Semiconductor Devices
Patent Information
- Application Number
- JP2025112015
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2018-10-25
- Filing Date
- 2025-07-02
- Publication Date
- 2025-11-21
AI Technical Summary
Existing information processing devices lack convenience and reliability in providing real-time legal speed limit information, traffic congestion alerts, tourist information, weather updates, and safe driving assistance, requiring drivers to frequently take their eyes off the road.
An information processing device equipped with detection, communication, and display units that acquire and process location, map, and other relevant data to generate image information for legal speed limits, traffic conditions, tourist attractions, weather, and safety alerts, allowing drivers to keep their eyes on the road.
Enables safe and convenient driving by providing real-time information on legal speed limits, traffic, weather, and safety alerts without requiring drivers to look away from the road, enhancing vehicle operation reliability and convenience.
Smart Images

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Abstract
Description
[Technical Field]
[0001] One embodiment of the present invention relates to a data processing device or a semiconductor device.
[0002] Note that one embodiment of the present invention is not limited to the above technical fields. The technical field of one aspect relates to an article, a method, or a manufacturing method. One aspect of the present invention is a process, machine, manufacture, or composition. Therefore, the invention disclosed herein more specifically relates to The technical field of one embodiment of the present invention is a semiconductor device, a display device, a light-emitting device, a power storage device, a memory device, Examples include a driving method thereof and a manufacturing method thereof. The present invention also relates to a system having the above information processing device (also called an information processing system). Included in one aspect. [Background technology]
[0003] a first substrate having optical transparency; a second substrate facing the first substrate and having optical transparency; a light modulation layer disposed between the first substrate and the second substrate; a display area for displaying an image; and a normal to the display area. a light source unit for illuminating the light modulation layer from the outside at a position facing the light modulation layer in a direction opposite to the light modulation layer; The first to third colors are arranged in red, green, or blue. color filters, and first to third electrodes facing the first to third color filters, respectively. and the light modulation layer responds to an electric field generated by each of the first to third electrodes. The light scattering properties of the areas facing the first to third color filters can be modulated accordingly. A display device having the above structure is known (Patent Document 1). [Prior art documents] [Patent documents]
[0004] [Patent Document 1] US Patent Application Publication No. 2018 / 0024403 Summary of the Invention [Problem to be solved by the invention]
[0005] An object of one aspect of the present invention is to provide a novel information processing device that is highly convenient or reliable. Alternatively, the object is to provide a novel information processing device or a novel semiconductor device. This is one of the topics.
[0006] The description of these problems does not preclude the existence of other problems. It is not necessary for the present invention to solve all of these problems. The above will be made clear from the description, drawings, claims, etc. It is possible to extract other issues from the descriptions in the patent, claims, etc. [Means for solving the problem]
[0007] (1) One aspect of the present invention is an information processing device having a detection unit, a communication unit, a display unit, and a computing device. It is a management device.
[0008] The detection unit has the function of acquiring location information, and the communication unit acquires map information and legal speed limit information. It has the function to acquire.
[0009] The calculation device identifies the first legal speed limit information from the map information based on the location information. In addition, the calculation device generates first image information including first legal speed limit information.
[0010] The display unit has a function of displaying the first image information.
[0011] This allows the driver to check the legal speed limit at any time, for example. This allows vehicles to operate safely without exceeding the legal speed limit. It is possible to provide a novel information processing device that is excellent in performance and reliability.
[0012] (2) Another aspect of the present invention is the information processing device described above, which includes an input unit.
[0013] The input section is supplied with destination information.
[0014] The calculation device generates route information based on the location information and the destination information, and the calculation device Based on the location information and the route information, the change point of the legal speed information and the second legal speed information are detected. The computing device also generates second image information including second legal speed limit information. do.
[0015] The display unit has a function of displaying the second image information.
[0016] This allows the driver to, for example, drive on multiple roads with different legal speed limits. You can be notified of changes in the legal speed limit in advance, or you can be advised not to exceed the legal speed limit. As a result, new vehicles with excellent convenience and reliability can be operated. A new information processing device can be provided.
[0017] In addition, for example, the driver can check the legal speed limit without moving his or her eyes. Or, vehicles can be operated safely without exceeding the legal speed limit. It is possible to provide a novel information processing device that is highly convenient and reliable.
[0018] (3) Another aspect of the present invention is the information processing device described above, which includes a speedometer.
[0019] The display has an area that overlaps with the speedometer, and the speedometer can be seen through the display.
[0020] This allows the driver to, for example, check the driving speed and legal speed limit without moving their eyes. Or, operate your vehicle safely without exceeding the legal speed limit. As a result, it is possible to provide a novel information processing device that is highly convenient and reliable. can.
[0021] (4) One aspect of the present invention is a device having a detection unit, a communication unit, an input unit, a calculation device, and a display unit. It is an information processing device.
[0022] The detection unit has the function of acquiring location information, and the communication unit has the function of acquiring map information and traffic congestion information. The input unit has a function of receiving destination information.
[0023] The calculation device generates route information based on the location information and the destination information. The device generates first image information including congestion information based on the position information and the route information.
[0024] The display unit has a function of displaying the first image information.
[0025] This allows the driver to check the traffic situation on the way to their destination at any time, for example. Or you can consider routes that avoid traffic jams. As a result, you can choose routes that are convenient or reliable. It is possible to provide an excellent and novel information processing system.
[0026] (5) One aspect of the present invention is a processing device having a detection unit, a communication unit, a calculation device, and a display unit. It is a device.
[0027] The detection unit has the function of acquiring location information, and the communication unit has the function of acquiring map information and tourist information. It is equipped with Noh.
[0028] The calculation device identifies the first tourist information from the map information based on the location information. The device generates first image information including first tourist information.
[0029] The display unit has a function of displaying the first image information.
[0030] This makes it possible to display tourist information, for example. The name or description of the object, facility or landform may be displayed. You can continue driving without taking your eyes off the road or operate your vehicle safely. As a result, a novel information processing device with excellent convenience and reliability can be provided. Cut.
[0031] (6) Furthermore, one aspect of the present invention is the above-mentioned method in which the detection unit captures a landscape and supplies an image including the landscape. It is an information processing device.
[0032] The calculation device includes an artificial intelligence unit, and the calculation device calculates a map based on the image using the artificial intelligence unit and map information. The calculation device generates second image information including the building information. do.
[0033] The display unit has a function of displaying the second image information.
[0034] This allows you to, for example, overlay a landscape containing buildings, facilities, or terrain in an unfamiliar location and As a result, it is possible to display the name or explanation of the product. It is possible to provide an information processing device.
[0035] (7) One aspect of the present invention is a device having a detection unit, a communication unit, an input unit, a calculation device, and a display unit. It is an information processing device.
[0036] The detection unit has the function of acquiring location information, and the communication unit has the function of acquiring map information and weather information. The input unit is provided with destination information.
[0037] The calculation device generates route information based on the location information and the destination information. The device generates first image information including weather information based on the position information and the route information.
[0038] The display unit has a function of displaying the first image information.
[0039] This allows the driver to check the weather forecast for the route to the destination at any time. Alternatively, you may consider adjusting the speed of your train or changing your route in preparation for sudden changes in weather. As a result, a novel information processing device that is highly convenient and reliable can be provided.
[0040] (8) Another aspect of the present invention is the information processing device described above, which includes a speedometer.
[0041] The display portion has an area that overlaps with the speedometer, and the speedometer can be seen through the display device.
[0042] This allows the driver to check, for example, driving speed and weather information without moving their eyes. Or, vehicles can be driven safely at speeds that take weather information into consideration. As a result, a novel information processing device with excellent convenience and reliability can be provided.
[0043] (9) One aspect of the present invention is a device having a detection unit, a communication unit, an input unit, a calculation device, and a display unit. It is an information processing device.
[0044] The detection unit has a function of acquiring position information, and the detection unit has a function of acquiring fallen object information.
[0045] The communication unit has a function of acquiring map information, and the input unit is supplied with destination information.
[0046] The computing device generates route information based on the location information and the destination information. First image information including fallen object information is generated based on the location information and the path information.
[0047] The display unit has a function of displaying the first image information.
[0048] This allows, for example, the driver to check for fallen objects on the way to the destination at any time. Alternatively, you may consider adjusting your speed or changing your route to prepare for falling debris. As a result, a novel information processing device that is highly convenient and reliable can be provided.
[0049] (10) One aspect of the present invention is an information processing device including a detection unit, a calculation unit, and a display unit. be.
[0050] The detection unit has the function of capturing images of surrounding vehicles, and the detection unit captures images including the driving conditions of surrounding vehicles. Supply.
[0051] The computing device is equipped with artificial intelligence, and the computing device uses the artificial intelligence to detect vehicles that are driving dangerously. The computing device infers whether the surrounding vehicles include a vehicle that is driving recklessly. If so, first image information is generated to call attention to the problem.
[0052] The display unit has a function of displaying the first image information.
[0053] This allows the driver to avoid danger, or to avoid the risk of collisions with surrounding vehicles. This allows for a safe distance between users and the information they need. A processing device can be provided.
[0054] (11) Another aspect of the present invention is the information processing device, wherein the display unit has a display area. .
[0055] The display area includes first scanning lines, second scanning lines, first signal lines, second signal lines, and pixels. can.
[0056] A pixel comprises a display element and a pixel circuit.
[0057] The display element is electrically connected to the pixel circuit.
[0058] The pixel circuit includes a first switch, a second switch, a first capacitance element, a second capacitance element, a node The substrate includes a conductive film and a conductive layer.
[0059] The first switch has a first terminal to which a first signal is supplied, and the first switch The second terminal is electrically connected to the terminal.
[0060] The first capacitance element includes a first electrode electrically connected to the node, and the first capacitance element includes: A second electrode is provided which is electrically connected to the conductive film.
[0061] The second switch has a first terminal to which a second signal is supplied, The capacitor element has a second terminal electrically connected to the first electrode of the capacitor element.
[0062] The second capacitive element includes a second electrode electrically connected to the node.
[0063] (12) In another aspect of the present invention, the display area includes a group of pixels and another group of pixels. The information processing device is as described above.
[0064] The group of pixels is arranged in a row direction, and the group of pixels includes a first pixel.
[0065] Another group of pixels is arranged in a column direction that intersects with the row direction, and the other group of pixels includes the first pixel. include.
[0066] The scan lines are electrically connected to a group of pixels.
[0067] The first signal line is electrically connected to another group of pixels, and the second signal line is electrically connected to another group of pixels. electrically connected.
[0068] This allows image information to be provided to multiple pixels, resulting in increased convenience or reliability. It is possible to provide a novel information processing device with excellent reliability.
[0069] (13) In another embodiment of the present invention, a display element includes a first electrode, a second electrode, and a liquid crystal material. The information processing device further comprises a layer containing the first alignment film, a first alignment film, and a second alignment film.
[0070] The first alignment film has a region sandwiched between the first electrode and the layer containing the liquid crystal material, and the second alignment film The facing membrane comprises a region sandwiched between a second electrode and a layer containing liquid crystal material.
[0071] The second electrode is disposed between the first electrode and the second electrode so as to form an electric field across the layer containing the liquid crystal material. It will be placed.
[0072] The layer containing the liquid crystal material scatters incident light with a first scattering intensity when the electric field is in a first state, and the liquid crystal material scatters incident light with a first scattering intensity when the electric field is in a first state. The layer containing the crystalline material is configured to direct incident light to a second scattering medium in a second state where the electric field is greater than that in the first state. The second scattering intensity is 10 times or more the intensity of the first scattering.
[0073] The layer containing the liquid crystal material contains a liquid crystal material and a polymer material, and the layer containing the liquid crystal material is stabilized by the polymer. The polymeric material is a copolymer of a polyfunctional monomer and a monofunctional monomer.
[0074] (14) Furthermore, one aspect of the present invention is a keyboard, a hardware button, a pointing device, device, touch sensor, illuminance sensor, imaging device, voice input device, eye gaze input device, posture detection The information processing device includes one or more of the above.
[0075] This allows the display of image information or control information based on information provided using various input devices. The information can be generated by a computing device, resulting in a novel and convenient method. It is possible to provide an information processing device.
[0076] In the drawings accompanying this specification, components are classified by function and are shown as independent blocks. However, it is difficult to completely separate the components by function in reality. It is possible that one component may be involved in multiple functions.
[0077] In this specification, the source and drain of a transistor are used to indicate the polarity and The name changes depending on the level of the potential applied to the terminal. Generally, n-channel In a transistor with a low potential, the terminal to which a low potential is applied is called the source, and the terminal to which a high potential is applied is called the The terminal to which the transistor is connected is called the drain. The terminal to which a high potential is applied is called the drain, and the terminal to which a high potential is applied is called the source. For convenience, let us assume that the source and drain are fixed. However, in reality, the source and drain are connected according to the above potential relationship. The way they are handled changes.
[0078] In this specification, the source of a transistor is a part of a semiconductor film that functions as an active layer. The source region connected to the semiconductor film or the source electrode connected to the semiconductor film. The drain of the transistor is a drain region that is a part of the semiconductor film, or a region that is part of the semiconductor film. "Gate" means the gate electrode.
[0079] In this specification, the state in which transistors are connected in series means, for example, Only one of the source or drain of one transistor is connected to the source or drain of the second transistor. It also means that the transistors are connected in parallel. The state where either the source or drain of the first transistor is connected to the second transistor and the source or drain of the first transistor is connected to one of the source and drain of the second transistor. The other of the two transistors is connected to the other of the source or drain of the second transistor. do.
[0080] In this specification, connection means an electrical connection, and a current, voltage, or potential is supplied. Therefore, the connected state corresponds to the state where the signal can be supplied or transmitted. does not necessarily refer to the state in which a current, voltage, or potential is available or transferable. The signals are transmitted through circuit elements such as wires, resistors, diodes, and transistors. This also includes the state of being directly connected.
[0081] In this specification, when components that are independent on the circuit diagram are connected to each other, However, in reality, for example, when a part of the wiring functions as an electrode, one conductive film may be connected to multiple In this specification, the term "connection" refers to such a Cases in which one conductive film has the functions of multiple components are also included in this category.
[0082] In this specification, either the first electrode or the second electrode of a transistor is a source the other refers to the drain electrode. [Effects of the Invention]
[0083] According to one aspect of the present invention, a novel information processing device that is highly convenient and reliable is provided. Alternatively, a novel information processing device can be provided.
