Stylus
The stylus optimizes signal transmission modes based on grip state to reduce energy consumption and maintain responsiveness, addressing the inefficiencies of active styluses that transmit from both tip and tail sides.
Patent Information
- Application Number
- JP2025136664
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2018-08-09
- Filing Date
- 2025-08-20
- Publication Date
- 2025-11-12
Smart Images

Figure 2025169387000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a stylus. [Background technology]
[0002] A stylus for an electronic device that is based on the motif of a pencil with an eraser is known.
[0003] Patent Documents 1 and 2 disclose a stylus that is provided with an antenna on the tail side opposite to the tip side that transmits pen signals, and is configured so that eraser signals can be transmitted from this antenna. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] U.S. Patent No. 5,793,360 [Patent Document 2] US Patent Publication No. 2018 / 0052534 Summary of the Invention [Problem to be solved by the invention]
[0005] In order to shorten the time lag between the time when the stylus makes contact and the time when the electronic device detects its position, pen signals or eraser signals (hereinafter collectively referred to as "downlink signals") may be transmitted even when the stylus is in a so-called hover state. While this improves the responsiveness of the stylus, it also increases the amount of electrical energy consumed due to the increased transmission time of the downlink signal.
[0006] This problem does not occur in a system in which a downlink signal is generated and transmitted using externally applied energy as a trigger, such as the electromagnetic transfer method (EMR: registered trademark) described in Patent Document 1, but it can occur in an active system in which a downlink signal is generated and transmitted from electrical energy stored in the device. In particular, in the case of the active stylus described in Patent Document 2, two types of downlink signals are transmitted simultaneously to respond to contact on either the tip side or the tail side, which further increases the amount of electrical energy consumed.
[0007] An object of the present invention is to provide an active stylus that can reduce electrical energy consumption while ensuring operational responsiveness in a configuration that allows downlink signals to be transmitted from both the tip side and the tail side. [Means for solving the problem]
[0008] A stylus according to a first aspect of the present invention includes a cylindrical housing, a tip portion provided on the tip side of the housing and having a tip electrode, a tail portion provided on the tail side of the housing and having a tail electrode, a power supply circuit provided inside the housing, a first transmission circuit receiving power from the power supply circuit and generating a first downlink signal to be transmitted to the outside of the housing via the tip electrode, a second transmission circuit receiving power from the power supply circuit and generating a second downlink signal different from the first downlink signal to be transmitted to the outside of the housing via the tail electrode, and a transmission circuit for controlling transmission of the first transmission circuit and the second transmission circuit according to a plurality of transmission modes. and a control circuit for controlling the transmission modes, wherein the plurality of transmission modes include a first transmission mode for performing transmission control to transmit the first downlink signal from the tip electrode and stop transmission of the second downlink signal from the tail electrode, and a second transmission mode for performing transmission control to stop transmission of the first downlink signal from the tip electrode and generate a second downlink signal from the tail electrode, and the control circuit switches between the first transmission mode and the second transmission mode based on a determination regarding the grip state of the housing when the housing is in a hover state in which both the tip portion and the tail portion are not in contact with a touch surface of an electronic device having a touch sensor.
[0009] The sensor control circuit in the second aspect of the present invention is a circuit connected to a sensor electrode, wherein the stylus is configured to transmit a first downlink signal via a tip electrode provided on the tip side and a second downlink signal different from the first downlink signal via a tail electrode provided on the tail side, receives the downlink signal from the stylus via the sensor electrode, generates an uplink signal including data corresponding to either the received first downlink signal or the second downlink signal, and transmits the uplink signal via the sensor electrode. [Effects of the Invention]
[0010] According to the present invention, in a configuration in which downlink signals can be transmitted from both the tip side and the tail side, it is possible to suppress the consumption of electrical energy while ensuring operational responsiveness. [Brief explanation of the drawings]
[0011] [Figure 1] 1 is a diagram illustrating the overall configuration of a position detection system incorporating a stylus according to a first embodiment. [Figure 2] FIG. 2 is a schematic block diagram of the electronic device shown in FIG. [Figure 3] 3A and 3B are external views of the stylus shown in Fig. 1. Fig. 3A is a side view of the stylus. Fig. 3B is a partial development view of the housing. [Figure 4] FIG. 2 is an electrical block diagram of the stylus shown in FIG. 1. [Figure 5] 4 is a flowchart illustrating the operation of the stylus in the first embodiment. [Figure 6] FIG. 10 is a diagram illustrating an example of a method for determining a grip state. [Figure 7] 7A and 7B are external views of a stylus according to a first modified example of the first embodiment, respectively. Fig. 7A is a side view of the stylus, and Fig. 7B is a partial development view of the housing. [Figure 8] FIG. 10 is an external view of a stylus according to a second modified example of the first embodiment. [Figure 9] FIG. 10 is an external view of a stylus according to a second embodiment. [Figure 10] FIG. 10 is an electrical block diagram of the stylus shown in FIG. 9. [Figure 11] 10 is a flowchart illustrating the operation of a stylus in the second embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0012] The stylus and sensor control circuit of the present invention will be described with reference to the accompanying drawings. Note that the present invention is not limited to the following embodiments and modifications, and can be freely modified without departing from the spirit of the present invention. Alternatively, the respective configurations may be combined as desired within the scope of the present invention without causing technical inconsistencies.
[0013] [First embodiment] First, the stylus 16 in the first embodiment will be described with reference to FIGS.
[0014] <Overall Configuration of Position Detection System 10> 1 is a diagram showing the overall configuration of a position detection system 10 incorporating a stylus 16 according to a first embodiment. The position detection system 10 is basically composed of an electronic device 14 having a display panel 12 and a stylus 16, which is a pen-shaped pointing device.
