2-Step RACH in 5G-NR
2-Step RACH in 5G-NR

2-Step RACH in 5G-NR

?In Earlier versions of NR Releases prior to R-16, There was only one type of RACH procedure which is kind of similar to LTE RACH procedure also known as 4-Step RACH procedure. 4-Step RACH process is discussed in detail in an another article.

In Release-16 NR version, 3GPP Introduced a new 2-Step RACH procedure that aims to improve the overall latency of RACH procedure.

Now, there are two RACH procedures and 3GPP has categorized it into two types

  1. Type-1 Random access procedure(4-Step-RACH) and
  2. Type-2?Random access procedure(2-Step-RACH).

So what's the benefit of having a 2-Step RACH process over a 4-Step RACH process

  • It Reduces the Latency compared to the 4-step RACH process.
  • Reduces the Control Signaling overhead at the gNB.

No alt text provided for this image


?To Implement 2-Step RACH Procedure, 3GPP defined a list of design targets that reflect the motivation behind the introduction of 2-Step RACH procedure.

  • A common design for 3 main use cases of 5G-NR (mMTC, URLLC and eMBB) and for both licensed and unlicensed spectrum
  • 2-step RACH procedure potentially has benefits for channel access
  • The triggers for 4-step RACH are also applicable to 2-step RACH and hence 2-step RACH could be applied for all RRC states. ( Edit the slide that has All RACH Triggers)
  • 2-step RACH is applied for RRC_INACTIVE , RRC_CONNECTED and RRC_IDLE state
  • 2-step RACH is applicable to any cell size supported in Rel-15 NR and shall be able to operate regardless of whether the UE has valid Timing Alignment(TA) or not.

Below is the high-level call-flow of 2-Step RACH &?4-Step RACH Procedure

high level call-flow of 2-Step RACH & 4-Step RACH Procedure

The Preamble selection process remains the same in the 2-Step RACH process but there is furthermore information in MsgA. 2-Step RACH consists of 1 round trip transfer of control signaling between UE and gNb.

  1. MsgA Transmission from UE to gNB
  2. MsgB Reception at UE from gNB.

We will discuss in detail MsgA transmission in the article and MsgB and other rach scenarios will be discussed in another article.

MsgA Contents

  1. PRACH Preamble Transmission
  2. MsgA-PUSCH Transmission

PRACH Preamble Transmission

  • The Preamble Selection and transmission is the same as 4-Step RACH process, UE follows the similar Procedure?of 4-Step RACH while selecting a Random Access preamble.
  • All the preamble formats and the PRACH configuration indexes defined in Rel-15 and in Rel-16 NR-U can be used.
  • In the case of shared time-domain PRACH resources between 4-step RACH and 2-step RACH, different preambles are allocated to differentiate the RA types.
  • The mapping between SSB and PRACH occasion reuses that for 4-step RACH.
  • The PRACH occasion can be shared between 2-StepRA and the 4-step RA procedure.

How does the UE know which RACH type to use for Initial access or any other IDLE or Connected mode scenarios?

In the Case of Initial Access

  • UE checks SIB message to see what Type of RA is defined, If both 2-step and 4-step RA type Random Access Resources are configured then
  • UE will check if RSRP of the downlink path loss reference is above msgA-RSRP-Threshold
  • If its above msgA-RSRP-Threshold?then it will select 2-Step RA else it will select 4-Step RA
  • Or if only 2-step RA is configured then UE will select 2-Step RA
  • Or if only 4- Step RA is configured then UE will select 4-Step RA

?In the case of?reconfiguration with sync (Mobility/RRC_Connected)

  • If the contention-free Random Access Resources for 2-step RA type have been explicitly provided in rach-ConfigDedicated for the BWP selected for Random Access procedure then, the UE will select 2-stepRA or,
  • If the contention-free Random Access Resources for 4-step RA type have been explicitly provided in rach-ConfigDedicated for the BWP selected for Random Access procedure then, the?UE will select 4-stepRA.

msgA-PUSCH transmission

PUSCH message is transmitted in the case of 2-Step RA as part of msgA. How and when this message is transmitted by UE is discussed in this section

What is a PUSCH Occasion?