[0084] The description of these effects does not preclude the existence of other effects. The embodiment does not necessarily have to have all of these effects. , the specification, drawings, claims, etc., and It is possible to extract other effects from the claims and other descriptions. [Brief explanation of the drawings]
[0085] [Figure 1] 1A to 1C are diagrams illustrating the configuration and operation of an information processing device according to an embodiment. [Figure 2] 2A to 2E are diagrams illustrating the operation of the information processing device according to the embodiment. [Figure 3] 3A and 3B are diagrams illustrating the configuration of a display panel according to an embodiment. [Figure 4] 4A and 4B are diagrams illustrating the configuration of a display panel according to an embodiment. [Figure 5] FIG. 5 is a diagram illustrating the configuration of a display panel according to an embodiment. [Figure 6] FIG. 6 is a block diagram illustrating the configuration of a display panel according to the embodiment. [Figure 7] 7A and 7B are cross-sectional views illustrating the configuration of a display panel according to an embodiment. [Figure 8] 8A and 8B are cross-sectional views illustrating the configuration of a display panel according to an embodiment. [Figure 9] FIG. 9A and FIGS. 9B1 to 9B3 are diagrams illustrating the configuration of a display device according to an embodiment. [Figure 10] 10A to 10C are diagrams illustrating a configuration of a display device according to an embodiment. [Figure 11] FIG. 11 is a block diagram illustrating the configuration of the input / output device according to the embodiment. [Figure 12] 12A to 12C are block diagrams and projection diagrams illustrating the configuration of an information processing device according to an embodiment. [Figure 13] 13A and 13B are flowcharts illustrating a method for driving an information processing device according to an embodiment. [Figure 14] 14A to 14C are diagrams illustrating a method for driving the information processing device according to the embodiment. [Figure 15] 15A to 15E are diagrams illustrating the configuration of an information processing device according to an embodiment. [Figure 16] 16A to 16E are diagrams illustrating the configuration of an information processing device according to an embodiment. [Figure 17]17A and 17B are diagrams illustrating the configuration of an information processing device according to an embodiment. [Figure 18] 18A and 18B are diagrams illustrating the configuration and operation of an information processing device according to an embodiment. [Figure 19] 19A to 19C are diagrams illustrating the configuration and operation of an information processing device according to an embodiment. [Figure 20] 20A and 20B are diagrams illustrating the configuration and operation of an information processing device according to an embodiment. [Figure 21] 21A and 21B are diagrams illustrating the configuration and operation of an information processing device according to an embodiment. [Figure 22] 22A and 22B are diagrams illustrating the configuration and operation of an information processing device according to an embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0086] An information processing device according to one embodiment of the present invention includes a detection unit, a communication unit, a display unit, and a calculation unit. The detection unit has the function of acquiring location information, and the communication unit acquires map information and legal speed limit information. The computing device has a function of acquiring the first legal limit from map information based on the location information. The speed information is identified, and the computing device generates first image information including first legal speed limit information. The display unit has a function of displaying the first image information.
[0087] This allows the driver to check the legal speed limit at any time, for example. This allows vehicles to operate safely without exceeding the legal speed limit. It is possible to provide a novel information processing device that is excellent in performance and reliability.
[0088] The embodiments will be described in detail with reference to the drawings. However, the present invention is not limited to the following description. The present invention is not limited to the above embodiments, and various changes and modifications may be made in the form and details thereof without departing from the spirit and scope of the present invention. It will be readily understood by those skilled in the art that the present invention can be achieved by the following embodiments. It should not be construed as being limited to the contents of the description. The same reference numerals are used in different drawings to denote the same parts or parts having similar functions. A repeated explanation will be omitted.
[0089] (Embodiment 1) In this embodiment, a configuration of an information processing device according to one embodiment of the present invention will be described with reference to FIGS. 1 and 2. Explain with reference to the above.
[0090] 1A and 1B are diagrams illustrating an information processing device according to one embodiment of the present invention. 1C is a flow chart illustrating the operation of an information processing device according to an embodiment of the present invention; FIG. 1C is a flow chart illustrating the operation of an information processing device according to an embodiment of the present invention; FIG. 1 is a block diagram illustrating the above.
[0091] 2A and 2B are diagrams illustrating the operation of an information processing device according to an embodiment of the present invention. 2B to 2E illustrate the operation of a data processing device of one embodiment of the present invention. FIG. 2B is a diagram illustrating a part of FIG. 2A.
[0092] <Configuration example 1 of information processing device> The information processing device described in this embodiment includes a detection unit 250, a communication unit 290, and a display unit 23. 0 and an arithmetic unit 210 (see FIG. 1C).
[0093] <<Configuration example of the detection unit 250>> The detection unit 250 has a function of acquiring position information (see FIG. 1A(a1)). For example, The detection unit 250 detects the PS (Global Positioning System) and the like. It can be used.
[0094] <<Configuration example of communication unit 290>> The communication unit 290 has a function of acquiring map information and legal speed limit information (see FIG. 1A(a)). For example, information can be obtained from the network.
[0095] <<Configuration Example of the Calculation Device 210>> The computing device 210 identifies the first legal speed limit information from the map information based on the location information. The calculation device 210 has a function of calculating the first legal speed limit information (see FIG. 1A(a3)). For example, the artificial intelligence unit 213 may be implemented as a computing device. It can be used in the device 210.
[0096] <<Configuration example of display unit 230>> The display unit 230 has a function of displaying the first image information (see FIG. 1A(a4)).
[0097] This allows the driver to check the legal speed limit at any time, for example. This allows vehicles to operate safely without exceeding the legal speed limit. It is possible to provide a novel information processing device that is excellent in performance and reliability.
[0098] <Configuration example 2 of information processing device> The information processing device described in this embodiment also includes an input unit 240 (see FIG. 1C). For example, the input unit 240 can be a touch panel or a voice input device.
[0099] <<Configuration example of input unit 240>> The input unit 240 is supplied with destination information (see FIG. 1B(b1)).
[0100] <Configuration Example 2 of the Calculation Device 210> The computing device 210 has a function of generating route information based on the location information and destination information. (See Figure 1B(b2)).
[0101] The calculation device 210 detects the change points of the legal speed limit information and It has a function to acquire second legal speed information (see Figure 1B (b3)).
[0102] The computing device 210 has a function of generating second image information including second legal speed limit information. do.
[0103] <<Configuration example of display unit 230>> The display unit 230 has a function of displaying the second image information (see FIG. 1B(b4)).
[0104] This allows the driver to, for example, drive on multiple roads with different legal speed limits. You can be notified of changes in the legal speed limit in advance, or you can be advised not to exceed the legal speed limit. As a result, new vehicles with excellent convenience and reliability can be operated. A new information processing device can be provided.
[0105] For example, the position where the second image information is displayed may be set to the right of the position where the first image information is displayed or It can be on the left (see Figures 2A and 2B). Or, for example, based on route information. The position where the second image information is displayed can be changed depending on the situation. In addition, the second image information can be displayed to the right of the position where the first image information is displayed. Alternatively, when turning left, the second image information is displayed to the left of the position where the first image information is displayed. For example, if the distance to the point where you need to turn right or left is more than several hundred meters and less than 1 km, From the location until the time of turning right or left, second image information can be displayed.
[0106] Alternatively, the second image information can be displayed in a size different from that of the first image information. Specifically, the second image information can be displayed smaller than the first image information. The second image information can be displayed in a different color from the first image information. The first and second images can be displayed in monochrome, multicolor, or full color. Cut.
[0107] For example, the display unit 230 can be disposed between the windshield or the like and the driver. Specifically, the display unit 230 can be used in a combiner (see FIG. 2C). In this case, the display unit 230 can be placed at the position where the sun visor is placed (see FIG. 2D). ) Alternatively, the display unit 230 can be placed at a position overlapping the side mirror (see FIG. 2). (see E).
[0108] This allows the driver to check the legal speed limit without moving their eyes, for example. Or, you can operate your vehicle safely without exceeding the legal speed limit. As a result, a novel information processing device that is highly convenient and reliable can be provided.
[0109] <Configuration example 3 of information processing device> The information processing device described in this embodiment also has a speedometer (see FIGS. 2A and 2B). (See reference) Or it can be used with the speedometer of other devices. For example, it can be used with a mechanical speedometer. The display unit 230(1) can be used in an overlapping manner.
[0110] <<Configuration example of display unit 230>> The display unit 230(1) has an area that overlaps with the speedometer, and the speedometer is displayed through the display unit 230(1). For example, the character string "keep calm" can be visually recognized (see Figure 2B). , string "60km / h", "Speed Limit", "40km / h", "ahe ad" can be displayed.
[0111] For example, a light-transmitting display panel can be used for the display unit 230(1). In this case, the display panel described in the seventh or eighth embodiment is used as the display unit 230(1). You can be there.
[0112] This allows the driver to, for example, check the driving speed and legal speed limit without moving their eyes. Or, operate your vehicle safely without exceeding the legal speed limit. As a result, it is possible to provide a novel information processing device that is highly convenient and reliable. can.
[0113] Note that this embodiment mode can be appropriately combined with other embodiment modes shown in this specification. .
[0114] (Embodiment 2) In this embodiment, the configuration of an information processing device of one embodiment of the present invention will be described with reference to FIGS. 2 and 18. The explanation will be given with reference to the above.
[0115] 18A illustrates a data processing device according to one embodiment of the present invention. FIG. 18B is a flow chart illustrating the operation of the information processing device. FIG.
[0116] <Configuration example 1 of information processing device> The information processing device described in this embodiment includes a detection unit 250, a communication unit 290, and an input unit 24. 0, a computing device 210, and a display unit 230 (see FIG. 18B).
[0117] <<Configuration example of the detection unit 250>> The detection unit 250 has a function of acquiring location information. For example, GPS (Global Positioning System) A positioning system or the like can be used for the detection unit 250.
[0118] <<Configuration example of communication unit 290>> The communication unit 290 has a function of acquiring map information and traffic congestion information. You can get information from.
[0119] <<Configuration example of input unit 240>> The input unit 240 has a function to receive destination information. For example, it can be input using a touch panel or voice input. The device can be used for the input section 240 .
[0120] <<Configuration Example of the Calculation Device 210>> The calculation device 210 generates route information based on the location information and destination information (see FIG. 18 18A(a1) and 18A(a2)). The calculation device 210 also calculates the position information and the Based on the road information, first image information including traffic congestion information is generated (see FIG. 18A (a3)). For example, the artificial intelligence unit 213 can be used in the arithmetic unit 210.
[0121] <<Configuration example of display unit 230>> The display unit 230 has a function of displaying the first image information (see FIG. 18A(a4)).
[0122] This allows the driver to check the traffic situation on the way to their destination at any time, for example. Or you can consider routes that avoid traffic jams. As a result, you can choose routes that are convenient or reliable. It is possible to provide an excellent new information processing device.
[0123] For example, the display unit 230 can be disposed between the windshield or the like and the driver. (See FIGS. 2A and 2C.) Specifically, the display unit 230 can be used in a combiner. Alternatively, the display unit 230 can be placed where the sun visor is placed. (See Figure 2A and Figure 2D.) Specifically, the string "Traffic Jam" is displayed. Alternatively, the display unit 230 may be disposed between the side window and the passenger. Alternatively, the first image can be displayed in monochrome, multicolor, or full color. Alternatively, the display unit 230 can be placed at a position overlapping the speedometer (see FIG. 2). Alternatively, the display unit 230 can be placed at a position overlapping the side mirror. (See Figure 2E).
[0124] For example, a light-transmitting display panel can be used for the display unit 230. The display panel described in the seventh or eighth embodiment can be used for the display unit 230. Cut.
[0125] This allows the driver to check traffic congestion information without moving their eyes, for example. Or, vehicles can be operated to avoid traffic jams. As a result, new information that is highly convenient and reliable can be obtained. It is possible to provide an information processing device.
[0126] Note that this embodiment mode can be appropriately combined with other embodiment modes shown in this specification. .
[0127] (Embodiment 3) In this embodiment, the configuration of an information processing device of one embodiment of the present invention will be described with reference to FIGS. 2 and 19. The explanation will be given with reference to the above.
[0128] 19A and 19B illustrate a data processing device of one embodiment of the present invention. 19C is a flowchart illustrating the operation of a data processing device of one embodiment of the present invention. FIG. 2 is a block diagram illustrating the configuration of the device.
[0129] <Configuration example 1 of information processing device> The information processing device described in this embodiment includes a detection unit 250, a communication unit 290, and a calculation unit 2 10 and a display unit 230 (see FIG. 19C).
[0130] <Configuration Example 1 of Detection Unit 250> The detection unit 250 has a function of acquiring position information (see FIG. 19A(a1)). For example, GPS (Global Positioning System) and the like are used by the detection unit 250 It can be used for.
[0131] <<Configuration example of communication unit 290>> The communication unit 290 has a function of acquiring map information and tourist information (see FIG. 19A(a2)). For example, information can be obtained from a network.
[0132] <Configuration Example 1 of the Calculation Device 210> The computing device 210 has a function of identifying the first tourist information from the map information based on the location information. (See FIG. 19A(a3)). For example, building information can be used for tourist information. The computing device 210 has a function of generating first image information including first tourist information. For example, an artificial intelligence unit 213 can be used in the computing device 210 .
[0133] <<Configuration Example 1 of Display Unit 230>> The display unit 230 has a function of displaying the first image information (see FIG. 19A(a4)).
[0134] This makes it possible to display tourist information, for example. The name or description of the object, facility or landform may be displayed. You can continue driving without taking your eyes off the road or operate your vehicle safely. As a result, a novel information processing device with excellent convenience and reliability can be provided. Cut.
[0135] For example, the display unit 230 can be disposed between the windshield or the like and the driver. (See FIGS. 2A and 2C.) Specifically, the display unit 230 can be used in a combiner. Alternatively, the display unit 230 can be placed where the sun visor is placed. (See Figures 2A and 2D.) For example, the string "Museum" can be displayed. Alternatively, the display unit 230 can be disposed between the side window and the passenger. In the first embodiment, the display unit 230 can be disposed between the rear window and the passenger. The image information may be displayed in monochrome, multicolor or full color; or The display unit 230 can be positioned over the speedometer (see FIG. 2B). The display unit 230 can be placed in a position overlapping the side mirror (see FIG. 2E).
[0136] For example, a light-transmitting display panel can be used for the display unit 230. The display panel described in the seventh or eighth embodiment can be used for the display unit 230. Cut.
[0137] This allows the driver to check tourist information without moving their eyes, for example. Alternatively, not only the driver but also passengers can check tourist information. It is possible to provide a novel information processing device that is excellent in performance and reliability.
[0138] Configuration example 2 of the detection unit 250 The detection unit 250 (detection units 250(1) to (3)) captures the scenery, and the detection unit 250 (See Figure 19C and Figure 2A.)
[0139] <Configuration Example 2 of the Calculation Device 210> The computing device 210 includes an artificial intelligence unit 213, and the computing device 210 includes the artificial intelligence unit 213 and the Using the diagram information, the building information included in the video is identified (see Fig. 19B(b1) and Fig. 19B (See (b2)). The arithmetic device 210 also generates second image information including building information. The calculation device 210 uses the artificial intelligence unit 213 to identify facilities, topography, etc. This can be done.
[0140] <<Configuration Example 2 of Display Unit 230>> The display unit 230 has a function of displaying second image information. For example, when a sun visor is installed, The display unit 230 can be placed at a position where the display unit 230 is positioned (see FIGS. 2A and 2D). The word "Museum" will be displayed along with an arrow pointing to the building visible from the train window. In other words, you can create an augmented reality.
[0141] This allows you to, for example, overlay a landscape containing buildings, facilities, or terrain in an unfamiliar location and As a result, it is possible to display the name or explanation of the product. It is possible to provide an information processing device.
[0142] Note that this embodiment mode can be appropriately combined with other embodiment modes shown in this specification. .
[0143] (Fourth embodiment) In this embodiment, the configuration of an information processing device of one embodiment of the present invention will be described with reference to FIGS. 2 and 20. The explanation will be given with reference to the above.