[0015] The electronic device 14 may be, for example, a tablet terminal, a smartphone, or a personal computer. The user Us can write pictures and characters on the electronic device 14 by holding the stylus 16 in one hand and pressing the tip of the stylus against the touch surface 18 of the display panel 12 and moving the stylus.
[0016] The stylus 16 is configured to be capable of one-way or two-way communication with the electronic device 14. Hereinafter, a signal transmitted from the stylus 16 to the electronic device 14 may be referred to as a "downlink signal," and a signal transmitted from the electronic device 14 to the stylus 16 may be referred to as an "uplink signal." Note that the stylus 16 is an "active type" stylus that actively generates a signal from electrical energy stored in the stylus itself and transmits it to the electronic device 14 as a downlink signal.
[0017] <Configuration of Electronic Device 14> Fig. 2 is a schematic block diagram of the electronic device 14 shown in Fig. 1. The electronic device 14 includes a sensor electrode 200, a sensor control circuit 202, and a host processor 204. The x and y directions shown in this figure correspond to the X and Y axes of a Cartesian coordinate system defined on the plane formed by the sensor electrode 200.
[0018] The sensor electrodes 200 are a plurality of electrodes arranged between the display panel 12 and the touch surface 18 (FIG. 1). The sensor electrodes 200 include a plurality of X electrodes 200x for detecting an X coordinate (position in the x direction) and a plurality of Y electrodes 200y for detecting a Y coordinate (position in the y direction). The plurality of X electrodes 200x are provided extending in the y direction and are arranged at equal intervals along the x direction. The plurality of Y electrodes 200y are provided extending in the x direction and are arranged at equal intervals along the y direction.
[0019] The sensor control circuit 202 is an integrated circuit configured to be able to execute firmware 206, and is connected to each of the multiple electrodes that make up the sensor electrode 200. The firmware 206 is configured to be able to implement a touch detection function 208 that detects a touch by the user Us, and a pen detection function 210 that detects the state of the stylus 16.
[0020] The touch detection function 208 includes, for example, a two-dimensional scanning function of the sensor electrode 200, a function for creating a heat map (two-dimensional positional distribution of detection levels) on the sensor electrode 200, and a function for classifying areas on the heat map (for example, classification into fingers or palms). The pen detection function 210 includes, for example, a two-dimensional scanning function of the sensor electrode 200, a function for receiving and analyzing downlink signals, a function for estimating the state of the stylus 16 (for example, position, orientation, writing pressure), and a function for generating and transmitting uplink signals including commands to the stylus 16.
[0021] The host processor 204 is a processor including a CPU (Central Processing Unit) or a GPU (Graphics Processing Unit). The host processor 204 reads and executes a program from a memory (not shown), thereby generating digital ink using data from the sensor control circuit 202, for example.
[0022] <Stylus 16 Configuration> Fig. 3 is an external view of the stylus 16 shown in Fig. 1. More specifically, Fig. 3(a) is a side view of the stylus 16, and Fig. 3(b) is a partial development view of the housing 20.
[0023] As shown in Figure 3(a), the stylus 16 comprises a cylindrical housing 20, a tip portion 22 provided at one end side (hereinafter referred to as the tip side) of the housing 20, and a tail portion 24 provided at the other end side (hereinafter referred to as the tail side) of the housing 20.
[0024] The housing 20 has, for example, a Reuleaux triangular cross-sectional shape, which makes it easier to hold the stylus 16 and reduces hand fatigue.
[0025] The roughly conical tip portion 22 includes a tip electrode 22e made of a conductive material and a tip cover 22c that covers part or all of the tip electrode 22e. The tip electrode 22e is an electrode that outputs a pen signal, which will be described later, and is attached to a core body (not shown). A tip-side sensor group 26 is provided on the tip side of the housing 20. The tip-side sensor group 26 includes an end sensor 27 that detects pressure on the tip portion 22 and a contact sensor 28 that detects contact with the human body.
[0026] The roughly conical tail portion 24 includes a tail electrode 24e made of a conductive material and a tail cover 24c that covers part or all of the tail electrode 24e. The tail electrode 24e is an electrode that outputs an eraser signal, which will be described later, and is attached to a core (not shown). A tail-side sensor group 30 is provided on the tail side of the housing 20. The tail-side sensor group 30 includes an end sensor 31 that detects pressure on the tail portion 24 and a contact sensor 32 that detects contact with the human body.
[0027] The end sensor 27 (31) is, for example, a pressure sensor using a variable capacitor that detects a change in capacitance caused by pressure on the tip portion 22 (tail portion 24). Note that the end sensors 27, 31 may be pressure sensors using other methods, or may be pressure switches that switch on and off when a predetermined pressure (threshold) is applied.
[0028] The contact sensors 28, 32 are, for example, self-capacitance or mutual-capacitance electrostatic touch sensors. The contact sensors 28, 32 may be sensors that detect energy applied by contact with a human body (specifically, pressure-sensitive sensors or heat-sensitive sensors), or optical sensors that detect the position of contact with the human body. The contact sensors 28, 32 may be housed inside the housing 20 or attached to the outer periphery of the housing 20, depending on the type of detection method.
[0029] As shown in FIG. 3(b), the tip-side contact sensor 28 has rectangular detection regions R1 to R3 that extend in the axial direction of the housing 20 and curve in the circumferential direction. The three detection regions R1 to R3 are located midway between adjacent vertices along the periphery of the housing 20. Similarly, the tail-side contact sensor 32 has rectangular detection regions R4 to R6 that extend in the axial direction of the housing 20 and curve in the circumferential direction. The three detection regions R4 to R6 are located midway between adjacent vertices along the periphery of the housing 20.
