IP Library › Granted Patent US 12,730,534
Granted Patent B2
US 12,730,534 · App. 19/270,099 · Granted Sep 8, 2026

System and method for differential parallel touch sensing

Inventors: Guozhong Shen (Fremont, CA); Chieh-Feng Tu (Taipei City, TW); Mihai M. Bulea (San Jose, CA)
Assignee: Synaptics Incorporated
G06F3/04166G06F3/0446
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Quick Facts
Patent No.
US 12,730,534
App. No.
19/270,099
Granted
Sep 8, 2026
Kind
B2
Abstract

Systems and methods for touch sensing are provided. An input device includes a display and a touch sensor. The touch sensor has a sensing area with a plurality of sensor pixels forming rows and columns. Each sensor pixel includes a first electrode having first capacitive coupling areas and a second electrode having second capacitive coupling areas. The first capacitive coupling areas are configured to capacitively couple with one or more adjacent sensor pixels disposed in a same row and the second capacitive coupling areas are configured to capacitively couple with one or more adjacent sensor pixels in a same column. The first electrode is configured to electrically connect to one or more sensor pixels in the same column and the second electrode is configured to electrically connect to one or more sensor pixels in the same row. The sensor pixels are configured to facilitate parallel touch sensing in multiple orientations.

Claims (48)

1 . A touch sensor having a sensing area, comprising:

a plurality of sensor pixels forming rows and columns, each sensor pixel comprising:

a first electrode having first capacitive coupling areas;

a second electrode having second capacitive coupling areas,

wherein the first capacitive coupling areas are configured to capacitively couple with one or more adjacent sensor pixels disposed in a same row and the second capacitive coupling areas are configured to capacitively couple with one or more adjacent sensor pixels in a same column, and wherein the first electrode is configured to electrically connect to one or more sensor pixels in the same column and the second electrode is configured to electrically connect to one or more sensor pixels in the same row; and

a sensor circuit configured to:

drive the first electrode of each sensor pixel of a first subset of the plurality of sensor pixels with one or more sensing signals;

receive first resulting signals from the first electrode of each sensor pixel of a second subset of the plurality of sensor pixels, wherein the second subset of the plurality of sensor pixels are disposed in different columns from the first subset of the plurality of sensor pixels;

drive the second electrode of each sensor pixel of a third subset of the plurality of sensor pixels with the one or more sensing signals;

receive second resulting signals from the second electrode of each sensor pixel of a fourth subset of the plurality of sensor pixels, wherein the fourth subset of the plurality of sensor pixels are disposed in different rows from the third subset of the plurality of sensor pixels; and

process the first resulting signals and the second resulting signals.

2 . The touch sensor according to claim 1 , wherein the touch sensor is configured for differential transcapacitive sensing.

3 . The touch sensor according to claim 1 , wherein the touch sensor is configured for non-differential transcapacitive sensing.

4 . The touch sensor according to claim 1 , wherein the first electrode of each sensor pixel and the second electrode of each sensor pixel are disposed on a same side of a substrate.

5 . The touch sensor according to claim 1 , wherein at least one of the first electrode of each sensor pixel and the second electrode of each sensor pixel are a metal mesh.

6 . The touch sensor according to claim 1 , wherein the first capacitive coupling areas are elongated and are disposed on opposite sides of each sensor pixel.

7 . The touch sensor according to claim 1 , wherein the second capacitive coupling areas are elongated and are disposed on opposite sides of each sensor pixel.

8 . The touch sensor according to claim 1 , wherein the first capacitive coupling areas and the second capacitive coupling areas are configured to provide a resulting signal strength of at least 20 femtofarads.

9 . The touch sensor according to claim 1 , wherein a jumper facilitates electrical continuity between opposite sides of the second electrode of each sensor pixel.

