{"title":"Performance analysis of a SAC-OCDMA FSO network","authors":"U. Bhanja, A. Khuntia, A. Swati","doi":"10.1109/ISPCC.2017.8269580","DOIUrl":null,"url":null,"abstract":"With the emerging of advanced technologies in the global market, now-a-days optical networks are the most ideal medium for high bandwidth communication. Optical wireless networks predicated on free space optics (FSO) technology must be designed to combat changes in the atmosphere, which can affect FSO system performance capacity. FSO is a security module due to Line of sight operation and does not require any system security upgradations. However, FSO requires secured communication for longer distance. FSO has been used in different ways to provide fast communication connectivity in inaccessible areas. Various methodologies are introduced to enhance FSO performance in terms of security that leads to the development of the secured FSO system. Optical code division multiple access (OCDMA) is becoming more popular in the field of optical communication, due to asynchronous transmission, flexibility, security and scalability. The major advantage of OCDMA is its efficient use of spectrum as well as the multiuser communication capabilities. OCDMA requires spectral amplitude coding (SAC) to minimize the impact of multiuser interference and also suppress the effect of phase induced intensity noise (PIIN) with fixed in phase cross-correlation. In this work, SAC-OCDMA over FSO communication design is proposed. In this paper, SAC-OCDMA FSO communication system is evaluated at 10 Gbps using Modified random diagonal (MRD) code that possesses better auto correlation, minimum cross correlation and high cardinality. The proposed SAC-OCDMA MRD is compared with the existing Multi-diagonal (MD) and Random diagonal (RD) codes under different weather conditions. The simulation results signify that optical system based on MRD code is better than MD and RD codes in terms of bit error rate (BER). The simulation results are validated using Optisystem version 14.","PeriodicalId":142166,"journal":{"name":"2017 4th International Conference on Signal Processing, Computing and Control (ISPCC)","volume":"16 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2017-09-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"6","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"2017 4th International Conference on Signal Processing, Computing and Control (ISPCC)","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1109/ISPCC.2017.8269580","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 6
Abstract
With the emerging of advanced technologies in the global market, now-a-days optical networks are the most ideal medium for high bandwidth communication. Optical wireless networks predicated on free space optics (FSO) technology must be designed to combat changes in the atmosphere, which can affect FSO system performance capacity. FSO is a security module due to Line of sight operation and does not require any system security upgradations. However, FSO requires secured communication for longer distance. FSO has been used in different ways to provide fast communication connectivity in inaccessible areas. Various methodologies are introduced to enhance FSO performance in terms of security that leads to the development of the secured FSO system. Optical code division multiple access (OCDMA) is becoming more popular in the field of optical communication, due to asynchronous transmission, flexibility, security and scalability. The major advantage of OCDMA is its efficient use of spectrum as well as the multiuser communication capabilities. OCDMA requires spectral amplitude coding (SAC) to minimize the impact of multiuser interference and also suppress the effect of phase induced intensity noise (PIIN) with fixed in phase cross-correlation. In this work, SAC-OCDMA over FSO communication design is proposed. In this paper, SAC-OCDMA FSO communication system is evaluated at 10 Gbps using Modified random diagonal (MRD) code that possesses better auto correlation, minimum cross correlation and high cardinality. The proposed SAC-OCDMA MRD is compared with the existing Multi-diagonal (MD) and Random diagonal (RD) codes under different weather conditions. The simulation results signify that optical system based on MRD code is better than MD and RD codes in terms of bit error rate (BER). The simulation results are validated using Optisystem version 14.
随着全球市场先进技术的不断涌现,光网络成为当今高带宽通信最理想的媒介。基于自由空间光学(FSO)技术的光纤无线网络必须设计成能够抵抗大气变化的能力,因为大气变化会影响FSO系统的性能。FSO是一个安全模块,由于视线操作,不需要任何系统安全升级。但是,无线光通信需要更远距离的安全通信。无线光通信以不同的方式用于在人迹罕至的地区提供快速通信连接。介绍了各种方法来提高无线光控系统在安全性方面的性能,从而开发出安全的无线光控系统。光码分多址(OCDMA)由于具有异步传输、灵活性、安全性和可扩展性等优点,在光通信领域得到越来越广泛的应用。OCDMA的主要优点是有效利用频谱和多用户通信能力。OCDMA需要频谱幅度编码(SAC)来最大限度地减少多用户干扰的影响,并抑制具有固定相位互相关的相位诱导强度噪声(PIIN)的影响。在这项工作中,提出了基于FSO的SAC-OCDMA通信设计。本文采用自相关性能好、互相关最小、基数高的改进随机对角码(MRD),对10gbps速率下的SAC-OCDMA FSO通信系统进行了评价。在不同的天气条件下,将所提出的SAC-OCDMA MRD与现有的多对角码(MD)和随机对角码(RD)进行了比较。仿真结果表明,基于MRD码的光学系统在误码率方面优于基于MD和RD码的光学系统。使用Optisystem version 14对仿真结果进行了验证。