A PUSCH occasion for PUSCH transmission is defined by a frequency resource and a time resource and is associated with a DMRS resource. The DMRS resources are provided by msgA-DMRS-Configuration.?Simply put PUSCH occasions are time and frequency resources where a UE can send PUSCH in the uplink.

How UE knows when to transmit PUSCH for MsgA ?

There are a couple of ways the UE gets this information from the network, either in SIB1 when the UE is not in a connected state, or when the UE is rrc_connected state and this information is passed on to UE by dedicated signaling for example during a handover procedure.?

When does the UE transmit MsgA PUSCH?

  • UE transmits PUSCH message after PRACH is transmitted.
  • The first PUSCH transmitted is encoded with Redundancy version 0 i.e RV=0.
  • There is no HARQ ACK for msg-A PUSCH transmission.
  • The PUSCH is transmitted after N symbols of PRACH transmission,
  • where N=2 for u = 0 or u=1
  • where N=4 for u = 2 or u=3

Where u is the SCS for UL BWP

  • PUSCH is transmitted by UE at PUSCH Occasions configured by the network in RRC message IE msgA-PUSCH-Config.
  • In the case of initial access msgA-PUSCH-Config is provided in the initial UL BWP of SIB1 RRC message.
  • If the UE is in RRC_connected mode the network can configure msgA-PUSCH-Config as part of active UL BWP.

MsgA-PUSCH transmission information

There are two aspects related to information regarding MsgA Pusch transmission Time-domain information and?Frequency domain information

Frequency domain information :?

MsgA Pusch transmission Freuency domain information

Most of the information relayed below is represented in the above diagram.

  • The number of PUSCH occasions available in the frequency domain is provided by nrMsgA-PO-FDM.
  • Consecutive PUSCH occasions in the frequency domain are separated by a number of RBs provided by guardBandMsgA-PUSCH.
  • The starting PRB of PUSCH Occasion is given by an offset value with respect to PRB#0 and is provided by frequencyStartMsgA-PUSCH
  • Th number of Frequency multiplexed PUSCH occasions in a time instance is provided by nrofMsgA-PO-FDM
  • The number of PRB's per PUSCH occasion is provided by i.e.?nrofPRBs-PerMsgA-PO.
  • Frequency Hopping for msgA-PUSCH transmission if configured is indicated by msgA-intraSlotFrequencyHopping .
  • The Frequency offset for the second hop is determined by msgA-HoppingBits .
  • ?If guardPeriodMsgA-PUSCH is provided, a first symbol of the second hop is separated by guardPeriodMsgA-PUSCH symbols from the end of the last symbol of the first hop; otherwise, there is no time separation of the PUSCH transmission before and after frequency hopping.
  • If a UE is provided with useInterlacePUCCH-PUSCH in BWP-UplinkCommon, the UE shall transmit PUSCH without frequency hopping
  • PUSCH is CRC scrambled with MsgB-RNTI .
  • Similar to RACH GroupA and Group B Preambles, PUSCH resources for GroupA preambles and GroupB preambles can be defined separately.
  • msgA-PUSCH-ResourceGroupA : MsgA PUSCH resources that the UE shall use when performing MsgA transmission using preambles group A.
  • msgA-PUSCH-ResourceGroupB : MsgA PUSCH resources that the UE shall use when performing MsgA transmission using preambles group B.

Time-domain information :?

