IP Library Granted Patent US 12,635,049
Granted Patent B2
US 12,635,049 · App. 18/886,285 · Granted May 19, 2026

Optimized power management in RGB drivers with multiplexing

Inventors: Damiano Sartori (Padua, IT); Franco Mignoli (Verona, IT); Maurizio Galvano (Padua, IT); Adolfo De Cicco (Castel D'azzano, IT); Gabriele Borella (Padua, IT)
Assignee: INFINEON TECHNOLOGIES AG
H05B45/28H05B45/24H05B45/37
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Quick Facts
Patent No.
US 12,635,049
App. No.
18/886,285
Granted
May 19, 2026
Kind
B2
Abstract

A driving circuit includes a measurement circuit including a plurality of sensing terminals. A first sensing terminal of the measurement circuit is configured to be coupled to a first terminal of a first dissipative circuit element and a first terminal of a first light-emitting diode (LED). The first LED has a first terminal voltage. A second sensing terminal of the measurement circuit is configured to be coupled to a second terminal of the first dissipative circuit element and a first terminal of a second LED. The second LED has a second terminal voltage less than the first terminal voltage. A third sensing terminal of the measurement circuit is configured to be coupled to a second terminal of the first LED. A fourth sensing terminal of the measurement circuit is configured to be coupled to a second terminal of the second LED.

Claims (96)

1 . A driving circuit comprising:

a measurement circuit comprising a plurality of sensing terminals, wherein:

a first sensing terminal of the measurement circuit is configured to be coupled to:

a first terminal of a first dissipative circuit element; and

a first terminal of a first light-emitting diode (LED), wherein the first LED has a first terminal voltage;

a second sensing terminal of the measurement circuit is configured to be coupled to:

a second terminal of the first dissipative circuit element; and

a first terminal of a second LED, wherein the second LED has a second terminal voltage less than the first terminal voltage;

a third sensing terminal of the measurement circuit is configured to be coupled to a second terminal of the first LED; and

a fourth sensing terminal of the measurement circuit is configured to be coupled to a second terminal of the second LED.

2 . The driving circuit of claim 1 , wherein:

the first sensing terminal of the measurement circuit is further configured to be coupled to a first terminal of a second dissipative circuit element; and

a fifth sensing terminal of the measurement circuit is configured to be coupled to:

a second terminal of the second dissipative circuit element; and

the first terminal of the first LED.

3 . The driving circuit of claim 2 , wherein:

the first sensing terminal of the measurement circuit is further configured to be coupled to a first terminal of a third LED, wherein the third LED has a third terminal voltage greater than the first terminal voltage; and

a sixth sensing terminal of the measurement circuit is configured to be coupled to a second terminal of the third LED.

4 . The driving circuit of claim 3 , wherein each of the first dissipative circuit element and the second dissipative circuit element comprises a resistor or a diode.

5 . The driving circuit of claim 3 , wherein:

a seventh sensing terminal of the measurement circuit is configured to be coupled to:

a first terminal of a third dissipative circuit element; and

a first terminal of a fourth LED, wherein the fourth LED has the first terminal voltage;

a eighth sensing terminal of the measurement circuit is configured to be coupled to:

a second terminal of the third dissipative circuit element; and

a first terminal of a fifth LED, wherein the fifth LED has the second terminal voltage;

the third sensing terminal of the measurement circuit is further configured to be coupled to a second terminal of the fourth LED; and

the fourth sensing terminal of the measurement circuit is further configured to be coupled to a second terminal of the fifth LED.

6 . The driving circuit of claim 5 , wherein:

the seventh sensing terminal of the measurement circuit is further configured to be coupled to a first terminal of a fourth dissipative circuit element; and

a ninth sensing terminal of the measurement circuit is configured to be coupled to:

a second terminal of the fourth dissipative circuit element; and

the first terminal of the fourth LED.

7 . The driving circuit of claim 6 , further comprising a plurality of switches, wherein:

a first terminal of a first switch of the plurality of switches is configured to be coupled to:

the first sensing terminal of the measurement circuit;

the first terminal of the first dissipation circuit element;

the first terminal of the second dissipation circuit element; and

the first terminal of the third LED; and

a first terminal of a second switch of the plurality of switches is configured to be coupled to:

the seventh sensing terminal of the measurement circuit;

the first terminal of the third dissipation circuit element; and

the first terminal of the fourth dissipation circuit element.

8 . The driving circuit of claim 7 , further comprising a plurality of current sources, wherein:

a first terminal of a first current source of the plurality of current sources is configured to be coupled to:

the second terminal of the measurement circuit;

the second terminal of the first dissipation circuit element; and

the first terminal of the second LED; and

a first terminal of a second current source of the plurality of current sources is configured to be coupled to:

the eighth sensing terminal of the measurement circuit;

the second terminal of the third dissipation circuit element; and

the first terminal of the fifth LED.

