The present invention relates generally to a sensing circuit, and particularly to a sensing circuit with signal compensation.
As technologies developed, to meet the market trend and people's demand for modern mobile devices, the displays of the modem mobile devices become thinner and thinner, which is led to increase the parasitic capacitance between display electrodes and touch-panel electrodes significantly. The increased parasitic capacitance will lead to the occurrence of the output saturation problem on the touch sensors of the touch panel.
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To solve the above problems, the present invention provides a sensing circuit with signal compensation. By using a differential amplifying circuit, in addition to reducing noise in the sensing circuit, the interference problem caused by display driving signals may be improved as well.
An objective of the present invention is to provide a sensing circuit with signal compensation, which adopts a differential amplifying circuit and differential compensation to improve the problem of parasitic capacitance between display electrodes and touch-panel electrodes.
Another objective of the present invention is to provide a sensing circuit with signal compensation, which comprises a first sensing device, a second sensing device, and a differential amplifying circuit. The differential amplifying circuit generates an output signal according to a common-mode voltage, a first sensing signal, and a second sensing signal and using differential compensation. In addition to reducing noise in the sensing circuit, the interference caused by the display driving signals may be improved as well.
To achieve the above objectives, the present invention provides a sensing circuit with signal compensation. By coupling a first sensing device and a second sensing device with a differential amplifying circuit, respectively, the noise in the sensing circuit may be cancelled. Furthermore, the influence of common-mode noise on the operations of touch panels may be avoided. Thereby, the quality of display panels may be increased.
In the specifications and subsequent claims, certain words are used for representing specific devices. A person having ordinary skill in the art should know that hardware manufacturers might use different nouns to call the same device. In the specifications and subsequent claims, the differences in names are not used for distinguishing devices. Instead, the differences in functions are the guidelines for distinguishing. In the whole specifications and subsequent claims, the word “comprising” is an open language and should be explained as “comprising but not limited to”. Besides, the word “couple” includes any direct and indirect electrical connection. Thereby, if the description is that a first device is coupled to a second device, it means that the first device is connected electrically to the second device directly, or the first device is connected electrically to the second device via other device or connecting means indirectly.
According to the prior art, no matter using a capacitor COFTV or a current source DAC, an extremely high voltage VOFTV or a large current IDAC is required for providing massive compensation charges to cancel the offset voltage. Unfortunately, in addition to inducing more noise, this method cannot cancel the interference caused by the display driving signals on the display panels. Accordingly, the present invention provides a sensing circuit with signal compensation for solving the problem of increased noise in circuits due to the parasitic capacitance between the display electrodes of driving element IC and the touch-panel electrodes according to the prior art.
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According to the present embodiment, the sensing circuit 100 with signal compensation according to the present invention further comprises a first switching circuit 20, which includes a third switch SW3, a fourth switch SW4, and a fifth switch SW5. One terminal of the third switch SW3, the fourth switch SW4, and the fifth switch SW5 is coupled to the first sensing device CRX1. According to an embodiment of the present invention, the other terminal of the third switch SW3 is coupled to a first ground GND1; the other terminal of the fourth switch SW4 is coupled to the first driving voltage VDD1; and the other terminal of the fifth switch SW5 is coupled to the differential amplifying circuit 10. When the first driving voltage VDD1 is inputted to the first sensing device CRX1 via the fourth switch SW4 or the first ground GND1 is inputted to the first sensing device CRX1 via the third switch SW3, the first sensing signal S1 will be generated.
According to the present embodiment, the sensing circuit 100 with signal compensation according to the present invention further comprises a second switching circuit 30, which includes a sixth switch SW6, a seventh switch SW7, and an eighth switch SW8. One terminal of the six switch SW6, the seventh switch SW7, and the eighth switch SW8 is coupled to the second sensing device CRX2. According to an embodiment of the present invention, the other terminal of the sixth switch SW6 is coupled to a second ground GND2; the other terminal of the seventh switch SW7 is coupled to the second driving voltage VDD2; and the other terminal of the eighth switch SW8 is coupled to the differential amplifying circuit 10. When the second driving voltage VDD2 is inputted to the second sensing device CRX2 via the seventh switch SW7 or the second ground GND2 is inputted to the second sensing device CRX2 via the sixth switch SW6, the second sensing signal S2 will be generated. The first ground GND1 is essentially identical to the second ground GND2; and the first driving voltage VDD1 is essentially identical to the second driving voltage VDD2. Furthermore, by using the property of the approximation between the capacitance of the first sensing device CRX1 and the capacitance of the second sensing device CRX2, as well as using a simple compensation capacitor array, the mismatch in the differential amplifying circuit 10 may be compensated. The common-mode signal of the first sensing device CRX1 and the second sensing device CRX2 may be cancelled at the input of the first stage. According to another embodiment, the first ground GND1 is different from the second ground GND2; the first driving voltage VDD1 is different from the second driving voltage VDD2. By using a simple compensation capacitor array, the mismatch between the first sensing device CRX1 and the second sensing device CRX2 may be compensated. Namely, the common-mode signal of the first sensing device CRX1 and the second sensing device CRX2 may be cancelled at the input of the first stage.
