Latency-Sensitive Wireless Communication in Dynamically Moving Robots for Urban Mobility Applications
Identifikátory výsledku
Kód výsledku v IS VaVaI
<a href="https://www.isvavai.cz/riv?ss=detail&h=RIV%2F61989100%3A27230%2F25%3A10258391" target="_blank" >RIV/61989100:27230/25:10258391 - isvavai.cz</a>
Výsledek na webu
<a href="https://www.mdpi.com/2624-6511/8/4/105" target="_blank" >https://www.mdpi.com/2624-6511/8/4/105</a>
DOI - Digital Object Identifier
<a href="http://dx.doi.org/10.3390/smartcities8040105" target="_blank" >10.3390/smartcities8040105</a>
Alternativní jazyky
Jazyk výsledku
angličtina
Název v původním jazyce
Latency-Sensitive Wireless Communication in Dynamically Moving Robots for Urban Mobility Applications
Popis výsledku v původním jazyce
Highlights This paper explores the impact of robot motion dynamics on wireless communication for urban environments. Experimental results show that higher speeds and rotational movements degrade WiFi performance, increasing latency and packet loss. In contrast, 5G networks maintain low latency and strong stability, even under electromagnetic interference. The findings highlight the advantages of 5G and the need for motion-aware communication strategies in mobile robotic systems. What are the main findings? Dynamic robot movements-especially high forward velocity and yaw rotation-significantly degrade network communication, increasing latency and packet loss. 5G networks maintain low latency, reduced packet loss, and strong resilience to electromagnetic interference, even during complex robotic motion. What is the implication of the main finding? Robotic systems should incorporate motion-aware communication strategies and trajectory planning to maintain reliable real-time connectivity. 5G technology is better suited for latency-sensitive urban robotic applications, offering more robust performance in dynamic and interference-prone environments.Highlights This paper explores the impact of robot motion dynamics on wireless communication for urban environments. Experimental results show that higher speeds and rotational movements degrade WiFi performance, increasing latency and packet loss. In contrast, 5G networks maintain low latency and strong stability, even under electromagnetic interference. The findings highlight the advantages of 5G and the need for motion-aware communication strategies in mobile robotic systems. What are the main findings? Dynamic robot movements-especially high forward velocity and yaw rotation-significantly degrade network communication, increasing latency and packet loss. 5G networks maintain low latency, reduced packet loss, and strong resilience to electromagnetic interference, even during complex robotic motion. What is the implication of the main finding? Robotic systems should incorporate motion-aware communication strategies and trajectory planning to maintain reliable real-time connectivity. 5G technology is better suited for latency-sensitive urban robotic applications, offering more robust performance in dynamic and interference-prone environments.Highlights This paper explores the impact of robot motion dynamics on wireless communication for urban environments. Experimental results show that higher speeds and rotational movements degrade WiFi performance, increasing latency and packet loss. In contrast, 5G networks maintain low latency and strong stability, even under electromagnetic interference. The findings highlight the advantages of 5G and the need for motion-aware communication strategies in mobile robotic systems. What are the main findings? Dynamic robot movements-especially high forward velocity and yaw rotation-significantly degrade network communication, increasing latency and packet loss. 5G networks maintain low latency, reduced packet loss, and strong resilience to electromagnetic interference, even during complex robotic motion. What is the implication of the main finding? Robotic systems should incorporate motion-aware communication strategies and trajectory planning to maintain reliable real-time connectivity. 5G technology is better suited for latency-sensitive urban robotic applications, offering more robust performance in dynamic and interference-prone environments. Abstract Reliable wireless communication is essential for mobile robotic systems operating in dynamic environments, particularly in the context of smart mobility and cloud-integrated urban infrastructures. This article presents an experimental study analyzing the impact of robot motion dynamics on wireless network performance, contributing to the broader discussion on data reliability and communication efficiency in intelligent transportation systems. Measurements were conducted using a quadruped robot equipped with an onboard edge computing device, navigating predefined trajectories in a laboratory setting designed to emulate real-world variability. Key wireless parameters, including signal strength (RSSI), latency, and packet loss, were continuously monitored alongside robot kinematic data such as speed, orientation (roll, pitch, yaw), and movement patterns. The results show a significant correlation between dynamic motion-especially high forward velocities and rotational maneuvers-and degradations in network performance. Increased robot speeds and frequent orientation changes were associated with elevated latency and greater packet loss, while static or low-motion periods exhibited more stable communication. These findings highlight critical challenges for real-time data transmission in mobile IoRT (Internet of Robotic Things) systems, and emphasize the role of network-aware robotic behavior, interoperable communication protocols, and edge-to-cloud data integration in ensuring robust wireless performance within smart city environments.
