{"title":"Digital signal processing issues for wireless communication systems in Line of Sight(LOS) and Non Line of Sight (NLOS) environments","authors":"M. Premkumar, M. AshokRaj, S. Chandra, M. Prasana","doi":"10.1109/ICCPCT.2016.7530141","DOIUrl":null,"url":null,"abstract":"This paper is written to convey the digital signal processing (DSP) issues experienced by wireless communication systems which are the limiting factors for enhanced spectral efficiency, link reliability and data rate, with respect to physical (PHY) layer and network throughput, latency and propagation delay pertaining to network layer for future wireless related applications. Normally, a wireless communication system has radio frequency (RF) sector as the front end and digital signal processing sector as the back end. Issues in the RF section are addressed at the fabrication level by consideration of suitable chip fabrication technologies. Whereas digital signal processing section, forming the baseband sector after analog to digital converter (ADC) is concerned with prime issue of channel estimation which is essential for data detection in a wireless communication system performance. Though, other issues of DSP in a wireless communication system exist such as time-frequency synchronization, power control, and interference minimization, this paper considers the issue of channel estimation because of its aforementioned significance. In this paper, channel estimation issue of DSP is performed under multipath fading scenarios which are normally Non Line of Sight (NLOS) environments modeled by distributions such as Rayleigh distribution, Nakagami and Line of Sight (LOS) environment by Ricean distribution. Simulation results are performed to evaluate the metric of mean square error (MSE) against signal to noise ratio (SNR) for channel estimation algorithms in LOS and NLOS environments. Based on obtained wireless channel values bit error rate (BER) performance is also analyzed.","PeriodicalId":431894,"journal":{"name":"2016 International Conference on Circuit, Power and Computing Technologies (ICCPCT)","volume":null,"pages":null},"PeriodicalIF":0.0000,"publicationDate":"2016-03-18","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"1","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"2016 International Conference on Circuit, Power and Computing Technologies (ICCPCT)","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1109/ICCPCT.2016.7530141","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 1
Abstract
This paper is written to convey the digital signal processing (DSP) issues experienced by wireless communication systems which are the limiting factors for enhanced spectral efficiency, link reliability and data rate, with respect to physical (PHY) layer and network throughput, latency and propagation delay pertaining to network layer for future wireless related applications. Normally, a wireless communication system has radio frequency (RF) sector as the front end and digital signal processing sector as the back end. Issues in the RF section are addressed at the fabrication level by consideration of suitable chip fabrication technologies. Whereas digital signal processing section, forming the baseband sector after analog to digital converter (ADC) is concerned with prime issue of channel estimation which is essential for data detection in a wireless communication system performance. Though, other issues of DSP in a wireless communication system exist such as time-frequency synchronization, power control, and interference minimization, this paper considers the issue of channel estimation because of its aforementioned significance. In this paper, channel estimation issue of DSP is performed under multipath fading scenarios which are normally Non Line of Sight (NLOS) environments modeled by distributions such as Rayleigh distribution, Nakagami and Line of Sight (LOS) environment by Ricean distribution. Simulation results are performed to evaluate the metric of mean square error (MSE) against signal to noise ratio (SNR) for channel estimation algorithms in LOS and NLOS environments. Based on obtained wireless channel values bit error rate (BER) performance is also analyzed.
本文旨在探讨无线通信系统所面临的数字信号处理(DSP)问题,这些问题是未来无线相关应用中提高频谱效率、链路可靠性和数据速率的限制因素,涉及物理层和网络吞吐量、网络层的延迟和传播延迟。通常,无线通信系统以射频(RF)扇区为前端,以数字信号处理扇区为后端。射频部分的问题通过考虑合适的芯片制造技术在制造水平上得到解决。而数字信号处理部分,即模数转换器(ADC)后形成的基带扇区,涉及到无线通信系统性能中对数据检测至关重要的信道估计问题。尽管DSP在无线通信系统中还存在时频同步、功率控制和干扰最小化等问题,但本文考虑的是信道估计问题,因为它具有上述意义。本文研究了基于Rayleigh分布、Nakagami分布和Ricean分布的非视距环境(Non - Line of Sight, NLOS)多径衰落场景下DSP信道估计问题。仿真结果评估了在LOS和NLOS环境下信道估计算法的均方误差(MSE)与信噪比(SNR)的度量。根据获取的无线信道值,分析了误码率(BER)性能。