[0030] Here, the circumferential coordinate (vertical axis) is defined so that the apex of the cross-sectional shape is located at the circumferential angle of 0 degrees, 120 degrees, and 240 degrees. As can be seen from this figure, it should be noted that the contact sensors 28 and 32 are provided on the outer peripheral surface of the housing 20 at relatively flat locations (in other words, locations with large curvature) compared to the apex of the triangle (0 degrees, 120 degrees, 240 degrees).
[0031] The detection areas R1 and R4 are disposed at corresponding circumferential positions (the center line is positioned at 60 degrees). The axial length of the detection area R1 is L1, and the axial length of the detection area R4 is L2. L2 may be the same as or different from L1. The detection areas R1 and R4 are disposed a distance Dis apart. This distance Dis is designed taking into account the hand size of the user Us, and is, for example, 50 mm or more, or 100 mm or more.
[0032] The detection areas R2 and R5 are located at corresponding circumferential positions (the center line is at 180 degrees). The detection areas R3 and R6 are located at corresponding circumferential positions (the center line is at 300 degrees). The detection areas R2 and R5 (or the detection areas R3 and R6) are located so as to satisfy the same relative positional relationship as the above-described detection areas R1 and R4.
[0033] Figure 4 is an electrical block diagram of the stylus 16 shown in Figure 1. In addition to the tip electrode 22e, tail electrode 24e, tip side sensor group 26, and tail side sensor group 30 (Figure 3), the stylus 16 includes a power supply circuit 34, a DC / DC converter 36, a tip side transmission circuit 38 (first transmission circuit), a tail side transmission circuit 40 (second transmission circuit), and a control circuit 42.
[0034] The power supply circuit 34 generates a drive voltage for the stylus 16 and outputs the resulting DC voltage to the DC / DC converter 36. Specifically, the power supply circuit 34 is composed of a battery 44, such as a lithium-ion battery, and a power management IC (hereinafter referred to as PMIC 46) that manages the power of the battery 44.
[0035] The DC / DC converter 36 converts the DC voltage input from the power supply circuit 34 into a DC voltage suitable for each circuit, and then outputs it to the chip side transmitting circuit 38, the tail side transmitting circuit 40, and the control circuit 42, respectively.
[0036] The chip-side transmitting circuit 38 is a circuit that generates a pen signal (first downlink signal) based on the DC voltage from the DC / DC converter 36. The tail-side transmitting circuit 40 is a circuit that generates an eraser signal (second downlink signal) based on the DC voltage from the DC / DC converter 36. The chip-side transmitting circuit 38 and the tail-side transmitting circuit 40 each include an oscillator circuit that generates a carrier signal that oscillates at a predetermined frequency, and a modulator circuit that modulates the carrier signal using data included in a control signal from the control circuit 42. The carrier signal waveform may be any AC waveform, such as a sine wave, a rectangular wave, or a triangular wave.
[0037] The control circuit 42 is a microcomputer that controls operations including the transmission of downlink signals. The control circuit 42 receives detection signals from the chip side sensor group 26 and the tail side sensor group 30, and outputs control signals to the chip side transmission circuit 38 and the tail side transmission circuit 40. This allows the control circuit 42 to control transmission by the chip side transmission circuit 38 and the tail side transmission circuit 40 in accordance with a plurality of transmission modes (e.g., first, second, and third transmission modes).
[0038] Here, the "first transmission mode" refers to a mode in which the pen signal is transmitted from the tip electrode 22e and the transmission of the eraser signal from the tail electrode 24e is stopped. The "second transmission mode" refers to a mode in which the transmission of the pen signal from the tip electrode 22e is stopped and the eraser signal is transmitted from the tail electrode 24e. The "third transmission mode" refers to a mode in which the pen signal is transmitted from the tip electrode 22e and the eraser signal is transmitted from the tail electrode 24e.
[0039] The "pen signal" is a type of downlink signal that indicates an intention to use the pen function of the stylus 16 (an intention to mark). The "eraser signal" is a type of downlink signal that indicates an intention to use the eraser function of the stylus 16 (an intention to erase marking). The signal waveforms of the eraser signal and the pen signal are made different so that the receiving electronic device 14 can identify the type of downlink signal.
[0040] As a first method, the signal waveforms of the eraser signal and the pen signal may be made different by modulating a carrier wave having the same frequency with different data. One example is to share information about the pen ID and the state of the stylus 16 (e.g., writing pressure and posture) and change the value of a specific flag (Invert). Specifically, for the pen signal, Invert may be set to "0," and for the eraser signal, Invert may be set to "1." As a second method, the signal waveforms of the eraser signal and the pen signal may be made different by modulating a carrier wave having a different frequency with the same data. As a third method, the signal waveforms of the eraser signal and the pen signal may be made different by changing the length of an unmodulated signal.
[0041] <Stylus 16 Operation> The stylus 16 in the first embodiment is configured as described above. Next, the operation of this stylus 16 (particularly, the transmission control by the control circuit 42) will be described with reference to the flowchart in FIG.
[0042] In step S1, control circuit 42 determines whether tip portion 22 or tail portion 24 is in contact based on detection signals from end sensors 27, 31. If tip portion 22 is in contact with touch surface 18, control circuit 42 determines that only tip portion 22 is in contact (step S1: tip), and proceeds to step S3, which will be described later. On the other hand, if tail portion 24 is in contact with touch surface 18, control circuit 42 determines that only tail portion 24 is in contact (step S1: tail), and proceeds to step S5, which will be described later.