Název v anglickém jazyce
Latency-Sensitive Wireless Communication in Dynamically Moving Robots for Urban Mobility Applications
Popis výsledku anglicky
Highlights This paper explores the impact of robot motion dynamics on wireless communication for urban environments. Experimental results show that higher speeds and rotational movements degrade WiFi performance, increasing latency and packet loss. In contrast, 5G networks maintain low latency and strong stability, even under electromagnetic interference. The findings highlight the advantages of 5G and the need for motion-aware communication strategies in mobile robotic systems. What are the main findings? Dynamic robot movements-especially high forward velocity and yaw rotation-significantly degrade network communication, increasing latency and packet loss. 5G networks maintain low latency, reduced packet loss, and strong resilience to electromagnetic interference, even during complex robotic motion. What is the implication of the main finding? Robotic systems should incorporate motion-aware communication strategies and trajectory planning to maintain reliable real-time connectivity. 5G technology is better suited for latency-sensitive urban robotic applications, offering more robust performance in dynamic and interference-prone environments.Highlights This paper explores the impact of robot motion dynamics on wireless communication for urban environments. Experimental results show that higher speeds and rotational movements degrade WiFi performance, increasing latency and packet loss. In contrast, 5G networks maintain low latency and strong stability, even under electromagnetic interference. The findings highlight the advantages of 5G and the need for motion-aware communication strategies in mobile robotic systems. What are the main findings? Dynamic robot movements-especially high forward velocity and yaw rotation-significantly degrade network communication, increasing latency and packet loss. 5G networks maintain low latency, reduced packet loss, and strong resilience to electromagnetic interference, even during complex robotic motion. What is the implication of the main finding? Robotic systems should incorporate motion-aware communication strategies and trajectory planning to maintain reliable real-time connectivity. 5G technology is better suited for latency-sensitive urban robotic applications, offering more robust performance in dynamic and interference-prone environments.Highlights This paper explores the impact of robot motion dynamics on wireless communication for urban environments. Experimental results show that higher speeds and rotational movements degrade WiFi performance, increasing latency and packet loss. In contrast, 5G networks maintain low latency and strong stability, even under electromagnetic interference. The findings highlight the advantages of 5G and the need for motion-aware communication strategies in mobile robotic systems. What are the main findings? Dynamic robot movements-especially high forward velocity and yaw rotation-significantly degrade network communication, increasing latency and packet loss. 5G networks maintain low latency, reduced packet loss, and strong resilience to electromagnetic interference, even during complex robotic motion. What is the implication of the main finding? Robotic systems should incorporate motion-aware communication strategies and trajectory planning to maintain reliable real-time connectivity. 5G technology is better suited for latency-sensitive urban robotic applications, offering more robust performance in dynamic and interference-prone environments. Abstract Reliable wireless communication is essential for mobile robotic systems operating in dynamic environments, particularly in the context of smart mobility and cloud-integrated urban infrastructures. This article presents an experimental study analyzing the impact of robot motion dynamics on wireless network performance, contributing to the broader discussion on data reliability and communication efficiency in intelligent transportation systems. Measurements were conducted using a quadruped robot equipped with an onboard edge computing device, navigating predefined trajectories in a laboratory setting designed to emulate real-world variability. Key wireless parameters, including signal strength (RSSI), latency, and packet loss, were continuously monitored alongside robot kinematic data such as speed, orientation (roll, pitch, yaw), and movement patterns. The results show a significant correlation between dynamic motion-especially high forward velocities and rotational maneuvers-and degradations in network performance. Increased robot speeds and frequent orientation changes were associated with elevated latency and greater packet loss, while static or low-motion periods exhibited more stable communication. These findings highlight critical challenges for real-time data transmission in mobile IoRT (Internet of Robotic Things) systems, and emphasize the role of network-aware robotic behavior, interoperable communication protocols, and edge-to-cloud data integration in ensuring robust wireless performance within smart city environments.
Klasifikace
Druh
J<sub>imp</sub> - Článek v periodiku v databázi Web of Science
CEP obor
—
OECD FORD obor
20301 - Mechanical engineering
Návaznosti výsledku
Projekt
—
Návaznosti
S - Specificky vyzkum na vysokych skolach
Ostatní
Rok uplatnění
2025
Kód důvěrnosti údajů
S - Úplné a pravdivé údaje o projektu nepodléhají ochraně podle zvláštních právních předpisů
Údaje specifické pro druh výsledku
Název periodika
Smart Cities
ISSN
2624-6511
e-ISSN
—
Svazek periodika
8
Číslo periodika v rámci svazku
4
Stát vydavatele periodika
CH - Švýcarská konfederace
Počet stran výsledku
25
Strana od-do
nestránkováno
Kód UT WoS článku
001558264900001
EID výsledku v databázi Scopus
2-s2.0-105014353401