Last updated: January 16, 2009
Inner loop power control in the uplink is the ability of the UE to adjust its output power in accordance with one or more TPC (transmit power control) commands received in the downlink. When the UE is not in soft handover, only one TPC command is received in each timeslot. The UE's output power changes in response to a single TPC command, TPC_cmd, derived at the UE based on the power control algorithm. TPC_cmd, along with the power control step size, determines the UE transmit output power. The power change is applied in the timeslot adjacent to the timeslot in which the TPC command is received. For example, the power change derived from a TPC command in the 10th timeslot is applied to the 11th timeslot.
The inner loop power measurement is made through a root-raised cosine (RRC) filter with a roll off of alpha=0.22 and a bandwidth equal to the chip rate (3.84 MHz). The test set measures the mean power in each timeslot, excluding the transient duration. The transient duration is from 25 microseconds before the slot boundary to 25 microseconds after the slot boundary. The relative power difference is calculated for adjacent TPC_cmds and also for 10 TPC_cmd groups (10 timeslots if using algorithm 1 and 50 slots if using algorithm 2).
You can run the inner loop power measurement in Auto Mode or Manual Mode .
The inner loop power test process specified in 3GPP TS 34.121 5.4.2 consists of a series of test segments (referred to as Test Steps in the standard, see Inner Loop Power Control Test Steps ). The test set allows you to run one Test Segment at a time.
Auto mode is used to run a single test segment as specified by 3GPP TS 34.121 5.4.2. This is achieved by selecting any one of the test segments (referred to as Test Steps in the standard) from the Test Segment menu and then initiating the measurement. You can perform the entire "Inner Loop Power Control in the Uplink" test by piecing the test segments together.
The test set behavior for each
Test Segment
is described in the table below. When you initiate the measurement with one of these test segments selected, the test set drives the UE to the proper start power for the test segment (if it is not already at the proper power) and performs a Physical Channel Reconfiguration to the proper power control algorithm and step size values for the test segment (if needed) before beginning the test.
Note that if the test segment requires a Physical Channel Reconfiguration to change to the required power control algorithm and/or step size, when the test segment completes the test set performs another Physical Channel Reconfiguration to return the connection to its pre-measurement configuration. Thus, it will save measurement execution time if you perform a Physical Channel Reconfiguration to the required power control algorithm and/or step size before beginning test of segments E and F or G and H (test segments A, B and C already match the default power control algorithm and step size in the test set).
Test Segment | Power Control Algorithm | Step Size | Start Power | TPC Command Sequence Sent by Test Set |
---|---|---|---|---|
A | Two | 1 dB | -10 dBm (+/- 1 dB) | The TPC commands sent depend upon the Number of Slots setting. |
B | Two | 1 dB | -10 dBm (+/- 1 dB) | 50 TPC commands with value 1 |
C | Two | 1 dB | 0 dBm (+/- 1 dB) | 50 TPC commands with value 0 |
Note:
Test Segment
can not be set to D. Step D in 3GPP TS 34.121 5.4.2 is automatically performed when you initiate Test Segment E. In other words, when Test Segment E is initiated, the test set sets
Power Control Algorithm
to
One
,
Step Size
to
1 dB
, and sends TPC commands with a value of 1 until the UE stops increasing its output power. The test set then sends the TPC command sequence for Step E. |
||||
E | One | 1 dB | UE's maximum power + | Up to 300 TPC commands with value 0 #, * |
F | One | 1 dB | UE's minimum power # | Up to 300 TPC commands with value 1 +, * |
G | One | 2 dB | UE's maximum power + | Up to 150 TPC commands with value 0 #, * |
One | 2 dB | UE's minimum power # | Up to 150 TPC commands with value 1 +, * | |
#
The test set sends all down bits to the UE until the UE stops decreasing its output power (is stable within +/- 0.5 dB for E, within +/- 1 dB for G). + The test set sends all up bits to the UE until the UE stops increasing its output power (is stable within +/- 0.5 dB for F, within +/- 1 dB for H). * Note: to maintain accuracy, the test set re-ranges its receiver during these sequences. During this re-ranging time, the test set sends a series of alternating power control bits to the UE to hold its output power level. |
Manual mode allows you to build a custom test segment. This is achieved by selecting
Manual
from the
Test Segment
menu. In manual mode, the UE is instructed to go to
Start Power
before starting the test. The test set then measures the UE's response by sending the TPC commands with the
Step Size
and
Power Control Algorithm
you've specified until the expected target power is equal to
Stop Power
. If necessary, the test set performs a Physical Channel Reconfiguration to the proper power control algorithm and step size values before beginning the test.
