Touch module and touch circuit thereof
11693515 · 2023-07-04
Assignee
Inventors
- Wang-An Lin (Jhubei, TW)
- Chun-Kuan Wu (Jhubei, TW)
- Chen-Yuan Yang (Jhubei, TW)
- Tsung-Han Tsai (Jhubei, TW)
Cpc classification
G06F3/041
PHYSICS
G06F3/0446
PHYSICS
International classification
Abstract
The present invention provides a touch module, which comprises a touch panel, an analog front end circuit, and a microcontroller circuit. The touch panel generates a plurality of sensing signals. The analog front end circuit is coupled to the touch panel, generates a state signal, and generates a plurality of touch detecting signals according to the plurality of sensing signals. The microcontroller circuit is coupled to the analog front end circuit, generates one or more touch location signal according to the plurality of touch detecting signals, and enters the next switching state according to the state signal when the switching state is changed.
Claims
1. A touch module, comprising: a touch panel, generating a plurality of sensing signals; an analog front end circuit, coupled to said touch panel, generating a state signal, and generating a plurality of touch detecting signals according to said plurality of sensing signals; and a microcontroller circuit, coupled to said analog front end circuit, generating one or more touch location signals according to said plurality of touch detecting signals, and entering a next switching state according to said state signal while changing a switching state; wherein said state signal indicates an operating state and an idle state of said analog front end circuit, said microcontroller circuit enters the next switching state according to said state signal when said analog front end circuit is in said idle state or changes to said idle state.
2. The touch module of claim 1, wherein said state signal includes a plurality of voltage level changes; a first voltage level and a second voltage level of said state signal indicate said operating state and said idle state of said analog front end circuit, respectively; said microcontroller circuit enters an operating state or a closing state when said analog front end circuit is in said idle state; and said analog front end circuit receives said plurality of sensing signals while said analog front end circuit is in said operating state.
3. The touch module of claim 1, wherein said analog front end circuit includes: an analog-to-digital converter, coupled to said touch panel, and generating a plurality of digital signals according to said plurality of sensing signals; a digital signal processor, coupled to said analog-to-digital converter, and generating said plurality of touch detecting signals according to said plurality of digital signals; and a storage circuit, coupled to said digital signal processor, storing said plurality of touch detecting signals, and said microcontroller circuit coupled to said storage circuit to read said plurality of touch detecting signals.
4. The touch module of claim 1, wherein said analog front end circuit includes: a timing controller, generating an initial signal; a driving circuit, coupled to said timing controller and said touch panel, and generating a plurality of driving signals to said touch panel according to said initial signal; and a digital signal processor, coupled to said timing controller, and generating said plurality of touch detecting signals according to said initial signal and a plurality of digital signals.
5. The touch module of claim 1, and further comprising a power supply circuit, coupled to said analog front end circuit and said microcontroller circuit, and supplying a power source to said analog front end circuit and said microcontroller circuit.
6. The touch module of claim 1, wherein said analog front end circuit generates an interrupt signal and said microcontroller circuit receives said plurality of touch detecting signals according to said interrupt signal.
7. The touch module of claim 6, wherein said interrupt signal indicates that said analog front end circuit finishes generating said plurality of touch detecting signals; and said analog front end circuit receives said plurality of sensing signals while said analog front end circuit is in said operating state.
8. A touch circuit of a touch module, comprising an analog front end circuit, said analog front end circuit generating a state signal, and generating a plurality of touch detecting signals according to a plurality of sensing signals, said state signal indicating an operating state and an idle state of said analog front end circuit; wherein a microcontroller circuit enters a next switching state according to said state signal when said analog front end circuit is in said idle state or changes to said idle state.
9. The touch circuit of a touch module of claim 8, wherein said analog front end circuit includes a timing controller; said analog front end circuit generates said plurality of touch detecting signals according to said plurality of sensing signals of a touch panel; and said timing controller generates an interrupt signal after said analog front end circuit generates said plurality of touch detecting signals.
10. The touch circuit of a touch module of claim 8, and further comprising said microcontroller circuit, coupled to said analog front end circuit.
11. The touch circuit of a touch module of claim 8, wherein said analog front end circuit is coupled to said microcontroller circuit; and said microcontroller circuit generates one or more touch location signals according to said plurality of touch detecting signals and enters the next switching state according to said state signal while changing a switching state.
12. The touch circuit of a touch module of claim 8, wherein said analog front end circuit includes: an analog-to-digital converter, coupled to a touch panel, and generating a plurality of digital signals according to said plurality of sensing signals; a digital signal processor, coupled to said analog-to-digital converter, and generating said plurality of touch detecting signals according to said plurality of digital signals; and a storage circuit, coupled to said digital signal processor, storing said plurality of touch detecting signals.
