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N O T E
The Spectral Jitter measurement should only be used in conjunction with data that
has an equal distribution of ones and zeros over time. Otherwise, the results are
hard to predict and may be not reproducible.
Signal Processing
If the error signal is obtained as explained above, an analysis in the frequency
domain reveals the absense or presence of deterministic jitter. Dominant frequency
components become visible and their contribution to the total jitter can be
measured.
The modified error signal is subject to a fast Fourier transformation (FFT).
FFT requires that the data record to be processed has a length that is a power of
two (2
n
, such as 2
17
, 2
18
, 2
19
, 2
20
, and so on).
From that data record, the FFT calculates pairs of frequency/power values. The
number of pairs is half the number of samples. If you have chosen a record length
of 2
17
(which means 131,072 bits or 128 Kbit), the result contains 65,536 pairs. The
maximum frequency is half the data rate used for the test.
The results are displayed in the Spectral Jitter measurement graphical and
numerical result window.
About FFT
For general information about the Fourier transformation and the special
characteristics of the fast Fourier transform, please refer to the standard literature.
For details, see the following documents:
• Frederic J. Harris, "On the use of Windows in Harmonic Analysis with the
Discrete Fourier Transform", Proceedings of the IEEE, Vol.66, January 1978
• "The Fundamentals of Signal Analysis", Agilent Application Note 243, Publ.
No. 5952-8898E
• "Fibre Channel - Methodologies for Jitter Specifications", National Committee
for Information Technology Standardization (NCITS), T11.2/Project 1230/Rev.
10, June 1999
• Yi Cai, Bernd Laquai, Kent Luchman, "Jitter Testing for Gigabit Serial
Communication Transceivers", IEEE Design and Test of Computers, Jan-Feb
2002
The error record contains a bipolar, rectangular signal. If such a signal is periodic,
you can expect a spectrum as illustrated below.
6
Advanced Analysis
348
Agilent J-BERT N4903B High-Performance Serial BERT
FFT results
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 ...