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UE-A UE-B UE-C eNodeB
LTE Random Access Procedure
LTE random access procedure is used by the UEs to initiate a data transfer. The UEs also obtain uplink timing information from the initial
handshake.
This sequence diagram describes the tale of three UEs (UE-A, UE-B and UE-C) that are powered on at the same time:
(1) UEs synchronize with the downlink channel by decoding the PSS and SSS signal. The UEs are synchronized to the downlink frames after
completing this procedure.
(2) The three UEs initiate the random access procedure at exactly the same time. Two of them (UE-A and UE-B) happen to pick the same
preamble. This results in a resulting in a collision. UE-C picks a distinct preamble so it succeeds in the random access procedure.
(3) Contention between UE-A and UE-B is resolved in UE-A'S favor. UE-A proceeds with the RRC connection.
(4) UE-C times out and retries the random access procedure.
� EventHelix.com Inc, 2015.
Generated with EventStudio (http://www.eventhelix.com/eventstudio/)
Primary Synchronization Signal (PSS) PSS is transmitted at the start and middle of
every 10ms frame.
Secondary Synchronization Signal (SSS) The SSS is also transmitted every 5ms. The
pattern alternates every 5ms. The UE achieves
downlink frame synchronization once it has
decoded both SSS patterns.
UEs synchronize with the eNodeB
Master Information Block (MIB) UEs download the MIB from the broadcast
channel. This channel contains information
about the location of the downlink and uplink
carrier configuration.
PDCCH DCI Format 1A
SI-RNTI
The UEs tune to the PDCCH to look for DCI
(Downlink Control Information) addressed with
the SI-RNTI. The UL-SCH assigned by the
PDCCH contains System Information Block
(SIB) messages.
System Information Block 2 (SIB2)
SI-RNTI,
Root sequence index for Zadoff Chu codes,
Zero correlation zone config,
prach frequency,
prach frequency offset
The UEs download the System Information
Blocks from the DL-SCH. SIB2 download
contains parameters needed for initial access
transmission.
UEs download the system information
Select Preamble 1 The UE-A randomly selects an RA preamble
sequence from the set of sequences available in
the cell. The preamble selection is a shift in the
Zadoff-Chu code for the cell.
RACH RA Preamble 1
RA-RNTI 1
UE-A transmits the Preamble on an RA channel.
This transmission carries no data bits. The
RA-RNTI is is implicitly specified by the timing
of the preamble transmission.
Random Access Procedure
UE-A UE-B UE-C eNodeB
Select Preamble 1 UE-B happens to select the same preamble as
UE-A.
RACH RA Preamble 1
RA-RNTI 1
UE-B transmits the preamble at the same time.
Thus UE-B also assumes RA-RNTI 1. Two UEs
transmitted using the same preamble. In this
scenario we assume that UE-B's preamble
transmission is lost.
Select Preamble 3 UE-C randomly chooses between the available
preambles. It picks Preamble 3.
RACH RA Preamble 3
RA-RNTI 1
UE-3 also transmits at the same time as UE-A
and UE-B. So UE-C also assumes the same
RA-RNTI as UE-A and UE-B. Preamble 1 and
Preamble 3 Zadoff-Chu sequences are
orthogonal to each other so both of them are
received.
Detect Preamble 1 The eNodeB detects the preamble transmission.
Estimate the Uplink Timing The eNodeB estimates the uplink transmission
timing of the UE.
Derive RA-RNTI 1 The eNodeB derives the RA-RNTI from the
timeslot number in which the preamble is
received.
Allocate Temporary C-RNTI 1 A Temporary C-RNTI is assigned to the UE.
This address will be used to address the UE in
subsequent messages.
Process Preamble 1
Detect Preamble 3 The eNodeB detects the preamble transmission.
Estimate the Uplink Timing The eNodeB estimates the uplink transmission
timing of the UE.
Derive RA-RNTI 1 The eNodeB derives the RA-RNTI from the
timeslot number in which the preamble is
received.
Allocate Temporary C-RNTI 3
Process Preamble 3
PDCCH DCI Format 1C
RA-RNTI 1
The eNode assigns resources via the PDCCH.
The PDCCH mesage is addressed by 'RA-RNTI
1' that is assigned to UE-A, UE-B and UE-C.
DL-SCH RA Response
MAC Header,
- Backoff Indicator,
- Preamble 1,
- Preamble 3,
MAC RAR 1 (for Preamble 1),
- Temporary C-RNTI 1,
- Timing Advance 1,
- Uplink Resource Grant 1,
MAC RAR 3 (for Preamble 3),
- Temporary C-RNTI 3,
- Timing Advance 3,
- Uplink Resource Grant 3
The eNodeB transmits the RA Response on the
DL-SCH channel. The message carries the
timing and uplink resource allocation for
Preamble 1 and Preamble 3. The message also
includes the back off indicator MAC header for
controlling the backoff duration in the event of
a random access procedure failure.
