Electronic device, touch screen, electronic device and information processing method
By adopting a sensor stacking method and processor design that is different from existing technologies in electronic devices, the problem of inconsistency between the return key and the touch screen sensor is solved, and a smaller circuit board size and a better user experience are achieved.
Patent Information
- Application Number
- CN202111678005.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-12-31
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2041-12-31
AI Technical Summary
In the prior art, the sensor stacking of the return key and the touch screen in the electronic device is inconsistent, resulting in inconsistent dielectric constant and capacitance parameters, requiring separate chip control, which increases the size and area of the control circuit board.
A stacking method different from the existing technology is adopted. The sizes of the first sensor layer and the second sensor layer are consistent with the glass substrate, and the ink thickness fluctuation in the frame layer is set to not affect the dielectric constant of the sensor layer. A processor is used to process the sensing information of the two sensor layers.
It reduces the size of the circuit board, simplifies circuit design, and improves user experience and device performance.
Smart Images

Figure CN114356142B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of electronic device control, and more specifically, to an electronic device, a touch screen, an electronic device, and an information processing method. Background Art
[0002] Currently, many electronic devices with touch display functions are equipped with a desktop return key (home key). Figure 1 In the schematic diagram of the electronic device shown, the return key 101 is disposed in a black frame (BM, Black Matrix) area 103 at the bottom edge of the touch screen 102 .
[0003] In the prior art, when designing a solution, independent chips are generally used for control, that is, one chip controls the return key and another chip controls the touch screen.
[0004] However, using a separate chip to control the return key increases the size and area of the control circuit board. Summary of the Invention
[0005] In view of this, the present application provides an electronic device as follows:
[0006] An electronic device, comprising:
[0007] Glass substrate;
[0008] Border layer;
[0009] a first sensor layer and a second sensor layer sequentially disposed between the glass substrate and the frame layer, wherein the sizes of the first sensor layer and the second sensor layer are consistent with the sizes of the glass substrate;
[0010] The processor is connected to the first sensor layer and the second sensor layer, and is used to process the sensing information detected by the first sensor layer and the second sensor layer.
[0011] Optionally, in the above-mentioned electronic device, the frame layer includes:
[0012] A marking layer having a preset marking is provided;
[0013] a first sub-frame layer provided between the second sensor layer and the identification layer, the first sub-frame layer having a target area corresponding to the preset identification, the light transmittance of the target area being greater than a preset value, and the light transmittance of a non-target area in the first sub-frame layer being less than a preset value;
[0014] The second sub-frame layer is arranged on a side of the identification layer away from the first sub-frame layer.
[0015] Optionally, the above-mentioned electronic device,
[0016] The first sensor layer includes at least two first sensing units;
[0017] The second sensor layer includes at least two second sensing units;
[0018] Wherein, in a direction perpendicular to the surface of the glass substrate, the at least two first sensing units and the at least two second sensing units intersect.
[0019] Optionally, in the above electronic device, the first sensing units of the first sensor layer are arranged in a first manner in the first area, and the first sensing units of the first sensor layer are arranged in a second manner in the second area other than the first area;
[0020] The second sensing units of the second sensor layer are arranged in a third manner in the first region, and the second sensing units of the second sensor layer are arranged in a fourth manner in the second region;
[0021] Among them, the first method is different from the second method, and the third method is different from the fourth method.
[0022] Optionally, the above electronic device further includes:
[0023] A first image elimination layer is provided on a side of the first sensor layer close to the glass substrate, wherein the first image elimination layer is provided corresponding to the first sensing unit in the first sensor layer;
[0024] A second image elimination layer is provided on a side of the second sensor layer close to the glass substrate, and the second image elimination layer is provided corresponding to the second sensing unit in the second sensor layer.
[0025] Optionally, the above electronic device further includes:
[0026] a first insulating layer disposed between the glass substrate and the first sensor layer;
[0027] a second insulating layer disposed between the first sensor layer and the second sensor layer;
[0028] A third insulating layer is disposed between the second sensor layer and the frame layer.
