Touch analog front end and touch sensor controller having the same

US2016124544A1 · US · A1

Patent metadata
FieldValue
Publication numberUS-2016124544-A1
Application numberUS-201514741940-A
CountryUS
Kind codeA1
Filing dateJun 17, 2015
Priority dateNov 5, 2014
Publication dateMay 5, 2016
Grant date

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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Abstract

Official abstract text for this publication.

A touch analog front-end (AFE) for a touch sensitive screen may include a transmitter configured to charge a touch panel and a receiver configured to sense the touch panel. The receiver may include a charge-to-voltage (C2V) converter configured to convert a change of capacitance received from the touch panel into a voltage signal, a correlated double sampling (CDS) block configured to convert the voltage signal into a differential signal and to sample each of the positive and the negative signals of the differential signal, and an integrator configured to accumulate a difference between the sampled positive and negative signals.

First claim

Opening claim text (preview).

What is claimed is: 1 . A touch analog front-end (AFE) comprising: a transmitter configured to charge a touch panel; and a receiver configured to sense the touch panel, wherein the receiver comprises: a charge-to-voltage (C2V) converter configured to convert a change in an amount of capacitance related to the touch panel into a voltage signal; a correlated double sampling (CDS) block configured to divide the voltage signal into a positive signal and a negative signal and to sample each of the positive signal and the negative signal; and an integrator configured to accumulate a difference between the sampled positive signal and the sampled negative signal. 2 . The touch AFE of claim 1 , wherein the touch panel includes M X-axis line sensors and N Y-axis line sensors, the transmitter includes M+N transmitters configured to charge each of the M X-axis line sensors and the N Y-axis line sensors, and the receiver includes first and second receivers configured to sense each of a pair of the M X-axis line sensors or a pair of the N Y-axis line sensors. 3 . The touch AFE of claim 2 , wherein a display driver integrated circuit (DDI) transmits a horizontal synch signal to a display panel and each of the M+N transmitters charges each of the M X-axis line sensors and the N Y-axis line sensors in synchronization with the horizontal synch signal at the same time. 4 . The touch AFE of claim 3 , wherein after each of the M+N transmitters charges each of the M X-axis line sensors and the N Y-axis line sensors at the same time, and each of the first and second receivers senses a pair of each of the M X-axis line sensors and the N Y-axis line sensors at the same time. 5 . The touch AFE of claim 1 , wherein the CDS block includes a first sample-and-hold (SHA) filter configured to sample the positive signal and a second SHA filter configured to sample the negative signal. 6 . The touch AFE of claim 1 , wherein the CDS block samples the positive and negative signals and removes high-frequency noise. 7 . The touch AFE of claim 1 , wherein the integrator removes low-frequency noise using a voltage difference between the sampled positive signal and the sampled negative signal. 8 . The touch AFE of claim 1 , wherein the integrator generates a capacitive profile using the accumulated voltage signal. 9 . A touch sensor controller (TSC) comprising a touch analog front-end (AFE) including M+N transmitters configured to charge each of M X-axis line sensors and N Y-axis line sensors, and first and second receivers configured to sense a pair of the M X-axis line sensors or a pair of the N Y-axis line sensors, wherein each of the first and second receivers comprises: a C2V converter configured to convert an amount of change of a capacitance received from the touch panel into a voltage signal; a CDS block configured to divide the voltage signal into a positive signal and a negative signal and to sample each of the positive signal and the negative signal; and an integrator configured to accumulate a difference between the sampled positive signal and the sampled negative signal. 10 . The TSC of claim 9 , wherein a DDI transmits a horizontal synch signal to a display panel and each of the M+N transmitters charges each of the M X-axis line sensors and the N Y-axis line sensors in synchronization with the horizontal synch signal at the same time. 11 . The TSC of claim 10 , wherein after each of the M+N transmitters charges each of the M X-axis line sensors and the N Y-axis line sensors at the same time, and each of the first and second receivers senses a pair of each of the M X-axis line sensors and the N Y-axis line sensors at the same time. 12 . The TSC of claim 9 , wherein the CDS block includes a first sample-and-hold (SHA) filter configured to sample the positive signal and a second SHA filter configured to sample the negative signal. 13 . The TSC of claim 9 , wherein the CDS block samples the positive signal and the negative signal and removes high-frequency noise. 14 . The TSC of claim 9 , wherein the integrator removes low-frequency noise using a voltage difference between the sampled positive signal and the sampled negative signal. 15 . The TSC of claim 9 , wherein the integrator generates a capacitive profile using the accumulated voltage signal. 16 . An electronic circuit for sensing input to a capacitive touch screen, comprising: a charge to voltage converter to convert charge related to a difference in capacitance at an input of the charge to voltage converter to an output voltage signal corresponding to the difference in capacitance; a sample hold circuit to receive the voltage signal output from the charge to voltage converter and to convert the voltage signal to a differential voltage signal representative of the difference in capacitance; and an integrator circuit to receive the differential voltage signal from the sample hold circuit and to integrate the differential signal to produce an analog output signal representative of the difference in capacitance. 17 . The electronic circuit of claim 16 , further comprising an offset removal circuit connected to remove an offset at the input to the charge to voltage converter. 18 . The electronic circuit of claim 16 , wherein the sample hold circuit is a correlated double sampling circuit. 19 . The electronic circuit of claim 18 , wherein the correlated double sampling circuit is configured to filter high frequency noise from the voltage signal. 20 . The electronic circuit of claim 18 , wherein the integrator circuit is configured to filter low frequency noise from the differential signal provided by the correlated double sampling circuit.

Assignees

Inventors

Classifications

  • G06F3/044Primary

    by capacitive means · CPC title

  • Synchronisation with the driving of the display or the backlighting unit to avoid interferences generated internally · CPC title

  • Filtering of noise external to the device and not generated by digitiser components · CPC title

  • using a grid-like structure of electrodes in at least two directions, e.g. using row and column electrodes · CPC title

  • G06F1/163Primary

    Wearable computers, e.g. on a belt · CPC title

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What does patent US2016124544A1 cover?
A touch analog front-end (AFE) for a touch sensitive screen may include a transmitter configured to charge a touch panel and a receiver configured to sense the touch panel. The receiver may include a charge-to-voltage (C2V) converter configured to convert a change of capacitance received from the touch panel into a voltage signal, a correlated double sampling (CDS) block configured to convert t…
Who is the assignee on this patent?
Samsung Electronics Co Ltd
What technology area does this patent fall under?
Primary CPC classification G06F3/044. Mapped technology areas include Physics.
When was this patent published?
Publication date Thu May 05 2016 00:00:00 GMT+0000 (Coordinated Universal Time) (A1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 2 related publications on this page (citations in our corpus or others sharing the same primary CPC).