[0144] 20A illustrates a data processing device according to one embodiment of the present invention. 20A is a flow chart illustrating the operation of the information processing device, and FIG. 20B is a flow chart illustrating the configuration of the information processing device. FIG.
[0145] <Configuration example 1 of information processing device> The information processing device described in this embodiment includes a detection unit 250, a communication unit 290, and an input unit 24. 0, a computing device 210, and a display unit 230 (see FIG. 20B).
[0146] <<Configuration example of the detection unit 250>> The detection unit 250 has a function of acquiring position information (see FIG. 20A(a1)). For example, GPS (Global Positioning System) and the like are used by the detection unit 250 It can be used for.
[0147] <<Configuration example of communication unit 290>> The communication unit 290 has a function of acquiring information such as map information or weather information (see FIG. 20A). (See (a2)). For example, information can be obtained from the network.
[0148] <<Configuration example of input unit 240>> The input unit 240 receives destination information. For example, the destination information is input through a touch panel or a voice input device. It can be used in the section 240.
[0149] <<Configuration Example of the Calculation Device 210>> The calculation device 210 generates route information based on the location information and destination information (see FIG. 20). A(a3)). The calculation device 210 also calculates the weather based on the location information and route information. For example, the first image information including the artificial intelligence information is generated (see FIG. 20A(a4)). The functional unit 213 can be used in the computing device 210.
[0150] <<Configuration example of display unit 230>> The display unit 230 has a function of displaying the first image information (see FIG. 20A(a5)).
[0151] This allows the driver to check the weather forecast for the route to the destination at any time. Alternatively, you may consider adjusting the speed of your train or changing your route in preparation for sudden changes in weather. As a result, a novel information processing device that is highly convenient and reliable can be provided.
[0152] For example, the display unit 230 can be disposed between the windshield or the like and the driver. (See FIGS. 2A and 2C.) Specifically, the display unit 230 can be used in a combiner. Specifically, it can display a shape that symbolizes the weather and the string "Snow." Alternatively, the display unit 230 can be placed where the sun visor is placed (see FIG. 2). Alternatively, the display unit 230 can be placed in a position overlapping the side mirror. (See Figure 2E.) Alternatively, the first and second images can be displayed in a single color, multicolor, or full-color format. It can be displayed in different colors.
[0153] This allows the driver to check weather information without moving their eyes, for example. Alternatively, vehicles can be driven safely at speeds that take into account weather information. It is possible to provide a novel information processing system that is highly convenient and reliable.
[0154] <Configuration example 3 of information processing device> The information processing device described in this embodiment also has a speedometer (see FIGS. 2A and 2B). (See reference) Or it can be used with the speedometer of other devices. For example, it can be used with a mechanical speedometer. The display units 230 can be stacked and used.
[0155] <<Configuration example of display unit 230>> The display unit 230 has an area that overlaps with the speedometer, and the speedometer can be seen through the display unit 230. This can be done (see Figure 2B).
[0156] For example, a light-transmitting display panel can be used for the display unit 230. The display panel described in the seventh or eighth embodiment can be used for the display unit 230. Cut.
[0157] This allows the driver to check, for example, driving speed and weather information without moving their eyes. Or, vehicles can be driven safely at speeds that take weather information into consideration. As a result, a novel information processing system with excellent convenience and reliability can be provided. do.
[0158] Note that this embodiment mode can be appropriately combined with other embodiment modes shown in this specification. .
[0159] (Embodiment 5) In this embodiment, the configuration of an information processing device of one embodiment of the present invention will be described with reference to FIGS. 2 and 21. The explanation will be given with reference to the above.
[0160] 21A is a diagram illustrating a data processing device according to one embodiment of the present invention. 21B is a flow chart illustrating the operation of the information processing device, and FIG. 21B is a flow chart illustrating the configuration of the information processing device. FIG.
[0161] <Configuration example 1 of information processing device> The information processing device described in this embodiment includes a detection unit 250, a communication unit 290, and an input unit 24. 0, a computing device 210, and a display unit 230 (see FIG. 21B).
[0162] <<Configuration example of the detection unit 250>> The detection unit 250 has a function of acquiring position information (see FIG. 21A(a1)). For example, GPS (Global Positioning System) and the like are used by the detection unit 250 The detection unit 250 also has a function for acquiring information about fallen objects. For example, a camera or a sensor can be used for the detection unit 250 (see FIG. 21A(a4)). ).
[0163] <<Configuration example of communication unit 290>> The communication unit 290 has a function of acquiring map information (see FIG. 21A(a2)). For example, Information can be obtained from the network.
[0164] <<Configuration example of input unit 240>> The input unit 240 is supplied with destination information (see FIG. 21B(a3)). A panel or a voice input device can be used for the input unit 240.
[0165] <<Configuration Example of the Calculation Device 210>> The computing device 210 generates route information based on the location information and the destination information. The calculation device 210 has a function of calculating the position information and the route information. The function of generating first image information including information on falling objects based on the information on the falling objects is also provided. An intelligent unit 213 can be used in the computing device 210 .
[0166] <<Configuration example of display unit 230>> The display unit 230 has a function of displaying the first image information (see FIG. 21A(a5)).
[0167] This allows, for example, the driver to check for fallen objects on the way to the destination at any time. Alternatively, you may consider adjusting your speed or changing your route to prepare for falling debris. As a result, a novel information processing device that is highly convenient and reliable can be provided.
[0168] For example, the display unit 230 can be disposed between the windshield or the like and the driver. (See FIGS. 2A and 2C.) Specifically, the display unit 230 can be used in a combiner. For example, you can display a graphic representing a falling object and the string "Obstacle" on the combiner. Alternatively, the display unit 230 can be disposed at the position where the sun visor is disposed. Alternatively, the display unit 230 can be disposed at a position overlapping the side mirror. Alternatively, the display unit 230 can be disposed between the side window and the passenger. Alternatively, the display unit 230 can be positioned between the rear window and the passenger. can be displayed in single, multi-color or full color, or overlaid on the speedometer. The display unit 230 can be placed in a position where the side mirror The display unit 230 can be placed at a position overlapping the display unit 230 (see FIG. 2E).
[0169] For example, a light-transmitting display panel can be used for the display unit 230. The display panel described in the seventh or eighth embodiment can be used for the display unit 230. Cut.
[0170] This allows the driver to check information about falling objects without moving their eyes. Or, the vehicle can be operated while avoiding falling objects. Passengers can also check the information on falling objects. As a result, new and convenient services with high reliability are available. A new information processing device can be provided.
[0171] Note that this embodiment mode can be appropriately combined with other embodiment modes shown in this specification. .
[0172] (Embodiment 6) In this embodiment, the configuration of an information processing device of one embodiment of the present invention will be described with reference to FIGS. 2 and 22. The explanation will be given with reference to the above.
[0173] 22A illustrates a data processing device according to one embodiment of the present invention. 22A is a flow chart illustrating the operation of the information processing device, and FIG. 22B is a flow chart illustrating the configuration of the information processing device. FIG.
[0174] <Configuration example 1 of information processing device> The information processing device described in this embodiment includes a detection unit 250, a calculation unit 210, and a display unit 2 30 (see FIG. 22B).
[0175] <<Configuration example of the detection unit 250>> The detection unit 250 has a function of capturing images of surrounding vehicles, and the detection unit 250 detects the driving status of the surrounding vehicles. For example, a camera can be used to provide images including the current situation (see Fig. 22A(a1)). It can be used for the detection unit 250. Alternatively, an imaging camera can be provided on the side mirror. This is possible (see Figure 2A).
[0176] <<Configuration Example of the Calculation Device 210>> The computing device 210 is equipped with artificial intelligence, and the computing device 210 uses an artificial intelligence unit 213 to calculate the surrounding It has a function to infer whether the vehicles include vehicles that are driving recklessly (see Figure 22A (a2) ).
[0177] If the computing device 210 determines that the surrounding vehicles include a vehicle that is driving recklessly, it issues a warning. The image processing device has a function of generating first image information.
[0178] <<Configuration example of display unit 230>> The display unit 230 has a function of displaying the first image information (see FIG. 22A(a3)).
[0179] This allows the driver to avoid danger, or to avoid the risk of collisions with surrounding vehicles. This allows for a safe distance between users and the information they need. A processing device can be provided.
[0180] For example, the display 230 can be positioned between the side mirror and the driver (see FIGS. 2A and 2B). (See Figure 2E.) Specifically, the text "Dang" appears along with a graphic identifying the vehicle driving recklessly. Alternatively, the display unit 230 can be attached to a windshield or the like. Specifically, the display unit 230 can be used in a combiner. (See FIG. 2C.) Alternatively, the display unit 230 can be placed in the position where the sun visor is placed. Alternatively, the display unit 230 can be mounted on the side window and the passenger's side (see FIG. 2D). Alternatively, the display unit 230 can be disposed between the rear window and the passenger. Alternatively, the first image and the second image can be monochromatic, multicolor, or It can be displayed in full color. Alternatively, the display unit 230 can be arranged in a position overlapping the speedometer. It can be placed in the same position as the ion exchanger (see Figure 2B).
[0181] For example, a light-transmitting display panel can be used for the display unit 230. The display panel described in the seventh or eighth embodiment can be used for the display unit 230. Cut.
[0182] This allows the driver to, for example, identify dangerous driving without moving their eyes. Or, you can avoid dangerously driving vehicles and pass through. As a result, it is not only convenient but also reliable. It is possible to provide a novel information processing device.
[0183] Note that this embodiment mode can be appropriately combined with other embodiment modes shown in this specification. .
[0184] (Embodiment 7) In this embodiment, a structure of a display panel that can be used in a data processing device of one embodiment of the present invention will be described. The structure will be described with reference to FIGS. 3, 4 and 6.
[0185] FIG. 3 illustrates a structure of a display panel that can be used in a data processing device of one embodiment of the present invention. 3A is a diagram illustrating an upper surface of a display panel that can be used in a data processing device of one embodiment of the present invention. 3B is a side view of FIG. 3A, and FIG. 3B is a portion of FIG. 3A.
[0186] FIG. 4 illustrates a structure of a display panel that can be used in a data processing device of one embodiment of the present invention. 4A is a diagram showing the cross sections of FIG. 3A along the lines X1-X2, X3-X4, and X9-X10 and the pixels. 4B is a circuit diagram illustrating the configuration of pixel circuit 530(i, j). .
[0187] FIG. 6 illustrates a structure of a display panel that can be used in a data processing device according to one embodiment of the present invention. This is a diagram.
[0188] In this specification, variables that take integer values of 1 or more may be used as symbols. For example, (p) includes a variable p that takes an integer value of 1 or more, and identifies any of the components up to p. For example, the variables m and m, which take integer values of 1 or more, and variable n, is a part of a code that identifies one of up to m × n components. It may be used in parts.
[0189] <Display panel configuration example 1.> The display panel described in this embodiment has a display area 231 (see FIG. 6). The driving circuit GD can be used in a display panel.
[0190] <<Configuration Example 1 of Display Area 231>> The display area 231 includes scanning lines G1(i), scanning lines G2(i), signal lines S1(j), and signal lines S 2(j) and pixel 702(i,j).
[0191] <<Configuration example 1 of pixel 702(i,j)>> Pixel 702(i,j) includes display element 750(i,j) and pixel circuit 530(i,j). Prepare (see Figure 4A).
[0192] <<Configuration example of display element 750(i, j)>> Display element 750(i,j) is electrically connected to pixel circuit 530(i,j) (FIG. 4A and Figure 4B ).
[0193] For example, an element that controls light reflection, light transmission, or light emission can be used as a display element. Specifically, an electro-optical element or a light-emitting element can be used as a display element.
[0194] <<Configuration Example 1 of Pixel Circuit 530(i,j)>> The pixel circuit 530(i,j) is connected to the scanning line G1(i), the scanning line G2(i), and the signal line S1(j). and is electrically connected to signal line S2(j) (see FIG. 4B).
[0195] This allows the first selection signal to be supplied to the first scanning line G1(i). Alternatively, the second selection signal can be supplied to the second scanning line G2(i). The pixel 702(i,j) can be driven using either the first select signal or the second select signal. As a result, a novel display panel that is highly convenient and reliable can be provided.
[0196] For example, a switch, a transistor, a diode, a resistive element, an inductor, or a capacitive element. can be used in the pixel circuit 530(i,j). It can be used for chi.
[0197] For example, when a plurality of transistors are used in a pixel circuit, the semiconductor film of one transistor is formed In the step of forming the second semiconductor film, the other semiconductor film can be formed.
[0198] <<Configuration example 2 of pixel 702(i,j)>> The pixel 702(i,j) can use a liquid crystal element as the display element 750(i,j).
[0199] <<Configuration Example 2 of Pixel Circuit 530(i,j)>> The pixel circuit 530(i,j) includes a capacitance element C11, a switch SW11, and a node N1(i , j) (see FIG. 4B).
[0200] The switch SW11 has a first terminal electrically connected to the signal line S2(j), and The second terminal is electrically connected to the first electrode of the switch 750(i, j). Switch SW11 has the function of switching between conductive and non-conductive states based on the selection signal. do.
[0201] The capacitance element C11 has a first electrode electrically connected to the second terminal of the switch SW11; and a second electrode electrically connected to the conductive film CSCOM.
[0202] The display element 750(i,j) displays an image based on the potential of the node N1(i,j).
[0203] <<Configuration Example 3 of Pixel Circuit 530(i,j)>> The pixel circuit 530(i,j) includes a capacitance element C11, a capacitance element C12, a switch SW11, a switch The switch SW12 and the node N1(i, j) are included.
[0204] The switch SW11 has a first terminal electrically connected to the signal line S2(j), and The second terminal is electrically connected to the first electrode of the switch 750(i, j). The switch SW11 has the function of switching between a conductive state and a non-conductive state based on the second selection signal. Equipped with.
[0205] The capacitance element C11 has a first electrode electrically connected to the second terminal of the switch SW11; and a second electrode electrically connected to the conductive film CSCOM.
[0206] The switch SW12 has a first terminal electrically connected to the signal line S1(j). The switch SW12 switches between a conductive state and a non-conductive state based on a first selection signal. It has the function of
[0207] The capacitor C12 has a first electrode electrically connected to the second terminal of the switch SW12; and a second electrode electrically connected to the second terminal of the switch SW11.
[0208] The display element 750(i,j) displays an image based on the potential of the node N1(i,j).
[0209] When the switch SW11 is in a non-conducting state, the switch SW12 is turned off. When the switch SW11 is in a non-conductive state, The switch SW12 can be changed from a conducting state to a non-conducting state.
[0210] [First Step] In the first step, the switches SW11 and SW12 are turned on. For example, a first selection signal is applied to the scanning line G1(i), and a second selection signal is applied to the scanning line G2(i ) to be supplied.
[0211] Also, an image signal is supplied to the capacitance element C12. For example, the potential supplied by the signal line S1(j) and the potential supplied by the signal line S2(j), an image signal is supplied.
[0212] [Second step] In the second step, switch SW1 is turned on while switch SW1 is kept off. 2 is made conductive. For example, a batch selection signal is supplied to the scanning line G1(i).