[0029] A touch screen, comprising:
[0030] Glass substrate;
[0031] Border layer;
[0032] Display layer;
[0033] a first sensor layer and a second sensor layer sequentially disposed between the glass substrate and the frame layer, wherein the sizes of the first sensor layer and the second sensor layer are consistent with the sizes of the glass substrate;
[0034] The second sensor is arranged on one side of the frame layer, and the display layer is arranged on the other side of the frame layer;
[0035] The first sensor layer and the second sensor layer are further connected to a processor, and the processor is used to process the sensing information detected by the first sensor layer and the second sensor layer.
[0036] Optionally, in the above-mentioned touch screen, the display layer includes any one of the following:
[0037] Two parallel transparent plates, with liquid crystal material filled between the two transparent plates; or
[0038] The electronic ink layer composed of the electronic ink array.
[0039] An electronic device, comprising:
[0040] A touch screen as described in any one of the above items;
[0041] The processor is connected to the first sensor layer and the second sensor layer of the touch screen respectively, and is used to process the sensing information detected by the first sensor layer and the second sensor layer.
[0042] An information processing method, applied to an electronic device having any of the above electronic devices, comprising:
[0043] receiving sensing information detected by the first sensor layer and the second sensor layer, wherein the sensing information is generated based on a touch operation performed by an operating body on the electronic device;
[0044] Analyze the sensor information to obtain target information;
[0045] The control responds to the touch operation based on the target information.
[0046] From the above technical solution, it can be seen that the present application provides an electronic device, comprising: a glass substrate, a first sensor layer, a second sensor layer and a frame layer arranged in sequence; wherein the frame layer is used to realize the setting of a frame in the electronic device, and the sizes of the two sensor layers are consistent with the sizes of the glass base. Moreover, a processor is also provided in the electronic device, which is respectively connected to the two sensor layers. The touch operation performed at any position of the glass substrate layer of the operating body can be sensed by the two sensor layers and the sensor information generated. The processor processes the sensor information based on the two sensor layers, and can realize the processing of the sensor information of the entire touch area of the electronic device. There is no need to set up independent chips for the frame area and the touch screen area respectively, thereby reducing the size and area of the circuit board. BRIEF DESCRIPTION OF THE DRAWINGS
[0047] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are merely embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on the provided drawings without any creative work.
[0048] Figure 1 It is a schematic diagram of an electronic device;
[0049] Figure 2 is a cross-sectional view of a return key area in the prior art;
[0050] Figure 3 is a cross-sectional view of a touch screen area in the prior art;
[0051] Figure 4 This is a schematic structural diagram of an electronic device embodiment 1 provided in this application;
[0052] Figure 5 This is a schematic structural diagram of an electronic device embodiment 2 provided in this application;
[0053] Figure 6 Schematic diagram of the structure of the first sensor layer and the second sensor layer in Example 3 of an electronic device provided by this application Figure 1 ;
[0054] Figure 7 Schematic diagram of the structure of the first sensor layer and the second sensor layer in Example 3 of an electronic device provided by this application Figure 2 ;
[0055] Figure 8 The arrangement of the sensor layer in the first area of the electronic device embodiment 3 provided in this application;
[0056] Figure 9This is a structural diagram of an electronic device embodiment 4 provided in this application;
[0057] Figure 10 This is a structural diagram of an electronic device embodiment 5 provided by the present application;
[0058] Figure 11 A schematic diagram of the steps for manufacturing the structure of each layer in the frame area of an electronic device provided in this application;
[0059] Figure 12 A schematic structural diagram of a touch screen embodiment provided by this application;
[0060] Figure 13 A flowchart of an information processing method embodiment provided in this application. DETAILED DESCRIPTION
[0061] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.