[0043] On the other hand, if the contact state of both the tip portion 22 and the tail portion 24 is not detected, the control circuit 42 determines that the stylus 16 is in a "hover state" (step S1: hover), and proceeds to step S2.
[0044] In step S2, the control circuit 42 determines the grip state of the stylus 16. Here, the control circuit 42 determines whether the detection signals from the contact sensors 28, 32 satisfy predetermined conditions (hereinafter referred to as the judgment conditions) that indicate a high probability of the stylus 16 being gripped. As can be seen from FIG. 1, a typical user Us tends to grip the housing 20 (FIG. 3) from all directions with multiple fingers at positions as close to the tip as possible in order to stabilize the writing operation while using the stylus 16. A specific example of a judgment method based on this tendency will be described in detail below with reference to FIG. 6.
[0045] 6 is a diagram showing an example of a method for determining the grip state, and similar to FIG. 3(b), shows a schematic development view of the housing 20. For ease of understanding, of the six detection areas R1 to R6, areas where human contact has been detected are indicated by hatched rectangles, while areas where human contact has not been detected are indicated by blank rectangles.
[0046] As shown in Figure 6(a), suppose that human contact is simultaneously detected in all three detection areas R1 to R3 on the tip side. On the other hand, suppose that human contact is not detected in all three detection areas R4 to R6 on the tail side. In this case, the control circuit 42 determines that the user Us is holding the tip side of the stylus 16 with the intention of using the pen function.
[0047] As shown in Figure 6(b), suppose that human contact is not detected simultaneously in all three detection areas R1 to R3 on the tip side. On the other hand, suppose that human contact is detected simultaneously in all three detection areas R4 to R6 on the tail side. In this case, the control circuit 42 determines that the user Us is holding the tail side of the stylus 16 with the intention of using the eraser function.
[0048] In this way, by including as one of the conditions for determining whether or not there is human contact from all directions around the casing 20, it is possible to accurately determine whether or not the stylus 16 is being held. Furthermore, by setting the distance Dis between the contact sensors 28, 32 to Dis≧100 mm, simultaneous detection by both contact sensors 28, 32 is suppressed, making it easier to determine the direction in which the stylus 16 is being held. Nevertheless, if human contact is detected simultaneously by both contact sensors 28, 32, the determination may be made according to the following rules.
[0049] 6(c), suppose that contact with a human body is simultaneously detected in all three detection areas R1 to R3 on the tip side. Meanwhile, suppose that contact with a human body is detected in one detection area R5 on the tail side. This contact state can be detected, for example, when the user Us holds the stylus 16 with multiple fingers, with the tip side in contact with the base of the thumb.
[0050] Here, when the number of detection points on the tip side and the tail side is the same, the control circuit 42 may determine that the side with the greater number of detection points is being held by the user Us. In the example of Fig. 6(c), the control circuit 42 determines that the user Us is holding the tip side of the stylus 16 with the intention of using the pen function.
[0051] 5, if the determination condition on the chip side is satisfied (step S2: chip), the control circuit 42 proceeds to step S3. If the determination condition on the tail side is satisfied (step S2: tail), the control circuit 42 proceeds to step S5. On the other hand, if neither determination condition is satisfied (step S2: unknown), the control circuit 42 proceeds to step S7.
[0052] In step S3, if the state is determined to be "tip" in either step S1 or S2, the control circuit 42 switches to and executes a first transmission mode in which only a pen signal is transmitted to the outside. Specifically, the control circuit 42 supplies a control signal for generating a pen signal to the tip side transmission circuit 38, and supplies a control signal for stopping generation of an eraser signal to the tail side transmission circuit 40. As a result, the pen signal is generated by the tip side transmission circuit 38 and transmitted to the outside via the tip electrode 22e (step S4).
[0053] In step S5, if the control circuit 42 determines a "tail" in either step S1 or S2, it switches to and executes a second transmission mode in which only the eraser signal is transmitted to the outside. Specifically, the control circuit 42 supplies a control signal to the tip-side transmission circuit 38 to stop generation of the pen signal, and supplies a control signal to the tail-side transmission circuit 40 to generate the eraser signal. As a result, the eraser signal is generated by the tail-side transmission circuit 40 and transmitted to the outside via the tail electrode 24e (step S6).
[0054] In step S7, if the control circuit 42 determines "hover" in step S1 and "unknown" in step S2, it switches to and executes a third transmission mode in which both the pen signal and the eraser signal are transmitted to the outside. Specifically, the control circuit 42 supplies a control signal for generating the pen signal to the tip side transmission circuit 38, and supplies a control signal for generating the eraser signal to the tail side transmission circuit 40. As a result, the pen signal is transmitted to the outside via the tip electrode 22e, and the eraser signal is transmitted to the outside via the tail electrode 24e (step S8). Note that the third transmission mode may be a control in which both the pen signal and the eraser signal are transmitted simultaneously, or may be a control in which they are transmitted alternately in a time-division manner.
[0055] In this way, the operation of the flowchart shown in Fig. 5 is completed. The control circuit 42 repeats this flowchart at predetermined execution intervals, allowing the stylus 16 to successively transmit downlink signals to the electronic device 14.
