IP Library › Granted Patent US 11,662,857
Granted Patent B2
US 11,662,857 · App. 17/545,977 · Granted May 30, 2023

Two-level coding/decoding-based touch sensing device and touch sensing method for mutual capacitance touch sensor

Inventor: Mohamed Gamal Ahmed Mohamed (Daejeon, KR)
Assignee: LX SEMICON CO., LTD.
G06F3/0418G06F3/0446G06F3/04166G06F3/04182G06F3/0412G06F3/04184G06F17/145G06F2203/04108H03K19/21H03M3/468H03M7/70
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Quick Facts
Patent No.
US 11,662,857
App. No.
17/545,977
Granted
May 30, 2023
Kind
B2
Abstract

The embodiment applies a two-level coding/decoding technology using a spread spectrum code and an orthogonal code, whereby touch sensing can be robust against noise, a touch sensing time can be reduced, and touch sensitivity can be enhanced.

Claims (28)

1. A touch sensing method for mutual capacitance touch sensors formed by multiple transmission electrodes and a reception electrode intersecting each other, the method comprising:

coding a base signal with a spread spectrum code to generate a spread spectrum signal;

coding the spread spectrum signal with multiple orthogonal codes, which are orthogonal to each other, to generate multiple driving signals;

supplying the driving signals to the transmission electrodes, respectively;

receiving a response signal for the driving signals from the reception electrode;

converting the response signal into a digital response signal through analog-digital conversion;

decoding the digital response signal with the spread spectrum code to generate a first decoding signal;

summating the first decoding signal at each unit time of the orthogonal codes to generate a second decoding signal;

decoding the second decoding signal with the orthogonal codes to generate sensing data for each of the touch sensors; and

determining a touch or proximity of an external object to the touch sensors by using the sensing data.

2. The touch sensing method of claim 1 , wherein the spread spectrum code corresponds to a pseudo-noise (PN) code.

3. The touch sensing method of claim 1 , wherein the base signal comprises a periodic pulse signal.

4. The touch sensing method of claim 1 , wherein the orthogonal codes correspond to a Perfect code or a Hadamard code.

5. The touch sensing method of claim 1 , wherein the spread spectrum code, as a pseudo-random code, corresponds to a maximum length sequence (MLS), a Parker code, or a Gold code.

6. A touch sensing device for mutual capacitance touch sensors formed by multiple transmission electrodes and a reception electrode intersecting each other, the touch sensing device comprising:

a driving circuit configured to code a base signal with a spread spectrum code to generate a spread spectrum signal, to code the spread spectrum signal with multiple orthogonal codes, which are orthogonal to each other, to generate multiple driving signals, and to supply the driving signals to the transmission electrodes, respectively; and

a sensing circuit configured to receive a response signal for the driving signals from the reception electrode, to convert the response signal into a digital response signal through analog-digital conversion, to decode the digital response signal with the orthogonal codes and the spread spectrum code to generate sensing data for each of the touch sensors, and to determine a touch or proximity of an external object to the touch sensors by using the sensing data,

wherein the sensing circuit decodes the digital response signal with the spread spectrum code to generate a first decoding signal, summates the first decoding signal at each unit time of the orthogonal codes to generate a second decoding signal, and decodes the second decoding signal with the orthogonal codes to generate the sensing data.

7. The touch sensing device of claim 6 , wherein the base signal corresponds to a periodic pulse signal and the driving circuit configures a high voltage level interval and a low voltage level interval of the pulse signal by using a counter.

8. The touch sensing device of claim 6 , wherein the driving circuit comprises a first MUX (multiplexer) circuit configured to select one of multiple TX groups,

the sensing circuit comprises a second MUX circuit configured to select one of multiple reception electrodes, and

each TX group comprises two or more transmission electrodes.

9. The touch sensing device of claim 6 , wherein the driving circuit performs an XOR operation on the base signal and a signal corresponding to the spread spectrum code to generate the spread spectrum signal.

10. The touch sensing device of claim 9 , wherein the driving circuit performs an XOR operation on the spread spectrum signal and each of signals corresponding to the orthogonal codes to generate the driving signals.

11. The touch sensing device of claim 6 , wherein the sensing circuit performs integration on the response signal to generate a sensing voltage and performs analog-digital conversion on the sensing voltage to generate the digital response signal.

12. The touch sensing device of claim 11 , wherein a driving signal comprises unit signals each indicating 1 or 0 and the unit signals are classified into 1 or 0 according to polarity or a phase.

13. The touch sensing device of claim 12 , wherein the unit signals are classified into 1 or 0 according to a phase and a dummy signal is further inserted into each unit signal.

14. The touch sensing device of claim 12 , wherein the unit signals are classified into 1 or 0 according to a phase and a dummy signal is inserted between two unit signals having different values.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 9, 2021
From: MOHAMED, MOHAMED GAMAL AHMED
To: LX SEMICON CO., LTD.
Reel/Frame 058416/0090 →
Priority Claims (1)
KR 10-2020-0174620 · Dec 14, 2020 · national
Continuity (1)
Related Publication 20220187944A1 · Jun 16, 2022