IP Library Granted Patent US 11,899,867
Granted Patent B2
US 11,899,867 · App. 17/658,908 · Granted Feb 13, 2024

Touch screen display with touchless gestures and methods for use therewith

Inventors: Michael Shawn Gray (Dripping Springs, TX); Patrick Troy Gray (Cedar Park, TX); Daniel Keith Van Ostrand (Leander, TX); Richard Stuart Seger, Jr. (Belton, TX); Timothy W. Markison (Mesa, AZ)
Assignee: SigmaSense, LLC.
G06F3/0412G06F3/017G06F3/0446
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Quick Facts
Patent No.
US 11,899,867
App. No.
17/658,908
Granted
Feb 13, 2024
Kind
B2
Abstract

A capacitive touch screen display operates by: providing a display configured to render frames of data into visible images; providing a plurality of electrodes integrated into the display to facilitate touch sense functionality based on electrode signals having a drive signal component and a receive signal component; generating, via a plurality of drive-sense circuits coupled to at least some of the plurality of electrodes, a plurality of sensed signals; receiving the plurality of sensed signals; generating a stream of capacitance image data associated with the plurality of cross points that includes capacitance variation data corresponding to variations of the capacitance image data from a nominal value within a temporal period; and processing the capacitance image data to determine a touchless gesture occurring within the temporal period.

Claims (53)

1. A touch screen display comprises:

a display configured to render frames of data into visible images;

a plurality of electrodes integrated into the display to facilitate touch sense functionality based on electrode signals having a drive signal component and a receive signal component, wherein the plurality of electrodes includes a plurality of row electrodes and a plurality of column electrodes, wherein the plurality of row electrodes is separated from the plurality of column electrodes by a dielectric material and wherein the plurality of row electrodes and the plurality of row electrodes form a plurality of cross points;

a plurality of drive-sense circuits coupled to at least some of the plurality of electrodes to generate a plurality of sensed signals, wherein each the plurality of drive-sense circuits includes a first conversion circuit and a second conversion circuit, and wherein, when a drive-sense circuit of the plurality of drive-sense circuits is enabled to monitor a corresponding electrode of the plurality of electrodes, the first conversion circuit is configured to convert the receive signal component into a sensed signal of the plurality of sensed signals and the second conversion circuit is configured to generate the drive signal component from the sensed signal of the plurality of sensed signals;

a processing module that includes at least one memory that stores operational instructions and at least one processing circuit that executes the instructions to perform operations that include:

receiving the plurality of sensed signals, wherein the plurality of sensed signals indicate variations in capacitance associated with the plurality of cross points;

generating, based on the plurality of sensed signals, a stream of capacitance image data associated with the plurality of cross points that includes capacitance variation data corresponding to variations of capacitance image data in the stream of capacitance image data from a nominal value across a plurality of times within a temporal period; and

processing the stream of capacitance image data to detect a touchless gesture occurring within the temporal period.

2. The touch screen display of claim 1 , wherein the variations in capacitance associated with the plurality of cross points vary from a nominal capacitance.

3. The touch screen display of claim 1 , wherein the nominal capacitance corresponds to an average capacitance of the plurality of cross points in an absence of the touchless gesture.

4. The touch screen display of claim 1 , wherein the sensed signals indicate an impedance of the plurality of cross points.

5. The touch screen display of claim 4 , wherein the nominal value is proportional to a nominal impedance corresponding to each of the cross points of the plurality of cross points in an absence of the touchless gesture.

6. The touch screen display of claim 1 ,

wherein the first conversion circuit includes:

a comparator to compare the electrode signal to an analog reference signal to produce an analog comparison signal; and

an analog to digital converter operable to convert the analog comparison signal into the sensed signal; and

wherein the second conversion circuit includes:

a digital to analog converter operable to convert the sensed signal into an analog feedback signal;

a signal source circuit operable to generate a regulated source signal based on the analog feedback signal; and

a driver operable to increase power of the regulated source signal to produce the drive signal component.

7. The touch screen display of claim 1 , wherein each of the electrodes comprise:

a transparent conductive trace placed in a layer of the touch screen display, wherein the transparent conduction trace is constructed of one or more of: Indium Tin Oxide (ITO), Graphene, Carbon Nanotubes, Thin Metal Films, Silver Nanowires Hybrid Materials, Aluminum-doped Zinc Oxide (AZO), Amorphous Indium-Zinc Oxide, Gallium-doped Zinc Oxide (GZO), or poly(3,4-ethylenedioxythiophene) (PEDOT).

8. The touch screen display of claim 1 , wherein detecting the touchless gesture includes determining the stream of capacitance image data compares favorably to touchless pattern data.

9. The touch screen display of claim 8 , wherein the touchless pattern data indicates a motion pattern with respect to a two-dimensional plane corresponding to a surface of the display, and wherein detecting the touchless gesture includes:

tracking a motion of a hover region in the stream of capacitance image data; and

determining that a projection of the motion upon the two-dimensional plane compares favorably to the motion pattern.