[0062] like Figure 2 What is shown in the figure is a cross-sectional view of the return key area in the prior art, which includes a glass cover, a first sub-frame layer BM1, a first sensor layer, a second sensor layer, a silk-screen identification layer and a second sub-frame layer BM2 in sequence, and the display layer is set on the other side of the second sub-frame layer.
[0063] like Figure 3 , which is a cross-sectional view of a touch screen area in the prior art, includes a glass substrate, a first sensor layer, and a second sensor layer in sequence.
[0064] After careful research, the inventors of this application discovered that the sensor stacking in the return key area and the touch screen area is inconsistent. The main difference between the two is that the sensor in the return key area has a BM layer in the middle. This will cause two effects:
[0065] (1) The ink of the BM layer contains organic materials. Due to the limitation of the manufacturing process, it is difficult to make the thickness of the BM layer ink consistent for each piece. The fluctuation of the ink thickness will cause the overall dielectric constant of the return key area sensor to change. The change of the dielectric constant will also cause the signal of the sensor to change, thus exceeding the debugging range of the control chip and failing to be mass-produced.
[0066] (2) Due to the inconsistent stacking of the return key area and the touch screen area, the capacitance parameters (signal quantities) of the two areas are also inconsistent. Therefore, separate debugging parameters are required for both sides, which will affect the processing capability of the touch chip, resulting in poor performance of the return key or touch screen.
[0067] Table 1 below shows the dielectric constant information of the return key area and the touch screen area.
[0068] Table 1
[0069] Return key area Touch screen area Thickness information Glass cover 7.2~7.9 7.2~7.9 0.55mm BM1 10 NA 1.5nm First sensor layer NA NA <400nm Second sensor layer NA NA <400nm Silk screen logo layer 6.2~6.8 NA 9nm BM2 6.2~6.8 NA 8um
[0070] Therefore, the inventors of this application adopted a stacking method that is completely different from the prior art to solve the problem of inconsistent capacitance parameters of the return key area and the touch screen area due to inconsistent stacking, and the problem of changes in the overall dielectric constant of the return key area sensor area due to inconsistent BM layer thickness.
[0071] like Figure 4 , which is a schematic structural diagram of an electronic device embodiment 1 provided by the present application, includes the following structures: a glass substrate 401, a first sensor layer 402, a second sensor layer 403, a frame layer 404, and a processor 405;
[0072] The first sensor layer and the second sensor layer are sequentially arranged between the glass substrate and the frame layer, and the size of the first sensor layer and the size of the second sensor layer are consistent with the size of the glass substrate;
[0073] The processor is connected to the first sensor layer and the second sensor layer, and is used to process the sensing information detected by the first sensor layer and the second sensor layer.
[0074] The frame layer is arranged on one side of the two sensor layers, and the glass substrate is arranged on the other side of the two sensor layers.
[0075] Among them, the frame layer is a layer containing ink. Since the two sensor layers are stacked on one side of the glass base layer and the frame layer is stacked on the other side of the sensor layer, the frame layer does not affect the overall dielectric constant of the return key area sensor involved in the sensor layer. Therefore, even if the ink thickness set in the frame layer fluctuates, it will not affect the overall dielectric constant of the return key area sensor in the sensor layer.
[0076] The processor can process all sensing information detected by the first sensor layer and the second sensor layer, and there is no need to set up a dedicated processor for the sensor of the return key.
[0077] In summary, the present embodiment provides an electronic device comprising: a glass substrate, a first sensor layer, a second sensor layer and a frame layer arranged in sequence; wherein the frame layer is used to implement the setting of a frame in the electronic device, the sizes of the two sensor layers are consistent with the sizes of the glass substrate, and the electronic device is further provided with a processor, which is respectively connected to the two sensor layers. Touch operations performed at any position on the glass substrate layer of the operating body can be sensed by the two sensor layers and sensor information generated, and the processor processes the sensor information based on the two sensor layers, thereby processing the sensor information of the entire touch area of the electronic device. There is no need to set up independent chips for the frame area and the touch screen area respectively, thereby reducing the size and area of the circuit board.