MsgA Pusch transmission Time domain information

  • When a First PUSCH Occasion is available after PRACH slot is determined by msgA-PUSCH-TimeDomainOffset in an active UL BWP.
  • A Single time offset with respect to the start of each PRACH slot and PUSCH occasion slot is given by msgA-PUSCH-TimeDomainOffset.
  • An important thing to note here is that PRACH and PUSCH transmission cannot happen in the same slot, there should be a min gap of at least 1 slot.
  • msgA-PUSCH-TimeDomainOffset provides an offset in the number of slots in the active UL BWP from the start if a PRACH slot.
  • The number of Consecutive PUSCH occasions within each slot are separated by guard Period in symbols defined by
  • The number of time-domain PUSCH occasions in each slot is provided by nrofMsgA-PO-perSlot
  • The number?of consecutive slots that include PUSCH occasions is provided by nrofSlotsMsgA-PUSCH.
  • Similar to regular PUSCH transmissions, for msgA PUSCH transmissions SLIV and PUSCH type can be defined in RRC message by IE msgA-PUSCH-TimeDomainAllocation
  • msgA-PUSCH-TimeDomainAllocation?points to the PUSCH-TimeDomainResourceAllocationList provided in PUSCHConfigCommon.
  • If there is no table provided in PUSCHConfigCommon then UE will lookup the default 3GPP table from Table 6.1.2.1.1-2 in 38.214
  • The Value of K2 is not used for msgA PUSCH.
  • UE can use startSymbolAndLengthMsgA-PO-r16?for SLIV and mappingTypeMsgA-PUSCH-r16 for Pusch mapping type if msgA-PUSCH-TimeDomainAllocation?IE is not present.
  • A UE is provided a DMRS configuration for a PUSCH transmission in a PUSCH occasion in an active UL BWP by msgA-DMRS-Config.
  • A UE is provided an MCS for data information in a PUSCH transmission for a PUSCH occasion by msgA-MCS

Restrictions on msA-PUSCH Transmission

?For Paired Spectrum (FDD)

  • A PUSCH occasion is valid if it does not overlap in time and frequency with any PRACH occasion associated with either a Type-1 random access procedure or a Type-2 random access procedure.

?For un-paired Spectrum (TDD)

Case1: If the IE tdd-UL-DL-ConfigurationCommon is configured

  • A PUSCH occasion is valid if the PUSCH occasion does not precede a SS/PBCH block in the PUSCH slot and,
  • PUSCH occasion starts at least?symbols after a last SS/PBCH block symbol

Case2: If the IE tdd-UL-DL-ConfigurationCommon is not configured

  • A PUSCH occasion is valid if the PUSCH occasion is within UL symbols, or
  • The PUSCH occasion does not precede a SS/PBCH block in the PUSCH slot, and
  • The PUSCH occasion starts at least N_"gap"?symbols after the last downlink symbol and at least N_"gap"?symbols after a last SS/PBCH block symbol

I have written in detail about Msg-B Contents in the below articles

2-Step RACH : MsgB Reception

2-Step RACH : MsgA Transmission

Rahil Husain Khan

System Analyst with 14 years of development and integration experience in 4G and 5G(NSA and SA both)

3 年

Thanks Syed for the detailed explanation.

Rajeeb Senapati

Sr. Lead Engineer at Qualcomm

3 年

well explained

Santhosh Nagarajan

Senior Chief Engineer at Samsung R&D

3 年

Thanks for sharing

Pushkar Bandi

Senior Manager-5G R&D Wireless-Product Management @Tejas Networks

3 年

Nice Detailing, Good one

Swetha Kerahalli ????

System Architect at Nokia Bangalore

3 年

Very useful...Thanks for posting....

要查看或添加评论,请登录

Syed M.的更多文章

  • NR RACH Process

    NR RACH Process

    NR RACH Process is similar to LTE, and there are two categories for NR Random access procedure 1. Contention based…

    30 条评论
  • Channel Raster in 5G-NR and how it is different compared to LTE/UMTS

    Channel Raster in 5G-NR and how it is different compared to LTE/UMTS

    During the Initial cell selection process, the UE has to scan the frequency bands and acquire the synchronization…

    1 条评论

社区洞察

其他会员也浏览了