10. The touch screen display of claim 8 , wherein the touchless pattern data indicates a motion pattern with respect to a two-dimensional plane corresponding to a surface of the display, and wherein detecting the touchless gesture includes:

identifying a tracked movement of a hover region in the stream of capacitance image data; and

determining that a projection of the motion upon the two-dimensional plane compares favorably to the motion pattern.

11. The touch screen display of claim 10 , wherein identifying the tracked movement of a hover region includes:

detecting the hover region in capacitance image data of the stream of capacitance data for multiple ones of the plurality of times in the temporal period; and

identifying the tracked movement of the hover region based on changes in location of the hover region in capacitance image data across the multiple of the plurality of times.

12. The touch screen display of claim 8 , wherein the touchless pattern data indicates a motion pattern involving changes in a hover distance from a surface of the display, and wherein detecting the touchless gesture includes:

identifying changes in hover distance of a hover region tracked in the stream of capacitance image data; and

determining that the changes in hover distance of the hover region compare favorably to the motion pattern.

13. The touch screen display of claim 12 , wherein identifying the changes in hover distance of the hover region includes:

detecting the hover region in capacitance image data of the stream of capacitance data for multiple ones of the plurality of times in the temporal period; and

identifying the changes in hover distance of the hover region based on changes in magnitude of capacitance variation data within the hover region in capacitance image data across the multiple of the plurality of times.

14. The touch screen display of claim 12 , wherein the motion pattern involves:

a first transition from a first hover distance to a second hover distance that is smaller than the first hover distance; and

a second transition from the second hover distance to a third hover distance that is greater than the second hover distance.

15. The touch screen display of claim 14 , wherein the motion pattern further indicates at least one of: a threshold maximum temporal period for completion of the first transition; a threshold maximum temporal period for completion of the second transition; or a threshold maximum temporal period for completion of both the first transition and the second transition.

16. The touch screen display of claim 14 , wherein the motion pattern further indicates a threshold movement of the hover region with respect to a two-dimensional plane corresponding to a surface of the display during at least one of: the first transition or the second transition.

17. The touch screen display of claim 8 , wherein the touchless pattern data is one of a set of touchless pattern data, wherein each touchless pattern data of the set of touchless pattern data corresponds to one of a set of touchless gesture types, and wherein detecting the touchless gesture includes identifying the touchless gesture as the one of the set of touchless gesture types corresponding to the touchless pattern data.

18. The touch screen display of claim 17 , wherein the stream of capacitance image data compares unfavorably to all other ones of the set of touchless pattern data.

19. The touch screen display of claim 17 , wherein the set of touchless gesture types includes at least one of: an interface feature selection type; a zoom-in type; a zoom-out type; a scroll type; or a touch screen configuration selection type.

20. A method for use in a touch screen display comprises:

providing a display configured to render frames of data into visible images;

providing a plurality of electrodes integrated into the display to facilitate touch sense functionality based on electrode signals having a drive signal component and a receive signal component, wherein the plurality of electrodes includes a plurality of row electrodes and a plurality of column electrodes, wherein the plurality of row electrodes is separated from the plurality of column electrodes by a dielectric material and wherein the plurality of row electrodes and the plurality of row electrodes form a plurality of cross points;

generating, via a plurality of drive-sense circuits coupled to at least some of the plurality of electrodes, a plurality of sensed signals, wherein each the plurality of drive-sense circuits includes a first conversion circuit and a second conversion circuit, and wherein, when a drive-sense circuit of the plurality of drive-sense circuits is enabled to monitor a corresponding electrode of the plurality of electrodes, the first conversion circuit is configured to convert the receive signal component into a sensed signal of the plurality of sensed signals and the second conversion circuit is configured to generate the drive signal component from the sensed signal of the plurality of sensed signals;

receiving, at a processing module that includes at least one memory and at least one processing circuit, the plurality of sensed signals, wherein the sensed signals indicate variations in mutual capacitance associated with the plurality of cross points;

generating, via the processing module and based on the plurality of sensed signals, a stream of capacitance image data associated with the plurality of cross points that includes positive capacitance variation data corresponding to variations of capacitance image data in the stream of capacitance image data from a nominal value across a plurality of times within a temporal period; and

processing, via the processing module, the stream of capacitance image data to detect a touchless gesture occurring within the temporal period.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 13, 2022
From: GRAY, MICHAEL SHAWN; GRAY, PATRICK TROY; VAN OSTRAND, DANIEL KEITH; SEGER, RICHARD STUART, JR.; MARKISON, TIMOTHY W.
To: SIGMASENSE, LLC.
Reel/Frame 059582/0171 →
Continuity (5)
Continuation In Part 17248473 · Jan 26, 2021
Continuation 16132131 · Sep 14, 2018
Provisional Application 63213347 · Jun 22, 2021
Related Publication 20220404925A1 · Dec 22, 2022
Related Publication 20230341959A9 · Oct 26, 2023
Cited By (1)
US 12,561,033