[0213] Also, a predetermined potential is supplied to the signal line S1(i), and a voltage is applied to the node N1(i) via the capacitance element C12. , j) are offset.
[0214] [Third Step] In the third step, the switches SW11 and SW12 are kept in a non-conducting state. While, based on the potential of the node N1(i,j), a display element 750(i,j) is used to display Show.
[0215] As a result, the potential of the node N1(i, j) is set to the potential of the switch SW11 and the switch SW12. Alternatively, the node N1(i,j) can be controlled using the switch SW11. and change the potential of node N1(i,j) using switch SW12. Alternatively, a varying potential can be applied to display element 750(i,j). Alternatively, a display can be made based on the changing potential. , j) or to highlight the operation of display element 750(i, j). Alternatively, the response of the display element 750(i,j) can be accelerated. As a result, a novel display panel that is highly convenient and reliable can be provided.
[0216] This allows a high voltage to be supplied to the display element 750(i,j). Alternatively, a large electric field may be applied to the layer 753 containing the liquid crystal material of the display element 750(i, j). Alternatively, the orientation of polymer-stabilized liquid crystal materials can be controlled. As a result, a novel input / output device with excellent convenience and reliability can be provided.
[0217] <<Configuration example 3 of pixel 702(i,j)>> The pixel 702(i,j) can use a light-emitting element for the display element 750(i,j) ( See FIG. 5. For example, an organic EL element can be used as the display element 750.
[0218] <<Configuration Example 4 of Pixel Circuit 530(i,j)>> The pixel circuit 530(i, j) includes a transistor M, a capacitance element C21, a switch SW21, and a The circuit includes a node N1(i, j), a capacitance element C22, and a switch SW22 (see FIG. 5). In addition, the pixel circuit 530(i,j) includes a node N2(i,j), a switch SW23, and a switch Equipped with SW24 switch.
[0219] The transistor M has a first electrode electrically connected to the conductive film ANO.
[0220] The capacitance element C21 has a first electrode electrically connected to the gate electrode of the transistor M, and a The second electrode is electrically connected to the second electrode of the transistor M.
[0221] The switch SW21 has a first terminal electrically connected to the signal line S2(j), The switch SW2 has a second terminal electrically connected to the gate electrode of the transistor M. 1 has the function of switching between a conductive state and a non-conductive state based on a second selection signal.
[0222] The capacitance element C22 has a first electrode electrically connected to the gate electrode of the transistor M. do.
[0223] The switch SW22 has a first terminal electrically connected to the signal line S1(j), and a capacitance element The switch SW2 has a second terminal electrically connected to the second electrode of the terminal C22. 2 has a function of switching between a conductive state and a non-conductive state based on a first selection signal.
[0224] The switch SW23 has a first terminal electrically connected to the second electrode of the transistor M; The switch SW23 has a second terminal electrically connected to the conductive film V0. The transistor has a function of switching between a conductive state and a non-conductive state based on a selection signal.
[0225] The switch SW24 has a first terminal electrically connected to the second electrode of the transistor M; The switch S has a second terminal electrically connected to the display element 750(i, j). W24 has a function of switching between a conductive state and a non-conductive state based on a third selection signal. do.
[0226] When the switch SW21 is in a non-conductive state, the switch SW22 is turned off. When the switch SW21 is in a non-conductive state, The switch SW22 can be changed from a conducting state to a non-conducting state.
[0227] The display element 750(i,j) displays an image based on the potential of the node N1(i,j).
[0228] As a result, the potential of the node N1(i, j) is set to the potential of the switch SW21 and the switch SW22. Alternatively, the node N1(i,j) can be controlled using the switch SW21. and change the potential of node N1(i,j) using switch SW22. Alternatively, a varying potential can be applied to display element 750(i,j). Alternatively, a display can be made based on the changing potential. , j) or to highlight the operation of display element 750(i, j). Alternatively, the response of the display element 750(i,j) can be accelerated. As a result, a novel display panel that is highly convenient and reliable can be provided.
[0229] <<Configuration Example 2 of Display Area 231>> The display area 231 includes a group of pixels 702(i,1) through 702(i,n) and another group of pixels 702(i,1) through 702(i,n). The pixel array comprises a group of pixels 702(1,j) to 702(m,j) (see FIG. 6).
[0230] Although not shown, the display area 231 has a conductive film CSCOM and a conductive film VCOM1. do.
[0231] A group of pixels 702(i,1) to 702(i,n) are arranged in the row direction (indicated by arrow R1 in the figure). A group of pixels 702(i,1) to 702(i,n) are arranged in a direction parallel to the pixel 70 Contains 2(i,j).
[0232] Another group of pixels 702(1,j) to 702(m,j) are arranged in a column direction that intersects with the row direction. (in the direction indicated by the arrow C1 in the figure), and another group of pixels 702(1,j) to 7 02(m,j) includes pixel 702(i,j).
[0233] Scan line G1(i) electrically connects a group of pixels 702(i,1) to 702(i,n). The scan line G2(i) is connected to a group of pixels 702(i,1) through 702(i,n). electrically connected.
[0234] The signal line S1(j) is electrically connected to another group of pixels 702(1,j) through 702(m,j). , and signal line S2(j) is connected to another group of pixels 702(1,j) through 702(m , j) are electrically connected to each other.
[0235] This allows image information to be provided to multiple pixels, resulting in increased convenience or reliability. It is possible to provide a novel display panel with excellent reliability.
[0236] <Driver circuit GDA, driver circuit GDB> The driving circuit GDA and the driving circuit GDB can be used for the driving circuit GD. The driving circuit GDA and the driving circuit GDB have the function of supplying a selection signal based on the control signal SP. It has.
[0237] Specifically, based on the control signal SP, the frequency is 30 Hz or more, preferably 60 Hz or more. This allows smooth display of moving images. It is possible.
[0238] Alternatively, based on the control signal SP, the frequency may be less than 30 Hz, preferably less than 1 Hz, more preferably has a function of supplying a selection signal to one scanning line at a frequency of less than once per minute. It is possible to display a still image with suppressed flicker.
[0239] When multiple drive circuits are provided, for example, the frequency at which the drive circuit GDA supplies a selection signal and the drive The frequency at which the static circuit GDB supplies the selection signal can be made different. A moving image is displayed at a frequency higher than the frequency at which a selection signal is supplied to one area where a still image is displayed. A selection signal can be supplied to other areas, which reduces flicker in one area. This allows a still image to be displayed in one area and a moving image to be displayed smoothly in another area.
[0240] By the way, the frame frequency can be made variable. For example, it can be set to 12 Hz or higher. It can be displayed at a frame rate of 0 Hz or less. This allows display at a frame frequency of 120 Hz.
[0241] <Drive circuit SD> The drive circuit SD has a function of generating an image signal based on the information V11 and a function of converting the image signal into a single image signal. It has the function of supplying the signal to a pixel circuit electrically connected to the display element (see Figure 6).
[0242] For example, various sequential circuits such as shift registers can be used for the drive circuit SD. .
[0243] For example, an integrated circuit formed on a silicon substrate can be used for the driver circuit SD.
[0244] For example, COG (Chip on Glass) method or COF (Chip on Fi The lm method can be used to connect integrated circuits to terminals. can be used to connect the integrated circuit to the terminals.
[0245] Note that this embodiment mode can be appropriately combined with other embodiment modes shown in this specification. .
[0246] (Embodiment 8) In this embodiment, a structure of a display panel that can be used in a data processing device of one embodiment of the present invention will be described. The structure will be described with reference to FIGS.
[0247] FIG. 7 illustrates a structure of a display panel that can be used in a data processing device of one embodiment of the present invention. FIG. 7A is a cross-sectional view of pixel 702(i,j) taken along line Y1-Y2 in FIG. 3B. 7B is a cross-sectional view illustrating a part of FIG. 7A.
[0248] FIG. 8 illustrates a structure of a display panel that can be used in a data processing device of one embodiment of the present invention. 8A is a cross-sectional view taken along the cutting lines X1-X2 and X3-X4 in FIG. FIG. 8B is a cross-sectional view illustrating a part (MG1) of FIG. 8A.
[0249] <Configuration Example 1 of Display Panel 700> The display panel described in this embodiment has a functional layer 520 (see FIG. 4A).
[0250] <<Functional Layer 520>> The functional layer 520 includes a driving circuit GD and a pixel circuit 530(i, j) described in the seventh embodiment. The functional layer 520 includes an opening 591A, and the pixel circuit 530(i, j) includes an opening The portion 591A is electrically connected to the display element 750(i,j).
[0251] This forms a semiconductor film used for the transistor of the pixel circuit 530(i, j). In this case, a semiconductor film used for a transistor of the driver circuit GD can be formed. As a result, a novel display device with excellent convenience and reliability can be produced. A display panel can be provided.
[0252] <<Example of transistor configuration>> For example, a bottom gate transistor or a top gate transistor may be driven. It can be used for the driving circuit GD and the pixel circuit 530(i,j) (see FIGS. 7 and 8). ).
[0253] The transistor includes a semiconductor film 508, a conductive film 504, a conductive film 512A, and a conductive film 512B. (See FIG. 7B).
[0254] The semiconductor film 508 has a region 508A electrically connected to the conductive film 512A, a region 508B electrically connected to the conductive film 512B, and a region 508C electrically connected to the conductive film 512C. The semiconductor film 508 includes a region 508A and a region 508B that are electrically connected to the Between the regions 508B, there is provided a region 508C.
[0255] The conductive film 504 has a region overlapping with the region 508C, and the conductive film 504 has a function of a gate electrode. can.
[0256] The insulating film 506 has a region sandwiched between the semiconductor film 508 and the conductive film 504. The film 506 functions as a gate insulating film.
[0257] The conductive film 512A has either a function of a source electrode or a function of a drain electrode, and the conductive film 51 2B has the other of the source electrode function and the drain electrode function.
[0258] The conductive film 524 can be used for a transistor. The conductive film 524 has a region sandwiching the semiconductor film 508 between the conductive film 524 and the second gate electrode. The conductive film 524 can be electrically connected to the conductive film 504, for example. The conductive film 524 can be used for the scan line G2(i).
[0259] In addition, in the process of forming a semiconductor film used for the transistor of the pixel circuit 530(i, j), In this way, a semiconductor film used for the transistor of the driver circuit GD can be formed.
[0260] <<Configuration Example 1 of Semiconductor Film 508>> For example, a semiconductor containing a group 14 element can be used for the semiconductor film 508. The semiconductor film 508 can be made of a semiconductor containing silicon.
[0261] [Hydrogenated amorphous silicon] For example, hydrogenated amorphous silicon can be used for the semiconductor film 508. Microcrystalline silicon or the like can be used for the semiconductor film 508. This allows, for example, Provides a display panel with less display unevenness than a display panel that uses silicon for the semiconductor film 508 Also, it is easy to increase the size of the display panel.
[0262] [Polysilicon] For example, polysilicon can be used for the semiconductor film 508. This allows, for example, The transistor has a higher conductivity than the transistor using amorphous silicon as the semiconductor film 508. The field effect mobility can be increased. Alternatively, for example, hydrogenated amorphous silicon The driving capability of the transistor can be improved compared to a transistor using the semiconductor film 508. For example, a transistor using hydrogenated amorphous silicon for the semiconductor film 508 can be used to The aperture ratio can be improved.
[0263] Alternatively, for example, a transistor using hydrogenated amorphous silicon for the semiconductor film 508 may be used. This can improve the reliability of the transistor.
[0264] Alternatively, the temperature required for manufacturing a transistor may be set to, for example, a temperature required for manufacturing a transistor using single crystal silicon. It can be lower than the standard.
[0265] Alternatively, a semiconductor film used for a transistor in a driver circuit may be used for a transistor in a pixel circuit. It can be formed in the same process as the semiconductor film. A driver circuit can be formed on the substrate. Alternatively, the number of components constituting the electronic device can be reduced. It is possible.
[0266] [Single crystal silicon] For example, single crystal silicon can be used for the semiconductor film 508. This allows, for example, Higher definition than display panels that use hydrogenated amorphous silicon for the semiconductor film 508 Alternatively, for example, a display panel using polysilicon for the semiconductor film 508 can be used. This makes it possible to provide a display panel with less display unevenness. A head-mounted display or head-mounted display can be provided.
[0267] <<Configuration Example 2 of Semiconductor Film 508>> For example, a metal oxide can be used for the semiconductor film 508. Compared to pixel circuits that use transistors with silicon as the semiconductor film, The time for which the image signal can be held can be extended. While suppressing generation, the selection signal is set to be less than 30 Hz, preferably less than 1 Hz, more preferably As a result, the information can be stored in the information processing device. This reduces fatigue caused by the driving force and also reduces power consumption during driving.
[0268] For example, a transistor including an oxide semiconductor can be used. an oxide semiconductor containing indium or an oxide semiconductor containing indium, gallium, and zinc; It can be used for body membranes.
[0269] For example, the leakage current in the off state is A transistor smaller than that used in the prior art can be used. A transistor using a conductor as a semiconductor film can be used.
[0270] For example, a 25 nm thick film containing indium, gallium, and zinc is deposited on the semiconductor film 508. It can be used.
[0271] For example, a 10 nm thick film containing tantalum and nitrogen and a 300 nm thick film containing copper A conductive film in which these are stacked can be used as the conductive film 504. Note that a film containing copper can be used as an insulating film. 506, a region sandwiching a film containing tantalum and nitrogen is provided.
[0272] For example, a 400 nm thick film containing silicon and nitrogen and a 400 nm thick film containing silicon, oxygen, and nitrogen A laminated film in which a film having a thickness of 200 nm including a silicon dioxide film and a silicon dioxide film are laminated can be used as the insulating film 506. The film containing silicon and nitrogen has silicon, oxygen, and It has regions sandwiching nitrogen-containing films.
[0273] For example, a 50 nm thick film containing tungsten and a 400 nm thick film containing aluminum are A conductive film in which a film containing titanium and a film having a thickness of 100 nm are stacked in this order is called a conductive film 512. A film containing tungsten can be used as the conductive film 512A or the conductive film 512B. It has an area that contacts the membrane 508 .
[0274] By the way, for example, a bottom gate transistor using amorphous silicon as a semiconductor The production line for bottom-gate transistors uses oxide semiconductors as the semiconductor. It can be easily modified into a production line. The transistor production line is a top-gate transistor that uses oxide semiconductors as the semiconductor. Both modifications can be easily made to existing production lines. It can be used.
[0275] This makes it possible to suppress flickering and reduce power consumption. Or, it can display fast-moving videos smoothly. Or, it can display images with rich gradations. As a result, a novel display panel with excellent convenience and reliability can be provided. can be provided.
[0276] <<Configuration Example 3 of Semiconductor Film 508>> For example, compound semiconductors can be used as the semiconductors of transistors. A semiconductor containing arsenic can be used.
[0277] For example, organic semiconductors can be used as the semiconductor of transistors. Organic semiconductors including cesene or graphene can be used for the semiconductor film.
[0278] <<Capacitor element configuration example 1>> The capacitor element includes a first conductive film, another conductive film, and an insulating film. and another conductive film.
[0279] For example, the conductive film 504, the conductive film 512A, and the insulating film 506 can be used for a capacitor. Cut.
