OFDM

Orthogonal Frequency Division Multiplexing

Physical Layer →
Introduced in Rel-8

OFDM is a digital multi-carrier modulation scheme that divides a high-speed data stream into multiple parallel subcarriers, forming the fundamental physical layer transmission for 4G and 5G downlink due to its robustness against multipath fading.

Category
Physical Layer
Introduced
Rel-8
Where
Radio Access Network › NG-RAN (5G)
Specifications
38 specs
OFDM Description Purpose Related Classification Specifications

Description

Orthogonal Frequency Division Multiplexing (OFDM) is a sophisticated modulation and multiplexing technique that forms the backbone of modern broadband wireless systems like LTE and NR. At its core, OFDM transforms a frequency-selective wideband channel into a collection of many narrowband, flat-fading subcarriers. A high-rate serial data stream is split into numerous lower-rate parallel streams, each modulating a separate subcarrier. The critical innovation is the orthogonality of these subcarriers: they are spaced precisely at the reciprocal of the symbol duration, ensuring that at the peak of one subcarrier's waveform, all other subcarriers have zero crossings. This orthogonality allows the subcarriers to overlap in the frequency domain without causing Inter-Carrier Interference (ICI), leading to very high spectral efficiency.

The practical implementation of OFDM relies on the Inverse Fast Fourier Transform (IFFT) at the transmitter and the Fast Fourier Transform (FFT) at the receiver. The transmitter maps the parallel data symbols onto the subcarriers and performs an IFFT to generate the time-domain OFDM symbol. A Cyclic Prefix (CP) is then prepended to each symbol. The CP is a copy of the last portion of the OFDM symbol appended to its beginning. This guard interval mitigates Inter-Symbol Interference (ISI) caused by multipath propagation, as long as the delay spread of the channel is shorter than the CP duration. At the receiver, after removing the CP, the FFT operation converts the signal back to the frequency domain, where simple one-tap equalization per subcarrier can compensate for channel effects, simplifying receiver design significantly compared to single-carrier systems in wideband channels.

In 3GPP systems, OFDM parameters such as subcarrier spacing and symbol duration are carefully chosen. For LTE, a fixed 15 kHz subcarrier spacing was adopted. 5G NR introduced flexible numerology, supporting multiple subcarrier spacings (e.g., 15, 30, 60, 120 kHz) scaled by powers of two, allowing optimization for different frequency bands and use cases. OFDM's resilience to multipath, its efficient use of spectrum, and its compatibility with advanced antenna techniques like MIMO make it an indispensable technology for achieving the high data rates and reliable connectivity required by modern mobile broadband.

Purpose & Motivation

OFDM was adopted by 3GPP starting with LTE (Release 8) to overcome the limitations of the Wideband Code Division Multiple Access (WCDMA) used in 3G UMTS. WCDMA, a single-carrier spread spectrum technology, struggled with high Peak-to-Average Power Ratio (PAPR) and required complex equalizers to handle the severe inter-symbol interference in wideband, multipath channels. These factors limited achievable data rates and spectral efficiency as demand for mobile data grew exponentially.

The primary motivation for OFDM was its inherent robustness to frequency-selective fading caused by multipath propagation. By dividing the channel into narrow subcarriers, a deep fade affects only a small subset, and error correction coding can easily recover the data. This eliminates the need for complex time-domain equalizers. Furthermore, its orthogonality and efficient FFT-based implementation make it highly scalable for wide bandwidths. OFDM also provides a natural fit for frequency-domain scheduling, allowing the network to allocate the best subcarriers to different users dynamically, and for Multiple Input Multiple Output (MIMO) spatial multiplexing, which is crucial for boosting capacity. Its adoption enabled the leap from Mbps to Gbps data rates, forming the foundation for 4G and 5G performance targets.

Classification

Related approachesMIMO

Evolution Across Releases

Rel-8 Initial

Introduced OFDM as the mandatory downlink transmission scheme for LTE. Standardized a baseline numerology with 15 kHz subcarrier spacing and a scalable system bandwidth up to 20 MHz. Defined the use of a Cyclic Prefix and established OFDM as the enabler for high-speed data and frequency-domain scheduling.

Explore further

Broader topics and technologies where OFDM plays a role.

Defining Specifications

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

SpecificationTitleRelease
TR 21.905 vj00 3GPP Technical Terms and Definitions Rel-19
TS 25.123 vj00 Radio Resource Management for TDD Rel-19
TS 25.133 vj00 UTRAN RRM Requirements for FDD Rel-19
TR 25.912 vj00 Evolved UTRA and UTRAN Technical Report Rel-19
TS 36.104 vj10 Base Station (BS) radio transmission and reception Rel-19
TS 36.116 vj00 E-UTRA Relay RF Requirements Rel-19
TS 36.117 vj00 E-UTRA Relay RF Test Methods & Requirements Rel-19
TS 36.133 vj20 E-UTRA RRM Requirements Rel-19
TS 36.141 vj00 E-UTRA BS Conformance Testing Rel-19
TS 36.201 vj00 LTE Physical Layer General Description Rel-19
TS 36.216 vj00 LTE Relay Node Physical Layer Rel-19
TS 36.300 vj00 E-UTRAN Radio Interface Protocol Architecture Overview Rel-19
TS 36.302 vj00 E-UTRA Physical Layer Services Rel-19
TR 36.791 vg00 E-UTRA 2.4 GHz TDD Band for US Rel-16
TS 36.825 vd00 Study on Additional LTE TDD Configurations Rel-13
TS 36.884 vd10 MMSE-IRC Receiver Performance for LTE BS Rel-13
TR 36.902 v931 SON Use Cases and Solutions for LTE Rel-9
TS 37.141 vj10 RF Test Methods for Multi-Standard Radio Base Stations Rel-19
TS 37.145 vj10 AAS Base Station Conducted Conformance Testing Rel-19
TS 37.802 va10 MSR BS RF Requirements for Non-Contiguous Spectrum Rel-10
TR 37.829 vi00 Technical Report Rel-18
TR 37.900 vj00 Multi-Standard Radio (MSR) Base Station Requirements Rel-19
TR 37.901 vf10 UE Application Layer Data Throughput Performance Rel-15
TR 37.911 vj00 3GPP 5G NTN Self-Evaluation Report Rel-19
TS 38.133 vj20 5G UE Radio Requirements for RRC_IDLE Mobility Rel-19
TS 38.201 vj00 NR Physical Layer General Description Rel-19
TS 38.212 vj10 NR Multiplexing and Channel Coding Rel-19
TS 38.300 vj00 NG-RAN Overall Description Rel-19
TS 38.521 vj20 NR Physical Layer UE Conformance Testing Rel-19
TS 38.774 vj00 Rel-19 LP-WUS/WUR RF Requirements TR Rel-19
TR 38.812 vg00 Study on NOMA for NR Rel-16
TR 38.858 vi20 Technical Report on Evolution of NR Duplex Operation Rel-18
TR 38.869 vi00 Study on low-power wake up signal and receiver for NR Rel-18
TR 38.878 vi40 Technical Report on Advanced Receiver for MU-MIMO Rel-18
TR 38.889 vg00 NR-based access to unlicensed spectrum study Rel-16
TR 38.900 vf00 Channel Model Study for >6 GHz Rel-15
TR 38.901 vj10 Channel Model for 0.5-100 GHz Rel-19
TR 38.903 vj00 Test Tolerances & Measurement Uncertainties 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.