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the roles of the two branches. The delayed signal has now a larger amplitude than
the direct signal. A waveform example is illustrated in the following figure.
0
0
0
0
0
1
1
1
1
1
1
Output
Amplitude
(Vpp)
De-emphasis
Amplitude
Input
Signal
When pre-cursor de-emphasis is generated this way, the complementary Output
of the De-Emphasis Signal Converter becomes the normal output and vice versa.
C A U T I O N
Be very careful if you set the de-emphasis ratio to amplification! In this case, there
is no indication of the peak-to-peak voltage applied to the DUT.
You need to calculate or measure the output signal voltage precisely. Otherwise
you might damage your device.
The following example illustrates the output of the differential signal with variable
de-emphasis on pre-cursor and 2 post-cursors generated by De-Emphasis Signal
Converter N4916B.
2
Setting up External Instrument(s)
40
Agilent J-BERT N4903B High-Performance Serial BERT
De-emphasis on pre-cursor and 2 post-
cursors
Summary of Contents for J-BERT N4903B
Page 1: ...S Agilent J BERT N4903B High Performance Serial BERT User Guide s Agilent Technologies ...
Page 10: ...10 Agilent J BERT N4903B High Performance Serial BERT ...
Page 36: ...1 Planning the Test 36 Agilent J BERT N4903B High Performance Serial BERT ...
Page 60: ...2 Setting up External Instrument s 60 Agilent J BERT N4903B High Performance Serial BERT ...
Page 120: ...3 Setting up Patterns 120 Agilent J BERT N4903B High Performance Serial BERT ...
Page 360: ...6 Advanced Analysis 360 Agilent J BERT N4903B High Performance Serial BERT ...
Page 468: ...8 Jitter Tolerance Tests 468 Agilent J BERT N4903B High Performance Serial BERT ...
Page 524: ...9 Solving Problems 524 Agilent J BERT N4903B High Performance Serial BERT ...
Page 566: ...10 Customizing the Instrument 566 Agilent J BERT N4903B High Performance Serial BERT ...