DM-RS

Demodulation Reference Signal

Physical Layer →
Introduced in Rel-11

DM-RS is a reference signal embedded within a physical data channel's resources to enable coherent demodulation by providing a known signal for channel estimation, which is essential for accurately decoding the transmitted data.

Category
Physical Layer
Introduced
Rel-11
Where
Radio Access Network › NG-RAN (5G)
Specifications
20 specs
DM-RS Description Purpose Related Classification Detected Changes Specifications

Description

Demodulation Reference Signals (DM-RS) are pilot signals defined in the 3GPP physical layer specifications for LTE and NR. They are specifically designed to aid in the demodulation of associated physical data channels, such as the Physical Downlink Shared Channel (PDSCH), Physical Uplink Shared Channel (PUSCH), and Physical Sidelink Shared Channel (PSSCH). Unlike cell-specific reference signals (CRS in LTE), DM-RS are user-specific and are transmitted only within the resource blocks allocated to a particular user's data transmission. This means they experience the same precoding, beamforming, and channel conditions as the data symbols themselves, providing a highly accurate channel estimate for the intended receiver.

Architecturally, DM-RS are multiplexed with data symbols in the time-frequency grid. Their specific pattern—density, location, and sequence—is configurable and signaled via higher-layer (RRC) or dynamic (DCI) signaling. In NR, the design is highly flexible, supporting front-loaded DM-RS (placed at the beginning of a slot for early channel estimation), additional DM-RS symbols for high-mobility scenarios, and configurable density (e.g., single-symbol or double-symbol). The sequence generation for DM-RS is based on pseudo-random sequences, scrambled with parameters like the physical layer cell identity, slot number, and a user-specific scrambling identity to minimize interference between different users' reference signals.

How DM-RS works is central to modern OFDM-based systems. Upon receiving a transmission, the UE or gNB extracts the DM-RS symbols from the known positions within its allocated resources. It then compares the received DM-RS with the locally generated, known reference sequence. The difference between the transmitted and received sequences characterizes the radio channel's impact—including effects like fading, Doppler shift, and phase rotation. This channel estimate is then used to equalize the received data symbols, effectively reversing the channel's distortion and allowing for coherent demodulation. For Multi-User MIMO (MU-MIMO), orthogonal DM-RS ports are assigned to different users sharing the same time-frequency resources, enabling the receiver to separate and demodulate its own data stream despite the interference. The role of DM-RS is therefore indispensable for achieving high spectral efficiency, supporting advanced multi-antenna techniques, and ensuring reliable data reception in challenging radio environments.

Purpose & Motivation

DM-RS were introduced to address the limitations of common reference signals (like CRS in LTE) in supporting advanced multi-antenna technologies and user-specific beamforming. In early LTE releases, CRS were transmitted across the entire cell bandwidth and subframe, providing a cell-wide channel estimate. However, this approach became inefficient for MU-MIMO and beamforming, where the effective channel is specific to a user's precoding weights. Transmitting CRS for all antenna ports also created significant overhead and interference.

The primary problem DM-RS solves is enabling accurate, user-specific channel estimation for precoded transmissions. Since DM-RS undergo the same precoding as the data, the receiver can estimate the composite channel (physical channel combined with precoder), which is exactly what is needed to demodulate the data. This user-specific nature reduces pilot overhead when only a subset of resources is allocated, and it is essential for supporting a large number of antenna elements in Massive MIMO. It also enhances security and interference management, as the DM-RS sequence is user-specific and harder for unintended receivers to exploit.

Furthermore, the evolution to NR demanded even greater flexibility to support diverse use cases, from enhanced mobile broadband (eMBB) to ultra-reliable low-latency communication (URLLC). The configurable DM-RS patterns in NR allow the system to trade off between overhead and channel estimation accuracy dynamically. For low-latency slots with short durations, front-loaded DM-RS enable rapid decoding. For high-speed train scenarios, additional DM-RS symbols provide frequent channel tracking. Thus, DM-RS are a foundational physical layer technology that enables the high performance, flexibility, and efficiency of 4G and 5G radio access networks.

Classification

Part ofCSI-RS
Related approachesPT-RS

Release Timeline

Detected Changes Across Releases

from 3GPP Change Requests

Specific changes extracted from the „Change history“ tables of 3GPP specifications (10 CRs across 4 releases). Complements the general historical overview above with the evidence-based evolution of this function.

Rel-16 2 changes

In Release 16, specific corrections were introduced for the Demodulation Reference Signal (DM-RS). These included a correction on DM-RS presence for PDSCH mapping type B and a correction related to OFDM signal generation and PSSCH DM-RS time-domain orthogonal cover codes (OCC) as detailed in TS 38.211. The adjustments ensure proper signal generation and reference signal mapping for various physical channels.

