IP Library Granted Patent US 7,747,234
Granted Patent B2
US 7,747,234 · App. 11/168,732 · Granted Jun 29, 2010

Gain control in a multiple RF transceiver integrated circuit

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Quick Facts
Patent No.
US 7,747,234
App. No.
11/168,732
Granted
Jun 29, 2010
Kind
B2
Abstract

A radio frequency (RF) transceiver integrated circuit (IC) includes a plurality of baseband Tx sections, a plurality of RF Tx sections, a plurality of RF Rx sections, and a plurality of baseband Rx sections. The RF transceiver IC further includes a static digital interface, a dynamic digital interface, and gain control, distribution, and buffering circuitry. Static digital interfaces are operable to receive static gain control commands from a coupled baseband processor. The dynamic digital interface is also operable to receive dynamic gain control commands from the coupled baseband processor. The gain control, distribution, and buffering circuitry is operable to apply the static gain control commands and dynamic gain control commands to at least some of the plurality of baseband Tx sections, the plurality of RF Tx sections, the plurality of RF Rx sections, and the plurality of baseband Rx sections.

Claims (72)

1. A radio frequency (RF) transceiver Integrated Circuit (IC) comprising:

a plurality of baseband Tx sections, each operable to receive, filter, and gain adjust a respective Tx baseband signal;

a plurality of RF Tx sections, each operable to receive, filter, gain adjust, and up convert a respective Tx baseband signal to produce a respective Tx RF signal;

a plurality of RF Rx sections, each operable to receive, filter, gain adjust, and down convert a respective RF Rx signal to produce a respective Rx baseband signal;

a plurality of baseband Rx sections, each operable to receive, filter, and gain adjust a respective Rx baseband signal;

a static digital interface operable to receive static gain control commands from a coupled baseband processor;

a dynamic digital interface operable to receive dynamic gain control commands from the coupled baseband processor; and

gain control, distribution, and buffering circuitry operable to apply the static gain control commands and dynamic gain control commands to at least some of the plurality of baseband Tx sections, the plurality of RF Tx sections, the plurality of RF Rx sections, and the plurality of baseband Rx sections;

wherein the static gain control commands correspond to static gain settings enacted during calibration operations and the dynamic gain control commands correspond to dynamic gain settings enacted during real-time, non-calibration operations of the plurality of baseband Tx sections, the plurality of RF Tx sections, the plurality of RF Rx sections, and the plurality of baseband Rx sections.

2. The RF transceiver IC of claim 1 , wherein:

the static gain control commands correspond to static gain settings enacted over multiple RF frame cycles; and

the dynamic gain control commands correspond to dynamic gain settings enacted over an individual RF frame cycle.

3. The RF transceiver IC of claim 1 , wherein, based upon the static gain control commands, the gain control, distribution, and buffering circuitry is operable to disable dynamic gain control commands during calibration of the RF transceiver IC.

4. The RF transceiver IC of claim 1 , wherein:

at least one of the static gain control commands comprises a multiple section selection command; and

the gain control, distribution, and buffering circuitry is operable to apply one dynamic gain control command to multiple baseband Tx sections, multiple RF Tx sections, multiple RF Rx sections, or multiple baseband Rx sections based upon the multiple section selection command.

5. The RF transceiver IC of claim 1 , wherein the dynamic gain control commands comprise:

a section selection command, the gain control, distribution, and buffering circuitry operable to select one of the plurality of baseband Tx sections, the plurality of RF Tx sections, the plurality of RF Rx sections, and the plurality of baseband Rx sections based upon the section selection command; and

a section gain control command, the gain control, distribution, and buffering circuitry operable to adjust the gain of at least one adjustable gain element of the selected section based upon the section gain control command.

