IP Library › Granted Patent US 12,580,601
Granted Patent B2
US 12,580,601 · App. 17/897,637 · Granted Mar 17, 2026

Control of configurable receiver front end module based at least in part on signal metric information

Inventors: Thomas Edward Voor (Cedar Park, TX); Jeffrey L. Sonntag (Greenville, SC); Richard Hendricks (Austin, TX); Logan Lucas (Austin, TX); Jeffrey Merrill (Austin, TX); Hendricus De Ruijter (San Jose, CA); Luigi Panseri (Austin, TX)
Assignee: Silicon Laboratories Inc.
H04B1/16H04B17/318
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Quick Facts
Patent No.
US 12,580,601
App. No.
17/897,637
Granted
Mar 17, 2026
Kind
B2
Abstract

In one aspect, a method comprises: comparing, in a comparator, a signal level of a receive radio frequency (RF) signal to a first threshold, the receive RF signal obtained from a controllable location in an RF front end circuit; and in response to the signal level of the receive RF signal exceeding the first threshold, causing the RF front end circuit to be reconfigured from a first mode in which an input to a low noise amplifier (LNA) is coupled an antenna to a second mode in which the input to the LNA is coupled to an RF filter.

Claims (22)

1 . An apparatus comprising:

a non-volatile memory to store a firmware for a wireless device, the firmware including instructions for execution by a controller; and

the controller coupled to the non-volatile memory, wherein the controller is to execute at least some of the instructions to change a relative order of a radio frequency (RF) receiver signal processing path comprising a low noise amplifier (LNA), a plurality of signal nodes, and an RF filter based at least in part on signal metric information regarding an RF signal received in the RF receiver signal processing path, wherein in a first receive mode, the controller is to cause the RF receiver signal processing path to have the LNA ahead of the RF filter, based at least in part on the signal metric information regarding an input to the LNA via a first signal node of the plurality of signal nodes, and in a second receive mode, the controller is to cause the RF receiver signal processing path to have the RF filter ahead of the LNA, based at least in part on the signal metric information regarding an input to the RF filter via a second signal node of the plurality of signal nodes.

2 . The apparatus of claim 1 , wherein:

in a third receive mode, the RF receiver signal processing path is to bypass the LNA.

3 . The apparatus of claim 1 , further comprising a comparator.

4 . The apparatus of claim 3 , wherein the comparator is to compare the signal level information to a first threshold, and in response to the signal level information exceeding the first threshold, the RF receiver signal processing path is to be reconfigured from the first receive mode in which the input to the LNA is coupled the antenna to the second receive mode.

5 . The apparatus of claim 3 , wherein the comparator is to compare the signal level information to a second threshold when the RF receiver signal processing path is in the second receive mode, and in response to the signal level information exceeding the second threshold, the RF receiver signal processing path is to be reconfigured from the second receive mode to a third receive mode.

6 . The apparatus of claim 5 , wherein the comparator is to compare the signal level information to a third threshold when the RF receiver signal processing path is in the third receive mode, and in response to the signal level information exceeding the third threshold, the RF receiver signal processing path is to be maintained in the third receive mode.

7 . A wireless device comprising:

a first integrated circuit comprising at least a portion of a radio frequency (RF) receiver signal processing path and switching circuitry controllable to change a relative order of the RF receiver signal processing path, the RF receiver signal processing path comprising a low noise amplifier (LNA), a plurality of signal nodes, and an RF filter;

a second integrated circuit comprising a non-volatile memory and a controller coupled to the non-volatile memory:

the non-volatile memory to store a firmware for the wireless device, the firmware including instructions for execution by the controller; and

the controller to execute at least some of the instructions to change the relative order of the RF receiver signal processing path based at least in part on signal metric information regarding an RF signal received in the RF receiver signal processing path; and

the RF filter coupled to the first integrated circuit, wherein:

in a first receive mode, the controller is to cause the RF receiver signal processing path to have the LNA ahead of the RF filter, based at least in part on one or more levels at an input to the LNA via a first signal node of the plurality of signal nodes;

in a second receive mode, the controller is to cause the RF receiver signal processing path to have the RF filter ahead of the LNA, based at least in part on the one or more levels at an input to the RF filter via a second signal node of the plurality of signal nodes; and

in a third receive mode, the controller is to cause the RF receiver signal processing path to bypass the LNA.

8 . The wireless device of claim 7 , further comprising a comparator.

9 . The wireless device of claim 8 , wherein the comparator is to compare the signal metric information to a first threshold, and in response to the signal metric information exceeding the first threshold, the RF receiver signal processing path is to be reconfigured from the first receive mode in which the input to the LNA is coupled an antenna to the second receive mode.

10 . The wireless device of claim 8 , wherein the comparator is to compare the signal metric information to a second threshold when the RF receiver signal processing path is in the second receive mode, and in response to the signal metric information exceeding the second threshold, the RF receiver signal processing path is to be reconfigured from the second receive mode to the third receive mode.

11 . The wireless device of claim 8 , wherein the comparator is to compare the signal level information to a third threshold when the RF receiver signal processing path is in the third receive mode, and in response to the signal metric information exceeding the third threshold, the RF receiver signal processing path is to be maintained in the third receive mode.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 8, 2022
From: VOOR, THOMAS EDWARD; SONNTAG, JEFFREY L.; HENDRICKS, RICHARD; LUCAS, LOGAN; MERRILL, JEFFREY; DE RUIJTER, HENDRICUS; PANSERI, LUIGI
To: SILICON LABORATORIES INC.
Reel/Frame 062019/0974 →
Continuity (2)
Continuation In Part 17851534 · Jun 28, 2022
Related Publication 20230421191A1 · Dec 28, 2023
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