[0056] <Effects of the first embodiment> As described above, the stylus 16 comprises a cylindrical housing 20, a tip portion 22 provided on the tip side of the housing 20 and having a tip electrode 22e, a tail portion 24 provided on the tail side of the housing 20 and having a tail electrode 24e, a power supply circuit 34 provided inside the housing 20, a tip-side transmitting circuit 38 (first transmitting circuit) that receives power from the power supply circuit 34 and generates a pen signal (first downlink signal) to be transmitted to the outside of the housing 20 via the tip electrode 22e, a tail-side transmitting circuit 40 (second transmitting circuit) that receives power from the power supply circuit 34 and generates an eraser signal (second downlink signal) different from the pen signal to be transmitted to the outside of the housing 20 via the tail electrode 24e, and a control circuit 42 that controls transmission of the tip-side transmitting circuit 38 and the tail-side transmitting circuit 40 in accordance with a plurality of transmission modes.
[0057] The multiple transmission modes include a first transmission mode in which transmission control is performed to transmit a pen signal from the tip electrode 22e and stop transmission of an eraser signal from the tail electrode 24e, and a second transmission mode in which transmission control is performed to stop transmission of the pen signal from the tip electrode 22e and generate an eraser signal from the tail electrode 24e, and the control circuit 42 switches between and executes the first transmission mode and the second transmission mode based on a determination regarding the grip state of the housing 20 when the electronic device 14 is in a hover state in which both the tip portion 22 and the tail portion 24 are not in contact with the touch surface 18 of the electronic device 14 having a touch sensor.
[0058] In this way, the first transmission mode and the second transmission mode are switched and executed based on the determination regarding the holding state of the housing 20, so that in the hover state, it is possible to selectively transmit in advance only the downlink signal that is appropriate for the holding state of the housing 20. This makes it possible to reduce the consumption of electrical energy while ensuring operational responsiveness in a configuration in which downlink signals can be transmitted from both the tip side and the tail side.
[0059] The stylus 16 may further include a contact sensor 28 (first contact sensor) that detects whether the user Us has touched the housing 20 near the tip portion 22, and the control circuit 42 may control transmission according to the first transmission mode when contact is detected by the contact sensor 28. By utilizing the ergonomic knowledge that when the user Us uses the tip side of the stylus 16, there is a high possibility that contact will be detected near the tip portion 22, the accuracy of determining the grip state is further improved.
[0060] Furthermore, contact sensors 28 may be provided at at least three locations along the circumference of housing 20, and control circuit 42 may perform transmission control in accordance with the first transmission mode when contacts at three or more locations are detected by contact sensors 28. By utilizing the ergonomic knowledge that when user Us uses the tip side of stylus 16, there is a high possibility that contacts from multiple fingers from all directions will be detected simultaneously, the accuracy of determining the grip state is further improved.
[0061] The stylus 16 may further include a contact sensor 32 (second contact sensor) that detects whether the user Us has touched the housing 20 near the tail portion 24, and the control circuit 42 may (a) control transmission according to the first transmission mode when contact is detected by the contact sensor 28 and not by the contact sensor 32, or (b) control transmission according to the second transmission mode when contact is not detected by the contact sensor 28 and contact is detected by the contact sensor 32. This makes it possible to ensure operational responsiveness and reduce energy consumption regardless of whether the tip side or the tail side of the stylus 16 is used.
[0062] The plurality of transmission modes further includes a third transmission mode that performs transmission control to transmit a pen signal from the tip electrode 22e and the second downlink signal from the tail electrode 24e, and the control circuit 42 may execute the third transmission mode when the holding state of the housing 20 is not specified. Even when either the tip portion 22 or the tail portion 24 contacts the touch surface 18 without specifying the holding state, the pen signal and the eraser signal can be transmitted, thereby ensuring the operational responsiveness of the stylus 16.
[0063] Furthermore, contact sensor 28 and contact sensor 32 may be spaced apart by 100 mm or more in the axial direction of housing 20. This prevents simultaneous detection by both contact sensors 28 and 32, making it easier to determine the orientation in which stylus 16 is being held.
[0064] Furthermore, contact sensors 28 and 32 may be provided at the same number of locations along the circumference or axis of housing 20, and control circuit 42 may (a) control transmission according to a first transmission mode when the number of locations where contact is detected by contact sensor 28 is greater than the number of locations where contact is detected by contact sensor 32, and (b) control transmission according to a second transmission mode when the number of locations where contact is detected by contact sensor 28 is less than the number of locations where contact is detected by contact sensor 32. This allows the orientation of stylus 16 to be determined with high accuracy even when both contact sensors 28 and 32 simultaneously detect contact by a human body.
[0065] Furthermore, contact sensors 28, 32 may be provided in a location that is relatively flat compared to other locations on the outer circumferential surface of housing 20. The flatter the contact detection location, the closer it is to a human finger, which further improves the detection accuracy of contact sensors 28, 32.
[0066] <Modification of the first embodiment> (Example 1) The detection areas R1 to R6 of the contact sensors 28, 32 are not limited to the example shown in FIG. 3(b), and the shape, position or number can be changed as appropriate.
[0067] Figure 7 is an external view of a stylus 60 in a first modified example of the first embodiment. More specifically, Figure 7(a) is a side view of the stylus 60, and Figure 7(b) is a partial developed view of the housing 20. As shown in Figure 7(a), the stylus 60 includes the housing 20, tip portion 22, and tail portion 24, as well as contact sensors 62 and 64 that have shapes different from those of the first embodiment (contact sensors 28 and 32).
[0068] As shown in FIG. 7(b), the tip-side contact sensor 62 has annular detection areas R1, R2, and R3 in order from the tip side toward the center. The three detection areas R1 to R3 are arranged at equal intervals along the axial direction of the housing 20. Similarly, the tail-side contact sensor 64 has annular detection areas R4, R5, and R6 in order from the tail side to the center. The three detection areas R4 to R6 are arranged at equal intervals along the axial direction of the housing 20. The two detection areas R3 and R6 are arranged a distance Dis apart. This distance Dis is, for example, 50 mm or more, or 100 mm or more.