All three UEs receive the message as they were expecting the message on the
same RA-RNTI.
UE-A Processes RA Response
for Preamble 1
UEs Process the RA Response
UE-A UE-B UE-C eNodeB
Save Temporary C-RNTI 1 UE-A saves the Temporary C-RNTI from the
MAC data for Preamble 1.
Apply Timing Advance 1 After applying the correction, the UE is
synchronized in the return direction and can
transmits data bursts to the eNodeB.
Process Uplink Resource Grant
1
The eNodeB assigned uplink resource
information will be used to transmit the data to
the eNodeB.
Save Temporary C-RNTI 1 UE-B mistakenly believes that the RA Response
is meant for it. The RA-RNTI and Preamble in
the message match. UE-B has no way of
knowing that the message was really meant for
UE-A only.
Apply Timing Advance 1
Process Uplink Resource Grant 1 UE-B is continuing with the procedure even
though had been rejected. This situation will be
resolved after the contention resolution phase.
UE-B Processes RA Response for
Preamble 1
Save Temporary C-RNTI 3 UE-C saves the Temporary C-RNTI from the
MAC data for Preamble 3 and goes ahead with
the random access procedure normally. The
further procedure for UE-C is not shown in this
flow.
Apply Timing Advance 3
Process Uplink Resource Grant 3
UE-C Processes RA Response for
Preamble 3
The randomly selected RA preamble does not enable unique identification of the UE, and it
is possible that multiple UEs attempted RA with the same RA preamble sequence on the
same RA channel. The Contention Resolution phase helps uniquely identify the UE that has
been selected.
In this scenario, contention resolution will resolve the random access procedure between
UE-A and UE-B.
Pick Initial UE Identity as 'Random
Number A'
UE-A does not have a permanent identity, so it
picks a random number as the UE identity.
UL-SCH RRC Connection Request
ue-identity = Random Number A
The random UE identity is included in the RRC
connection request.
UE_A_T300 UE-A starts the T300 timer, awaiting the RRC
Connection Setup message.
Pick Initial UE Identity as 'Random Number B' UE-B also picks a random number as its UE
identity.
Contention Resolution
UE-A UE-B UE-C eNodeB
UL-SCH RRC Connection Request
ue-identity = Random Number B,
Establishment Cause
UE-B transmits on the same assignment and
collides with the transmission of UE-A. It is
likely that it's transmission will not be received
at the eNodeB as it is transmitting with a timing
advance that was not intended for the UE. In
this scenario, UE-B's message is lost.
UE_B_T300 UE-B also starts a timer awaiting the RRC
Connection Setup message.
PHICH ACK The eNodeB accepts the transmission from the
UE and acknowledges it with a Hybrid ARQ ack.
PDCCH DCI Format 1
Temporary C-RNTI 1
The eNodeB signals a downlink assignment
using the Temporary C-RNTI 1. Both UE-A and
UE-B assume that the assignment is for them
as both UEs think they have been assigned
Temporary C-RNTI 1.
RA Contention Resolution + RRC Connection Setup
initial UE Identity = Random Number A
UE-A and UE-B receive the RRC Connection
Setup message, as it is addressed with the
Temporary C-RNTI 1. The message also
contains 'Random Number A' as the initial
identity.
PUCCH UCI HARQ ACK UE-A receives the eNodeB's transmission so it
acknowledges the message with a Hybrid ARQ
ack.
Compare received initial UE identity
with 'Random Number A' that was
sent in the RRC Connection Request
message.
The UE, seeing its own identity echoed back,
concludes that the RA was successful and
proceeds with time-aligned operation.
UE_A_T300
Compare received initial UE identity with 'Random
Number B'
This comparison fails. UE-B realizes that it has
lost out to another UE in the contention
resolution.
PUCCH UCI SR UE-A now requests uplink resources to send
the RRC Connection Setup Complete message.
PDCCH DCI Format 0
Temporary C-RNTI 1
UE-A receives the resource assignment.
RRC Connection Setup Complete
NAS Message
UE-A sends the RRC Connection Setup
message to initiate further signaling.
RRC Connection Setup Complete handling
UE_B_T300 UE-B times for the random access procedure as
it did receive their own identity in the
contention resolution.
Select Preamble 4 UE-B retries the request.
RACH RA Preamble 1
RA-RNTI 4
UE-B retries the random access procedure.
