IP Library Granted Patent US 12,627,384
Granted Patent B2
US 12,627,384 · App. 18/531,888 · Granted May 12, 2026

Calibration method to find impedance of radio frequency front-end (RFFE)

Inventors: Chun-Hsiang Chen (Hsinchu City, TW); Chin-Wei Hsu (Hsinchu City, TW); Po-Chung Hsiao (Hsinchu City, TW); Sin-Sheng Wong (Hsinchu City, TW); Yen-Liang Chen (Hsinchu City, TW)
Assignee: MEDIATEK INC.
H04B17/221
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Quick Facts
Patent No.
US 12,627,384
App. No.
18/531,888
Granted
May 12, 2026
Kind
B2
Abstract

A calibration method to find the impedance of a radio frequency front-end (RFFE) is provided. The RFFE includes a feedback end and a tuner. The tuner is set to a first predetermined setting to have a first impedance. An output end of the tuner is set to different calibration settings. The first reflection coefficient sets at the feedback end is obtained. The second impedance from the feedback end of the RFFE to an input end of the tuner is calculated based on the first reflection coefficient. The tuner is set to a second predetermined setting. The second reflection coefficient sets at the feedback end is obtained. The third impedance of the tuner in the second predetermined setting is calculated based on the second impedance from the feedback end of the RFFE to the input end of the tuner and the second reflection coefficient sets.

Claims (53)

1 . A calibration method to find an impedance of a radio frequency front-end (RFFE), wherein the RFFE comprises a feedback end and a tuner, the tuner comprises an input end coupled to the feedback end and an output end coupled to an antenna, the method comprising:

setting the tuner to a first predetermined setting; wherein the tuner has a first impedance in the first predetermined setting;

setting the output end of the tuner to different calibration settings; wherein the calibration settings comprise open, short, and load;

obtaining first reflection coefficient sets at the feedback end;

calculating a second impedance from the feedback end of the RFFE to the input end of the tuner based on the first reflection coefficient sets;

setting the tuner to a second predetermined setting;

obtaining second reflection coefficient sets at the feedback end; and

calculating a third impedance of the tuner in the second predetermined setting based on the second impedance from the feedback end of the RFFE to the input end of the tuner and the second reflection coefficient sets.

2 . The calibration method as claimed in claim 1 , further comprising:

finishing the method after calculating the first reflection coefficient sets at the feedback end, the second impedance from feedback end of the RFFE to the tuner input, the second reflection coefficient sets at the feedback end, and the third impedance of the tuner for all the calibration settings.

3 . The calibration method as claimed in claim 2 , further comprising:

determining that there is enough available time before finishing calculations of the first reflection coefficient sets at the feedback end and the second impedance from the feedback end to the input end of the tuner for all the calibration settings; and

returning to the step of setting the tuner to the first predetermined setting.

4 . The calibration method as claimed in claim 2 , further comprising:

determining that there is not enough time available before finishing calculations of the first reflection coefficient sets at the feedback end and the second impedance from the feedback end to the input end of the tuner for all the calibration settings; and

switching back to an original tuner setting.

5 . The calibration method as claimed in claim 2 , further comprising:

determining that there is enough time available before finishing calculations of the second reflection coefficient sets at the feedback end, and the third impedance of the tuner for all the calibration settings; and

returning to the step of setting the tuner to the second predetermined setting.

6 . The calibration method as claimed in claim 2 , further comprising:

determining that there is not enough time available before finishing calculations of the second reflection coefficient sets at the feedback end, and the third impedance of the tuner for all the calibration settings; and

switching back to the original tuner setting.

7 . The calibration method as claimed in claim 1 , wherein the third impedance of the tuner in the second predetermined setting is an S parameter of the tuner in the second predetermined setting.

8 . The calibration method as claimed in claim 1 , wherein the first impedance, the first reflection coefficient sets at the feedback end, the second impedance at the feedback end, the second reflection coefficient sets at the feedback end, and the third impedance of the tuner are matrices.