[0280] The capacitance element C12 is formed by a conductive film 754(i, j), an electrode 751(i, j), and an insulating film 521 B (see Figure 7A).
[0281] <<Configuration example 1 of functional layer 520>> The functional layer 520 includes an insulating film 521A, an insulating film 518, an insulating film 516, an insulating film 506, and and insulating film 501C (see FIG. 7A).
[0282] The insulating film 521A is sandwiched between the pixel circuit 530(i,j) and the display element 750(i,j). The pixel circuit 530(i,j) has, for example, a switch SW11. include.
[0283] The insulating film 518 has a region sandwiched between the insulating film 521A and the insulating film 501C.
[0284] The insulating film 516 has a region sandwiched between the insulating film 518 and the insulating film 501C.
[0285] The insulating film 506 has a region sandwiched between the insulating film 516 and the insulating film 501C.
[0286] [Insulating film 521] For example, insulating inorganic materials, insulating organic materials, or insulating materials containing inorganic and organic materials. The insulating film 521 can be formed using a composite material.
[0287] Specifically, an inorganic oxide film, an inorganic nitride film, an inorganic oxynitride film, or the like, or a film selected from these. A laminated material in which a plurality of such layers are stacked can be used for the insulating film 521.
[0288] For example, a silicon oxide film, a silicon nitride film, a silicon oxynitride film, an aluminum oxide film, etc. Alternatively, a film containing a laminated material in which a plurality of materials selected from these are laminated may be used for the insulating film 521. The silicon nitride film is a dense film and has an excellent function of suppressing the diffusion of impurities. can be.
[0289] For example, polyester, polyolefin, polyamide, polyimide, polycarbonate, Polysiloxane or acrylic resin, or a laminate of multiple resins selected from these A material, a composite material, or the like can be used for the insulating film 521. In this way, the insulating film 521 may be formed by using, for example, a material overlapping the insulating film 521. This makes it possible to flatten the steps resulting from various structures.
[0290] Polyimide has many advantages, including thermal stability, insulation, toughness, low dielectric constant, low coefficient of thermal expansion, and chemical resistance. It has superior properties compared to other organic materials. It can be suitably used for the insulating film 521 and the like.
[0291] For example, a film formed using a photosensitive material can be used as the insulating film 521. Specifically, a film formed using photosensitive polyimide or photosensitive acrylic resin, etc. The insulating film 521 can be formed using a material selected from the group consisting of fluorine-containing fluorine and fluorine-containing fluorine.
[0292] [Insulating film 518] For example, the material that can be used for the insulating film 521 can be used for the insulating film 518.
[0293] For example, it has the function of suppressing the diffusion of oxygen, hydrogen, water, alkali metals, alkaline earth metals, etc. A material having such a property can be used for the insulating film 518. Specifically, a nitride insulating film can be used for the insulating film 518. 8. For example, silicon nitride, silicon nitride oxide, aluminum nitride Aluminum nitride oxide or the like can be used for the insulating film 518. This can suppress the diffusion of impurities into the semiconductor film of the gate electrode.
[0294] [Insulating film 516] For example, the material that can be used for the insulating film 521 can be used for the insulating film 516.
[0295] Specifically, a film formed by a method different from that of the insulating film 518 can be used as the insulating film 516. .
[0296] [Insulating film 506] For example, the material that can be used for the insulating film 521 can be used for the insulating film 506 .
[0297] Specifically, silicon oxide film, silicon oxynitride film, silicon nitride oxide film, silicon nitride film film, aluminum oxide film, hafnium oxide film, yttrium oxide film, zirconium oxide film , gallium oxide film, tantalum oxide film, magnesium oxide film, lanthanum oxide film, cerium oxide film The insulating film 506 can be a film containing a neodymium oxide film or a neodymium oxide film.
[0298] [Insulating film 501C] For example, the material that can be used for the insulating film 521 can be used for the insulating film 501C. Specifically, a material containing silicon and oxygen can be used for the insulating film 501C. This makes it possible to suppress the diffusion of impurities into the pixel circuits, display elements, and the like.
[0299] <<Configuration example 2 of functional layer 520>> The functional layer 520 includes a conductive film, wiring, and terminals. It can be used for terminals, conductive films, etc.
[0300] 《Wiring, etc.》 For example, inorganic conductive materials, organic conductive materials, metals, or conductive ceramics can be used for wiring etc. It can be used for.
[0301] Specifically, aluminum, gold, platinum, silver, copper, chromium, tantalum, titanium, and molybdenum , a metal selected from tungsten, nickel, iron, cobalt, palladium, or manganese The elements can be used for wiring, etc. Alternatively, alloys containing the above-mentioned metal elements can be used. In particular, copper and manganese alloys can be used for wet etching. It is suitable for microfabrication.
[0302] Specifically, a two-layer structure in which a titanium film is laminated on an aluminum film, a titanium nitride film on a titanium nitride film, Two-layer structure with a tungsten film laminated on a titanium nitride film, two-layer structure with a tungsten film laminated on a titanium nitride film, a two-layer structure in which a tungsten film is laminated on a titanium film or a tungsten nitride film; A three-layer structure in which an aluminum film is layered on top of the titanium film, and a titanium film is then formed on top of that. etc. can be used for wiring etc.
[0303] Specifically, indium oxide, indium tin oxide, indium zinc oxide, zinc oxide, Conductive oxides such as zinc oxide doped with gallium can be used for wiring and the like.
[0304] Specifically, a film containing graphene or graphite can be used for wiring or the like.
[0305] For example, a film containing graphene oxide is formed and reduced to obtain a graphene oxide film. As a reduction method, a film containing graphene can be formed. and a method using a reducing agent.
[0306] For example, a film containing metal nanowires can be used for wiring. Nanowires containing such nanowires can be used.
[0307] Specifically, conductive polymers can be used for wiring and the like.
[0308] For example, the terminal 519B is connected to the flexible printed circuit board F using the conductive material ACF1. It can be electrically connected to PC1 (see FIG. 4A). Specifically, it can be electrically connected to PC1 using a conductive material CP. The terminal 519B can be electrically connected to the flexible printed circuit board FPC1. do.
[0309] <Configuration Example 2 of Display Panel 700> The display panel 700 also includes a substrate 510, a substrate 770, and a sealing material 705 (see FIG. 8). (see A).
[0310] 《Base material 510, base material 770》 The substrate 510 or the substrate 770 can be made of a material that is light-transmitting.
[0311] For example, a flexible material can be used for the substrate 510 or the substrate 770. This makes it possible to provide a flexible display panel.
[0312] For example, a material having a thickness of 0.7 mm or less and 0.1 mm or more can be used. For the casing, materials polished to a thickness of about 0.1 mm can be used. This reduces the weight. can be reduced.
[0313] By the way, the 6th generation (1500mm x 1850mm) and the 7th generation (1870mm x 220 0mm), 8th generation (2200mm x 2400mm), 9th generation (2400mm x 280 10th generation (2950mm x 3400mm) and 510mm glass substrates can be used for the base material 770. This makes it possible to manufacture a large display device. do.
[0314] The substrate 510 or the substrate 7 is made of an organic material, an inorganic material, or a composite material of an organic material and an inorganic material. Can be used for 70.
[0315] For example, inorganic materials such as glass, ceramics, and metals can be used. Alkali-free glass, soda-lime glass, potash glass, crystal glass, aluminosilicate glass Glass, tempered glass, chemically tempered glass, quartz, sapphire, etc., is used as the substrate 510 or substrate 770. Also, aluminosilicate glass, tempered glass, chemically strengthened glass The substrate 510 or substrate 520 is disposed on the side closer to the user of the display panel. This can be suitably used for the material 770. This prevents damage and scratches to the display panel during use. This can prevent this.
[0316] Specifically, an inorganic oxide film, an inorganic nitride film, an inorganic oxynitride film, or the like can be used. For example, a silicon oxide film, a silicon nitride film, a silicon oxynitride film, an aluminum oxide film Stainless steel or aluminum can be used as the base material. can be used for the substrate 770.
[0317] For example, a single crystal semiconductor substrate made of silicon or silicon carbide, a polycrystalline semiconductor substrate, a silicon A compound semiconductor substrate such as silicon germanium, an SOI substrate, or the like is used as the substrate 510 or the substrate 770. This allows the semiconductor element to be formed on the base material 510 or the base material 770. This can be done.
[0318] For example, organic materials such as resin, resin film, or plastic are used as the substrate 510 or the substrate 7. 70. Specifically, polyester, polyolefin, polyamide ( nylon, aramid, etc.), polyimide, polycarbonate, polyurethane or acrylic A material containing a resin, an epoxy resin or a resin having a siloxane bond is used as the substrate 510 or It can be used for the substrate 770. For example, a resin film, a resin plate or the like containing these materials can be used. Alternatively, laminated materials can be used, which can reduce the weight. For example, this can reduce the frequency of damage caused by dropping.
[0319] Specifically, polyethylene terephthalate (PET), polyethylene naphthalate (PE N), polyethersulfone (PES), cycloolefin polymer (COP) or Cycloolefin copolymer (COC) or the like can be used for the substrate 510 or the substrate 770. can.
[0320] For example, a metal plate, a thin glass plate, or a film of an inorganic material is bonded to a resin film. A composite material such as a fibrous or A composite material in which particulate metal, glass, or inorganic material is dispersed in resin is used as the substrate 510 or The substrate 770 may be, for example, a fibrous or particulate resin or organic material. A composite material in which the above or similar is dispersed in an inorganic material can be used for the substrate 510 or the substrate 770.
[0321] In addition, a single layer material or a multi-layer laminated material may be used for the substrate 510 or the substrate 770. For example, a material having an insulating film or the like laminated thereon can be used. is one or more selected from a silicon oxide layer, a silicon nitride layer, a silicon oxynitride layer, etc. A material having multiple layers laminated thereon can be used. This allows, for example, It is possible to prevent the diffusion of impurities. Alternatively, the diffusion of impurities through the resin can be prevented.
[0322] Alternatively, paper or wood may be used for the substrate 510 or the substrate 770 .
[0323] For example, the substrate 510 or the substrate 520 may be made of a material having heat resistance sufficient to withstand heat treatment during the manufacturing process. Specifically, a transistor or a capacitor element can be directly formed. The substrate 510 or the substrate 770 is made of a material that can withstand the heat applied during the manufacturing process. It is possible.
[0324] For example, an insulating film, a transistor, or a The formed insulating film, transistor, or capacitor element is, for example, A method of transferring the substrate to the substrate 510 or the substrate 770 can be used. An insulating film, a transistor, a capacitor, or the like can be formed on a flexible substrate.
[0325] "Sealant 705" The encapsulant 705 includes an area sandwiched between the functional layer 520 and the substrate 770, and 0 and the substrate 770 (see FIG. 8).
[0326] The sealing material 705 may be an inorganic material, an organic material, or a composite material of an inorganic material and an organic material. can be done.
[0327] For example, an organic material such as a heat-melting resin or a hardening resin may be used as the sealing material 705. can be done.
[0328] For example, reactive curing adhesives, light curing adhesives, heat curing adhesives and / or anaerobic adhesives. The sealant 705 can be an organic material such as an adhesive.
[0329] Specifically, epoxy resin, acrylic resin, silicone resin, phenolic resin, polyimide resin, imide resin, PVC (polyvinyl chloride) resin, PVB (polyvinyl butyrate) Adhesives containing Ethylene Vinyl Acetate (EVA) resin, etc. are used as sealing material 705. You can be there.
[0330] <Configuration Example 3 of Display Panel 700> The display panel 700 includes a structure KB1 or a functional film 770P (see FIG. 7A). A colored film or a light-shielding film may be used between the functional layer 520 and the substrate 770. do.
[0331] 《Structure KB1》 The structure KB1 includes a region sandwiched between the functional layer 520 and the substrate 770. The structure KB1 has the function of providing a predetermined gap between the functional layer 520 and the substrate 770.
[0332] 《Functional membrane 770P, etc.》 The functional film 770P has an area that overlaps with the display element 750(i, j).
[0333] For example, anti-reflection films, polarizing films, retardation films, light diffusion films or light condensing films. A film or the like can be used as the functional film 770P.
[0334] For example, an anti-reflection film having a thickness of 1 μm or less can be used as the functional film 770P. The laminated dielectric layer is preferably 3 or more, more preferably 5 or more, and even more preferably 15 or more. This film can be used as the functional film 770P. This makes it possible to reduce the reflectance to preferably 0.5% or less. can be suppressed to 0.08% or less.
[0335] For example, a circularly polarizing film can be used for the functional film 770P.
[0336] In addition, it has an anti-static film that prevents dust from adhering, a water-repellent film that makes it difficult for dirt to adhere, and a Oil-repellent coating that makes it hard to adhere, anti-reflection coating, non-glossy coating Anti-glare film), hard coating film that prevents scratches from occurring during use, Self-repairing films that suppress growth can be used for the functional film 770P.
[0337] <<Example of display element configuration>> For example, an element that controls light reflection, light transmission, or light emission can be used as a display element. Specifically, an electro-optical element or a light-emitting element can be used as a display element.
[0338] <<Configuration Example 1 of Display Element 750(i,j)>> For example, a liquid crystal element, an electrophoretic element, an electronic ink, or the like is used for the display element 750(i, j). This can be done (see FIG. 7A).
[0339] For example, a reflective liquid crystal element can be used for the display element 750(i,j). By using the display element, the power consumption of the display panel can be reduced.
[0340] For example, a transmissive liquid crystal element can be used as the display element 750(i, j). The display panel 700 has a function of controlling the transmission of light emitted by the light source BL to display an image. do.
[0341] <<Example of liquid crystal element configuration>> For example, IPS (In-Plane-Switching) mode, TN (Twiste d Nematic) mode, FFS (Fringe Field Switching) ) mode, ASM (Axially Symmetric aligned Micro -cell) mode, OCB (Optically Compensated Bias fringence mode, FLC (Ferroelectric Liquid Crystal Crystal mode, AFLC (AntiFerroelectric Liquid It uses a liquid crystal element that can be driven using a driving method such as a (crystal) mode. It is possible.
[0342] Furthermore, for example, a vertical alignment (VA) mode, specifically, an MVA (Multi-Domain Vertical Alignment mode, PVA (Patterned Ve Orthogonal Alignment mode, ECB (Electrically Co ntrolled Birefringence) mode, CPA(Continuouou) mode Pinwheel Alignment mode, ASV (Advanced Su A liquid crystal element that can be driven using a driving method such as a (per-View) mode is used. It is possible.
[0343] <<Configuration Example 2 of Display Element 750(i,j)>> Display element 750(i,j) includes electrode 751(i,j), electrode 752, and liquid crystal material. The display element 750(i,j) also includes an alignment film AF1 and an alignment film AF Equipped with 2.
[0344] The electrode 751(i, j) is electrically connected to the pixel circuit 530(i, j) through the opening 591A. Connected.
[0345] The electrode 752 forms an electric field between itself and the electrode 751(i, j) to control the orientation of the liquid crystal material. The electrodes are arranged so that the
[0346] Layer 753 containing liquid crystal material The layer 753 containing the liquid crystal material has a region sandwiched between the alignment film AF1 and the alignment film AF2.
