IP Library › Granted Patent US 12,638,536
Granted Patent B2
US 12,638,536 · App. 18/616,860 · Granted May 26, 2026

Test and/or measurement instrument and calibration method

Inventors: Daniel Mueller-Remer (Munich, DE); Ulrich Tuerk (Munich, DE); Tobias Koller (Munich, DE); Florian Galler (Munich, DE)
Assignee: Rohde & Schwarz GmbH & Co. KG
G01R35/005G01R31/2834
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Quick Facts
Patent No.
US 12,638,536
App. No.
18/616,860
Granted
May 26, 2026
Kind
B2
Abstract

A test and/or measurement instrument includes at least three ports and at least three measurement circuits connected to the at least three ports, respectively. The test and/or measurement instrument further includes at least one signal generator circuit and a control circuit. The control circuit is configured to set a first calibration mode and carry out a first test of the instrument by measuring the calibration signal travelling from the signal generator circuit to the respective port as well as a signal traveling from the respective port to the signal generator circuit. The control circuit is configured to set a second calibration mode and carry out a second test of the instrument by measuring the calibration signal forwarded only to the main port in the first sub-mode and the calibration signal received by the respective port from the signal generator circuit via the main port in the first sub-mode.

Claims (38)

1 . A test and/or measurement instrument, the test and/or measurement instrument, comprising:

at least three ports, wherein each of the at least three ports is configured to be connected to an external electronic device;

at least three measurement circuits, wherein each of the at least three measurement circuits is connected with one of the at least three ports, respectively;

at least one signal generator circuit, wherein the at least one signal generator circuit is configured to generate a calibration signal; and

a control circuit;

wherein the control circuit is configured to set a first calibration mode of the test and/or measurement instrument, wherein the at least one signal generator circuit is configured to generate the calibration signal and to forward the calibration signal to the at least three ports simultaneously or consecutively in the first calibration mode, and wherein the measurement circuits are each configured to measure the calibration signal travelling from the signal generator circuit to the respective port as well as a signal traveling from the respective port to the signal generator circuit in the first calibration mode, thereby obtaining a first set of measurement data,

wherein the control circuit is configured to set a second calibration mode of the test and/or measurement instrument, wherein one of the at least three ports is a main port, wherein the remaining ports are subsidiary ports in the second calibration mode, and wherein the second calibration mode has a first sub-mode and a second sub-mode, and

wherein the at least one signal generator circuit is configured to generate the calibration signal and to forward the calibration signal only to the main port in the first sub-mode, wherein the measurement circuits connected with the subsidiary ports are, in the first sub-mode, configured to measure the calibration signal outputted by the main port and received by the respective subsidiary port from the signal generator circuit via the main port and a cable or a calibration device connecting the main port to the respective subsidiary port, and wherein the at least one signal generator circuit is configured to generate the calibration signal and to forward the calibration signal to only one of the subsidiary ports in the second sub-mode, wherein the measurement circuit connected with the main port is, in the second sub-mode, configured to measure the calibration signal outputted by the subsidiary port and received by the main port from the signal generator circuit via the subsidiary port and the cable or calibration device connecting the main port to the subsidiary port, thereby obtaining a second set of measurement data.

2 . The test and/or measurement instrument of claim 1 , wherein the control circuit is configured to determine error parameters for all of the at least three ports based on the first set of measurement data and based on the second set of measurement data.

3 . The test and/or measurement instrument of claim 2 , wherein the control circuit is configured to adapt operational parameters of the test and/or measurement instrument based on the error parameters determined.

4 . The test and/or measurement instrument of claim 1 , wherein the control circuit is configured to determine relative power levels of driving ports and/or driving port error parameters based on the first set of measurement data.

5 . The test and/or measurement instrument of claim 4 , wherein the control circuit is configured to determine error parameters for all of the at least three ports based on the first set of measurement data and based on the second set of measurement data, and wherein the control circuit is configured to apply the relative power levels determined to the error parameters.

6 . The test and/or measurement instrument of claim 1 , wherein the measurement circuits connected to the subsidiary ports are configured to adapt their respective measurement sensitivity in the second calibration mode.

7 . The test and/or measurement instrument of claim 1 , wherein the measurement circuits connected to the subsidiary ports are disconnected from the at least one signal generator circuit within the test and/or measurement instrument in the first sub-mode of the second calibration mode.

8 . The test and/or measurement instrument of claim 1 , wherein the measurement circuits each comprise a forward measuring receiver circuit and a backward measuring receiver circuit.