[0078] like Figure 5 FIG. 1 is a schematic structural diagram of an electronic device embodiment 2 provided by the present application, wherein the device includes the following structures: a glass substrate 501 , a first sensor layer 502 , a second sensor layer 503 , a frame layer 504 , and a processor 505 ;
[0079] The structures and functions of the glass substrate 501 , the first sensor layer 502 , the second sensor layer 503 and the processor 505 are consistent with those in Example 1 and are not described in detail in this embodiment.
[0080] The frame layer includes: a first sub-frame layer 5041, a logo layer 5042 and a second sub-frame layer 5043;
[0081] The identification layer 5042 is provided with a preset identification;
[0082] Among them, the identification layer is arranged between the second sensor layer and the first sub-frame layer. The identification can be used to identify the return key so that the user can accurately determine the location of the return key based on visual perception; or the identification can also display the identification of the electronic device so that the user can accurately determine the manufacturer of the electronic device.
[0083] The first sub-frame layer 5041 is provided between the second sensor layer and the identification layer. The first sub-frame layer has a target area corresponding to the preset identification. The transmittance of the target area is greater than a preset value, and the transmittance of the non-target area in the first sub-frame layer is less than a preset value.
[0084] The second sub-frame layer 5043 is arranged on a side of the identification layer away from the first sub-frame layer.
[0085] The first sub-frame layer and the second sub-frame layer are provided with organic materials such as dark ink, which are provided specifically by screen printing.
[0086] Among them, the first sub-frame layer has a target area, which corresponds to the preset logo in the identification layer. The target area has a high light transmittance, so that the user on one side of the electronic device can visually perceive the logo in the identification layer through the glass substrate, the first sensor layer, the second sensor layer and the first sub-frame layer.
[0087] Moreover, the second sub-frame layer is completely covered with organic materials such as dark ink, which ensures that the frame of the electronic device is complete and the structure on one side of the electronic device cannot be visually perceived by the user.
[0088] Among them, since the first sub-frame layer and the second sub-frame layer are arranged on the side of the sensor layer away from the glass substrate, and the identification layer is sandwiched between the two sub-frame layers, while ensuring that the identification is visually perceived by the user, the integrity of the frame of the electronic device is ensured, and the internal structure of the electronic device to which the electronic device belongs is not visually perceived by the user, thereby ensuring the user experience.
[0089] like Figure 6 The figure shows the structure of the first sensor layer and the second sensor layer in the electronic device embodiment 3 provided by the present application. Figure 1 .
[0090] The electronic device includes the following structures: a glass substrate, a first sensor layer, a second sensor layer, a frame layer, and a processor;
[0091] The structural functions of the glass substrate, the frame layer and the processor are consistent with the corresponding structures in Example 1 and are not described in detail in this embodiment.
[0092] Wherein, the first sensor layer includes at least two first sensing units;
[0093] Wherein, the second sensor layer includes at least two second sensing units;
[0094] Wherein, in a direction perpendicular to the surface of the glass substrate, the at least two first sensing units and the at least two second sensing units intersect.
[0095] Among them, the Figure 6 3 is a top view of the two sensor layers, wherein the solid lines represent the first sensing units in the first sensor layer, and the dotted lines represent the second sensing units in the second sensor layer.
[0096] Specifically, the plurality of first sensing units in the first sensor layer are sequentially arranged to form a first pattern, and the plurality of second sensing units in the second sensor layer are sequentially arranged to form a second pattern.
[0097] In a specific implementation, the figure formed by the first figure and the second figure has an intersection.
[0098] Specifically, in the first region, the first sensing units of the first sensor layer form a first pattern, and the second sensing units of the second sensor layer form a second pattern, and the first pattern and the second pattern are symmetrical.
[0099] Specifically, the first sensor layer includes at least two first sensing units arranged in parallel along a first direction in the second region; the second sensor layer includes at least two second sensing units arranged in parallel along a second direction in the second region, and the first direction is substantially perpendicular to the second direction.
