Performance Evaluation of the Precision Time Protocol (PTP) over a Commercial 5G Campus Network
(2026) EITM02 20261Department of Electrical and Information Technology
- Abstract
- Accurate time synchronization is a fundamental requirement for industrial systems,
particularly applications relying on deterministic communication and coordinated
control. While the Precision Time Protocol (PTP), or IEEE 1588, can achieve a
sub-microsecond accuracy in wired local networks, its performance over wireless
networks such as Fifth Generation Mobile Network (5G) remains challenging due
to signal propagation effects and varying wireless delays from radio scheduling.
This thesis presents an experimental evaluation of PTP performance over a
commercial 5G campus network in an industrial research environment. A wired
Ethernet network is used as the baseline to benchmark the impact of wireless
connectivity. The study focuses... (More) - Accurate time synchronization is a fundamental requirement for industrial systems,
particularly applications relying on deterministic communication and coordinated
control. While the Precision Time Protocol (PTP), or IEEE 1588, can achieve a
sub-microsecond accuracy in wired local networks, its performance over wireless
networks such as Fifth Generation Mobile Network (5G) remains challenging due
to signal propagation effects and varying wireless delays from radio scheduling.
This thesis presents an experimental evaluation of PTP performance over a
commercial 5G campus network in an industrial research environment. A wired
Ethernet network is used as the baseline to benchmark the impact of wireless
connectivity. The study focuses on two primary key performance indicators: syn-
chronization accuracy, represented by the mean of the time offset between PTP
master and slave, and synchronization precision, represented by the standard de-
viation of the offset. The obtained results show that PTP over 5G can maintain
synchronization accuracy close to zero microseconds under the evaluated test sce-
narios. However, the precision is significantly degraded as compared to wired
Ethernet due to the 5G network’s lack of support to compensate for the transit
delay and packet delay variations.
Further analysis reveals that the dominant factor affecting time-sync perfor-
mance is packet delay variation from 5G resource configuration and scheduling.
The impact of message timestamping, radio signal conditions, and downlink-uplink
delay asymmetry is found to be secondary as compared to the delay variability in-
troduced by the 5G network. The findings indicate that, although PTP over 5G is
able to support applications requiring microsecond-level synchronization accuracy
and precision, its current performance is not sufficient for time-critical industrial
applications which require a sub-microsecond precision. This work provides ex-
perimental insights into the limitations of wireless-based time synchronization and
highlights the need for network-level enhancements to support deterministic com-
munication over 5G. (Less) - Popular Abstract
- Modern industries rely on precise timing to ensure that machines, sensors, and
control systems work together correctly. In wired networks, this synchronization
can be extremely accurate, often within less than one microsecond. However, as
industries move toward wireless communication using 5G, maintaining this level
of precision becomes more difficult.
This thesis investigates how well time synchronization works when using a
private 5G network. Instead of using simulations, the study is based on real
experiments conducted in an industrial research environment. The performance
of wireless synchronization is compared to a traditional wired setup.
The results show that 5G can maintain overall timing alignment, meaning
devices remain... (More) - Modern industries rely on precise timing to ensure that machines, sensors, and
control systems work together correctly. In wired networks, this synchronization
can be extremely accurate, often within less than one microsecond. However, as
industries move toward wireless communication using 5G, maintaining this level
of precision becomes more difficult.
This thesis investigates how well time synchronization works when using a
private 5G network. Instead of using simulations, the study is based on real
experiments conducted in an industrial research environment. The performance
of wireless synchronization is compared to a traditional wired setup.
The results show that 5G can maintain overall timing alignment, meaning
devices remain synchronized on average. However, the stability of this synchro-
nization is much worse than in wired networks. In simple terms, the timing is
correct on average, but it fluctuates significantly over time.
The main reason for this behavior is how 5G networks schedule data trans-
mission. Unlike wired connections, where data is sent immediately, 5G introduces
delays that vary depending on network load and resource allocation. These varia-
tions directly affect time synchronization.
The study also shows that improving hardware or signal quality alone does
not significantly solve the problem. Instead, the main limitation comes from the
wireless network itself.
In conclusion, while 5G can support time synchronization for less demanding
applications, it is currently not precise enough for the most critical industrial use cases. Future improvements in network design and scheduling will be necessary to achieve reliable, high-precision synchronization over wireless networks. (Less)
Please use this url to cite or link to this publication:
https://lup.lub.lu.se/student-papers/record/9236638
- author
- Syahputra, Sofyan Hadi LU
- supervisor
- organization
- course
- EITM02 20261
- year
- 2026
- type
- H2 - Master's Degree (Two Years)
- subject
- report number
- LU/LTH-EIT 2026-1169
- language
- English
- id
- 9236638
- date added to LUP
- 2026-06-17 13:44:16
- date last changed
- 2026-06-17 13:44:16
@misc{9236638,
abstract = {{Accurate time synchronization is a fundamental requirement for industrial systems,
particularly applications relying on deterministic communication and coordinated
control. While the Precision Time Protocol (PTP), or IEEE 1588, can achieve a
sub-microsecond accuracy in wired local networks, its performance over wireless
networks such as Fifth Generation Mobile Network (5G) remains challenging due
to signal propagation effects and varying wireless delays from radio scheduling.
This thesis presents an experimental evaluation of PTP performance over a
commercial 5G campus network in an industrial research environment. A wired
Ethernet network is used as the baseline to benchmark the impact of wireless
connectivity. The study focuses on two primary key performance indicators: syn-
chronization accuracy, represented by the mean of the time offset between PTP
master and slave, and synchronization precision, represented by the standard de-
viation of the offset. The obtained results show that PTP over 5G can maintain
synchronization accuracy close to zero microseconds under the evaluated test sce-
narios. However, the precision is significantly degraded as compared to wired
Ethernet due to the 5G network’s lack of support to compensate for the transit
delay and packet delay variations.
Further analysis reveals that the dominant factor affecting time-sync perfor-
mance is packet delay variation from 5G resource configuration and scheduling.
The impact of message timestamping, radio signal conditions, and downlink-uplink
delay asymmetry is found to be secondary as compared to the delay variability in-
troduced by the 5G network. The findings indicate that, although PTP over 5G is
able to support applications requiring microsecond-level synchronization accuracy
and precision, its current performance is not sufficient for time-critical industrial
applications which require a sub-microsecond precision. This work provides ex-
perimental insights into the limitations of wireless-based time synchronization and
highlights the need for network-level enhancements to support deterministic com-
munication over 5G.}},
author = {{Syahputra, Sofyan Hadi}},
language = {{eng}},
note = {{Student Paper}},
title = {{Performance Evaluation of the Precision Time Protocol (PTP) over a Commercial 5G Campus Network}},
year = {{2026}},
}