10 . An input device comprising:

a display;

a touch sensor integrated with the display and having a sensing area comprising a plurality of sensor pixels forming rows and columns, each sensor pixel comprising:

a first electrode having first capacitive coupling areas;

a second electrode having second capacitive coupling areas,

wherein the first capacitive coupling areas are configured to capacitively couple with one or more adjacent sensor pixels disposed in a same row and the second capacitive coupling areas are configured to capacitively couple with one or more adjacent sensor pixels in a same column, and wherein the first electrode is configured to electrically connect to one or more sensor pixels in the same column and the second electrode is configured to electrically connect to one or more sensor pixels in the same row; and

a sensor circuit configured to:

drive the first electrode of each sensor pixel of a first subset of the plurality of sensor pixels with one or more sensing signals;

receive first resulting signals from the first electrode of each sensor pixel of a second subset of the plurality of sensor pixels, wherein the second subset of the plurality of sensor pixels are disposed in different columns from the first subset of the plurality of sensor pixels;

drive the second electrode of each sensor pixel of a third subset of the plurality of sensor pixels with the one or more sensing signals;

receive second resulting signals from the second electrode of each sensor pixel of a fourth subset of the plurality of sensor pixels, wherein the fourth subset of the plurality of sensor pixels are disposed in different rows from the third subset of the plurality of sensor pixels; and

process the first resulting signals and the second resulting signals.

11 . The input device according to claim 10 , wherein the first electrode of each sensor pixel and the second electrode of each sensor pixel are disposed on a same side of a substrate.

12 . The input device according to claim 10 , wherein at least one of the first electrode of each sensor pixel and the second electrode of each sensor pixel are a metal mesh.

13 . The input device according to claim 10 , wherein the first capacitive coupling areas are elongated and are disposed on opposite sides of each sensor pixel.

14 . The input device according to claim 10 , wherein the second capacitive coupling areas are elongated and are disposed on opposite sides of each sensor pixel.

15 . The input device according to claim 10 , wherein the first capacitive coupling areas and the second capacitive coupling areas are configured to provide a resulting signal strength of at least 20 femtofarads.

16 . The input device according to claim 10 , wherein a jumper facilitates electrical continuity between opposite sides of the second electrode of each sensor pixel.

17 . A method for capacitive sensing with a touch sensor, comprising:

driving a first electrode of a first subset of a plurality of sensor pixels with one or more sensing signals;

receiving first resulting signals from the first electrode of a second subset of the plurality of sensor pixels, wherein the second subset of the plurality of sensor pixels are disposed in different columns from the first subset of the plurality of sensor pixels;

driving a second electrode of a third subset of the plurality of sensor pixels with the one or more sensing signals;

receiving second resulting signals from the second electrode of a fourth subset of the plurality of sensor pixels, wherein the fourth subset of the plurality of sensor pixels are disposed in different rows from the third subset of the plurality of sensor pixels; and

processing the first resulting signals and the second resulting signals,

wherein the first electrode of each sensor pixel has first capacitive coupling areas, and the second electrode of each sensor pixel has second capacitive coupling areas, and

wherein the first capacitive coupling areas are configured to capacitively couple with one or more adjacent sensor pixels disposed in a same row and the second capacitive coupling areas are configured to capacitively couple with one or more adjacent sensor pixels in a same column, and wherein the first electrode of each sensor pixel is configured to electrically connect to one or more sensor pixels in the same column and the second electrode of each sensor pixel is configured to electrically connect to one or more sensor pixels in the same row.

18 . The method according to claim 17 , wherein the first capacitive coupling areas are elongated and are disposed on opposite sides of each sensor pixel.

19 . The method according to claim 17 , wherein the second capacitive coupling areas are elongated and are disposed on opposite sides of each sensor pixel.

20 . The method according to claim 17 , wherein the first capacitive coupling areas and the second capacitive coupling areas provide a resulting signal strength of at least 20 femtofarads.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 15, 2025
From: SHEN, GUOZHONG; TU, CHIEH-FENG; BULEA, MIHAI M.
To: SYNAPTICS INCORPORATED
Reel/Frame 071717/0935 →
Continuity (8)
Continuation In Part 19040492 · Jan 29, 2025
Continuation In Part 18643808 · Apr 23, 2024
Continuation In Part 18756883 · Jun 27, 2024
Continuation In Part 19231291 · Jun 6, 2025
Continuation In Part 18619337 · Mar 28, 2024
Provisional Application 63510805 · Jun 28, 2023
Provisional Application 63465201 · May 9, 2023
Related Publication 20250341915A1 · Nov 6, 2025
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