Last updated: January 16, 2009
3GPP TS 34.121 s5.13 states "The Error Vector Magnitude is a measure of the difference between the reference waveform and the measured waveform. This difference is called the error vector. Both waveforms pass through a matched Root Raised Cosine filter with bandwidth 3,84 MHz and roll-off a = 0,22. Both waveforms are then further modified by selecting the frequency, absolute phase, absolute amplitude and chip clock timing so as to minimise the error vector. The EVM result is defined as the square root of the ratio of the mean error vector power to the mean reference power expressed as a %."
The waveform quality measurement in the test set compares the received signal's IQ modulation characteristics to an ideal signal, as defined in 3GPP TS 34.121 s5.13 and annex B.
 
When on a non-HSDPA connection, you must set 
Trigger Source
 to any value other than
 HS-DPCCH
. When operating in this mode, the measurement is made during one timeslot (666.7 us). You can choose in which timeslot of the W-CDMA frame the measurement is performed using the 
Timeslot
 setting. You can also choose whether to include or exclude the 25 us transient periods on the slot boundaries using the 
Transient Period
 setting.
This section is only applicable to the lab application or feature-licensed test application .
 
To measure waveform quality on an HSDPA connection, you must set 
Trigger Source
 to
 HS-DPCCH
. When
 Trigger Source 
is set to HS-DPCCH, you can specify the measurement interval and its placement within any of the 6 HSDPA subframes.
AckNack 
= the first slot of the subframe,
 CQI1 
= the second slot of the subframe and
 CQI2 
= the third slot of the subframe).
 HS-DPCCH Trigger Subslot Alignment 
and
 HS-DPCCH Measurement Interval 
cannot exceed 1.0 slot.
 HS-DPCCH Trigger Subslot Alignment 
and
 HS-DPCCH Measurement Interval 
cannot exceed 1.0 slot. If you wish to place the measurement interval after the slot boundary using the
 HS-DPCCH Trigger Subslot Alignment 
setting, you must first decrease the
 HS-DPCCH Measurement Interval 
setting appropriately.
 HS-DPCCH Measurement Interval 
to
 0.5 slot 
(333.3 us or 1280 chips) and set
 Transient Period 
to
 Exclude
, the measurement is performed over 283.3 us (or 1088 chips).
 
When 
Trigger Source
 is set to any value other than
 HS-DPCCH
, you can specify which timeslot of the W-CDMA frame (0 to 14) is evaluated by the waveform quality measurement. See 
Measurement Interval in Non-HSDPA Mode
.
 
When
 Transient Period 
is set to
 Include 
and
 Trigger Source 
is set to any value other than
 HS-DPCCH
, the measurement is performed over one timeslot. When
 Transient Period 
is set to
 Include 
and
 Trigger Source 
is set to
 HS-DPCCH
, the measurement is performed over the interval specified by the 
HS-DPCCH Measurement Interval
 setting.
 
When
 Transient Period 
is set to
 Exclude
, the 25 us at the start of the measurement interval and the 25 us at the end of the measurement interval are excluded from the measurement. Thus, when
 Trigger Source 
is set to any value other than
 HS-DPCCH
, the measurement is performed over 666.7 us - 50 us = 616.7 us. When
 Trigger Source 
is set to
 HS-DPCCH
, the measurement is performed over an interval equal to 
HS-DPCCH Measurement Interval
 less 25 us from each end (see 
Measurement Interval in HSDPA Mode
).
Triggering choices are immediate, protocol, external, auto, and HS-DPCCH ( lab application or feature-licensed test application only ). See Trigger Source Description for more information.
 
Auto triggering is the default choice. In most cases, auto triggering provides the optimum measurement triggering condition for the waveform quality measurement. For example, if the UE is synchronized to the test set, auto triggering causes protocol triggering to be used. Auto triggering causes immediate triggering is used if the UE is not synchronized. When immediate triggering is used, the measurement result returned for timing error is always 
NAN 
(Not a Number) because it is not possible to evaluate a timing error in this measurement situation.
This section is only applicable to the lab application or feature-licensed test application .
 
