Description
The High Speed Physical Downlink Shared Channel (HS-PDSCH) is the physical layer realization of the High Speed Downlink Shared Channel (HS-DSCH) in UMTS High-Speed Downlink Packet Access (HSDPA). It is the radio bearer over which the actual user data packets are transmitted from the Node B to the User Equipment (UE). Multiple HS-PDSCHs can be allocated to a single UE in a given Transmission Time Interval (TTI) to achieve higher data rates, and these channels are shared among all UEs in the cell on a TTI-by-TTI basis. The HS-PDSCH is characterized by its use of a fixed spreading factor (SF=16) and its operation on secondary scrambling codes, which distinguishes it from the primary scrambling code used for common and dedicated channels.
From a physical layer perspective, the HS-PDSCH carries the coded and modulated transport blocks of the HS-DSCH. The channel employs adaptive modulation, switching between Quadrature Phase Shift Keying (QPSK), 16-Quadrature Amplitude Modulation (16QAM), and later 64QAM (from Release 7), based on the Channel Quality Indicator (CQI) reported by the UE. The choice of modulation and the Transport Block Size (TBS) directly determines the instantaneous data rate. The channelization codes for the HS-PDSCH are drawn from a pool of codes with a spreading factor of 16, separate from the code tree used for dedicated channels (DCH). A UE can be assigned between 1 and 15 such codes in a TTI, depending on its capability (UE category), channel conditions, and scheduler decision. The set of codes is indicated to the UE via the associated HS-SCCH.
The transmission process is tightly synchronized. In each 2 ms TTI (subframe), the Node B scheduler decides which UE(s) to serve, selects the modulation and coding scheme (MCS), and allocates a specific set of channelization codes. This control information is sent on the HS-SCCH, which starts two slots (approx. 1.33 ms) before the corresponding HS-PDSCH transmission. This gives the UE time to decode the HS-SCCH and configure its receiver for the impending data transmission. The HS-PDSCH itself carries no explicit control information; all necessary decoding parameters are provided by the HS-SCCH. After attempting to decode the data, the UE sends a HARQ acknowledgment (ACK or NACK) on the uplink HS-DPCCH. The physical layer processing includes channel coding (Turbo coding), physical channel segmentation, and interleaving, as defined for the HS-DSCH transport channel, before mapping to the HS-PDSCH physical channel symbols.
Purpose & Motivation
The HS-PDSCH was created as the physical layer enabler for the high-speed shared channel concept of HSDPA. Prior to HSDPA, downlink user data in UMTS was primarily carried on the Dedicated Physical Channel (DPCH), which was inefficient for bursty packet data. The DPCH used a variable spreading factor and required permanent code allocation per user, leading to code tree exhaustion and limited peak rates. The HS-PDSCH addressed these limitations by adopting a fixed, low spreading factor (SF=16) and operating on secondary scrambling codes, which freed up the primary code tree for voice and signaling. This design allowed the system to allocate a large, contiguous block of channelization codes (up to 15) to a single user for a very short duration (2 ms), enabling very high peak data rates.
Its introduction solved the fundamental physical layer bottleneck for downlink throughput. By fixing the spreading factor, the chip rate per symbol was effectively increased, allowing more data bits per symbol when combined with higher-order modulation. The use of secondary scrambling codes created a parallel, dedicated resource pool for high-speed data that did not interfere with the operation of legacy Release 99 channels. Furthermore, the short TTI and the decoupling of control (HS-SCCH) from data (HS-PDSCH) allowed for the rapid, flexible scheduling and link adaptation that are hallmarks of HSPA. The HS-PDSCH is thus the physical workhorse that translated the HSDPA transport channel enhancements into tangible radio performance gains, making UMTS competitive with other broadband wireless technologies.
Classification
Detected Changes Across Releases
from 3GPP Change RequestsSpecific changes extracted from the „Change history“ tables of 3GPP specifications (1 CRs across 1 releases). Complements the general historical overview above with the evidence-based evolution of this function.
Studied in Rel-5, normative work from Rel-15.
In Release 15, a simplified HS-SCCH (High Speed Shared Control Channel) for UMTS was newly introduced to support HS-PDSCH operation. This change aimed to reduce control channel overhead and complexity. The specific technical details of the simplification are not described in the provided grounding context.
- Support on a simplified HS-SCCH for UMTS TS 25.433CR2095
Explore further
Broader topics and technologies where HS-PDSCH plays a role.
Defining Specifications
3GPP specifications that define or reference HS-PDSCH, with the latest known release. Sourced from the 3GPP document catalog — see methodology.
| Specification | Title | Release |
|---|---|---|
| TS 25.101 vj00 | UTRA FDD UE RF Requirements | Rel-19 |
| TS 25.102 vj00 | UTRA TDD RF Characteristics | Rel-19 |
| TS 25.133 vj00 | UTRAN RRM Requirements for FDD | Rel-19 |
| TS 25.141 vj00 | UTRA FDD Base Station RF Conformance Testing | Rel-19 |
| TS 25.142 vj00 | UTRA TDD Base Station RF Test Methods | Rel-19 |
| TS 25.202 vj00 | 7.68Mcps TDD Option Technical Specification | Rel-19 |
| TS 25.211 vj00 | UTRA FDD Layer 1: Transport & Physical Channels | Rel-19 |
| TS 25.212 vj00 | UTRA FDD Layer 1 Multiplexing & Channel Coding | Rel-19 |
| TS 25.213 vj00 | UTRA FDD Spreading and Modulation | Rel-19 |
| TS 25.214 vj00 | UTRA FDD Physical Layer Procedures | Rel-19 |
| TS 25.221 vj00 | UTRA TDD Physical Layer Specification | Rel-19 |
| TS 25.222 vj00 | UTRA TDD Multiplexing & Channel Coding | Rel-19 |
| TS 25.223 vj00 | UTRA Physical Layer TDD Spreading & Modulation | Rel-19 |
| TS 25.224 vj00 | UTRA TDD Physical Layer Procedures | Rel-19 |
| TS 25.301 vj00 | UE-UTRAN Radio Interface Protocol Architecture | Rel-19 |
| TS 25.308 vj00 | HSDPA Overall Description | Rel-19 |
| TS 25.433 vj00 | Node B Application Part (NBAP) Protocol | Rel-19 |
| TS 25.766 vd10 | Network-Assisted Interference Cancellation for UMTS | Rel-13 |
| TS 25.874 vb00 | HSPA Feedback & Signalling Efficiency for LCR TDD | Rel-11 |
| TR 25.903 vj00 | Continuous Connectivity for Packet Data Users | Rel-19 |
| TR 25.927 ve00 | Energy Saving Solutions for UMTS Node B | Rel-14 |
| TR 25.929 vj00 | Continuous Connectivity for Packet Data Users | Rel-19 |
| TR 25.931 vj00 | UTRAN Signalling Procedures Examples | Rel-19 |
| TS 37.814 vc00 | L-band Supplemental Downlink for UTRA/E-UTRA | Rel-12 |
| TR 37.901 vf10 | UE Application Layer Data Throughput Performance | Rel-15 |