6. The RF transceiver IC of claim 1 , wherein the dynamic gain control commands comprise:

a section selection command, the gain control, distribution, and buffering circuitry operable to select one of the plurality of baseband Tx sections, the plurality of RF Tx sections, the plurality of RF Rx sections, and the plurality of baseband Rx sections based upon the section selection command;

an element selection command, the gain control, distribution, and buffering circuitry operable to select an adjustable gain element of the selected section based upon the element selection command; and

an element gain control command, the gain control, distribution, and buffering circuitry operable to adjust the gain of the selected adjustable gain element of the selected section based upon the element gain control command.

7. A radio frequency (RF) transceiver Integrated Circuit (IC) comprising:

a plurality of baseband Rx sections operable to receive, filter, and gain adjust respective Rx baseband signals;

a plurality of baseband Tx sections operable to receive, filter, and gain adjust respective Tx baseband signals;

a first RF transceiver section and a second RF transceiver section, each of the first RF transceiver section and the second RF transceiver section comprising:

a plurality of RF Tx sections, each operable to receive, filter, gain adjust, and up convert a respective Tx baseband signal to produce a respective Tx RF signal;

a plurality of RF Rx sections, each operable to receive, filter, gain adjust, and down convert a respective Rx RF signal to produce a respective Rx baseband signal;

a static digital interface operable to receive static gain control commands from a coupled baseband processor;

a first dynamic digital interface operable to receive dynamic gain control commands from a coupled baseband processor for application to the first RF transceiver section;

a second dynamic digital interface operable to receive dynamic gain control commands from the coupled baseband processor for application to the second RF transceiver section; and

gain control, distribution, and buffering circuitry operable to apply the static gain control commands and the dynamic gain control commands to at least some of the plurality of baseband Rx sections, the plurality of baseband Tx sections, and the plurality of RF Tx sections, the plurality of RF Rx sections;

wherein the static gain control commands correspond to static gain settings enacted during calibration operations and the dynamic gain control commands correspond to dynamic gain settings enacted during real-time, non-calibration operations of the plurality of baseband Tx sections, the plurality of RF Tx sections, the plurality of RF Rx sections, and the plurality of baseband Rx sections.

8. The RF transceiver IC of claim 7 , wherein:

the static digital interface resides adjacent a first edge of the RF transceiver IC;

the first dynamic digital interface resides adjacent a second edge of the RF transceiver IC; and

the second dynamic digital interface resides adjacent a third edge of the RF transceiver IC, the third edge of the RF transceiver IC opposite the second edge of the RF transceiver IC.

9. The RF transceiver IC of claim 7 , wherein:

the static gain control commands correspond to static gain settings enacted over multiple RF frame cycles; and

the dynamic gain control commands correspond to dynamic gain settings enacted over an individual RF frame cycle.

10. The RF transceiver IC of claim 7 , wherein, based upon the static gain control commands, the gain control, distribution, and buffering circuitry is operable to disable dynamic gain control commands during calibration of the RF transceiver IC.

11. The RF transceiver IC of claim 7 , wherein:

at least one of the static gain control commands comprises a multiple RF transceiver section selection command; and

the gain control, distribution, and buffering circuitry is operable to apply one dynamic gain control command to both the first RF transceiver section and the second RF transceiver section based upon the multiple RF transceiver section selection command.

12. The RF transceiver IC of claim 7 , wherein:

at least one of the static gain control commands comprises a multiple section selection command; and

the gain control, distribution, and buffering circuitry is operable to apply one dynamic gain control command to multiple baseband Tx sections, multiple RF Tx sections, multiple RF Rx sections, or multiple baseband Rx sections of the first transceiver section and/or the second transceiver section based upon the multiple section selection command.

13. The RF transceiver IC of claim 7 , wherein the dynamic gain control commands comprise:

a section selection command, the gain control, distribution, and buffering circuitry operable to select one of the plurality of baseband Tx sections, the plurality of RF Tx sections, the plurality of RF Rx sections, and the plurality of baseband Rx sections of the first transceiver section and/or the second transceiver section based upon the section selection command; and

a section gain control command, the gain control, distribution, and buffering circuitry operable to adjust the gain of at least one adjustable gain element of the selected section based upon the section gain control command.