[0100] like Figure 6 In the embodiment, the first sensing unit and the second sensing unit are both linear, and the two form a grid on the surface where the glass substrate is located, covering the entire area of the glass substrate.
[0101] In a specific implementation, the first sensor layer further includes at least two first nodes, the first nodes are connected to the first sensing units in a one-to-one correspondence, and each first node is connected to the processing unit;
[0102] The second sensor layer further includes at least two second nodes, the second nodes are connected to the second sensing units in a one-to-one correspondence, and each second node is connected to a processing unit.
[0103] The processing unit can locate the area touched by the user based on the sensing unit of the sensing information source it receives and the sensing information obtained by the two layers of sensors respectively.
[0104] The first sensing units of the first sensor layer are arranged in a first manner in the first area, and the first sensing units of the first sensor layer are arranged in a second manner in the second area other than the first area;
[0105] The second sensing units of the second sensor layer are arranged in a third manner in the first region, and the second sensing units of the second sensor layer are arranged in a fourth manner in the second region;
[0106] Among them, the first method is different from the second method, and the third method is different from the fourth method.
[0107] like Figure 7 The diagram shows the structure of the first sensor layer and the second sensor layer in Example 3 of an electronic device provided by this application. Figure 2 .
[0108] The sensing units in the two sensor layers are arranged in different ways so that they intersect in a direction perpendicular to the surface of the glass substrate.
[0109] Specifically, a special key, such as a return key, is set in the first area of the electronic device.
[0110] Since the return key only needs to sense that a touch condition is met to respond without requiring more complex judgment, the sensor unit arrangement of the first area 701 may be different from that of other areas.
[0111] Specifically, in the first sensor layer corresponding to the first area, the first sensing units are arranged sparsely than in other areas; correspondingly, in the second sensor layer corresponding to the first area, the second sensing units are arranged sparsely than in other areas.
[0112] There are many ways to arrange the two sensor layers in the first area.
[0113] like Figure 8 The arrangement of the sensor layers in the first region is shown, where the solid line represents the first sensor layer and the dashed line represents the second sensor layer.
[0114] Wherein, two sensor layers in the first region (1) are respectively provided with two sensing units, and the two sensing units in each layer are parallel, and the sensing units in any layer are perpendicular to the sensing units in the other layer;
[0115] Wherein, the two sensor layers in the first region in (2) are respectively provided with a plurality of sensing units, the sensing units are arranged obliquely in the region, and the sensing units in each layer are parallel, the sensing units in any layer are perpendicular to the sensing units in the other layer, and the arrangement density of the sensing units in (2) is greater than the arrangement density of the sensing units in (1);
[0116] (3) In the first area, the two layers of sensors respectively use crossed linear sensing units, and the two layers of sensors are dense in the central area of the first area and sparse at the edge of the first area.
[0117] like Figure 9 FIG. 1 is a schematic diagram of a structure of an electronic device embodiment 4 provided by the present application, wherein the electronic device includes the following structures arranged in sequence: a glass substrate 901, a first image elimination layer 902, a first sensor 903, a second image elimination layer 904, a second sensor 905, a frame layer 906, and a processor 907;
[0118] The structures and functions of the glass substrate 901 , the first sensor 903 , the second sensor 905 , the frame layer 906 and the processor 907 are consistent with those in Example 3 and are not described in detail in this embodiment.
[0119] The first image elimination layer 902 is provided on the side of the first sensor layer close to the glass substrate, and the first image elimination layer is provided corresponding to the first sensing unit in the first sensor layer;
[0120] The second image elimination layer 904 is disposed on the side of the second sensor layer close to the glass substrate, and the second image elimination layer is disposed corresponding to the second sensing unit in the second sensor layer.
[0121] Since the sensing units in the sensor layer are implemented using metal wires, users can see the metal wires at a straight or side angle of view on one side of the glass substrate, resulting in a poor user experience. Therefore, in this embodiment, an image elimination layer is provided on the side of the sensor layer close to the glass substrate.