  • Correction on DM-RS presence with PDSCH mapping type B TS 38.211CR0065
  • Correction on OFDM signal generation and PSSCH DM-RS time-domain OCC in TS 38.211 TS 38.211CR0072
Rel-17 1 change

In Release 17, the primary update for DM-RS was the clarification of the PUSCH DM-RS generation procedure. This specifically addressed the demodulation reference signal for PUSCH when using sub-PRB allocations, ensuring unambiguous implementation.

  • Clarification of PUSCH DM-RS generation TS 38.211CR0099
Rel-18 3 changes

In Release 18, new performance requirements were specified for PUSCH transmissions utilizing DM-RS bundling. Furthermore, enhancements were introduced for UE DM-RS transmission procedures in Non-Terrestrial Networks, specifically supporting RACH-less handover and RACH-less LTM (Link Time Mask) operations.

  • CR on performance requirements for PUSCH with DM-RS bundling TS 38.108CR0090
  • CR on performance requirements for PUSCH with DM-RS bundling TS 38.108CR0098
  • CR for UE DM-RS transmission in NTN RACH-less HO or RACH-less LTM in TS 38.214 TS 38.214CR0670
Rel-19 4 changes

In Release 19, specific enhancements were made to DM-RS for procedures like RACH-less handover and RACH-less LTM switch, with corrections applied to the conformance testing for PUSCH using enhanced DM-RS and DM-RS bundling. The updates clarified performance requirement applicability and corrected the sequence generation for uplink DM-RS in the specified mobility scenarios.

  • (NR_MIMO_evo_DL_UL-Perf)CR for 38.141-2, Correction on manufacturer declarations for PUSCH with enhanced DM-RS for BS type 1-H TS 38.141CR0635
  • (NR_cov_enh-Perf)CR for 38.141-2, Correction on applicability of requirements for different receiver antenna connectors for performance requirements for PUSCH with DM-RS bundling for BS type 1-O TS 38.141CR0686
  • CR on sequence generation for uplink DM-RS in RACH-less HO in TS 38.211 TS 38.211CR0165
  • CR on sequence generation for uplink DM-RS in RACH-less LTM switch in TS 38.211 TS 38.211CR0168

Explore further

Broader topics and technologies where DM-RS plays a role.

Defining Specifications

3GPP specifications that define or reference DM-RS, with the latest known release. Sourced from the 3GPP document catalog — see methodology.

SpecificationTitleRelease
TS 36.211 vj10 LTE Physical Layer Specification Rel-19
TS 36.766 vf00 LTE BS Interference Cancellation Receiver Study Rel-15
TS 36.871 vb00 Downlink MIMO Enhancement for LTE-Advanced Rel-11
TS 36.884 vd10 MMSE-IRC Receiver Performance for LTE BS Rel-13
TR 37.910 vj00 5G SRIT and NR RIT Self-Evaluation Report Rel-19
TS 38.101 vj31 NR User Equipment Radio Transmissions Rel-19
TS 38.104 vj20 NR Base Station RF Requirements Rel-19
TS 38.108 vj20 NTN NR Satellite Access Node RF Requirements Rel-19
TS 38.141 vj20 NR Base Station RF Conformance Testing Part 1 Rel-19
TS 38.174 vj10 NR Integrated Access and Backhaul Radio Spec Rel-19
TS 38.176 vj20 IAB Conformance Testing Specification Rel-19
TS 38.181 vj10 NR Satellite Access Node RF Testing Rel-19
TS 38.211 vj10 NR Physical Channels and Modulation Rel-19
TS 38.214 vj10 NR Physical Layer Procedures for Data Rel-19
TS 38.331 vj00 NR Radio Resource Control (RRC) Protocol Specification Rel-19
TS 38.521 vj20 NR Physical Layer UE Conformance Testing Rel-19
TR 38.802 ve20 Study on New Radio Access Technology Physical Layer Aspects Rel-14
TS 38.863 vj10 NR NTN RF and Co-existence Spec Rel-19
TR 38.889 vg00 NR-based access to unlicensed spectrum study Rel-16
TR 38.912 vj00 Study on New Radio Access Technology Rel-19
Patrick Zandl

About the author: Patrick Zandl (b. 1974)

Telecommunications specialist, technology journalist (founder of the Mobil server), and developer who has been running since 2025 — the largest Czech-language resource on AI-assisted programming. Formerly Chief Wizard Architect at Prusa3D and head of development for Turris at CZ.NIC; currently a consultant and instructor on AI implementation in companies.