Abstract:
A touch screen driver includes a touch screen comprising Tx channels, Rx channels crossing the Tx channels, and sensor nodes formed at the crossings of the Tx channels and the Rx channels; a Tx driving circuit for supplying a Tx driving pulse to the Tx channels; an Rx driving circuit comprising an offset charge compensation circuit that equally compensates for the amount of offset charge included in the voltages of the sensor nodes supplied through the Rx channels and a sampling circuit that samples the offset-compensated voltages of the sensor nodes in response to an Rx sampling clock and converts the sampled voltages into digital data; and a touch controller that analyzes the digital data input from the Rx driving circuit by a preset touch recognition algorithm and outputs touch data including coordinate information of a touch position.
Abstract:
Disclosed herein are a method and circuit for driving touch sensors and a display device using the same. A method of driving touch sensors includes supplying a touch sensor driving signal to the touch sensors or an amplifier and sensing a touch input during a touch input sensing portion and measuring current noise received through the touch sensors without the touch sensor driving signal during a noise measurement portion.
Abstract:
A touch screen driving device includes a touch screen including adjacent first and second Tx channels, an Rx channel crossing the first and second Tx channels, a first sensor capacitor formed at a crossing of the first Tx channel and the Rx channel, and a second sensor capacitor formed at a crossing of the second Tx channel and the Rx channel, a Tx driving circuit which supplies a Tx driving signal of a first phase to the first Tx channel and supplies a Tx driving signal of a second phase, which is in antiphase of the first phase, to the second Tx channel, and an integrator which receives a voltage difference between a first voltage of the first sensor capacitor and a second voltage of the second sensor capacitor through the Rx channel and accumulate the received voltage difference several times.
Abstract:
A touch screen driver includes a touch screen including Tx channels, Rx channels crossing the Tx channels, and sensor nodes formed at crossings of the Tx channels and the Rx channels, a Tx driving circuit supplying a driving pulse to the Tx channels, an Rx driving circuit which samples voltages of the sensor nodes supplied through the Rx channels in response to Rx sampling clocks and converts the sampled voltages into digital data, and a touch controller which modulates the Rx sampling clocks based on an RC delay deviation between the Rx channels, supplies the modulated Rx sampling clocks to the Rx driving circuit, differently controls sampling times of the Rx channels, and analyzes the digital data using a previously determined touch recognition algorithm.
Abstract:
A touch screen driving device includes a touch screen including Tx channels, Rx channels, and sensor nodes formed at crossings of the Tx channels and the Rx channels, a Tx driving circuit supplying a Tx driving pulse to the Tx channels, sensing units sampling voltages of the sensor nodes supplied through the Rx channels, a multiplexer (mux) array including mux switches, each of which is cross-coupled with output terminals of the sensing units adjacent to each mux switch, an analog-to-digital converter converting an analog sampling signal received from the mux array into digital data, an average unit which averages the digital data and removes noise included in the digital data, and a touch controller which analyzes the digital data, in which the noise is removed, using a touch recognition algorithm and outputs touch data including coordinate information of a touch position.
Abstract:
A touch sensing device includes a touch screen including Tx lines, Rx lines crossing the Tx lines, and touch sensors formed at crossings of the Tx lines and the Rx lines, a Tx driving circuit for supplying a driving signal to each of the Tx lines N times, where N is a positive integer equal to or greater than 2, and an Rx driving circuit for double sampling signals received through the Rx lines in one period of the driving signal. The Rx driving circuit includes a multiplexer which receives first and second signals and switches on or off a signal transmission path of the first and second signals, and an integrator which samples and integrates the first and second signals received from the multiplexer.
Abstract:
A touch screen driver includes a touch screen comprising Tx channels, Rx channels crossing the Tx channels, and sensor nodes formed at the crossings of the Tx channels and the Rx channels; a Tx driving circuit for supplying a Tx driving pulse to the Tx channels; an Rx driving circuit comprising an offset charge compensation circuit that equally compensates for the amount of offset charge included in the voltages of the sensor nodes supplied through the Rx channels and a sampling circuit that samples the offset-compensated voltages of the sensor nodes in response to an Rx sampling clock and converts the sampled voltages into digital data; and a touch controller that analyzes the digital data input from the Rx driving circuit by a preset touch recognition algorithm and outputs touch data including coordinate information of a touch position.
Abstract:
A touch screen device includes a touch screen panel including Tx lines, Rx lines, and touch sensors formed at crossings of the Tx lines and Rx lines; a Tx driving circuit for supplying a driving pulse to the Tx lines; and an Rx driving circuit for sampling charge variations of the touch sensors, which are received through the Rx lines, and converting the received charge variations into touch raw data, wherein the Rx driving circuit includes: a noise filter that removes noise of signals received from the Rx line; an integrator that accumulates the charge variations passing through the noise filter; a sampling circuit that samples the accumulated charge variation of the integrator; and an analog to digital converter that converts the charge variation sampled by the sampling circuit into the touch raw data, the noise filter being a biquad bandpass filter including variable resistors and variable capacitors.
Abstract:
A touch sensing device includes a touch screen including Tx lines, Rx lines crossing the Tx lines, and touch sensors formed at crossings of the Tx lines and the Rx lines, a Tx driving circuit for supplying a driving signal to each of the Tx lines N times, where N is a positive integer equal to or greater than 2, and an Rx driving circuit for double sampling signals received through the Rx lines in one period of the driving signal. The Rx driving circuit includes a multiplexer which receives first and second signals and switches on or off a signal transmission path of the first and second signals, and an integrator which samples and integrates the first and second signals received from the multiplexer.
Abstract:
A touch screen sensing device includes a touch screen including touch sensors formed at crossings of Tx lines and Rx lines, a Tx driving circuit supplying a driving pulse to each of the Tx lines N times, and an Rx driving circuit which samples a signal voltage of the touch sensors received through the Rx lines and converts the sampled signal voltage into digital data. The Rx driving circuit includes a differential amplifier differentially amplifying signals received through the Rx lines, a low pass filter removing a radio frequency noise from an output of the differential amplifier, an amplifier amplifying an output of the low pass filter, and an integrator accumulating signal voltages which are successively output from the amplifier.