[0122] Specifically, the shadow elimination layer is made of a dark material that does not affect the sensing of the sensing unit.
[0123] Specifically, the shadow elimination layer may be made of photoresist. Before manufacturing the metal line layer, the photoresist is coated on the corresponding position on the glass substrate and blackened to achieve shadow elimination of the subsequently manufactured metal lines.
[0124] It should be noted that, since the sensing unit adopts a metal wire, the shadow elimination layer only needs to block the metal wire and does not need to cover the entire area.
[0125] In a specific implementation, if the pattern formed by the combination of the sensor units in the two sensor layers in the first area is too large, the sensor pattern may be easily visible to the naked eye. The issue of sensor visibility from front or side viewing angles can also be resolved by adjusting the width of the sensor units in this area, the distance between the sensor units, and the density of the sensor units.
[0126] like Figure 10 FIG. 1 is a schematic structural diagram of an electronic device embodiment 5 provided by the present application, wherein the electronic device includes the following structures arranged in sequence: a glass substrate 1001, a first insulating layer 1002, a first sensor 1003, a second insulating layer 1004, a second sensor 1005, a third insulating layer 1006, a frame layer 1007, and a processor 1008;
[0127] The structures and functions of the glass substrate 1001 , the first sensor 1003 , the second sensor 1005 , the frame layer 1007 and the processor 1008 are consistent with those in the first embodiment and are not described in detail in this embodiment.
[0128] Wherein, the first insulating layer 1002 is provided between the glass substrate and the first sensor layer;
[0129] Wherein, the second insulating layer 1004 is provided between the first sensor layer and the second sensor layer;
[0130] The third insulating layer 1006 is disposed between the second sensor layer and the frame layer.
[0131] Specifically, in order to reduce the influence between the various layer structures in the electronic device, an insulating layer is further provided between the various layer structures.
[0132] Specifically, the insulating layer can be provided by coating with insulating glue (such as acrylic polyurethane).
[0133] like Figure 11 The figure shows a schematic diagram of the steps for manufacturing the structure of each layer in the frame area of an electronic device provided by the present application, which includes:
[0134] Step S1101: glass strengthening;
[0135] This step strengthens the glass substrate.
[0136] Step S1102: Insulation coating 1;
[0137] Step S1103: sputter coating the metal grid 1;
[0138] Step S1104: etching the metal grid 1 pattern;
[0139] The above two steps are for manufacturing the first sensor layer.
[0140] Step S1105: Insulation coating 2;
[0141] Step S1106: sputter coating the metal grid 2;
[0142] Step S1107: etching the metal grid 2 pattern;
[0143] The above two steps are for manufacturing the second sensor layer.
[0144] Step S1108: Insulation coating 3;
[0145] Step S1109: screen printing of border area 1;
[0146] This step is to produce a border area. The border area produced in this step has a blank area, which corresponds to the marking area in the subsequent steps.
[0147] Step S1110: silk screen printing;
[0148] This step creates a specific identifier for the device.
[0149] Step S1111: Screen printing of the border area 2.
[0150] This step is for making the border area.
[0151] It should be noted that the steps for manufacturing each layer structure of the touch area (non-frame area) of the electronic device refer to steps S1101 - 1107 of the frame area.
[0152] Corresponding to the above-mentioned electronic device embodiment provided by the present application, the present application also provides a touch screen embodiment using the electronic device.
[0153] like Figure 12 The figure shows a schematic structural diagram of a touch screen embodiment provided by the present application, which includes the following structures: a glass substrate 1201, a first sensor layer 1202, a second sensor layer 1203, a frame layer 1204, a display layer 1205 and a processor 1206.
[0154] The first sensor layer and the second sensor layer are sequentially arranged between the glass substrate and the frame layer, and the size of the first sensor layer and the size of the second sensor layer are consistent with the size of the glass substrate;
[0155] The second sensor is arranged on one side of the frame layer;
[0156] The display layer is arranged on the other side of the frame layer;
[0157] The first sensor layer and the second sensor layer are further connected to a processor, and the processor is used to process the sensing information detected by the first sensor layer and the second sensor layer.