9 . The driving circuit of claim 1 , further comprising a controller configured to:

receive a measured voltage drop across the second LED from the measurement circuit, wherein the measured voltage drop across the second LED is measured by the measurement circuit using the second sensing terminal and the fourth sensing terminal of the measurement circuit; and

adjust a current flowing through the second LED based on the measured voltage drop across the second LED.

10 . A circuit comprising:

a driving circuit comprising:

a plurality of switches;

a plurality of current sources; and

a measuring circuit comprising a plurality of sensing terminals;

a first dissipative circuit element coupled between a first switch of the plurality of switches and a first sensing terminal of the measuring circuit;

a first light-emitting diode (LED) coupled between the first sensing terminal and a second sensing terminal of the measuring circuit, wherein the first LED has a first terminal voltage, and wherein the second sensing terminal of the measuring circuit is coupled to a first current source of the plurality of current sources;

a second LED coupled between the first switch and a third sensing terminal of the measuring circuit, wherein the second LED has a second terminal voltage greater the first terminal voltage, and wherein the third sensing terminal of the measuring circuit is coupled to a second current source of the plurality of current sources; and

a third LED coupled between a fourth sensing terminal and a fifth sensing terminal of the measuring circuit, wherein the third LED has a third terminal voltage greater the first terminal voltage, and wherein the fifth sensing terminal of the measuring circuit is coupled to a third current source of the plurality of current sources.

11 . The circuit of claim 10 , further comprising a second dissipative circuit element coupled between the first switch and the fourth sensing terminal of the measuring circuit.

12 . The circuit of claim 11 , further comprising:

a third dissipative circuit element coupled between a second switch of the plurality of switches and a sixth sensing terminal of the measuring circuit;

a fourth LED coupled between the sixth sensing terminal and the second sensing terminal of the measuring circuit, wherein the fourth LED has the first terminal voltage;

a fifth LED coupled between the second switch and the third sensing terminal of the measuring circuit, wherein the fifth LED has the first terminal voltage; and

a sixth LED coupled between a seventh sensing terminal and the fifth sensing terminal of the measuring circuit, wherein the sixth LED has the first terminal voltage.

13 . The circuit of claim 12 , further comprising a fourth dissipative circuit element coupled between the second switch and the seventh sensing terminal of the measuring circuit.

14 . The circuit of claim 13 , wherein each of the first dissipative circuit element, the second dissipative circuit element, the third dissipative circuit element, and the fourth dissipative circuit element comprises a resistor or a diode.

15 . The circuit of claim 13 , wherein:

the first dissipative circuit element comprises a first diode;

the second dissipative circuit element comprises a second diode;

the third dissipative circuit element comprises a first resistor; and

the fourth dissipative circuit element comprises a second resistor.

16 . The circuit of claim 10 , further comprising a controller configured to:

receive a measured voltage drop across the first LED from the measurement circuit, wherein the measured voltage drop across the first LED is measured by the measurement circuit using the first sensing terminal and the second sensing terminal of the measurement circuit; and

adjust a current flowing through the first LED based on the measured voltage drop across the first LED.

17 . The circuit of claim 10 , wherein the measurement circuit comprises an analog-to-digital converter (ADC).

18 . A method of operating a circuit comprising a measuring circuit, a first light-emitting diode (LED) coupled between a first sensing terminal and a second sensing terminal of the measuring circuit, a second LED coupled between the first sensing terminal and a third sensing terminal of the measuring circuit, and a first dissipative circuit element coupled in series with the first LED between the first sensing terminal and the second sensing terminal of the measuring circuit, a terminal between the first dissipative circuit element and the first LED being coupled to a fourth sensing terminal of the measuring circuit, wherein the second LED has a greater terminal voltage than the first LED, the method comprising:

measuring a voltage drop across the first LED using the second sensing terminal and the fourth sensing terminal of the measuring circuit;

determining a temperature of the first LED based on the measured voltage drop across the first LED; and

calibrating a color of the first LED by adjusting a current through the first LED based on the determined temperature of the first LED.

19 . The method of claim 18 , further comprising:

measuring a voltage drop across the second LED using the first sensing terminal and the third sensing terminal of the measuring circuit;

determining a temperature of the second LED based on the measured voltage drop across the second LED; and

calibrating a color of the second LED by adjusting a current through the second LED based on the determined temperature of the second LED.

20 . The method of claim 18 , wherein the temperature of the first LED is determined by a controller coupled to the measuring circuit.

21 . The method of claim 18 , wherein the current through the first LED is adjusted by a current source coupled to the first LED.

22 . The method of claim 18 , wherein:

the circuit further comprises a plurality of switches, a third LED, and a fourth LED; and

the method further comprises:

multiplexing the first LED and the third LED using the plurality of switches; and

multiplexing the second LED and the fourth LED using the plurality of switches.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 16, 2024
From: SARTORI, DAMIANO; MIGNOLI, FRANCO; GALVANO, MAURIZIO; DE CICCO, ADOLFO; BORELLA, GABRIELE
To: INFINEON TECHNOLOGIES AG
Reel/Frame 068598/0017 →
Continuity (1)
Related Publication 20260082465A1 · Mar 19, 2026
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