Description
In 3GPP standards, High Speed Train (HST) is not a single technology but a deployment scenario and a set of associated technical enhancements to ensure quality of service for passengers traveling at very high speeds, typically up to 350 km/h or even 500 km/h in later studies. The primary challenge is the extreme Doppler effect, which causes a significant shift in the frequency of the received signal. For example, at 350 km/h on a 2 GHz carrier, the Doppler shift can be approximately ±650 Hz. This shift distorts the orthogonality of OFDM subcarriers in LTE and NR, leading to inter-carrier interference (ICI) and degrading signal quality.
To mitigate these effects, 3GPP has specified several physical layer and higher-layer adaptations. In the physical layer, User Equipment (UE) designed for HST scenarios may implement advanced channel estimation algorithms and frequency offset compensation techniques. The network can configure specific reference signals and transmission modes that are more robust to fast fading and frequent channel changes. Furthermore, the concept of 'moving cells' or 'cell group' mobility has been studied, where a train is treated as a single mobility group. Instead of each passenger's UE performing individual handovers, the network can manage the handover for the entire group of UEs simultaneously, significantly reducing signaling overhead and handover failure probability.
At the Radio Resource Management (RRM) level, handover parameters are optimized for high-speed scenarios. This includes reducing the time-to-trigger (TTT) for handover measurements and adjusting hysteresis margins to initiate handovers earlier and more reliably as the train approaches cell boundaries. Core network aspects involve optimizing the Tracking Area Update (TAU) and handover procedures to handle the rapid change of serving base stations. In 5G NR, studies in Release 15 and beyond have focused on beam management and tracking for high-speed mobility, ensuring that the narrow beams used in mmWave frequencies can be accurately steered and maintained for users on a fast-moving train.
Purpose & Motivation
The standardization of HST features was motivated by the global expansion of high-speed rail networks and the growing expectation of passengers to have uninterrupted, high-quality mobile broadband access during travel. Traditional cellular networks were optimized for pedestrian and vehicular speeds, where Doppler shifts and handover rates were manageable. At train speeds exceeding 300 km/h, these conventional mechanisms often failed, leading to dropped calls, interrupted data sessions, and poor user experience.
Initial work in 3GPP, notably around Release 8 for LTE, began studying the impact of high speed on performance. The formal creation of specific HST scenarios and test requirements aimed to provide a standardized framework for vendors and operators to develop and deploy interoperable solutions. This solved the problem of fragmented, proprietary implementations. By defining common channel models (e.g., the 'High Speed Train' channel model for testing), performance requirements, and potential enhancement techniques, 3GPP enabled the industry to systematically address the unique radio propagation and mobility challenges, ensuring that mobile communication could keep pace with modern transportation infrastructure.
Release Timeline
Detected Changes Across Releases
from 3GPP Change RequestsSpecific changes extracted from the „Change history“ tables of 3GPP specifications (35 CRs across 4 releases). Complements the general historical overview above with the evidence-based evolution of this function.
In Release 16, the HST function introduced the evaluation of a new "Unidirectional SFN" scenario intended to support train speeds higher than 350 km/h, specifically evaluated at 500 and 750 km/h. It also defined simulation assumptions and performance evaluations for this scenario, including specific channel models like "HST scenario3" and the use of a "HST enhanced UE (HeUE)" capable of handling opposite Doppler shifts using techniques like Distributed Orthogonal Antenna Ports (DOAP). Furthermore, the release clarified and specified the applicability of RRM test cases and high-speed configurations for both intra-NR and inter-RAT operations.
In Release 17, the HST function was extended to include FR2 (Frequency Range 2) operations and saw specific RRM (Radio Resource Management) enhancements for FR1. The release introduced new and corrected test cases for HST, including those for demodulation and RRM, to ensure proper validation under the defined high-speed scenarios. Furthermore, it provided clarifications and updates to the configuration and applicability of these HST test procedures.
- Introduction of function for RRM enhancements for Rel-17 NR FR1 HST TS 38.331CR2898
- HST on FR2 TS 38.331CR2933
- Clarification on the NR HST configuration TS 38.331CR3507
- Addition of applicability for NR HST TCs TS 38.522CR0092
- Correction of RRM HST test cases applicability TS 38.522CR0103
- Addition of applicability for HST test case 5.2.3.1.9_1 TS 38.522CR0105
+ 14 more changes
In Release 18, the HST (High Speed Train) function introduced specific RRM (Radio Resource Management) enhancements for Frequency Range 2 (FR2), including clarifications and new test case applicability for HST FR2 operations. The work focused on evaluating scenarios like "HST scenario 3" and SFN (Single Frequency Network) conditions, with technical analysis covering channel models, Doppler shift variations at high speeds, and UE demodulation performance under these new high-speed train scenarios.
- Introduction of Rel-18 HST FR2 RRM enhancements TS 38.331CR4428
- Clarification on highSpeedMeasFlagFR2 for HST FR2 RRM TS 38.331CR4936
- Addition of applicability of HST FR2 test cases TS 38.522CR0336
- Editorial Correction to HST TCs on release information TS 38.522CR0370
- Addition of applicability for HST FR2 test cases TS 38.522CR0376
- Additional applicability for HST FR2 test cases TS 38.522CR0416
+ 3 more changes
In Release 19, the new work for the High Speed Train (HST) function primarily involved adding applicability for specific test configurations and power classes from earlier releases. This included formally extending the applicability of the existing HST channel model and evaluation procedures, such as those for Maximum Power Reduction (MPR), to these defined test cases. The enhancements built upon the established framework for scenarios like the Unidirectional SFN, which is evaluated for speeds up to 350 km/h and potentially higher.
Explore further
Broader topics and technologies where HST plays a role.
Defining Specifications
3GPP specifications that define or reference HST, with the latest known release. Sourced from the 3GPP document catalog — see methodology.
| Specification | Title | Release |
|---|---|---|
| TS 36.878 vd00 | LTE Performance Enhancements for High Speed Scenarios | Rel-13 |
| TS 38.331 vj00 | NR Radio Resource Control (RRC) Protocol Specification | Rel-19 |
| TS 38.522 vj11 | UE Conformance Test Applicability Statement | Rel-19 |
| TR 38.852 vh50 | 1900MHz NR band for European Rail Mobile Radio | Rel-17 |
| TR 38.853 vh50 | 900MHz NR Band for European Rail Mobile Radio | Rel-17 |