[0158] The structures and functions of the glass substrate 1201 , the first sensor layer 1202 , the second sensor layer 1203 , the frame layer 1204 and the processor 1206 in the touch screen are consistent with those in the aforementioned electronic device embodiment and are not described in detail in this embodiment.
[0159] The display layer performs display based on the processing result of the processor.
[0160] Specifically, the display layer includes any one of the following:
[0161] (1) Two parallel transparent plates, with a liquid crystal material filled between the two transparent plates;
[0162] (2) The electronic ink layer composed of the electronic ink array.
[0163] Among them, when the display layer adopts the (1) structure, the touch screen is specifically a touch liquid crystal screen, and when the display layer adopts the (2) structure, the touch screen is specifically a touch electronic ink screen.
[0164] In specific implementations, different display layer structures can be selected according to needs.
[0165] Corresponding to the above-mentioned touch screen embodiment provided by the present application, the present application also provides an embodiment of an electronic device using the touch screen.
[0166] An electronic device includes:
[0167] A touch screen as described in the above touch screen embodiment;
[0168] The processor is connected to the first sensor layer and the second sensor layer of the touch screen respectively, and is used to process the sensing information detected by the first sensor layer and the second sensor layer.
[0169] In this embodiment, the electronic device uses only one processor to process the sensing information of the touch screen, which simplifies the structure of the electronic device.
[0170] Corresponding to the above-mentioned electronic device embodiment provided by the present application, the present application also provides an information processing method embodiment applied to the electronic device.
[0171] like Figure 13 The figure shows a flow chart of an embodiment of an information processing method provided by the present application. The method is applied to an electronic device and includes the following steps:
[0172] Step S1301: receiving sensing information detected by the first sensor layer and the second sensor layer;
[0173] The sensing information is generated based on a touch operation performed by an operating body on the electronic device;
[0174] A plurality of sensing units are respectively provided in the first sensor layer and the second sensor layer. Each sensing unit is connected to a processor respectively. The sensing unit transmits the sensing information detected by the sensing unit to the processor.
[0175] Step S1302: Analyze the sensor information to obtain target information;
[0176] The processor determines the corresponding sensing unit and sensor layer based on the received sensing information.
[0177] Specifically, the processor locates the target coordinates of the touch operation on the touch screen based on the positions of the sensing units in the two sensor layers.
[0178] The information corresponding to the target coordinates of the touch screen is determined, and target information corresponding to the touch operation is further determined based on the corresponding information.
[0179] The corresponding information includes display information and area.
[0180] The area corresponding to the target coordinates is the first area, and a specific button, such as a desktop return button, is set in the area. The target information is the target information including the response information of the specific button.
[0181] The area corresponding to the target coordinates is a display area, and response information corresponding to the touch of the display content is determined based on the display content corresponding to the target coordinates in the display area.
[0182] Step S1303: controlling a response to the touch operation based on the target information.
[0183] The touch operation is responded to based on the target information determined in the above steps.
[0184] Specifically, if the target information is response information of a specific key, a response is performed based on the response information of the specific key.
[0185] Specifically, if the target information is response information corresponding to the touch of the displayed content, a response is performed based on the response information corresponding to the touch of the displayed content.
[0186] The various embodiments in this specification are described in a progressive manner, with each embodiment focusing on the differences from other embodiments. Reference can be made to the common and similar parts between the various embodiments. For the devices provided in the embodiments, since they correspond to the methods provided in the embodiments, the description is relatively simple, and the relevant parts can be referred to the method description.
[0187] The above description of the provided embodiments is intended to enable one skilled in the art to implement or use the present application. Various modifications to these embodiments will be readily apparent to one skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present application. Therefore, the present application is not limited to the embodiments shown herein, but is intended to conform to the widest scope consistent with the principles and novel features provided herein.