9 . The calibration method as claimed in claim 8 , wherein the step of calculating the second impedance from the feedback end of the RFFE to the input end of the tuner based on the first reflection coefficient sets comprises:

calculating an inverse matrix of the first impedance of the tuner in the first predetermined setting; and

obtaining the second impedance from the feedback end of the RFFE to the input end of the tuner by having a matrix calculation with the first reflection coefficient sets at the feedback end and the inverse matrix of the first impedance of the tuner in the first predetermined setting.

10 . The calibration method as claimed in claim 8 , wherein the step of calculating the third impedance of the tuner in the second predetermined setting based on the second impedance from the feedback end of the RFFE to the input end of the tuner and the second reflection coefficient sets comprises:

calculating an inverse matrix of the second impedance from the feedback end of the RFFE to the input end of the tuner in the second predetermined setting; and

obtaining the third impedance of the tuner in the second predetermined setting by having a matrix calculation with the second reflection coefficient sets and the inverse matrix of the second impedance from the feedback end of the RFFE to the input end of the tuner.

11 . The calibration method as claimed in claim 1 , further comprising:

setting the input end of the tuner to the different calibration settings; and

obtaining the second impedance from the feedback end of the RFFE to the input end of the tuner based on the different calibration settings at the input end of the tuner.

12 . The calibration method as claimed in claim 1 , further comprising:

repeating the step of setting the tuner to the first predetermined setting after performing the step of calculating the third impedance of the tuner in the second predetermined setting based on the second impedance from the feedback end of the RFFE to the input end of the tuner and the second reflection coefficient sets.

13 . The calibration method as claimed in claim 1 , wherein the step of obtaining the first reflection coefficient sets at the feedback end comprises:

inputting a modulation signal or a tone-signal into the feedback end of the RFFE to obtain the first reflection coefficient sets at the feedback end; and

obtaining the first reflection coefficient sets by calculation.

14 . The calibration method as claimed in claim 1 , wherein the step of obtaining the second reflection coefficient sets at the feedback end comprises:

inputting a modulation signal or a tone-signal into the feedback end of the RFFE to obtain the second reflection coefficient sets at the feedback end; and

obtaining the second reflection coefficient sets by calculation.

15 . The calibration method as claimed in claim 1 , wherein the calibration method is performed in any period without transmission or reception in an over-the-air (OTA) environment.

16 . The calibration method as claimed in claim 1 , wherein the RFFE further comprises a coupler and an antenna network; the coupler is electrically connected to the feedback end of the RFFE; and the antenna network is electrically connected between the coupler and the tuner.

17 . The calibration method as claimed in claim 1 , wherein the step of setting the output end of the tuner to the different calibration settings comprises:

installing external calibration kits relative to the different calibration settings at the output end of the tuner; or

connecting the output end of the tuner to a port of a spectrum analyzer, and setting an impedance of the port to the different calibration settings.

18 . The calibration method as claimed in claim 1 , further comprising:

associating the third impedance of the tuner with the second predetermined setting to generate mapping data; and

storing the mapping data in a memory.

19 . The calibration method as claimed in claim 1 , wherein the step of setting the input end of the tuner to the different calibration settings comprises

setting the input end of the tuner to the different calibration settings by simulation, calculation, or measurement.

20 . The calibration method as claimed in claim 1 , wherein the step of setting the output end of the tuner to the different calibration settings comprises:

setting the output end of the tuner to the different calibration settings by simulation or calculation.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 7, 2023
From: CHEN, CHUN-HSIANG; HSU, CHIN-WEI; HSIAO, PO-CHUNG; WONG, SIN-SHENG; CHEN, YEN-LIANG
To: MEDIATEK INC.
Reel/Frame 065795/0622 →
Continuity (1)
Related Publication 20250192900A1 · Jun 12, 2025
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