[0069] Even when the shapes of the contact sensors 62, 64 are changed as described above, it is possible to determine the grip state of the housing 20, as in the first embodiment. In particular, by making the detection regions R1 to R6 annular, there is an advantage in that uniform detection sensitivity can be obtained regardless of the rotational attitude (angle) of the stylus 60.
[0070] (Example 2) The shape of the housing 20 is not limited to the example shown in Fig. 3(a) and can be changed as appropriate. For example, the cross section of the housing 20 may be circular or polygonal, and may be partially processed to make it easier for the user Us to hold.
[0071] Figure 8 is an external view of a stylus 70 in a second modified example of the first embodiment. More specifically, Figure 8(a) is a front view of the stylus 70 viewed from the tip side, and Figure 8(b) is a rear view of the stylus 70 viewed from the tail side. In addition to the tip portion 22 and the tail portion 24, the stylus 70 is equipped with a housing 72 whose shape is different from that of the first embodiment.
[0072] 8(a), the housing 72 has a Reuleaux triangular cross section, similar to the first embodiment (housing 20). A recess 78 having a flat receiving surface 76 is formed on the outer peripheral surface 74 of the housing 72 near the tip portion 22. A contact sensor 80 (first contact sensor) that detects contact with a human body is provided at least on the receiving surface 76.
[0073] 8(b), a recess 84 having a flat receiving surface 82 is formed on the outer peripheral surface 74 of the housing 72 in a position near the tail portion 24. In addition, a contact sensor 86 (second contact sensor) that detects contact with a human body is provided at least on the receiving surface 82.
[0074] Even when the shape of the housing 72 is changed as described above, it is possible to determine the holding state of the housing 72, as in the first embodiment. In particular, when holding the stylus 70, by encouraging the user Us to bring the thumb into contact with the receiving surface 76 of the recess 78 (or the receiving surface 82 of the recess 84), the detection accuracy of the contact sensors 80, 86 is further improved.
[0075] (Example 3) In the first embodiment, the gripping state is determined using the contact sensors 28 and 32, but other sensors (especially sensors provided for other purposes) may be used instead. For example, the control circuit 42 may (a) control transmission according to the first transmission mode when the most recent contact with the touch surface 18 was detected by the end sensor 27, and (b) control transmission according to the second transmission mode when the most recent contact with the touch surface 18 was detected by the end sensor 31. By taking into consideration that the tip portion 22 or the tail portion 24 that most recently contacted the touch surface 18 is more likely to be used continuously, the accuracy of determining the gripping state is further improved.
[0076] (Example 4) Although the first embodiment does not assume that contact at both the tip portion 22 and the tail portion 24 is detected, processing may be performed to accommodate this case. For example, if contact at both the tip portion 22 and the tail portion 24 is detected, it is assumed that the stylus 16 is placed in a bag or the like. That is, the control circuit 42 may perform transmission control to stop transmission of the pen signal from the tip electrode 22e and stop transmission of the eraser signal from the tail electrode 24e. This prevents electrical energy from being consumed in unexpected situations.
[0077] [Second embodiment] Next, the stylus 102 in the second embodiment will be described with reference to Figures 9 to 11. Note that the same reference numerals are used for configurations or functions that are the same as those in the first embodiment, and descriptions thereof may be omitted.
[0078] <Overall Configuration of Position Detection System 100> 1, the position detection system 100 is basically composed of an electronic device 14 and a stylus 102. The electronic device 14 may have the same or different configuration as that shown in FIG.
[0079] <Configuration of Stylus 102> 9 is an external view of a stylus 102 in the second embodiment, showing a state in which the stylus 102 is held with the tip portion 104 facing the touch surface 18. The stylus 102 comprises a cylindrical housing 20, a tip portion 104 provided on the tip side of the housing 20, and a tail portion 106 provided on the tail side of the housing 20.
[0080] The roughly conical tip portion 104 includes a ring electrode 108 made of a conductive material in addition to the tip electrode 22e and tip cover 22c. The ring electrode 108 is an electrode that inputs an uplink signal and is provided on the inside or outside of the tip cover 22c. Unlike the configuration of the first embodiment, only an end sensor 27 is provided on the tip side of the housing 20.
[0081] The roughly conical tail portion 106 includes a ring electrode 108 made of a conductive material in addition to the tail electrode 24e and the tail cover 24c. The ring electrode 108 is an electrode that inputs an uplink signal and is provided on the inside or outside of the tail cover 24c. Unlike the configuration of the first embodiment, only an end sensor 31 is provided on the tail side of the housing 20.
[0082] The sensor control circuit 202 on the electronic device 14 side receives the downlink signal from the stylus 102 via the sensor electrode 200 connected to the sensor control circuit 202. The sensor control circuit 202 then generates an uplink signal including data corresponding to the type of the received downlink signal, and transmits the uplink signal via the sensor electrode 200.
[0083] In the example shown in the figure, the tip electrode 22e is located closer to the touch surface 18 (sensor electrode 200) than the tail electrode 24e. In this positional relationship, the electronic device 14 can receive a pen signal from the tip electrode 22e via the sensor electrode 200, and the stylus 102 can receive an uplink signal from the sensor electrode 200 via the ring electrode 108. On the other hand, the electronic device 14 cannot receive an eraser signal from the tail electrode 24e via the sensor electrode 200, and the stylus 102 cannot receive an uplink signal from the sensor electrode 200 via the ring electrode 110.