When the measurement is made in FDD test mode, the UE should be capable of deriving TPC_cmd commands in test mode. You need to configure the UE to use the proper power control algorithm and the step size before initiating a measurement, as these settings are not signalled to the UE by the test set.
No other measurements can be running during the inner loop power measurement. If any measurements are running when an inner loop power measurement is initiated, they are closed and a message is displayed to indicate that they have been closed.
To use this measurement in active cell mode, the UE must be on a call.
The test set does not support testing the UE in compressed mode with this measurement, therefore 3 dB power control step size is not allowed.
The total power of the UE on the uplink consists of the standard W-CDMA channels (UL DPCCH and DPDCH), the HSDPA control channel (HS-DPCCH) and the HSUPA channels (E-DPCCH and E-DPDCH). The target power for active power control sets the DPCCH and DPDCH power levels, so the total UE power when using HSPA is always higher than the target power. The actual offset in power depends on the ?c and ?d values, Delta CQI and Delta Ack/Nack values, and the E-TFCI of the enhanced channel. The mathematical relationship is expressed in the following formula:
For example, if HS-DPCCH is present in addition to DPCCH and 1 DPDCH, the UE Tx RF power will be:
Test Segment
See Auto Mode .
Power Control Algorithm
This setting is only applicable when
Test Segment
=
Manual
(see
Manual Mode
). Note, if
Start Power
is equal to
Stop Power
, the
Power Control Algorithm
and
Step Size
settings can not be changed and are set to
Algorithm 2
and
1 dB
. The number of slots measured is then determined by the
Number of Slots
setting.
For a description of power control algorithms one and two, see UL CL Power Ctrl Algorithm .
Step Size
This setting is only applicable when
Test Segment
=
Manual
and
Power Control Algorithm
=
One
.
Step Size
is the change in the UE's transmit power in response to a single TPC command.
Start Power
This setting is only applicable when
Test Segment
=
Manual
(see
Manual Mode
). Note, if
Start Power
is equal to
Stop Power
, the
Power Control Algorithm
and
Step Size
settings can not be changed and are set to
Algorithm 2
and
1 dB
. The number of slots measured is then determined by the
Number of Slots
setting.
Stop Power
This setting is only applicable when
Test Segment
=
Manual
(see
Manual Mode
). Note, if
Start Power
is equal to
Stop Power
, the
Power Control Algorithm
and
Step Size
settings can not be changed and are set to
Algorithm 2
and
1 dB
. The number of slots measured is then determined by the
Number of Slots
setting.
Number of Slots
This setting is only applicable when
Test Segment
=
Manual
and
Start Power
=
Stop Power
or when
Test Segment
=
A
.
The following TPC commands are sent, depending upon the
Number of Slots
setting:
For test segments E-H, pass/fail limit checking (as specified by the Transmitter Power Control Pass/Fail Ranges ) and worst case results are determined for the range of measured results bounded by the Minimum Power Threshold for Test (MinPTT) and the Maximum Power Threshold for Test (MaxPTT). You can set MinPTT and MaxPTT manually, or let the test set automatically determine these values.
To follow the test method specified by 3GPP TS 34.121 5.4.2, set
Maximum Power Threshold for Test Control
to
Auto
, set
Maximum Output Power Test Tolerance
to
0.7 dB
, set
Minimum Power Threshold for Test Control
to
Manual
, and
Minimum Power Threshold for Test Manual
to
-49 dBm
.