Claims
1. An electronic device comprising: Glass substrate; Border layer; The frame layer includes: A marking layer having a preset marking is provided; a first sub-frame layer provided between the second sensor layer and the identification layer, wherein the first sub-frame layer has a target area corresponding to the preset identification, the light transmittance of the target area is greater than a preset value, and the light transmittance of a non-target area in the first sub-frame layer is less than a preset value; A second sub-frame layer is provided on the side of the logo layer away from the first sub-frame layer; the first sub-frame layer and the second sub-frame layer are provided with ink; a first sensor layer and a second sensor layer sequentially disposed between the glass substrate and the frame layer, wherein the sizes of the first sensor layer and the second sensor layer are consistent with the sizes of the glass substrate; The processor is connected to the first sensor layer and the second sensor layer, and is used to process the sensing information detected by the first sensor layer and the second sensor layer.
2. The electronic device according to claim 1, The first sensor layer includes at least two first sensing units; The second sensor layer includes at least two second sensing units; in, In a direction perpendicular to the surface of the glass substrate, the at least two first sensing units and the at least two second sensing units intersect.
3. The electronic device according to claim 2, wherein the first sensing units of the first sensor layer are arranged in a first manner in the first area, and the first sensing units of the first sensor layer are arranged in a second manner in the second area other than the first area; The second sensing units of the second sensor layer are arranged in a third manner in the first region, and the second sensing units of the second sensor layer are arranged in a fourth manner in the second region; in, The first method is different from the second method, and the third method is different from the fourth method.
4. The electronic device according to claim 2, further comprising: A first image elimination layer is provided on a side of the first sensor layer close to the glass substrate, wherein the first image elimination layer is provided corresponding to the first sensing unit in the first sensor layer; A second image elimination layer is provided on a side of the second sensor layer close to the glass substrate, and the second image elimination layer is provided corresponding to the second sensing unit in the second sensor layer.
5. The electronic device according to claim 1, further comprising: a first insulating layer disposed between the glass substrate and the first sensor layer; a second insulating layer disposed between the first sensor layer and the second sensor layer; A third insulating layer is disposed between the second sensor layer and the frame layer.
6. A touch screen comprising: Glass substrate; Border layer; The frame layer includes: A marking layer having a preset marking is provided; a first sub-frame layer provided between the second sensor layer and the identification layer, wherein the first sub-frame layer has a target area corresponding to the preset identification, the light transmittance of the target area is greater than a preset value, and the light transmittance of a non-target area in the first sub-frame layer is less than a preset value; A second sub-frame layer is provided on the side of the logo layer away from the first sub-frame layer; the first sub-frame layer and the second sub-frame layer are provided with ink; Display layer; a first sensor layer and a second sensor layer sequentially disposed between the glass substrate and the frame layer, wherein the sizes of the first sensor layer and the second sensor layer are consistent with the sizes of the glass substrate; The second sensor is arranged on one side of the frame layer, and the display layer is arranged on the other side of the frame layer; The first sensor layer and the second sensor layer are further connected to a processor, and the processor is used to process the sensing information detected by the first sensor layer and the second sensor layer.
7. The touch screen according to claim 6, wherein the display layer comprises any one of the following: Two parallel transparent plates, with liquid crystal material filled between the two transparent plates; or The electronic ink layer composed of an electronic ink array.
8. An electronic device comprising: The touch screen according to any one of claims 6 to 7; The processor is connected to the first sensor layer and the second sensor layer of the touch screen respectively, and is used to process the sensing information detected by the first sensor layer and the second sensor layer.
9. An information processing method, the method being applied to an electronic device having the electronic device according to any one of claims 1 to 5, the method comprising: receiving sensing information detected by the first sensor layer and the second sensor layer, wherein the sensing information is generated based on a touch operation performed by an operating body on the electronic device; Analyze the sensor information to obtain target information; The control responds to the touch operation based on the target information.
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