[0084] Fig. 10 is an electrical block diagram of the stylus 102 shown in Fig. 9. The stylus 102 includes a tip electrode 22e, a tail electrode 24e, end sensors 27 and 31, a power supply circuit 34, a DC / DC converter 36, a tip-side transmitting circuit 38, a tail-side transmitting circuit 40, ring electrodes 108 and 110, and a control circuit 112.
[0085] The control circuit 112 is a microcomputer that controls operations including the transmission of downlink signals. The control circuit 112 receives detection signals from the end sensors 27 and 31 and uplink signals from the ring electrodes 108 and 110, and outputs control signals to the tip side transmission circuit 38 and the tail side transmission circuit 40. This allows the control circuit 112 to control transmissions by the tip side transmission circuit 38 and the tail side transmission circuit 40 in accordance with at least the first, second, and third transmission modes.
[0086] <Stylus 102 Operation> The stylus 102 in the second embodiment is configured as described above. Next, the operation of the stylus 102 (particularly, the transmission control by the control circuit 112) will be described in detail with reference to the flowchart in FIG.
[0087] In step S11, control circuit 112 determines whether or not tip portion 104 or tail portion 106 is in contact, based on the detection signals from end sensors 27, 31. If tip portion 104 is in contact with touch surface 18, control circuit 112 determines that only tip portion 104 is in contact (step S11: tip), and proceeds to step S14, which will be described later. On the other hand, if tail portion 106 is in contact with touch surface 18, control circuit 112 determines that only tail portion 106 is in contact (step S11: tail), and proceeds to step S16, which will be described later.
[0088] On the other hand, if the contact state of both the tip portion 104 and the tail portion 106 is not detected, the control circuit 112 determines that the stylus 102 is in a "hover state" (step S11: hover), and proceeds to step S12.
[0089] In step S12, the control circuit 112 determines whether or not an uplink signal has been received via the ring electrodes 108, 110. If an uplink signal has not been received (step S12: NO), the process proceeds to step S20, which will be described later. On the other hand, if an uplink signal has been received (step S12: YES), the process proceeds to the next step S13.
[0090] In step S13, the control circuit 112 determines the holding state of the stylus 102. Here, the control circuit 112 determines the holding state using data included in the received uplink signal. As can be seen from FIG. 9, during use, the stylus 102 is held in a position close to the touch surface 18 of the electronic device 14. The closer the transmission position of the downlink signal is to the touch surface 18, the more likely the electronic device 14 is to receive the signal. A specific example of a determination method based on this tendency will be described below.
[0091] First, the sensor control circuit 202 on the electronic device 14 side changes part of the data to be transmitted (hereinafter referred to as the identifier) depending on the reception status of the downlink signal. This identifier indicates the type of the downlink signal most recently received by the electronic device 14, and is a binary value (1 bit): "0" for a pen signal, and "1" for an eraser signal.
[0092] For example, the sensor control circuit 202 sets the identifier to "0" when it receives a pen signal consecutively for more than a predetermined time or number of times, sets the identifier to "1" when it receives an eraser signal consecutively for more than a predetermined time or number of times, and sets the identifier to "NULL" otherwise. Then, the sensor control circuit 202 generates an uplink signal including this identifier, and then transmits the uplink signal via the sensor electrode 200.
[0093] The control circuit 112 analyzes the data indicated by the received uplink signal and determines the grip state according to the value of the identifier included in the data. That is, if the identifier is "0," the control circuit 112 determines that the user Us is holding the tip side of the stylus 102 with the intention of using the pen function. If the identifier is "1," the control circuit 112 determines that the user Us is holding the tail side of the stylus 102 with the intention of using the eraser function. If the identifier is "NULL," the control circuit 112 determines that the grip state is unknown.
[0094] Conversely, the identifier may indicate the type of downlink signal that was not most recently received by the electronic device 14. In this case, the control circuit 112 determines that the user Us is not holding the tip side of the stylus 102 when the identifier is "0," and determines that the user Us is not holding the tail side of the stylus 102 when the identifier is "1."
[0095] If the determination condition on the chip side is satisfied (step S13: chip), the control circuit 112 proceeds to step S14. If the determination condition on the tail side is satisfied (step S13: tail), the control circuit 112 proceeds to step S16. On the other hand, if neither determination condition is satisfied (step S13: unknown), the control circuit 112 proceeds to step S18.
[0096] In step S14, if the control circuit 112 determines that the input is "chip" in either step S11 or S13, it switches to the first transmission mode in which only the pen signal is transmitted to the outside. As a result, the pen signal is generated by the chip-side transmission circuit 38 and transmitted to the outside via the chip electrode 22e (step S15).
[0097] In step S16, if the control circuit 112 determines that either step S11 or S13 indicates a "tail," it switches to and executes a second transmission mode in which only the eraser signal is transmitted to the outside. As a result, the eraser signal is generated by the tail-side transmission circuit 40 and transmitted to the outside via the tail electrode 24e (step S17).
[0098] In step S18, if the determination is "hover" in step S11 and "NO" in step S13, the control circuit 112 switches to and executes a third transmission mode in which both the pen signal and the eraser signal are transmitted to the outside. As a result, the pen signal is transmitted to the outside via the tip electrode 22e, and the eraser signal is transmitted to the outside via the tail electrode 24e (step S19).
[0099] In step S20, if the control circuit 112 determines "NO" in step S12, it does not receive a command from the electronic device 14 (that is, a trigger to send a downlink signal), and therefore does not send either the pen signal or the eraser signal.