These settings are only applicable when 
Trigger Source
 =
 HS-DPCCH
.
See Measurement Interval in HSDPA Mode for more information about using these parameters to specify the duration and placement of the measurement interval.
Selects which 2 ms subframe (0 to 5) contains the measurement interval.
 
Selects which slot in the 2 ms subframe contains the measurement interval (
AckNack 
= the first slot in the subframe,
 CQI1 
= the second slot in the subframe and
 CQI2 
= the third slot in the subframe).
See Measurement Interval in HSDPA Mode .
 
Note, the sum of 
HS-DPCCH Trigger Subslot Alignment
 and
 HS-DPCCH Measurement Interval 
cannot exceed 1.0 slot.
Selects where to place the measurement interval within the slot, in 0.1 slot (66.7 us) increments. This is useful because depending upon the Current DPCH Offset , the uplink DPCH and HS-DPCCH can be offset in time by increments of 0.1 slot (see HS-DPCCH/DPCCH Alignment vs. DPCH Frame Offset ).
 
Note, the sum of
 HS-DPCCH Trigger Subslot Alignment 
and 
HS-DPCCH Measurement Interval
 cannot exceed 1.0 slot.
 
These settings should be used in conjunction with the 
34.121 Preset Call Configurations
. All four of the 5.13.1A measurement configurations set the following:
 Transient Period 
=
 Exclude
,
 HS-DPCCH Measurement Interval 
=
 0.5 slot 
and 
Trigger Source 
=
 HS-DPCCH
. They also set the trigger alignment settings so as to capture the regions indicated in the diagram below.
You can then ensure that your UE conforms to 5.13.1A (see Measuring 3GPP TS 34.121 v7.5.0 s5.13.1A Error Vector Magnitude (EVM) with HS-DPCCH ).
The time error is determined as a result of minimizing the error vector between the measured and ideal signals. It is a measure of the timing error of the UE's transmission relative to the frame clock. The requirements for UE timing are defined in 3GPP TS 25.133 s7.1, which states "The uplink DPCCH/DPDCH frame transmission takes place approximately T 0 chips after the reception of the first detected path (in time) of the corresponding downlink DPCCH/DPDCH or F-DPCH frame, from the reference cell". The time error reported by the test set does not include T 0 (defined to be 1024 chips by 3GPP TS 25.211 s7.6.3). The time error is the error beyond 1024 chips.
Peak Code Domain Error (in dB) and the code channel at which it occurs (C ch,Spreading Factor,Code Number ).
Only Beta c (DPCCH) and Beta d1 (DPDCH 1) provide results (other than NaN) while on a non-HSDPA connection. Beta d2-6 are reserved for future use. See Uplink DPCH Bc/Bd Control for more information on Beta c and Beta d .
 
Beta
hsacknak
 and Beta
hscqi
 only provide results (other than NaN) when on an HSDPA connection (
lab application or feature-licensed test application only
). Beta
hsacknak
 represents the value of Beta
hs
 when measuring the Ack/Nack portion of the subframe. Beta
hscqi
 represents the value of Beta
hs
 when measuring the CQI portion of the subframe. Thus, when 
HS-DPCCH Trigger Slot Alignment
 is set to
 AckNack
, a valid result is returned for Beta
hsacknak
, NaN is returned for Beta
hscqi
. Likewise, when 
HS-DPCCH Trigger Slot Alignment
 is set to
 CQI1
 or
 CQI2
, a valid result is returned for Beta
hscqi
, NaN is returned for Beta
hsacknak
. See 
HS-DPCCH Gain Settings
 for more information on Beta
hs
.
IQ gain imbalance and IQ phase imbalance measurements are determined by comparing the received signal's IQ modulation characteristics with an ideal signal (IQ gain imbalance, IQ phase imbalance and Origin Offset are solved for using the parameter estimator described in Estimation of Amplitude Imbalance, Phase Imbalance, and Origin Offset of a Complex Signal Relative to an Ideal Reference by R. A. Birgenheier, Jan. 4, 2000).
This measurement should be calibrated using the Calibrate Measurements function ( CALibration:MEASurements? ) when the temperature has changed by ± 10° C or more since the last calibration. If this situation exists, the integrity indicator value becomes 19 and a message is displayed indicating "Uncalibrated Due to Temperature".