1. Field of the Invention
The present invention is directed to a coupling unit for providing at least one signal path between at least two of a device under test, a first coupler, and a second coupler.
2. Brief Description of Related Developments
For testing a serial communication, a signal analyzer is usually coupled to a device under test or between two devices under test providing such serial communication.
It is an object of the present invention to facilitate an improved testing of serial communication. The object is solved by the independent claims. Preferred embodiments are shown by the dependent claims.
The coupling unit according to the present invention allows testing a serial communication of one of the first and second DUT as well as between the two DUTs, as far as coupled to the respective couplers, without having to change the connections between the analyzer and the first and second DUTs. This allows a fast and comfortable testing of various options and types of connections in the serial communication without requiring changing the connections during testing.
Without being limited thereto, the invention has been proved to be in particular useful for Gigabit range applications (e.g. 2.5 GB/s).
It goes without saying that the invention is in particular useful for automated testing, e.g. where an operator might not be present or acts from a remote location.
The term unidirectional serial communication as used herein can be defined as a connection between two devices where information flows in one direction of this connection only. For high-speed serial communication links, this connection might consist of one or more parallel connections, such as differential pairs.
A point-to-point link, as can used herein, can be defined as two unidirectional serial communication links between two devices, each in opposite direction. Such point-to-point link might be used for providing bi-directional communication.
The invention can be partly or entirely embodied or supported by one or more suitable software programs, which can be stored on or otherwise provided by any kind of data carrier, and which might be executed in or by any suitable data processing unit.
Other objects and many of the attendant advantages of the present invention will be readily appreciated and become better understood by reference to the following detailed description when considering in connection with the accompanied drawing(s). Features that are substantially or functionally equal or similar will be referred to with the same reference sign(s).
In
The coupling unit 10 allows providing various signal paths between a first coupler 60, a second coupler 70, and a third coupler 80. The term signal path, as used herein, can be defined as a path between two ends adapted to transmit electrical signals between the two ends.
An output 85o of a first device under test (DUT) 85 can be coupled to an output line 100 coupled to the third coupler 80, and an input 85i of the first DUT 85 can be coupled to an input line 110 also coupled to the third coupler 80.
An analyzer 65 can be coupled to the first coupler 60 with a first input line 65i1 coupling to an input line 120, a second input 65i2 coupling to an input line 130, a first output line 65o1 coupling to an output line 140, and a second output line 65o2 coupling to an output line 150.
A second DUT 75 can be coupled to the second coupler 70 with an input 75i coupling to a line 160 and an output 75o coupling to line 170.
Each of the multiplexers 20 to 50 receives two inputs and can select one of those inputs as its output.
The third multiplexer 40 receives as inputs the line 100 as well as a feedback line 180. The output of the third multiplexer 40 is coupled to the line 120 as well as to the first input of the first input of the first multiplexer. In case the optional third multiplexer 40 is omitted, the line 100 is directly coupled to the line 120 as well as to the first input of the first multiplexer 20 as shown in
The first multiplexer 20 receives as second input the line 140, and its output is coupled to the line 160 and to a first input of the fourth multiplexer 50.
The fourth multiplexer 50 receives as second input the line 170, and its output is coupled to the line 130 as well as to a first input of the second multiplexer 30. In case the optional fourth multiplexer 50 is omitted the line 170 is directly coupled to the first input of the second multiplexer 30 as well as to the line 130 as shown in
The second multiplexer 30 receives as second input the line 150, and its output is coupled to the line 110. Optionally, the output of the second multiplexer 30 can also be provided as the optional feedback-line 180 coupling to the first input of the third multiplexer 30.
In the following embodiments of
In the embodiment of
As mentioned above, in case the optional fourth multiplexer 50 is omitted, the line 170 is already coupled to the line 130.
In
In
As can be seen from the afore described, the inventive connecting of one or two DUTs and a serial test unit through a quad port-bypass circuit offers a variety of applications without re-connecting any of the devices. Preferred applications can be e.g. exercising either one of the DUTs, analyzing the communication between the DUTs, or insertion of errors into the point-to-point link between the DUTs.
It is clear that by coupling further multiplexers in accordance with the aforedescribed, further testing possibilities can be added.
Number | Date | Country | Kind |
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03100960 | Apr 2003 | EP | regional |
Number | Name | Date | Kind |
---|---|---|---|
4760330 | Lias, Jr. | Jul 1988 | A |
5477544 | Botelho | Dec 1995 | A |
6023358 | Baney | Feb 2000 | A |
6466047 | Doherty et al. | Oct 2002 | B1 |
20030196151 | Evans | Oct 2003 | A1 |
20040111657 | Choi | Jun 2004 | A1 |
Number | Date | Country | |
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20050062462 A1 | Mar 2005 | US |