[0100] In this way, the operation of the flowchart shown in Fig. 11 is completed. The control circuit 112 repeats this flowchart at predetermined execution intervals, allowing the stylus 102 to successively transmit downlink signals to the electronic device 14.
[0101] <Effects of the second embodiment> As described above, the stylus 102 includes the housing 20, the tip portion 104, the tail portion 106, the power supply circuit 34, the tip-side transmitting circuit 38, and the tail-side transmitting circuit 40, as well as a control circuit 112 that, when in a hover state, switches between the first transmission mode and the second transmission mode based on a determination regarding the holding state of the housing 20. The control circuit 112 determines the holding state of the housing 20 using data included in the uplink signal received from the electronic device 14. As a result, in a configuration in which downlink signals can be transmitted from both the tip side and the tail side, similar to the first embodiment, it is possible to reduce electrical energy consumption while ensuring operational responsiveness.
[0102] The data may also include an identifier indicating the type of downlink signal received by the electronic device 14, and the control circuit 112 may (a) control transmission according to a first transmission mode when the identifier indicates a pen signal, and (b) control transmission according to a second transmission mode when the identifier indicates an eraser signal.
[0103] Conversely, the data may include an identifier indicating the type of downlink signal that was not received by the electronic device 14, and the control circuit 112 may (a) control transmission according to a first transmission mode if the identifier indicates an eraser signal, and (b) control transmission according to a second transmission mode if the identifier indicates a pen signal.
[0104] The plurality of transmission modes further includes a third transmission mode that performs transmission control to transmit a pen signal from tip electrode 22e and an eraser signal from tail electrode 24e, and control circuit 112 may execute the third transmission mode when the holding state of housing 20 is not specified. Even when either tip electrode 22e or tail electrode 24e comes into contact with touch surface 18 without specifying the holding state, the pen signal and eraser signal can be transmitted, thereby ensuring the operational responsiveness of stylus 102.
[0105] The sensor control circuit 202 that realizes the above-mentioned operation receives a downlink signal from the stylus 102 via the connected sensor electrode 200, generates an uplink signal containing data corresponding to either the received pen signal or eraser signal, and transmits the uplink signal via the sensor electrode 200.
[0106] Here, this data may be used to control the transmission of the stylus 102 to continue transmitting either the pen signal or the eraser signal, or conversely, this data may be used to control the transmission of the stylus 102 to stop transmitting either the pen signal or the eraser signal.
[0107] <Modification of the second embodiment> In the second embodiment, the uplink signal is received using the ring electrodes 108, 110, but instead, the signal may be received using the tip electrode 22e or the tail electrode 24e. For example, when transmitting and receiving via the tip electrode 22e, a switch mechanism may be provided that can switch between: [1] connecting the tip electrode 22e to the transmitting circuit when transmitting a pen signal, and [2] connecting the tip electrode 22e to the receiving circuit when receiving an uplink signal. [Explanation of symbols]
[0108] 10,100 Position detection system, 14 Electronic device, 16,60,70,102 Stylus, 20,72 Housing, 22,104 Tip portion, 22e Tip electrode, 24,106 Tail portion, 24e Tail electrode, 27 End sensor (first end sensor), 28,62,80 Contact sensor (first contact sensor), 31 End sensor (second end sensor), 32,64,86 Contact sensor (second contact sensor), 34 Power supply circuit, 38 Tip side transmitting circuit (first transmitting circuit), 40 Tail side transmitting circuit (second transmitting circuit), 42,112 Control circuit, 76,82 Receiving surface, 78,84 Recess, 108,110 Ring electrode, 200 Sensor electrode, 202 Sensor control circuit, R1 to R6 Detection area, Us User
Claims
1. A stylus that receives an uplink signal from an external sensor control circuit and transmits a downlink signal in response to the uplink signal, a first electrode provided on the first portion; a second electrode provided in a second portion different from the first portion; a control circuit for controlling transmission of the downlink signal; a sensor provided on the stylus; Equipped with The control circuit determines a holding state of the stylus in accordance with the detection result of the sensor, and in accordance with the determination, a first transmission mode in which a downlink signal is transmitted from the first electrode and the downlink signal is not transmitted from the second electrode; a second transmission mode in which the downlink signal is not transmitted from the first electrode and the downlink signal is transmitted from the second electrode; Switch your stylus.
2. the sensor includes a first contact sensor provided at a position closer to the first electrode than the second electrode, and a second contact sensor provided at a position closer to the second electrode than the first electrode; The control circuit selecting the first transmission mode when the first contact sensor detects contact; selecting the second transmission mode when the second contact sensor detects contact; 2. The stylus of claim 1.
3. the first contact sensor and the second contact sensor each have three or more detection areas along the outer periphery of the stylus; The control circuit selecting the first transmission mode when the first contact sensor detects contact in the three or more detection areas; The stylus according to claim 2 , wherein the second transmission mode is selected when the second contact sensor detects contact in the three or more detection areas.
4. When the gripping state is not identified, the control circuit selecting a third transmission mode in which the downlink signal is transmitted from both the first electrode and the second electrode; 2. The stylus of claim 1.
5. A stylus according to any preceding claim, wherein the first electrode is a tip electrode of the stylus and the second electrode is a tail electrode of the stylus.
Citation Information
Patent Citations
Position indicator, position detector and computer
JP2007249670A
Electronic input device and information processing apparatus
JP2009217604A
Interactive stylus with discrete circuit multiplexing system
JP2018505459A
Stylus Communication Channels
US20180024651A1
Electronic pen
WO2016084424A1