13. The touch circuit of a touch module of claim 8, wherein said analog front end circuit includes: a timing controller, generating an initial signal; a driving circuit, coupled to said timing controller and a touch panel, and generating a plurality of driving signals to said touch panel according to said initial signal; and a digital signal processor, coupled to said timing controller, and generating said plurality of touch detecting signals according to said initial signal and said plurality of sensing signals.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(6) 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 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 techniques as whole 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 connection. Thereby, if the description is that a first device is coupled to a second device, it means that the first device is connected to the second device directly, or the first device is connected to the second device via other device or connecting means indirectly.
(7) In order to make the structure and characteristics as well as the effectiveness of the present invention to be further understood and recognized, the detailed description of the present invention is provided as follows along with embodiments and accompanying figures.
(8) Please refer to
(9) Please refer again to
(10) After receiving the initial signal generated by the timing controller 21, the DSP 25 starts to process the signal. Thereby, the DSP 25 is coupled to the ADC circuit 27 and receives the digital sensing signals for further generating a plurality of touch detecting signals S.sub.touch. The DSP 25 is coupled to the storage circuit 29 and generates the plurality of touch detecting signals S.sub.touch to the storage circuit 29. Thereby, the storage circuit 29 stores the plurality of touch detecting signal S.sub.touch.
(11) Furthermore, in order to coordinate the operations of the MCU 30 and the AFE circuit 20, the MCU 30 can send a touch synchronization vertical detection (TSVD) signal to the AFE circuit 20 for controlling the AFE circuit 20 to enter an operating state for performing the operations including generating the plurality of driving signals, receiving the plurality of sensing signals, and processing the plurality of sensing signals. When the operation of the AFE circuit 20 is finished and in an interrupt state, an interrupt signal S.sub.interrupt can be transmitted to the MCU 30 for enabling the MCU 30 to read the plurality of touch detecting signals S.sub.touch timely. Please refer to
(12) Besides, according to the embodiment in
(13) Please refer again to
(14) Moreover, the AFE circuit 20 will generate a state signal S.sub.state, which includes a first voltage level and a second voltage level. The first voltage level can be used for indicating that the AFE circuit 20 is in an operating state; the second voltage level can be used for indicating that the AFE circuit 20 is in an idle state. The first voltage level can be a pulse of the state signal S.sub.state. In addition, the correspondence of the voltage levels described above is just an embodiment of the present invention, not used for limiting the present invention. Thereby, according to the present embodiment, after receiving the state signal S.sub.state in the first voltage level, the MCU 30 will not change the switching state, such as changing from the operating state to the closing state (stop operation) or from the closing state to the operating state (start operation). After receiving the state signal S.sub.state in the second voltage level, the MCU 30 will change the switching state (the operating state or the closing state). In the operating state, the MCU 30 can perform various signal processes, for example, starting to read the plurality of touch detecting signals S.sub.touch of the storage circuit 29 or identifying the touch location according to the plurality of touch detecting signals S.sub.touch.
(15) Accordingly, the MCU 30 can acquire the state, such as the operating or idle state as described above, of the AFE circuit 20 according to the state signal S.sub.state for determining the timing for changing its own switching state and hence preventing the operation of MCU 30 interfering the operation stability and SNR performance of the AFE circuit 20 or preventing mutual interference between the operations of the MCU 30 and the AFE circuit 20. The interrupt signal S.sub.interrupt in
(16) Please refer to
(17) According to
(18) In addition, when the AFE circuit 20 is in the idle state, the MCU 30 can change its switching state freely. While changing the switching state, the MCU 30 can change from the operating state to the closing state directly, without needing to enter the idle state before the closing state. Moreover, when the MCU 30 is in the closing state and the state signal S.sub.state is in the high-level pulse, the MCU 30 will not enter the operating state. Please refer again to
(19) Please refer to
(20) Please refer to
(21) Accordingly, in a touch circuit or other circuits, such as a display driving circuit, the technology according to the present invention can be applied to two circuit having different operating currents for avoiding mutual interference or avoiding interference of the circuit having a larger current to the one having a smaller current.
(22) To sum up, the present invention discloses a touch module, which comprises a touch panel, an analog front end circuit, and a microcontroller circuit. The touch panel generates a plurality of sensing signals. The analog front end circuit is coupled to the touch panel, generates a state signal, and generates a plurality of touch detecting signals according to the plurality of sensing signals. The microcontroller circuit is coupled to the analog front end circuit, generates one or more touch location signal according to the plurality of touch detecting signals, and enters the next switching state according to the state signal when the switching state is changed.
(23) The present invention discloses a touch circuit of a touch module, which comprises an analog front end circuit. The analog front end circuit generates a state signal and receives a plurality of sensing signals for generating a plurality of touch detecting signals. The state signal indicates that the analog front end circuit is in an operating state or an idle state.