9 . The test and/or measurement instrument of claim 8 , wherein the measurement circuits connected with the subsidiary ports are configured to measure the calibration signal received by the respective subsidiary port from the signal generator circuit via the main port by the forward measuring receiver circuit.

10 . The test and/or measurement instrument of claim 8 , further comprising at least one switching circuit, wherein the at least one switching circuit is configured to selectively connect the backward measuring receiver circuits and/or the forward measuring receiver circuits to the respective port.

11 . The test and/or measurement instrument of claim 1 , wherein the test and/or measurement instrument is a vector network analyzer.

12 . A calibration method of calibrating a test and/or measurement instrument, wherein the test and/or measurement instrument comprises at least three ports, at least three measurement circuits, at least one signal generator circuit, and a control circuit, wherein each of the at least three measurement circuits is connected with one of the at least three ports, respectively, the calibration method comprising:

setting, by the control circuit, a first calibration mode, wherein the measurement circuits are each configured to measure a calibration signal travelling from the signal generator circuit to the respective port as well as a signal traveling from the respective port to the signal generator circuit in the first calibration mode;

performing, in the first calibration mode, a set of calibration measurements on the at least three ports, thereby obtaining a first set of measurement data;

setting, by the control circuit, a second calibration mode, wherein the second calibration mode has a first sub-mode and a second sub-mode, wherein one of the at least three ports is a main port in the second calibration mode, wherein the remaining ports are subsidiary ports in the second calibration mode, wherein the measurement circuits connected with the subsidiary ports are, in the first sub-mode, configured to measure the calibration signal outputted by the main port and received by the respective subsidiary port from the signal generator circuit via the main port and a cable or a calibration device connecting the main port to the respective subsidiary port, and wherein the measurement circuit connected with the main port is, in the second sub-mode, configured to measure the calibration signal outputted by the subsidiary port and received by the main port from the signal generator circuit via the subsidiary port and the cable or calibration device connecting the main port to the subsidiary port;

connecting the subsidiary ports to the main port consecutively;

generating, by the signal generator circuit, the calibration signal;

forwarding the calibration signal to the main port in the first sub-mode;

measuring, for each subsidiary port connected to the main port, the calibration signal received by the respective subsidiary port from the signal generator circuit via the main port and the cable or calibration device connecting the main port to the respective subsidiary port;

forwarding the calibration signal to only one of the subsidiary ports in the second sub-mode; and

measuring the calibration signal received by the main port from the signal generator circuit via the subsidiary port and the cable or calibration device connecting the main port to the subsidiary port, thereby obtaining a second set of measurement data.

13 . The calibration method of claim 12 , wherein error parameters are determined for all of the at least three ports based on the first set of measurement data and based on the second set of measurement data.

14 . The calibration method of claim 13 , wherein operational parameters of the test and/or measurement instrument are adapted based on the error parameters determined.

15 . The calibration method of claim 12 , wherein a respective measurement sensitivity of the measurement circuits connected to the subsidiary ports is adapted in the second calibration mode.

16 . The calibration method of claim 12 , wherein the measurement circuits connected to the subsidiary ports are disconnected from the at least one signal generator circuit within the test and/or measurement instrument in the first sub-mode of the second calibration mode.

17 . The calibration method of claim 12 , wherein the first set of measurement data is obtained based on at least three different calibration standards and/or based on a set of connections between the at least three ports.

18 . The calibration method of claim 12 , wherein the main port is the same one of the at least three ports for determining the whole second set of measurement data.

19 . The calibration method of claim 12 , wherein different ones of the at least three ports are selected as main port consecutively for determining the second set of measurement data.

20 . The calibration method of claim 12 , wherein the measurement circuits each comprise a forward measuring receiver circuit and a backward measuring receiver circuit, and wherein the calibration signal received by the respective subsidiary port from the signal generator circuit via the main port is measured by the forward measuring receiver circuit of the respective measurement circuit connected with the respective subsidiary port.

21 . The calibration method of claim 12 , wherein the measurement circuit connected to the main port is disconnected from the at least one signal generator circuit within the test and/or measurement instrument in the second sub-mode of the second calibration mode.

22 . The calibration method of claim 12 , wherein the test and/or measurement instrument is a vector network analyzer.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 18, 2024
From: MUELLER-REMER, DANIEL, DR.; TUERK, ULRICH, DR.; KOLLER, TOBIAS; GALLER, FLORIAN, DR.
To: ROHDE & SCHWARZ GMBH & CO. KG
Reel/Frame 067153/0235 →
Continuity (1)
Related Publication 20250306155A1 · Oct 2, 2025
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