Ahmed I. Abdulshakoor;Najah Abu Ali;Hossam S. Hassanein
{"title":"ris辅助链路分析:迈向可靠和低延迟通信","authors":"Ahmed I. Abdulshakoor;Najah Abu Ali;Hossam S. Hassanein","doi":"10.1109/OJCOMS.2025.3614548","DOIUrl":null,"url":null,"abstract":"Reconfigurable intelligent surface (RIS) has recently emerged as a promising technology to enhance the performance of wireless communication networks. While outage probability has been widely analyzed in RIS-assisted systems, the impact of packet delay remains largely unexplored, despite its critical role in ensuring Quality of Service (QoS) for delay-sensitive applications. This paper presents a comprehensive analysis of packet delay in single and double RIS-assisted communication systems. The analysis derives the signal-to-noise ratio (SNR) distribution under Nakagami-m fading conditions, explicitly incorporating small-scale fading, inter-RIS channel correlations, and RIS phase errors–factors often ignored in previous studies. The RIS phase error, arising from imperfect channel estimation or limited phase control precision, is modeled by a von Mises distribution. Using these distributions, we establish closed-form expressions for average packet delay, providing a novel characterization of RIS-assisted communication performance. Additionally, an outage probability analysis is conducted for the double RIS scenario, capturing the effects of inter-RIS fading and cascaded channel interactions to offer a more complete performance characterization. Performance evaluations, comprising numerical and simulation-based tests, examine the impact of key system parameters, including the number of RIS reflecting elements, fading severity, transmit SNR, and user-RIS distance on outage and delay. Results demonstrate that increasing the number of reflecting elements improves both delay and outage performance, with double RIS configurations outperforming single setups in supporting higher target rates, extending communication coverage, and reducing latency. These results provide insights for optimizing RIS deployment in next-generation wireless networks, particularly for ultra-reliable low-latency communications (URLLC) and real-time applications.","PeriodicalId":33803,"journal":{"name":"IEEE Open Journal of the Communications Society","volume":"6 ","pages":"8442-8459"},"PeriodicalIF":6.3000,"publicationDate":"2025-09-24","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=11178242","citationCount":"0","resultStr":"{\"title\":\"Analysis of RIS-Assisted Links: Toward Reliable and Low-Latency Communications\",\"authors\":\"Ahmed I. Abdulshakoor;Najah Abu Ali;Hossam S. 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Using these distributions, we establish closed-form expressions for average packet delay, providing a novel characterization of RIS-assisted communication performance. Additionally, an outage probability analysis is conducted for the double RIS scenario, capturing the effects of inter-RIS fading and cascaded channel interactions to offer a more complete performance characterization. Performance evaluations, comprising numerical and simulation-based tests, examine the impact of key system parameters, including the number of RIS reflecting elements, fading severity, transmit SNR, and user-RIS distance on outage and delay. Results demonstrate that increasing the number of reflecting elements improves both delay and outage performance, with double RIS configurations outperforming single setups in supporting higher target rates, extending communication coverage, and reducing latency. 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Analysis of RIS-Assisted Links: Toward Reliable and Low-Latency Communications
Reconfigurable intelligent surface (RIS) has recently emerged as a promising technology to enhance the performance of wireless communication networks. While outage probability has been widely analyzed in RIS-assisted systems, the impact of packet delay remains largely unexplored, despite its critical role in ensuring Quality of Service (QoS) for delay-sensitive applications. This paper presents a comprehensive analysis of packet delay in single and double RIS-assisted communication systems. The analysis derives the signal-to-noise ratio (SNR) distribution under Nakagami-m fading conditions, explicitly incorporating small-scale fading, inter-RIS channel correlations, and RIS phase errors–factors often ignored in previous studies. The RIS phase error, arising from imperfect channel estimation or limited phase control precision, is modeled by a von Mises distribution. Using these distributions, we establish closed-form expressions for average packet delay, providing a novel characterization of RIS-assisted communication performance. Additionally, an outage probability analysis is conducted for the double RIS scenario, capturing the effects of inter-RIS fading and cascaded channel interactions to offer a more complete performance characterization. Performance evaluations, comprising numerical and simulation-based tests, examine the impact of key system parameters, including the number of RIS reflecting elements, fading severity, transmit SNR, and user-RIS distance on outage and delay. Results demonstrate that increasing the number of reflecting elements improves both delay and outage performance, with double RIS configurations outperforming single setups in supporting higher target rates, extending communication coverage, and reducing latency. These results provide insights for optimizing RIS deployment in next-generation wireless networks, particularly for ultra-reliable low-latency communications (URLLC) and real-time applications.
期刊介绍:
The IEEE Open Journal of the Communications Society (OJ-COMS) is an open access, all-electronic journal that publishes original high-quality manuscripts on advances in the state of the art of telecommunications systems and networks. The papers in IEEE OJ-COMS are included in Scopus. Submissions reporting new theoretical findings (including novel methods, concepts, and studies) and practical contributions (including experiments and development of prototypes) are welcome. Additionally, survey and tutorial articles are considered. The IEEE OJCOMS received its debut impact factor of 7.9 according to the Journal Citation Reports (JCR) 2023.
The IEEE Open Journal of the Communications Society covers science, technology, applications and standards for information organization, collection and transfer using electronic, optical and wireless channels and networks. Some specific areas covered include:
Systems and network architecture, control and management
Protocols, software, and middleware
Quality of service, reliability, and security
Modulation, detection, coding, and signaling
Switching and routing
Mobile and portable communications
Terminals and other end-user devices
Networks for content distribution and distributed computing
Communications-based distributed resources control.