Maximum Power Threshold for Test Control
Manual
: MaxPTT is determined by the
Maximum Power Threshold for Test Manual
setting.
Auto
: MaxPTT is determined automatically by the test set as follows -
Maximum Power Threshold for Test Manual
When
Maximum Power Threshold for Test Control
is set to
Manual
, this setting specifies the MaxPTT.
Maximum Output Power Test Tolerance
When
Maximum Power Threshold for Test Control
is set to
Auto
, this setting allows you to modify the MaxPTT value used by the test set.
Minimum Power Threshold for Test Control
Manual
: MinPTT is determined by the
Minimum Power Threshold for Test Manual
setting.
Auto
: MinPTT is determined automatically by the test set as follows -
Minimum Power Threshold for Test Manual
When
Minimum Power Threshold for Test Control
is set to
Manual
, this setting specifies the MinPTT.
Minimum Output Power Test Tolerance
When
Minimum Power Threshold for Test Control
is set to
Auto
, this setting allows you to modify the MinPTT value used by the test set.
Before the test set can measure the UE's response to power control bits, it must drive the UE to the proper starting power as determined by the
Test Segment
's start power (see
Test Segment Descriptions
) or by the
Start Power
setting (when
Test Segment
=
Manual
). When the measurement is initiated, the test set sends power control bits to drive the UE to the required start power. The amount of time needed to drive the UE to the proper starting power depends upon the UE's current output power level and the power control algorithm used to drive the UE's output power. The amount of time the test set waits for this initial ranging to complete is determined by the following settings:
When
UE Range Time Control
is set to
Auto
, the test set automatically determines a sufficient UE range time and does not begin measuring UE output power until that time has elapsed.
When
UE Range Time Control
is set to
Manual
, when the measurement is initiated, the test set waits a time equal to
Manual UE Range Time
before beginning measurement of the UE's output power (during this wait time the test set sends power control bits to drive the UE to the required start power). Manual UE range time control is especially useful if you know that the UE's output power is already at the required starting power. In this case, you can set
Manual UE Range Time
to zero and start the measurement immediately, and thus minimize the measurement execution time.
GPIB command: SETup:WILPower:MS:RANGe:TIME:CONTrol:AUTO
This setting determines the UE range time when
UE Range Time Control
is set to
Manual
.
GPIB command: SETup:WILPower:MS:RANGe:TIME:CONTrol:AUTO
You can set the pass/fail ranges applied for each
Test Segment
(when in
Auto Mode
) or in
Manual Mode
(based on power control algorithm, power step size and direction).
Auto Mode : The following tables indicate how the pass/fail range settings map to the 3GPP TS 34.121 5.4.2.5 test requirements and the test segments to which they apply:
Manual Mode : The following table indicates for which manual test scenarios the pass/fail range settings are applied.
Trigger Delay
You can adjust the beginning of the measurement interval for each slot measured using the
Trigger Delay
setting. This is useful if your UE's output power change in response to TPC commands is delayed. You can then shift the measurement interval to match the delay in the UE's response.
Note,
Trigger Delay
should only be set to a non-zero value if your UE's output power response to TPC commands is delayed (i.e. if your UE is not operating properly). If your UE is behaving correctly in the timing of power changes in response to TPC commands, non-zero values of the
Trigger Delay
setting can cause unspecified results.
Measurement Timeout
: (see
Measurement Timeouts
).
The test set can run a single one of the test segments at a time resulting in pass/fail and trace data that can be accessed via the MUI or RUI.
Which timeslots are evaluated for pass/fail criteria (as specified by Transmitter Power Control Pass/Fail Ranges ) and worst case results are determined as follows:
You must calibrate this measurement using the
Calibrate Measurements
procedure (see
Calibrating the Test Set
).
Manual Operation: How Do I Make an Inner Loop Power Measurement?
Programming an Inner Loop Power Measurement