According to the present embodiment, the differential amplifying circuit 10 further includes a differential amplifier 40, which includes a first input, a second input, a third input, a first output, and a second output. According to an embodiment of the present invention, the first input of the amplifier 40 is used for receiving the first sensing signal S1 of the first sensing device CRX1; the second input of the amplifier 40 is used for receiving the second sensing signal S2 of the second sensing device CRX2; and the third input of the differential amplifier 40 is used for receiving the common-mode voltage VCM. By using the first input of the differential amplifier 40 to receive the first sensing signal S1 and the second input to receive the second sensing signal S2, and by using the approximate characteristics of the adjacent first sensing device CRX1 and the second sensing device CRX2, the common-mode noise of the differential amplifier 40 may be cancelled. Hence, difference between the prior art and the present invention, according to the prior art, since the single-ended amplifiers are adopted, the common-mode noise cannot be cancelled. Besides, the problem of saturated sensing signals at outputs of the sensing devices owing to larger capacitance of sensing devices cannot be avoided.
According to the present embodiment, the differential amplifying circuit 10 further includes a first capacitor CFB1, a second capacitor CFB2, a first switch SW1, and a second switch SW2. According to an embodiment of the present invention, the first capacitor CFB1 of the differential amplifying circuit 10 is coupled with the first switch SW1 in parallel and coupled between the first input and the first output of the differential amplifying circuit 10. Besides, the first capacitor CFB1 corresponds to the first sensing signal S1 of the first sensing device CRX1. The second capacitor CFB2; of the differential amplifying circuit 10 is coupled with the second switch SW2 in parallel and coupled between the second input and the second output of the differential amplifying circuit 10. Besides, the second capacitor CFB2 corresponds to the second sensing signal S2 of the second sensing device CRX2. The differential amplifying circuit 10 generates the output signals VOP and VON according to the common-mode voltage VCM, the first sensing signal S1, and the second sensing signal S2.
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According to the present embodiment, in the charge transfer stage of the differential amplifying circuit 10, the fifth switch SW5 of the first switching circuit 20 and the eighth switch SW8 of the second switching circuit 30 are closed, while the fourth switch SW4 of the first switching circuit 20 (or the third switch SW3 of the first switching circuit 20) and the seventh switch SW7 of the second switching circuit 30 (or the sixth switch SW6 of the second switching circuit 30) are open. At this time, the first sensing device CRX1 is discharged from the first driving voltage VDD1 to the common-mode voltage VCM, or the first sensing device CRX1 is charged from the first ground GND1 to the common-mode voltage VCM; the second sensing device CRX2 is discharged from the second driving voltage VDD2 to the common-mode voltage VCM, or the second sensing device CRX2 is charged from the second ground GND2 to the common-mode voltage VCM. Then charges are transferred to the differential amplifying circuit 10. In a first conduction time T1 or a second conduction time T2, the first sensing signal S1 and the second sensing signal S2 are inputted to the differential amplifier 40 and thus further generating the output signals VOP, VON, as expressed in the following equation (1):
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To sum up, the present invention provides a sensing circuit with signal compensation, which comprises a first sensing device, a second sensing device, and a differential amplifying circuit. The differential amplifying circuit generates an output signal by differential compensation using the differential amplifying circuit according to a common-mode voltage, a first sensing signal, and a second sensing signal. In addition to reducing noise in the sensing circuit, the interference from the display driving signals may be improved effectively. Besides, by adopting a first capacitor bank and a second capacitor bank according to the present invention, the first sensing device is matched with the second sensing device effectively. By compensating the differential amplifying circuit, the noises in the differential amplifying circuit may be reduced significantly.
Number | Date | Country | |
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63161463 | Mar 2021 | US |