[0347] For example, 1.0 x 10 13 Ω·cm or more, preferably 1.0×10 14 Ω·cm or more, More preferably, 1.0×10 15 A liquid crystal material with a specific resistivity of Ω·cm or more is called a liquid crystal material. It can be used for the layer 753 containing the material.
[0348] This makes it difficult for a current to flow through the layer 753 containing a liquid crystal material. Alternatively, the display element 750 ( The fluctuation of the transmittance of display element 750(i,j) can be suppressed. Flickering can be suppressed. Alternatively, the frequency at which the display element 750(i, j) is rewritten can be reduced. can be reduced.
[0349] <<Configuration Example 3 of Display Element 750(i,j)>> The display element 750(i,j) described in this embodiment includes an electrode 751(i,j), an electrode 75 2 and a layer 753 containing a liquid crystal material. (See Figure 7A).
[0350] <<Configuration example of alignment film AF1 and alignment film AF2>> The alignment film AF1 is a region sandwiched between the electrode 751(i, j) and the layer 753 containing the liquid crystal material. The alignment film AF2 is sandwiched between the electrode 752 and the layer 753 containing the liquid crystal material. It has an area where
[0351] Alignment films that align the liquid crystal in a roughly horizontal direction are used for the alignment films AF1 and AF2. For example, the pretilt angle can be set to about 2° to 5°.
[0352] The alignment film AF2 is rubbed to be anti-parallel to the alignment film AF1. In addition, the thickness of the alignment film AF1 or AF2 can be set to, for example, 70 nm. can be done.
[0353] <<Configuration example of electrode 751(i, j) and electrode 752>> The electrode 752 generates an electric field between the electrode 751(i, j) and the electrode 751(i, j) across the layer 753 containing the liquid crystal material. are arranged to form
[0354] <<Configuration Example 1 of Layer 753 Containing Liquid Crystal Material>> The layer 753 containing the liquid crystal material scatters incident light I0 with a first scattering intensity when the electric field is in a first state. Scattered.
[0355] In addition, the layer 753 containing the liquid crystal material is in a second state where the electric field is stronger than that in the first state. The incident light I0 is scattered with a second scattering intensity, which is greater than the first scattering intensity. Hey.
[0356] The thickness of the layer 753 containing the liquid crystal material is set to, for example, 2.5 μm or more and 6.0 μm or less. This can be done.
[0357] <<Configuration Example 2 of Layer 753 Containing Liquid Crystal Material>> The layer 753 containing a liquid crystal material includes a liquid crystal material and a polymer material. is stabilized with a polymer.
[0358] <<Example of liquid crystal material composition>> For example, a liquid crystal material MDA-00-3506 manufactured by Merck is used for the layer 753 containing the liquid crystal material. It is possible.
[0359] <<Example of polymer material composition>> The polymeric material is a copolymer of a polyfunctional monomer and a monofunctional monomer.
[0360] <<Examples of polyfunctional monomer structures>> The polyfunctional monomer has a phenyl benzoate skeleton. Specifically, a diacrylate having the following structural formula can be used as the polyfunctional monomer. The material represented by (1) can be used as a polyfunctional monomer.
[0361] [ka]
[0362] <<Example of monofunctional monomer structure>> The monofunctional monomer has a cyclohexylbenzene skeleton. For example, The monofunctional monomer may be an acrylate having the following structure: The materials represented by formulas (2) to (4) can be used as monofunctional monomers.
[0363] [ka]
[0364] [ka]
[0365] [ka]
[0366] As a result, the incident light is scattered more strongly at a second electric field strength greater than the first electric field strength. Alternatively, the power consumption can be reduced in a state where the incident light is easily transmitted. As a result, a novel liquid crystal device with excellent convenience and reliability can be provided.
[0367] Phenyl benzoate has the structure shown in structural formula (5), and cyclohexylbenzene has the structure They have a structure represented by formula (6). Each of them may have a substituent.
[0368] [ka]
[0369] [ka]
[0370] <Liquid crystal element configuration example 2.> In addition, in the liquid crystal element described in this embodiment, the second scattering intensity is 10 times the first scattering intensity. That's all.
[0371] This increases the contrast between the state where incident light is transmitted and the state where incident light is scattered. As a result, a novel liquid crystal device with excellent convenience and reliability can be provided. can be done.
[0372] Note that this embodiment mode can be appropriately combined with other embodiment modes shown in this specification. .
[0373] (Embodiment 9) In this embodiment, a structure of a display device according to one embodiment of the present invention will be described with reference to FIGS. do.
[0374] 9A and 9B illustrate a structure of a display device according to one embodiment of the present invention. 9B1 to 9B3 are block diagrams of a display device, and FIGS. 9B1 to 9B3 show the appearance of a display device according to one embodiment of the present invention. FIG.
[0375] <Display device configuration example 1.> The display device described in this embodiment includes a display panel 700 and a control unit 238 (see FIG. 9A). reference).
[0376] <<Configuration Example 1 of Control Unit 238>> The control unit 238 is supplied with image information VI and control information CI, e.g., a clock signal Alternatively, a timing signal or the like can be used as the control information CI.
[0377] The control unit 238 generates information V11 based on the image information VI, and generates control information V11 based on the control information CI. The control unit 238 also supplies the information V11 and the control signal SP. .
[0378] For example, the information V11 includes gradations of 8 bits or more, preferably 12 bits or more. For example, the clock signal or start pulse of the shift register used in the drive circuit is controlled. It can be used for the control signal SP.
[0379] <<Configuration Example 2 of Control Unit 238>> For example, the expansion circuit 234 and the image processing circuit 235 can be used in the control unit 238. .
[0380] 《Extension circuit 234》 The decompression circuit 234 has a function of decompressing the image information VI that is supplied in a compressed state. The decompression circuit 234 includes a storage unit. The storage unit has a function of storing, for example, the decompressed image information. It is equipped with Noh.
[0381] "Image Processing Circuit 235" The image processing circuit 235 includes, for example, a storage area. The storage area stores, for example, image information VI It has the function of storing information contained in
[0382] The image processing circuit 235 corrects the image information VI based on a predetermined characteristic curve, for example, to generate information. It has the function of generating V11 and the function of supplying information V11.
[0383] Display panel configuration example 1 The display panel 700 is supplied with information V11 and a control signal SP. Specifically, the present invention can be applied to the display panel 700 of the seventh or eighth embodiment. The display panel 700 described below can be used.
[0384] <Drive circuit> The drive circuit operates based on a control signal SP. By using the control signal SP, a plurality of The operation of the drive circuits can be synchronized.
[0385] For example, the driver circuit GDA(1), the driver circuit GDA(2), the driver circuit GDB(1), and the driver The circuit GDB(2) can be used in the display panel. ), the drive circuit GDA(2), the drive circuit GDB(1) and the drive circuit GDB(2) are controlled It is supplied with a signal SP and has the function of supplying a selection signal.
[0386] For example, the driver circuit SDA(1), the driver circuit SDA(2), the driver circuit SDB(1), the driver circuit The display panel uses the circuit SDB(2), the driving circuit SDC(1) and the driving circuit SDC(2). In addition, the driver circuit SDA(1), the driver circuit SDA(2), and the driver circuit SDB (1), drive circuit SDB(2), drive circuit SDC(1) and drive circuit SDC(2), It is supplied with a control signal SP and information V11 and is capable of supplying an image signal.
[0387] <<Configuration example of pixel 702(i,j)>> Pixel 702(i,j) is displayed based on information V11.
[0388] This allows image information to be displayed using the display element. This makes it possible to provide a novel display device with excellent reliability. a video receiving system (see Figure 9B1), a video monitor (see Figure 9B2) or a notebook computer A computer (see FIG. 9B3) or the like can be provided.
[0389] Display panel configuration example 2 For example, the control circuit 233 can be used in the display panel 700. The control circuit 233 formed on the board can be used in the display panel 700. The control circuit 233 formed on the rigid substrate is connected to the control circuit 232 by using a flexible printed circuit board. The control unit 238 can be electrically connected to the control unit 238.
[0390] Control circuit 233 The control circuit 233 has a function of generating and supplying a control signal SP. For example, a clock signal Alternatively, a timing signal or the like can be used as the control signal SP. A timing controller can be used in the control circuit 233.
[0391] <Display device configuration example 2.> The display device described in this embodiment includes a display panel 700 and a control unit 238 ( 10A and 10B). Also, the light source SL, the calculation device 210, the sensor SENS, the drive It has a motor MV and a battery BT.
[0392] For example, the display panel described in the seventh or eighth embodiment may be replaced with the display panel 700. It can be used.
[0393] <<Light source SL configuration example 1>> The light source SL is supplied with control information CI, e.g. a clock signal or timing signal. etc. can be used for the control information CI.
[0394] The light source SL includes a light emitting element and a driving circuit. The light emitting element is electrically connected to the driving circuit. To be continued.
[0395] For example, an LED, an organic EL element, or the like can be used as the light source SL. A light emitting element that emits blue light can be used as the light source SL. The light emitting element, the light emitting element that emits green light, and the light emitting element that emits red light are light sources SL. It can be used.
[0396] The driving circuit includes a light emitting element that emits blue light, a light emitting element that emits green light, and a light emitting element that emits red light. Alternatively, a light-emitting element that emits blue light can be turned on at the same time. The light emitting element that emits green light and the light emitting element that emits red light are turned on in sequence. This can be done.
[0397] <<Light source SL configuration example 2>> The light source SL controls the light source SL to emit light, for example, using a field sequential method, based on the control information CI. The image information VI can be displayed (see FIG. 10C).
[0398] [First Step] As the first sub-image information, for example, a red component included in the predetermined image information is supplied (see FIG. (see 10C(W1)).
[0399] [Second step] The first sub-image information is displayed by irradiating red light using the light source SL (FIG. 10C (W2) reference).
[0400] [Third Step] As the second sub-image information, for example, a green component included in the predetermined image information is supplied (see FIG. 10C(W3)).
[0401] [Fourth step] The second sub-image information is displayed by irradiating green light using the light source SL (FIG. 10C (W4) reference).
[0402] [5th step] As the third sub-image information, for example, a blue component included in the predetermined image information is supplied (see FIG. See 10C(W5).
[0403] [Sixth step] The third sub-image information is displayed by irradiating blue light from the light source SL (FIG. 10C (W6) reference).
[0404] <Sensor SENS> The sensor SENS supplies the sensing information DS, for example a pulse sensor, a temperature sensor or a pressure sensor. A force sensor or the like can be used as the sensor SENS.
[0405] 《Arithmetic unit 210》 The calculation device 210 is supplied with the detection information DS. The calculation device 210 calculates the detection information DS based on the detection information DS. The image information VI is generated.
[0406] For example, based on the detected information DS, image information VI is generated to display the user's pulse, body temperature, etc. Or, based on the detection information DS, the temperature, altitude, water depth, etc. can be displayed. Image information VI can be generated to show the image.
[0407] The arithmetic unit 210 also supplies time information and the like.
[0408] "Drive unit MV" The driving unit MV includes, for example, an hour hand, a minute hand, a second hand, an electric motor, and a driving circuit. is supplied with time information and displays the time, etc. For example, the hour hand, minute hand, and second hand are moved to a predetermined It can rotate at any speed and also displays pulse, body temperature, air temperature, altitude or water depth. It is possible.
[0409] The display panel 700 is disposed between the user and the drive unit MV. For example, image information can be displayed in front of the hour hand, minute hand, second hand, and other indicators. Alternatively, the image information VI can be displayed superimposed on the hour hand, minute hand, second hand, and other pointers. Or, it can display image information VI without being obstructed by the hour, minute, and second hands. can.
[0410] Battery BT The battery BT includes the display panel 700, the control unit 238, the light source SL, the sensor SENS, and the computing unit. The battery BT is electrically connected to the device 210 and the drive unit MV. do.
[0411] Note that this embodiment mode can be appropriately combined with other embodiment modes shown in this specification. .
[0412] (Embodiment 10) In this embodiment, a configuration of an input / output device of one embodiment of the present invention will be described with reference to FIGS. explain.
[0413] FIG. 11 is a block diagram illustrating a configuration of an input / output device of one embodiment of the present invention.
[0414] <Example 1 of input / output device configuration> The input / output device described in this embodiment has an input unit 240 and a display unit 230 (see FIG. 11).
[0415] 《Display section 230》 The display unit 230 includes a display panel. The display panel 700 can be used as the display unit 230. The configuration having the section 230 can be called an input / output panel 700TP.
[0416] <<Configuration Example 1 of Input Unit 240>> The input unit 240 has a detection area 241. The input unit 240 is adjacent to the detection area 241. It has the function to detect.
[0417] The sensing region 241 comprises an area that overlaps with the pixel 702(i,j).
[0418] This allows the display unit to display image information while the area adjacent to the display unit overlaps the image information. Or, a finger placed close to the display can be used as a pointer to detect the position. Alternatively, the location information can be associated with the image information displayed on the display unit. As a result, a novel input / output device with excellent convenience and reliability can be provided. It is possible.
[0419] <Configuration example 1 of detection area 241> The sensing area 241 may, for example, comprise one or more detectors.
[0420] The detection area 241 includes a group of detectors 802(g,1) through 802(g,q) and other detectors. A group of detectors 802(1,h) to 802(p,h) are included. h is an integer between 1 and q, and p and q are integers of 1 or greater. be.
[0421] A group of detectors 802(g,1) to 802(g,q) are detectors 802(g,h) and are arranged in the row direction (the direction indicated by the arrow R2 in the figure). may be the same as the direction indicated by arrow R1, or may be different.
[0422] In addition, another group of detectors 802(1,h) to 802(p,h) are detectors 802 (g, h) and are arranged in the column direction (the direction indicated by arrow C2 in the figure) that intersects with the row direction. .
[0423] Detector The detector has the function of detecting a nearby pointer. For example, if a finger or stylus pen is placed on the pointer, For example, a metal piece or coil can be used in a stylus pen. It is possible.
[0424] Specifically, there are capacitive proximity sensors, electromagnetic induction proximity sensors, and optical proximity sensors. A resistive proximity sensor or the like can be used as the detector.
[0425] It is also possible to use multiple types of detectors together. For example, a detector that detects fingers and a detector that detects slippers. It can be used in conjunction with a detector that detects a stylus pen.
[0426] This allows the type of pointer to be determined. Based on this, different instructions can be associated with the sensed information. If it is determined that a finger was used, the detection information can be associated with the gesture. If it determines that a stylus pen is used as a pointer, it associates the detection information with the drawing process. It can be done.
[0427] Specifically, a capacitive, pressure-sensitive, or optical proximity sensor is used to detect a finger. Alternatively, an electromagnetic induction or optical proximity sensor can be used to detect the stylus. It can detect the pen.
[0428] <<Configuration Example 2 of Input Unit 240>> The input section 240 includes an oscillator circuit OSC and a detection circuit DC (see FIG. 11).
[0429] The oscillator circuit OSC supplies a probe signal to the detector 802(g, h). For example, a square wave, A sawtooth wave, a triangular wave, a sine wave, etc. can be used as the search signal.
[0430] The detector 802(g,h) detects the distance to the pointer close to the detector 802(g,h) and and generating and providing a sensing signal that varies based on the search signal.
