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As the bathtub borders are not uniform (both have two edges), the linear derivative
(the jitter) will show two peaks:
If you switch to linear scale and enable the marker, you can see its bell shape.
You can measure the random jitter distribution of each peak as well as the distance
between the peaks, which means the deterministic jitter.
You can also use the marker with logarithmic scale. In this case, it appears as a
parabolic curve:
A Gaussian marker is used when the dBER vs. Threshold Graph is displayed. This
graph shows the relationship between the decision threshold and the absolute
values of the derivative of the bit error rate (dBER/dTh). A linear scale reveals the
distribution more clearly than a logarithmic scale (see
In the example below, μ (Mu) and σ (Sigma) will be the same as the Level and
Standard Deviation results calculated by the measurement.
6
Advanced Analysis
240
Agilent J-BERT N4903B High-Performance Serial BERT
Output Levels measurement
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 ...