| Literature DB >> 35062386 |
Grigorios Kakkavas1, Maria Diamanti1, Adamantia Stamou1, Vasileios Karyotis1,2, Faouzi Bouali3, Jarno Pinola4, Olli Apilo4, Symeon Papavassiliou1, Klaus Moessner5.
Abstract
The ongoing transition towards 5G technology expedites the emergence of a variety of mobile applications that pertain to different vertical industries. Delivering on the key commitment of 5G, these diverse service streams, along with their distinct requirements, should be facilitated under the same unified network infrastructure. Consequently, in order to unleash the benefits brought by 5G technology, a holistic approach towards the requirement analysis and the design, development, and evaluation of multiple concurrent vertical services should be followed. In this paper, we focus on the Transport vertical industry, and we study four novel vehicular service categories, each one consisting of one or more related specific scenarios, within the framework of the "5G Health, Aquaculture and Transport (5G-HEART)" 5G PPP ICT-19 (Phase 3) project. In contrast to the majority of the literature, we provide a holistic overview of the overall life-cycle management required for the realization of the examined vehicular use cases. This comprises the definition and analysis of the network Key Performance Indicators (KPIs) resulting from high-level user requirements and their interpretation in terms of the underlying network infrastructure tasked with meeting their conflicting or converging needs. Our approach is complemented by the experimental investigation of the real unified 5G pilot's characteristics that enable the delivery of the considered vehicular services and the initial trialling results that verify the effectiveness and feasibility of the presented theoretical analysis.Entities:
Keywords: 5G mobile communications; key performance indicators; network requirements; network slicing; transport vertical; validation trials; vehicular services
Mesh:
Year: 2022 PMID: 35062386 PMCID: PMC8778894 DOI: 10.3390/s22020426
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Qualitative characterization of network requirements.
| Network Requirement | Ranges |
|---|---|
| DL throughput | Low ≤ 1 Mbps |
| 1 Mbps < Medium ≤ 10 Mbps | |
| 10 Mbps < High | |
| UL throughput | Low ≤ 1 Mbps |
| 1 Mbps < Medium ≤ 10 Mbps | |
| 10 Mbps < High | |
| Latency | Tight ≤ 5 ms |
| 5 ms < Medium ≤ 25 ms | |
| Loose > 25 ms | |
| Reliability | Low ≤ 99.99 |
| 99.99 < Medium ≤ 99.999 | |
| 99.999 < High ≤ 99.99999 | |
| Mobility | Low ≤ 50 km/h |
| 50 km/h < Medium ≤ 200 km/h | |
| 200 km/h < High ≤ 500 km/h | |
| Location accuracy | Low > 25 m |
| 1 m < Medium ≤ 25 m | |
| High ≤ 1 m | |
| Connection density | No specific range; 4.3 × 103 vehicles/km2 (peak) |
| Interactivity | Low ≤ 1 transactions/s |
| 1 < Medium ≤ 100 transactions/s | |
| 100 < High ≤ 1000 transactions/s | |
| Area traffic capacity | No specific range; 10 Mbps/m2 (peak) |
| Security/privacy | Low: Public |
| Medium: Restricted | |
| High: Confidential |
Figure 1Overview of the proposed methodology.
Figure 2High-level overview of the advanced use cases expected to be supported by 5G V2X.
5G-HEART Vehicular Services’ Network Key Performance Indicators.
| Network KPI | Units | Platooning (T1) | Autonomous/Assisted Driving (T2) | Support for Remote Driving (T3) | Vehicle Data Services (T4) |
|---|---|---|---|---|---|
| DL throughput | Mbps | 80 | 50 | 5 | 100 |
| UL throughput | Mbps | 80 | 10 | 20 | 100 |
| Latency | ms | 5 | 5 | 5 | 5 |
| Reliability | % | 99.99999 | 99.99999 | 99.999 | 99.999 |
| Mobility | km/h | 200 | 200 | 250 | 200 |
| Location accuracy | m | 0.5 | 0.5 | 0.5 | 0.5 |
| Connection density | vehicles/km2 | 4300 | 4300 | 4300 | 4300 |
| Interactivity | transactions/s | 100 | 1000 | 200 | 100 |
| Area traffic capacity | Mbps/m2 | 0.344 | 0.215 | 0.086 | 0.43 |
| Security/privacy | Public/Restricted/Confidential | Confidential | Confidential | Confidential | Confidential |
Figure 3Radar chart of transport use cases.
Figure 4KPIs of Transport use cases and respective scenarios.
Figure 5KPIs of the Transport vertical and related 5G service types.
Figure 6The 5G test facility architecture with estimated backhaul and fronthaul link distances.
5G test facility RAN configuration.
| Network Parameter | Configuration Value |
|---|---|
| Frequency band | 3.5 GHz (Band n78) |
| Channel bandwidth | 60 MHz |
| Duplex mode | TDD |
| DL/UL ratio | 7/3 |
| Subcarrier spacing | 30 kHz |
| Transmission time interval | 0.5 ms |
| Modulation | 256 QAM in DL |
| 64 QAM in UL | |
| MIMO | 4 × 4 in DL |
| 1 × 2 in UL |
Measured performance of a Rel-15 5G test facility.
| Network KPI | Measurement Value |
|---|---|
| Best-case DL throughput | 568 Mbps |
| Best-case UL throughput | 63 Mbps |
| Average DL latency | 4.0 ms |
| Average UL latency | 4.7 ms |
| DL reliability | 99.99% @ 11 ms |
| UL reliability | 99.99% @ 16 ms |