sampled Non-Orthogonal Frequency Shift Keying
title_short Wireless Light Fidelity Channel Capacity Improvement Using Sparse Sampled Non-Orthogonal Frequency Shift Keying
title_full Wireless Light Fidelity Channel Capacity Improvement Using Sparse Sampled Non-Orthogonal Frequency Shift Keying
title_fullStr Wireless Light Fidelity Channel Capacity Improvement Using Sparse Sampled Non-Orthogonal Frequency Shift Keying
title_full_unstemmed Wireless Light Fidelity Channel Capacity Improvement Using Sparse Sampled Non-Orthogonal Frequency Shift Keying
title_sort wireless light fidelity channel capacity improvement using sparse sampled non-orthogonal frequency shift keying
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2019-01-01
description A new technique, which can increase the wireless light fidelity channel capacity based on the white light emitting diode, is proposed. It is implemented by using the non-orthogonal frequency shift keying and the sparse carrier sampling at the same time. The proposed method is verified by using the 1-meter wireless visible light communication link with the 30-MHz frequency response. The maximum power penalty due to the sparse carrier sampling is 6 dB at the compression ratio of 62.5 %. The bit error rate of $9.5\times 10^{-4}$ is measured at the frequency spacing of 0.1 MHz (1% of 10-MHz RF carrier). The wireless channel capacity of 130 Mb/s, which corresponds to 13 times of on-off keying-non-return to zero signal (10Mb/s), is obtained at the compression ratio of 70 % using the proposed technique. We also confirm that the 16-NoFSK signal with the 26-dB input signal to noise ratio can be recovered even at the compression ratio of 75 % when the received optical power is more than -6 dBm.
topic Light emitting diodes
light fidelity
luminescent devices
microwave photonics
non-orthogonal frequency shift keying
phosphorescence
url https://ieeexplore.ieee.org/document/8760469/
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