[0431] The detection circuit DC provides input information based on the detection signal.
[0432] This makes it possible to detect the distance from the nearby pointer to the detection area 241. Alternatively, the position to which the pointer is closest within the detection area 241 can be detected. .
[0433] Note that this embodiment mode can be appropriately combined with other embodiment modes shown in this specification. .
[0434] (Embodiment 11) In this embodiment, a configuration of a data processing device of one embodiment of the present invention will be described with reference to FIGS. The explanation will be given with reference to the above.
[0435] FIG. 12A is a block diagram illustrating a configuration of a data processing device of one embodiment of the present invention. 12C is a projection view illustrating an example of the appearance of the information processing device.
[0436] Figure 13 is a flowchart illustrating a program according to one embodiment of the present invention. FIG. 13B is a flowchart illustrating the main processing of a program according to an embodiment of the present invention. 10 is a flowchart illustrating an interrupt process.
[0437] 14A is a diagram illustrating a program according to one embodiment of the present invention. FIG. 14B is a flowchart illustrating the interrupt process of the program. 14A and 14B are schematic diagrams illustrating the operation of an information processing device according to an embodiment of the present invention. 1 is a timing chart illustrating the operation of the
[0438] <Configuration example 1 of information processing device> The information processing device described in this embodiment includes an arithmetic unit 210 and an input / output unit 220. (See FIG. 12A.) The input / output device 220 is electrically connected to the arithmetic device 210. The information processing device 200 may also include a housing (see FIGS. 12B and 12C). (see).
[0439] <Configuration Example 1 of the Calculation Device 210> The calculation unit 210 is supplied with input information II or detection information DS. Based on the information II or the detection information DS, control information CI and image information VI are generated and It provides control information CI and image information VI.
[0440] The arithmetic device 210 includes a calculation unit 211 and a storage unit 212. , a transmission path 214 and an input / output interface 215 .
[0441] The transmission line 214 is connected to the calculation unit 211, the storage unit 212, and the input / output interface 215. are electrically connected.
[0442] 《Calculation section 211》 The calculation unit 211 has a function of executing a program, for example.
[0443] 《Storage section 212》 The storage unit 212 stores, for example, a program executed by the calculation unit 211, initial information, setting information, or It has the function of storing images, etc.
[0444] Specifically, a hard disk, a flash memory, or a transistor including an oxide semiconductor A memory using the above method can be used.
[0445] Input / output interface 215, transmission path 214 The input / output interface 215 includes terminals or wiring, and is used to supply information and receive information. For example, it can be electrically connected to the transmission line 214. It can be electrically connected to the device 220 .
[0446] The transmission path 214 has wiring and functions to supply information and receive information. The calculation unit 211 can be electrically connected to the output interface 215. It can be electrically connected to the memory unit 212 or the input / output interface 215.
[0447] <<Configuration Example of Input / Output Device 220>> The input / output device 220 provides input information II and sensed information DS. , control information CI and image information VI (see FIG. 12A).
[0448] For example, keyboard scan codes, location information, button operation information, audio information or images Image information or the like can be used as the input information II. Information on the environment in which it is used, such as illumination, posture, acceleration, direction, pressure, and temperature. Alternatively, humidity information or the like can be used as the detection information DS.
[0449] For example, a signal to control the brightness of the image information VI, a signal to control the saturation, and a signal to control the hue A signal for controlling the display of a part of the image information VI can be used as the control information CI. A varying signal can be used for the control information CI.
[0450] The input / output device 220 includes a display unit 230, an input unit 240, and a detection unit 250. For example, The input / output device described in the tenth embodiment can be used as the input / output device 220. The input / output device 220 may also include a communication unit 290 .
[0451] <<Configuration example of display unit 230>> The display unit 230 displays the image information VI based on the control information CI.
[0452] The display unit 230 includes a control unit 238, a drive circuit GD, a drive circuit SD, and a display panel 700. For example, the display device described in the ninth embodiment may have a display unit 2 Can be used for 30.
[0453] <<Configuration example of input unit 240>> The input unit 240 generates input information II. For example, the input unit 240 supplies position information P1. It has the function to do this.
[0454] For example, a human interface or the like can be used as the input unit 240 (see FIG. 12A). Specifically, input from a keyboard, mouse, touch sensor, microphone, camera, etc. It can be used in the section 240.
[0455] Also, a touch sensor having an area overlapping the display unit 230 can be used. The input / output device is provided with a touch sensor having a display unit 230 and an area overlapping the display unit 230. It can be called a touch panel or touch screen.
[0456] For example, the user can use a finger that touches the touch panel as a pointer to perform various gestures (tabbing). You can move the cursor (click, drag, swipe or pinch in, etc.).
[0457] For example, the computing device 210 analyzes information such as the position or trajectory of a finger touching the touch panel. When the analysis result satisfies a predetermined condition, it is assumed that a predetermined gesture has been provided. This allows the user to select a specific gesture that is pre-associated with the specific gesture. Operation instructions can be provided using the gestures.
[0458] For example, the user can issue a "scroll command" to change the display position of image information by tapping. The gesture can be provided by moving a finger along the touch panel. .
[0459] The user can also pull out the navigation panel NP at the edge of the display area and display it as a “Drop” "Luggage commands" can be provided using gestures that move a finger along the edge of the display area. (See FIG. 12C). In addition, the user can select the index image IN on the navigation panel NP. D, Flip through parts of other pages or thumbnail images TN of other pages in a predetermined order The "leaf-through command" to display is given using a gesture of moving the position where the finger is pressed firmly. Or it can be delivered using finger pressure. You can flip through the pages of an e-book just like flipping through the pages of a book. You can search for a specific page by using the thumbnail image TN or index image IND. can.
[0460] <<Configuration example of the detection unit 250>> The detection unit 250 generates the detection information DS. For example, the detection unit 250 The device has a function to detect the illuminance of the environment in which it is used and a function to supply illuminance information.
[0461] The detection unit 250 has a function of detecting the surrounding conditions and supplying the detection information. Illuminance information, posture information, acceleration information, direction information, pressure information, temperature information, humidity information, etc. can be provided.
[0462] For example, photodetectors, attitude detectors, acceleration sensors, orientation sensors, GPS (Global Positioning System) Positioning System) signal receiving circuit, pressure-sensitive switch, pressure sensor, temperature The detection unit 250 may be a sensor, a humidity sensor, a camera, or the like.
[0463] Communications Department 290 The communication unit 290 has the function of supplying information to the network and acquiring information from the network. Prepare.
[0464] 《Case》 The housing has a function of housing the input / output device 220 or the arithmetic unit 210. The housing has a function of supporting the display unit 230 or the computing device 210 .
[0465] This allows the control information to be generated based on the input information or the detected information. Alternatively, image information may be displayed based on input or sensed information. The information processing device is subjected to a shock that is received by the housing of the information processing device in the environment in which the information processing device is used. The user of the information processing device can operate by grasping the intensity of the light. As a result, a new information processing device with excellent convenience and reliability can be provided. can be provided.
[0466] These components cannot be clearly separated, and one component may also serve as another component. For example, a touch panel in which a touch sensor is superimposed on a display panel may include a part of the , which is both a display unit and an input unit.
[0467] <Configuration Example 2 of the Calculation Device 210> The computing device 210 includes an artificial intelligence unit 213 (see FIG. 12A).
[0468] The artificial intelligence unit 213 is supplied with input information II or detection information DS. Based on the force information II or the detection information DS, the control information CI is inferred. 213 provides control information CI.
[0469] This makes it possible to generate control information CI that is displayed in a way that is perceived as appropriate. Or it can be displayed in a way that is perceived as suitable or comfortable. It is possible to generate control information CI that is displayed so that the user feels comfortable. As a result, it is possible to create a new product that is convenient and reliable. It is possible to provide an information processing device.
[0470] [Natural Language Processing for Input Information II] Specifically, the artificial intelligence unit 213 performs natural language processing on the input information II and extracts the following from the entire input information II: For example, the artificial intelligence unit 213 can extract one feature from the input information II. It is possible to infer emotions and other such things and turn them into features. The artificial intelligence unit 213 can infer the color, pattern, font, etc. that is perceived by the user. generates information specifying the color, pattern or font of characters, and information specifying the color or pattern of the background. This can be used for control information CI.
[0471] Specifically, the artificial intelligence unit 213 performs natural language processing on the input information II and extracts the information contained in the input information II. For example, the artificial intelligence unit 213 can extract some words that are likely to be used. The artificial intelligence unit 213 can extract expressions containing false beliefs or emotions. Generates control information CI that displays the output part in a different color, pattern, font, etc. from the other part. and can be used for control information CI.
[0472] [Image processing for input information II] Specifically, the artificial intelligence unit 213 performs image processing on the input information II to obtain one For example, the artificial intelligence unit 213 may extract features from the image of the input information II. The characteristics can be inferred and used as features, such as the age, indoors or outdoors, day or night, etc. The control information for inferring the color tone that is empirically felt to be suitable for the display is then used. Specifically, the color used to express the shading (for example, full color) can be generated. Information specifying the color (e.g., black and white, dark brown, etc.) can be used in the control information CI.
[0473] Specifically, the artificial intelligence unit 213 performs image processing on the input information II to A part of the image can be extracted. For example, a boundary between the extracted part and another part of the image can be created. Specifically, control information CI can be generated that displays a part of the extracted image. It is possible to generate control information CI that displays a rectangle containing the
[0474] [Inference using detected information DS] Specifically, the artificial intelligence unit 213 can generate inferences using the detection information DS. Alternatively, based on inference, the information processing device 200 may be configured to provide a comfortable feeling to the user of the information processing device 200. Control information CI can be generated.
[0475] Specifically, based on the illuminance of the environment, the artificial intelligence unit 213 determines whether the display brightness is comfortable. It is possible to generate control information CI that adjusts the brightness of the display so that the user feels that the display is brighter. Alternatively, the artificial intelligence unit 213 may determine whether the sound level is comfortable based on the noise level of the environment. In addition, control information CI for adjusting the volume can be generated.
[0476] The clock signal or timing signal supplied to the control unit 238 included in the display unit 230 Alternatively, the control unit 248 included in the input unit 240 may use the following as the control information CI: The control information CI can be a clock signal or a timing signal supplied to the .
[0477] <Configuration example 2 of information processing device> For another configuration of the information processing device of one embodiment of the present invention, see FIGS. 13A and 13B. I will explain.
[0478] "program" A program according to one embodiment of the present invention includes the following steps (see FIG. 13A).
[0479] [First Step] In the first step, the settings are initialized (see FIG. 13A (S1)).
[0480] For example, predetermined image information to be displayed at startup and a predetermined mode in which the image information is displayed; and information specifying a predetermined display method for displaying the image information, from the storage unit 212. Specifically, one still image or other moving image information can be used as the predetermined image information. Also, the first mode or the second mode can be used for a predetermined mode.
[0481] [Second step] In the second step, interrupt processing is permitted (see FIG. 13A (S2)). A processing unit that is enabled to process an interrupt can perform the interrupt process in parallel with the main process. The arithmetic unit that has returned from interrupt processing to the main processing passes the results obtained from the interrupt processing to the main processing. This can be reflected in the processing.
[0482] When the counter value is the initial value, the arithmetic unit is caused to perform an interrupt process. When returning from the program, the counter may be set to a value other than the initial value. After starting up, you can always have the interrupt process run.
[0483] [Third Step] In the third step, the predetermined The image information is displayed using this mode or a predetermined display method (see FIG. 13A (S3)). The predetermined mode specifies the mode in which information is displayed, and the predetermined display method displays image information. Also, for example, image information VI can be used to display information. .
[0484] For example, one way of displaying the image information VI can be associated with a first mode. Alternatively, other ways of displaying the image information VI can be associated with the second mode. This allows the display method to be selected based on the selected mode.
[0485] First Mode Specifically, a selection signal is applied to one scanning line at a frequency of 30 Hz or more, preferably 60 Hz or more. The method of providing the display based on the selection signal can be associated with the first mode.
[0486] For example, if a selection signal is supplied at a frequency of 30 Hz or more, preferably 60 Hz or more, a moving image The movement can be displayed smoothly.
[0487] For example, if the image is updated at a frequency of 30 Hz or more, preferably 60 Hz or more, the user's operation The image that changes smoothly in accordance with the user's operation is displayed on the information processing device 200 that the user is operating. It can be shown.
[0488] Second Mode Specifically, the frequency is less than 30 Hz, preferably less than 1 Hz, and more preferably less than once per minute. The method of supplying a selection signal to one scanning line at a time and displaying based on the selection signal is called the second mode. It can be associated with a
[0489] A selection signal at a frequency of less than 30 Hz, preferably less than 1 Hz, and more preferably less than once per minute By supplying the above, it is possible to display a picture with reduced flicker or flicker. Power consumption can be reduced.
[0490] For example, when the information processing device 200 is used as a clock, the frequency is once per second or once per minute. The display can be updated with frequency, etc.
[0491] Incidentally, when a light-emitting element is used as a display element, the light-emitting element is made to emit light in a pulsed manner. Specifically, the organic EL element emits light in a pulsed manner, and image information can be displayed. The afterglow can be used for display. This may shorten the time for driving the light emitting element and reduce power consumption. In this case, heat generation is suppressed, and therefore deterioration of the light-emitting element can be reduced in some cases.
[0492] [Fourth step] In the fourth step, if a termination command is issued (Yes), proceed to the fifth step. If the termination command is not provided (No), the process proceeds to the third step (Fig. 13A(S4)).
[0493] For example, the termination command supplied in the interrupt process may be used for the determination.
[0494] [5th step] In the fifth step, the process ends (see FIG. 13A (S5)).
[0495] Interrupt handling The interrupt process comprises the following sixth to eighth steps (see FIG. 13B).
[0496] [Sixth step] In the sixth step, for example, the detection unit 250 is used to detect whether the information processing device 200 is being used. The illuminance of the environment is detected (see FIG. 13B (S6)). The color temperature and chromaticity may be detected.
[0497] [Seventh step] In the seventh step, a display method is determined based on the detected illuminance information (FIG. 13B( For example, you should decide whether the display brightness is too dark or too bright. Determine.
[0498] If the color temperature or chromaticity of the ambient light is detected in the sixth step, the display The color may be adjusted.
[0499] [Eighth Step] In the eighth step, the interrupt process ends (see FIG. 13B (S8)).
[0500] <Configuration example 3 of information processing device> Another configuration of a data processing device of one embodiment of the present invention will be described with reference to FIG.
[0501] FIG. 14A is a flowchart illustrating a program according to one embodiment of the present invention. 13B is a flowchart illustrating an interrupt process different from the interrupt process shown in FIG. .
[0502] The information processing device of the third example configuration changes the mode based on a given event. The interrupt processing includes a step of Here, we will explain the differences in detail and consider whether a similar configuration can be used. The above explanation will be used where possible.
[0503] Interrupt handling The interrupt process comprises the following sixth to eighth steps (see FIG. 14A).
[0504] [Sixth step] In the sixth step, if the predetermined event is provided (Yes), the seventh step If the specified event is not provided (No), proceed to step 8 ( (See Figure 14A (U6)). For example, the condition is whether a specific event has been provided within a specific period. Specifically, it is preferably 5 seconds or less, 1 second or less, or 0.5 seconds or less. The predetermined period can be 0.1 seconds or less and greater than 0 seconds.