Retry Random Access Procedure
Generated with EventStudio (http://www.eventhelix.com/eventstudio/)
UE-A UE-B UE-C eNodeB
EXPLORE MORE
LTE http://www.eventhelix.com/lte/
IMS http://www.eventhelix.com/ims/

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Lte random-access-procedure

  • 1. UE-A UE-B UE-C eNodeB LTE Random Access Procedure LTE random access procedure is used by the UEs to initiate a data transfer. The UEs also obtain uplink timing information from the initial handshake. This sequence diagram describes the tale of three UEs (UE-A, UE-B and UE-C) that are powered on at the same time: (1) UEs synchronize with the downlink channel by decoding the PSS and SSS signal. The UEs are synchronized to the downlink frames after completing this procedure. (2) The three UEs initiate the random access procedure at exactly the same time. Two of them (UE-A and UE-B) happen to pick the same preamble. This results in a resulting in a collision. UE-C picks a distinct preamble so it succeeds in the random access procedure. (3) Contention between UE-A and UE-B is resolved in UE-A'S favor. UE-A proceeds with the RRC connection. (4) UE-C times out and retries the random access procedure. � EventHelix.com Inc, 2015. Generated with EventStudio (http://www.eventhelix.com/eventstudio/) Primary Synchronization Signal (PSS) PSS is transmitted at the start and middle of every 10ms frame. Secondary Synchronization Signal (SSS) The SSS is also transmitted every 5ms. The pattern alternates every 5ms. The UE achieves downlink frame synchronization once it has decoded both SSS patterns. UEs synchronize with the eNodeB Master Information Block (MIB) UEs download the MIB from the broadcast channel. This channel contains information about the location of the downlink and uplink carrier configuration. PDCCH DCI Format 1A SI-RNTI The UEs tune to the PDCCH to look for DCI (Downlink Control Information) addressed with the SI-RNTI. The UL-SCH assigned by the PDCCH contains System Information Block (SIB) messages. System Information Block 2 (SIB2) SI-RNTI, Root sequence index for Zadoff Chu codes, Zero correlation zone config, prach frequency, prach frequency offset The UEs download the System Information Blocks from the DL-SCH. SIB2 download contains parameters needed for initial access transmission. UEs download the system information Select Preamble 1 The UE-A randomly selects an RA preamble sequence from the set of sequences available in the cell. The preamble selection is a shift in the Zadoff-Chu code for the cell. RACH RA Preamble 1 RA-RNTI 1 UE-A transmits the Preamble on an RA channel. This transmission carries no data bits. The RA-RNTI is is implicitly specified by the timing of the preamble transmission. Random Access Procedure
  • 2. UE-A UE-B UE-C eNodeB Select Preamble 1 UE-B happens to select the same preamble as UE-A. RACH RA Preamble 1 RA-RNTI 1 UE-B transmits the preamble at the same time. Thus UE-B also assumes RA-RNTI 1. Two UEs transmitted using the same preamble. In this scenario we assume that UE-B's preamble transmission is lost. Select Preamble 3 UE-C randomly chooses between the available preambles. It picks Preamble 3. RACH RA Preamble 3 RA-RNTI 1 UE-3 also transmits at the same time as UE-A and UE-B. So UE-C also assumes the same RA-RNTI as UE-A and UE-B. Preamble 1 and Preamble 3 Zadoff-Chu sequences are orthogonal to each other so both of them are received. Detect Preamble 1 The eNodeB detects the preamble transmission. Estimate the Uplink Timing The eNodeB estimates the uplink transmission timing of the UE. Derive RA-RNTI 1 The eNodeB derives the RA-RNTI from the timeslot number in which the preamble is received. Allocate Temporary C-RNTI 1 A Temporary C-RNTI is assigned to the UE. This address will be used to address the UE in subsequent messages. Process Preamble 1 Detect Preamble 3 The eNodeB detects the preamble transmission. Estimate the Uplink Timing The eNodeB estimates the uplink transmission timing of the UE. Derive RA-RNTI 1 The eNodeB derives the RA-RNTI from the timeslot number in which the preamble is received. Allocate Temporary C-RNTI 3 Process Preamble 3 PDCCH DCI Format 1C RA-RNTI 1 The eNode assigns resources via the PDCCH. The PDCCH mesage is addressed by 'RA-RNTI 1' that is assigned to UE-A, UE-B and UE-C. DL-SCH RA Response MAC Header, - Backoff Indicator, - Preamble 1, - Preamble 3, MAC RAR 1 (for Preamble 1), - Temporary C-RNTI 1, - Timing Advance 1, - Uplink Resource Grant 1, MAC RAR 3 (for Preamble 3), - Temporary C-RNTI 3, - Timing Advance 3, - Uplink Resource Grant 3 The eNodeB transmits the RA Response on the DL-SCH channel. The message carries the timing and uplink resource allocation for Preamble 1 and Preamble 3. The message also includes the back off indicator MAC header for controlling the backoff duration in the event of a random access procedure failure. All three UEs receive the message as they were expecting the message on the same RA-RNTI. UE-A Processes RA Response for Preamble 1 UEs Process the RA Response
