IP Library Granted Patent US 10,606,411
Granted Patent B2
US 10,606,411 · App. 16/388,668 · Granted Mar 31, 2020

Method and device for improved accuracy of proximity and touch detection in mobile devices

Inventors: Chaouki Rouaissia (Neuchatel, CH); Jerald G. Ott, III (Escondido, CA)
Assignee: Semtech Corporation
G06F3/0418G06F3/044H03K17/955H04M1/0266G06F2203/04101G06F2203/04103G06F2203/04107G06F2203/04108H03K2217/94015H03K2217/94031H03K2217/960705
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Quick Facts
Patent No.
US 10,606,411
App. No.
16/388,668
Granted
Mar 31, 2020
Kind
B2
Abstract

A mobile device has a proximity sensor. A compensation value of the proximity sensor is determined. The compensation value is compared to a reference compensation value to determine validity of the compensation value. A capacitance of the proximity sensor is measured. A value of the capacitance of the proximity sensor is adjusted based on the compensation value. A coefficient defining a relationship between a capacitance of the proximity sensor and a temperature of the mobile device is calculated. A temperature sensor is coupled to the proximity sensor. The temperature of the mobile device is measured. A value of the capacitance of the proximity sensor is adjusted based on the coefficient and the temperature of the mobile device. The adjusted capacitance value is compared to a threshold capacitance value to determine proximity of an object to the mobile device. A radio frequency signal is adjusted by detecting proximity.

Claims (32)

1. A method of detecting proximity, comprising:

providing a capacitive sensing element;

providing a temperature sensor;

measuring a first self-capacitance of the capacitive sensing element;

storing the first self-capacitance as a first digital value;

measuring a second self-capacitance of the temperature sensor;

storing the second self-capacitance as a second digital value;

multiplying the second digital value by a digital temperature coefficient to provide a third digital value; and

subtracting the third digital value from the first digital value to provide a value of the first self-capacitance adjusted based on a reading of the temperature sensor.

2. A capacitive touch controller, comprising:

a touch sensor input;

a temperature sensor input;

a memory element including a coefficient stored in the memory element, wherein the coefficient defines a relationship between a self-capacitance of the touch sensor input and a self-capacitance of the temperature sensor input; and

a digital processor configured to adjust a reading of the touch sensor input by multiplying a reading of the temperature sensor input by the coefficient and subtracting the product from the reading of the touch sensor input.

3. The capacitive touch controller of claim 2 , wherein the capacitive touch controller is configured to measure a self-capacitance of the temperature sensor input.

4. A method of detecting proximity, comprising:

providing a proximity sensor;

coupling a capacitive sensing element to the proximity sensor;

coupling a temperature sensor to the proximity sensor;

determining a coefficient defining a relationship between self-capacitance readings of the capacitive sensing element and self-capacitance readings of the temperature sensor;

measuring a first self-capacitance of the capacitive sensing element;

determining an amount of the first self-capacitance attributable to a body part of a user; and

adjusting the amount of the first self-capacitance based on a reading of the temperature sensor, wherein the adjusting is performed by multiplying the reading of the temperature sensor by the coefficient using a digital processor.

5. The method of claim 4 , further including determining the reading of the temperature sensor by measuring a second self-capacitance of the temperature sensor, wherein the temperature sensor includes a conductive trace on a printed circuit board (PCB).

6. A capacitive touch controller, comprising:

a first capacitive sensor input;

a second capacitive sensor input;

a coefficient defining a relationship between the first capacitive sensor input and the second capacitive sensor input; and

a digital processor configured to adjust a reading of the first capacitive sensor input based on a reading of the second capacitive sensor input and the coefficient.

7. The capacitive touch controller of claim 6 , further including a register with the coefficient stored in the register.

8. The capacitive touch controller of claim 6 , further including a first register for storing the reading of the first capacitive sensor input.

9. The capacitive touch controller of claim 8 , further including a second register for storing the reading of the second capacitive sensor input.

Assignments (3)
ASSIGNMENT OF PATENT SECURITY INTEREST PREVIOUSLY RECORDED AT REEL/FRAME (049894/0523) Recorded Feb 17, 2023
From: HSBC BANK USA, NATIONAL ASSOCIATION, AS RESIGNING AGENT
To: JPMORGAN CHASE BANK, N.A., AS SUCCESSOR AGENT
Reel/Frame 062784/0040 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 1, 2020
From: ROUAISSIA, CHAOUKI; OTT, JERALD G., III
To: SEMTECH CORPORATION
Reel/Frame 052289/0249 →
SECURITY INTEREST Recorded Jul 29, 2019
From: SEMTECH CORPORATION; SEMTECH NEW YORK CORPORATION; SIERRA MONOLITHICS, INC.; SEMTECH EV, INC.; TRIUNE SYSTEMS, L.L.C.; TRIUNE IP, LLC
To: HSBC BANK USA, NATIONAL ASSOCIATION, AS ADMINISTRATIVE AGENT
Reel/Frame 049894/0523 →