14. In a radio frequency (RF) transceiver Integrated Circuit (IC) having a plurality of baseband Tx sections, a plurality of RF Tx sections, a plurality of RF Rx sections, and a plurality of baseband Rx sections, a method for adjusting the gain of gain adjustable elements comprising:

receiving static gain control commands via a static digital interface from a coupled baseband processor during calibration operations;

receiving dynamic gain control commands via a dynamic digital interface from the coupled baseband processor during real-time, non-calibration operations of the plurality of baseband Tx sections, the plurality of RF Tx sections, the plurality of RF Rx sections, and the plurality of baseband Rx sections;

applying the static gain control commands to at least some gain adjustable elements of the plurality of baseband Tx sections, the plurality of RF Tx sections, the plurality of RF Rx sections, and the plurality of baseband Rx sections; and

applying the dynamic gain control commands to at least some gain adjustable elements of the plurality of baseband Tx sections, the plurality of RF Tx sections, the plurality of RF Rx sections, and the plurality of baseband Rx sections.

15. The method of claim 14 , further comprising:

enacting the static gain control commands over multiple RF frame cycles; and

enacting the dynamic gain control commands over respective individual RF frame cycles.

16. The method of claim 14 , further comprising:

enacting the static gain control commands during calibration operations; and

disabling the dynamic gain control commands during the calibration operations.

17. The method of claim 14 , wherein:

applying the static gain control commands comprises selecting multiple sections of the plurality of baseband Tx sections, a plurality of RF Tx sections, a plurality of RF Rx sections, and a plurality of baseband Rx sections based upon the static gain control commands; and

applying the dynamic gain control command comprises adjusting the gain of gain adjustable elements of the selected multiple selections.

18. The method of claim 14 , wherein:

applying the dynamic gain control command comprises selecting a section of the plurality of baseband Tx sections, the plurality of RF Tx sections, the plurality of RF Rx sections, and the plurality of baseband Rx sections based upon the dynamic gain control command; and

applying the dynamic gain control command further comprises adjusting the gain of gain adjustable elements of the selected section.

19. The method of claim 14 , wherein:

applying the dynamic gain control command comprises selecting a section of the plurality of baseband Tx sections, the plurality of RF Tx sections, the plurality of RF Rx sections, and the plurality of baseband Rx sections;

applying the dynamic gain control command further comprises selecting a gain adjustable element of the selected section; and

applying the dynamic gain control command further comprises adjusting the gain of the selected gain adjustable element of the selected section.

Assignments (6)
CORRECTIVE ASSIGNMENT TO CORRECT THE EXECUTION DATE OF THE MERGER PREVIOUSLY RECORDED ON REEL 047642 FRAME 0417. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT, Recorded Mar 6, 2019
From: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
To: AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE. LIMITED
Reel/Frame 048521/0395 →
MERGER Recorded Oct 5, 2018
From: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
To: AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE. LIMITED
Reel/Frame 047642/0417 →
TERMINATION AND RELEASE OF SECURITY INTEREST IN PATENTS Recorded Feb 3, 2017
From: BANK OF AMERICA, N.A., AS COLLATERAL AGENT
To: BROADCOM CORPORATION
Reel/Frame 041712/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 1, 2017
From: BROADCOM CORPORATION
To: AVAGO TECHNOLOGIES GENERAL IP (SINGAPORE) PTE. LTD.
Reel/Frame 041706/0001 →
PATENT SECURITY AGREEMENT Recorded Feb 11, 2016
From: BROADCOM CORPORATION
To: BANK OF AMERICA, N.A., AS COLLATERAL AGENT
Reel/Frame 037806/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 2, 2005
From: BEHZAD, ARYA REZA
To: BROADCOM CORPORATION
Reel/Frame 016342/0941 →