  • 3. UE-A UE-B UE-C eNodeB Save Temporary C-RNTI 1 UE-A saves the Temporary C-RNTI from the MAC data for Preamble 1. Apply Timing Advance 1 After applying the correction, the UE is synchronized in the return direction and can transmits data bursts to the eNodeB. Process Uplink Resource Grant 1 The eNodeB assigned uplink resource information will be used to transmit the data to the eNodeB. Save Temporary C-RNTI 1 UE-B mistakenly believes that the RA Response is meant for it. The RA-RNTI and Preamble in the message match. UE-B has no way of knowing that the message was really meant for UE-A only. Apply Timing Advance 1 Process Uplink Resource Grant 1 UE-B is continuing with the procedure even though had been rejected. This situation will be resolved after the contention resolution phase. UE-B Processes RA Response for Preamble 1 Save Temporary C-RNTI 3 UE-C saves the Temporary C-RNTI from the MAC data for Preamble 3 and goes ahead with the random access procedure normally. The further procedure for UE-C is not shown in this flow. Apply Timing Advance 3 Process Uplink Resource Grant 3 UE-C Processes RA Response for Preamble 3 The randomly selected RA preamble does not enable unique identification of the UE, and it is possible that multiple UEs attempted RA with the same RA preamble sequence on the same RA channel. The Contention Resolution phase helps uniquely identify the UE that has been selected. In this scenario, contention resolution will resolve the random access procedure between UE-A and UE-B. Pick Initial UE Identity as 'Random Number A' UE-A does not have a permanent identity, so it picks a random number as the UE identity. UL-SCH RRC Connection Request ue-identity = Random Number A The random UE identity is included in the RRC connection request. UE_A_T300 UE-A starts the T300 timer, awaiting the RRC Connection Setup message. Pick Initial UE Identity as 'Random Number B' UE-B also picks a random number as its UE identity. Contention Resolution
  • 4. UE-A UE-B UE-C eNodeB UL-SCH RRC Connection Request ue-identity = Random Number B, Establishment Cause UE-B transmits on the same assignment and collides with the transmission of UE-A. It is likely that it's transmission will not be received at the eNodeB as it is transmitting with a timing advance that was not intended for the UE. In this scenario, UE-B's message is lost. UE_B_T300 UE-B also starts a timer awaiting the RRC Connection Setup message. PHICH ACK The eNodeB accepts the transmission from the UE and acknowledges it with a Hybrid ARQ ack. PDCCH DCI Format 1 Temporary C-RNTI 1 The eNodeB signals a downlink assignment using the Temporary C-RNTI 1. Both UE-A and UE-B assume that the assignment is for them as both UEs think they have been assigned Temporary C-RNTI 1. RA Contention Resolution + RRC Connection Setup initial UE Identity = Random Number A UE-A and UE-B receive the RRC Connection Setup message, as it is addressed with the Temporary C-RNTI 1. The message also contains 'Random Number A' as the initial identity. PUCCH UCI HARQ ACK UE-A receives the eNodeB's transmission so it acknowledges the message with a Hybrid ARQ ack. Compare received initial UE identity with 'Random Number A' that was sent in the RRC Connection Request message. The UE, seeing its own identity echoed back, concludes that the RA was successful and proceeds with time-aligned operation. UE_A_T300 Compare received initial UE identity with 'Random Number B' This comparison fails. UE-B realizes that it has lost out to another UE in the contention resolution. PUCCH UCI SR UE-A now requests uplink resources to send the RRC Connection Setup Complete message. PDCCH DCI Format 0 Temporary C-RNTI 1 UE-A receives the resource assignment. RRC Connection Setup Complete NAS Message UE-A sends the RRC Connection Setup message to initiate further signaling. RRC Connection Setup Complete handling UE_B_T300 UE-B times for the random access procedure as it did receive their own identity in the contention resolution. Select Preamble 4 UE-B retries the request. RACH RA Preamble 1 RA-RNTI 4 UE-B retries the random access procedure. Retry Random Access Procedure Generated with EventStudio (http://www.eventhelix.com/eventstudio/)
  • 5. UE-A UE-B UE-C eNodeB EXPLORE MORE LTE http://www.eventhelix.com/lte/ IMS http://www.eventhelix.com/ims/