[0505] [Seventh step] In the seventh step, the mode is changed (see FIG. 14A (U7)). If you have selected mode 1, select mode 2, and if you have selected mode 2, In this case, the first mode is selected.
[0506] For example, the display mode can be changed for a part of the area of the display unit 230. Specifically, the display unit 230 includes the drive circuits GDA, GDB, and GDC. The display mode can be changed for the area to which one drive circuit supplies a selection signal ( See Figure 14B).
[0507] For example, the input section 240 in the area overlapping the area where the driver circuit GDB supplies the selection signal is When a specific event is supplied, the driver circuit GDB supplies a selection signal to the display model of the area. (See Figures 14B and 14C.) Specifically, you can change the The driver circuit GDB selects the voltage to be supplied in response to the "tap" event supplied to the touch panel. The frequency of the signals can be changed.
[0508] The signal GCLK is a clock signal that controls the operation of the driver circuit GDB, and the signal PWC Signals PWC1 and PWC2 are pulse width control signals that control the operation of the driver circuit GDB. The circuit GDB outputs a selection signal based on the signal GCLK, the signal PWC1, the signal PWC2, etc. are supplied to the scanning lines G2(m+1) to G2(2m).
[0509] This allows, for example, the driver circuits GDA and GDC to supply a selection signal. Alternatively, the driver circuit GDB can provide the selection signal. The driver circuit GDB selects the area without changing the display of the area to which the driver circuit GDC supplies the selection signal. The display of the area to which the select signal is supplied can be updated. can be suppressed.
[0510] [Eighth Step] In the eighth step, the interrupt process is completed (see FIG. 14A (U8)). The interrupt process may be repeatedly executed during the period when the process (2) is being executed.
[0511] 《Specified Events》 For example, "click" and "drag" operations are performed using a pointing device such as a mouse. Events such as "tap" and "drag" are supplied to the touch panel using a finger as a pointer. Events such as "click" or "swipe" can be used.
[0512] Also, for example, the position of the slide bar pointed by the pointer, the speed of the swipe, the speed of the drag, The degree or the like can be used to provide arguments for the command associated with a given event.
[0513] For example, the information detected by the detection unit 250 is compared with a preset threshold value, and the comparison result is can be used for events.
[0514] Specifically, a pressure-sensitive detector that comes into contact with a button or the like that is arranged so that it can be pressed into the housing. etc. can be used in the detection unit 250.
[0515] Commands associated with specific events For example, the termination command may be associated with a predetermined event.
[0516] For example, the "page turning" function is used to switch the display from one image information to another. The "page turn command" can be associated with a specific event. The arguments that determine the page turning speed, etc., used when executing are passed using a specified event. can be given.
[0517] For example, the display position of a part of one image information is moved to display a part of the image information that is continuous with the part. You can associate a "scroll command" to display other parts with a specified event. In addition, it determines the speed at which the display moves when executing the "scroll command." Arguments can be provided with a given event.
[0518] For example, a command to set a display method or a command to generate image information is generated as a predetermined event. It is possible to associate the argument that determines the brightness of the generated image with a specific event. In addition, the argument that determines the brightness of the generated image can be associated with the The determination may be based on the brightness of the environment detected by the 50 .
[0519] For example, information distributed using a push-type service can be acquired using the communication unit 290. An instruction to execute a command can be associated with a given event.
[0520] The qualification to obtain information is determined using the location information detected by the detection unit 250. Specifically, a person who is in a designated classroom, school, conference room, company, building, or other area may This may allow a school or The information processing device 200 can be used as a textbook or the like by receiving teaching materials distributed in classrooms at universities, etc. (See Figure 12C.) Or, you can receive materials distributed in a company conference room and use them in the meeting. It can be used for meeting materials.
[0521] Note that this embodiment mode can be appropriately combined with other embodiment modes shown in this specification. .
[0522] (Embodiment 12) In this embodiment, a configuration of a data processing device of one embodiment of the present invention will be described with reference to FIGS. 15 to 17. The explanation will be given with reference to the above.
[0523] 15 to 17 illustrate the configuration of an information processing device of one embodiment of the present invention. 15A is a block diagram of the information processing device, and FIG. 15B to FIG. 15E illustrate the configuration of the information processing device. 16A to 16E are perspective views illustrating the configuration of the information processing device. 17A and 17B are perspective views illustrating the configuration of an information processing device. .
[0524] <Information processing device> The information processing device 5200B described in this embodiment includes an arithmetic unit 5210 and an input / output unit 5211. 220 (see FIG. 15A).
[0525] The arithmetic unit 5210 has a function of receiving operation information, and generates image information based on the operation information. It has the function of supplying
[0526] The input / output device 5220 includes a display unit 5230, an input unit 5240, a detection unit 5250, a communication unit 52 90, has a function to supply operation information and a function to supply image information. The device 5220 has a function of providing detection information, a function of providing communication information, and a function of providing communication information. It has a function to be supplied.
[0527] The input unit 5240 has a function of supplying operation information. For example, the input unit 5240 is an information processing The control unit 5200B supplies operation information based on the operation of the user of the control unit 5200B.
[0528] Specifically, keyboards, hardware buttons, pointing devices, and touch sensors , an illumination sensor, an imaging device, a voice input device, a gaze input device, a posture detection device, etc., are included in the input unit 5. It can be used for 240.
[0529] The display unit 5230 has a display panel and a function for displaying image information. The display panel described in the seventh or eighth embodiment can be used for the display unit 5230. Cut.
[0530] The detection unit 5250 has a function of supplying detection information. It has the function of detecting the surrounding environment and providing the detected information.
[0531] Specifically, it detects illuminance sensors, imaging devices, posture detection devices, pressure sensors, human presence sensors, etc. It can be used in part 5250.
[0532] The communication unit 5290 has a function of receiving and supplying communication information. It has the function of connecting to other electronic devices or communication networks via wired or wired communication. It has functions such as wireless intranet communication, telephone communication, and short-range wireless communication.
[0533] <<Configuration Example 1 of Information Processing Device>> For example, an outer shape along a cylindrical pillar or the like can be applied to the display unit 5230 (see FIG. 15 (See B.) It also has a function to change the display method depending on the illuminance of the usage environment. This allows you to, for example, detect the presence of a building pillar and change the display content. Or, advertisements or information can be displayed. It can be used for digital signage, etc.
[0534] <<Configuration Example 2 of Information Processing Device>> For example, it has a function to generate image information based on the trajectory of a pointer used by the user ( (See Figure 15C.) Specifically, the diagonal length is 20 inches or more, preferably 40 inches or more. More preferably, a display panel of 55 inches or more can be used. Display panels can be arranged side by side to form a single display area. This allows for the use of multiple screens in a line, for example, as an electronic whiteboard or electronic bulletin board. It can be used for display boards, electronic signs, etc.
[0535] "Configuration example 3 of information processing device" It can receive information from other devices and display it on the display unit 5230 (see FIG. 15D). Or you can display several options, or the user can select some from the options. Or, for example, the display method can be changed depending on the illuminance of the usage environment. This allows, for example, the power consumption of a smartwatch to be reduced. Alternatively, it can be suitably used in an environment with strong external light, such as outdoors on a clear day. The image can be displayed on the smartwatch so that it can be viewed.
[0536] "Configuration example 4 of information processing device" The display unit 5230 has, for example, a curved surface that curves gently along the side of the housing (see FIG. 15E Alternatively, the display unit 5230 may include a display panel, which may be, for example, a front or side panel. This allows you to display the image on the front, top, and back of your mobile phone, for example. Instead, information can be displayed on the sides, top and back.
[0537] "Configuration Example 5 of Information Processing Device" For example, information can be received from the Internet and displayed on the display unit 5230 ( (See FIG. 16A.) Alternatively, the created message can be viewed on the display unit 5230. Or you can send the created message to other devices. Or, for example, you can use the It has a function to change the display method depending on the temperature. This reduces the power consumption of the smartphone. Alternatively, it is possible to reduce the amount of light emitted from the outside, for example, in an environment with strong external light, such as outdoors on a clear day. The images can be displayed on a smartphone for convenient use.
[0538] "Configuration Example 6 of Information Processing Device" A remote controller can be used as the input unit 5240 (see FIG. 16B). For example, the display unit 5230 receives information from a broadcast station or the Internet and displays it on the display unit 5230. Alternatively, the user can be photographed using the detection unit 5250. Or, you can get the user's viewing history and provide it to the cloud service. Alternatively, recommendation information can be obtained from a cloud service and displayed on the display unit 5230. Or, programs or videos can be displayed based on the recommended information. For example, the display method can be changed depending on the illuminance of the environment in which the device is used. The image is projected onto the TV screen so that it can be used effectively even when strong outdoor light shines indoors on a sunny day. The image can be displayed on the system.
[0539] <<Configuration Example 7 of Information Processing Device>> For example, educational materials can be received from the Internet and displayed on the display unit 5230 ( (See FIG. 16C.) Alternatively, the input section 5240 can be used to input a report and upload it to the internet. Or, you can send the results of your report or The evaluation can be acquired and displayed on the display unit 5230. Alternatively, suitable teaching materials can be selected based on the evaluation. can be selected and displayed.
[0540] For example, it is possible to receive an image signal from another information processing device and display it on the display unit 5230. Or, you can prop it up on a stand and use the display unit 5230 as a sub-display. This allows the device to be used effectively even in environments with strong external light, such as outdoors on a clear day. The images can be displayed on a tablet computer for use.
[0541] "Configuration Example 8 of Information Processing Device" The information processing device includes, for example, a plurality of display units 5230 (see FIG. 16D). The image can be displayed on the display unit 5230 while being captured by the image capture unit 5250. The image can be displayed on the detection unit. Alternatively, the input unit 5240 can be used to input the captured image. Or you can attach a message to the video you have taken. Or you can post it online. It also has a function to change the shooting conditions depending on the lighting of the environment. This allows for optimal viewing even in environments with strong external light, such as outdoors on a sunny day. The subject can then be displayed on the digital camera.
[0542] "Configuration Example 9 of Information Processing Device" For example, another information processing device may be used as a slave, and the information processing device of this embodiment may be used as a master. It can be used to control other information processing devices (see FIG. 16E). A part of the image information is displayed on the display unit 5230, and another part of the image information is displayed on the display unit 5230 of another information processing device. The image signal can be displayed on the display unit. By using 0, it is possible to obtain information to be written from the input unit of another information processing device. For example, a large display area can be utilized using a portable personal computer. do.
[0543] "Configuration Example 10 of Information Processing Device" The information processing device includes, for example, a detection unit 5250 that detects acceleration or orientation (see FIG. 17). A). Alternatively, the detection unit 5250 may detect the position of the user or the direction in which the user is facing. Alternatively, the information processing device can provide information on the user's location or Based on the direction of the camera, image information for the right eye and image information for the left eye can be generated. Alternatively, the display unit 5230 may have a display area for the right eye and a display area for the left eye. This allows, for example, the creation of immersive virtual reality images through goggle-type information processing devices. It can be displayed on the device.
[0544] "Configuration Example 11 of Information Processing Device" The information processing device includes, for example, an imaging device, a detection unit 5250 that detects acceleration or orientation. (See FIG. 17B.) Alternatively, the detection unit 5250 may detect the position of the user or the direction the user is facing. Alternatively, the information processing device can provide information on the user's position or direction. can generate image information based on the direction the user is facing. For example, information can be attached to real-world scenery and displayed. The image can be displayed on a glasses-type information processing device.
[0545] Note that this embodiment mode can be appropriately combined with other embodiment modes shown in this specification. .
[0546] For example, in this specification, when it is explicitly stated that X and Y are connected, In this case, X and Y are electrically connected, and X and Y are functionally connected. The case where X and Y are directly connected is also considered to be disclosed in this specification. Therefore, the present invention is not limited to the predetermined connection relationships, for example, the connection relationships shown in the drawings or text. Connections other than those shown in the drawings or text are also considered to be disclosed in the drawings or text. do.
[0547] Here, X and Y are the object (for example, a device, an element, a circuit, a wiring, an electrode, a terminal, a conductive film, a layer, etc.). , etc.).
[0548] An example of a direct connection between X and Y is a circuit that allows electrical connection between X and Y. The elements to be considered (e.g., switches, transistors, capacitance elements, inductors, resistance elements, When no external device (such as a diode, display element, light-emitting element, or load) is connected between X and Y, The elements that allow electrical connection between X and Y (e.g., switches, transistors, capacitors) elements, inductors, resistors, diodes, display elements, light-emitting elements, loads, etc.) , X and Y are connected.
[0549] An example of an electrical connection between X and Y is The elements to be considered (e.g., switches, transistors, capacitance elements, inductors, resistance elements, One or more devices (such as diodes, display elements, light-emitting elements, and loads) can be connected between X and Y. It is possible. The switch has a function to control on / off. A switch can be in a conducting state (ON state) or a non-conducting state (OFF state), allowing current to flow. The switch has the function of controlling whether or not the current flows. When X and Y are electrically connected, This includes the case where Y is directly connected.
[0550] An example of a functional connection between X and Y is a function that allows the functional connection between X and Y. Circuits that perform the above functions (for example, logic circuits (inverters, NAND circuits, NOR circuits, etc.), signal conversion conversion circuits (DA conversion circuits, AD conversion circuits, gamma correction circuits, etc.), potential level conversion circuits (voltage power supply circuits (voltage boost circuits, voltage drop circuits, etc.), level shifter circuits that change the signal potential level, etc.) , voltage source, current source, switching circuit, amplifier circuit (which can increase the signal amplitude or current amount, etc.) circuits, operational amplifiers, differential amplifier circuits, source follower circuits, buffer circuits, etc.), signal generation One or more circuits (e.g., memory circuits, control circuits, etc.) can be connected between X and Y. For example, even if another circuit is inserted between X and Y, the signal output from X If X is transmitted to Y, then X and Y are considered to be functionally connected. When X and Y are functionally connected, there is a direct connection between X and Y and a direct connection between X and Y. This also includes the case where the and are electrically connected.
[0551] In addition, if it is explicitly stated that X and Y are electrically connected, are electrically connected (i.e., there is another element or circuit between X and Y) X and Y are functionally connected (i.e., X and Y are functionally connected) and (When there is a functional connection between them via another circuit) and when X and Y are directly connected (i.e., when X and Y are connected without any other element or circuit between them) is considered to be disclosed in the present specification. If it is explicitly stated that it is connected, The same content is considered to be disclosed in the present specification.
[0552] For example, if the source (or first terminal, etc.) of the transistor is connected via Z1 (or The drain (or second terminal, etc.) of the transistor is electrically connected to Z 2 (or not), and is electrically connected to Y, or the source of the transistor (or the first terminal, etc.) is directly connected to a part of Z1, and another part of Z1 is directly connected to X. The drain (or second terminal, etc.) of the transistor is directly connected to a part of Z2. and another part of Z2 is directly connected to Y, It is possible to do so.
[0553] For example, "X and Y and the source (or first terminal, etc.) and drain (or second terminal, etc.) of a transistor" The terminals of the transistor (or the first terminal) are electrically connected to each other. 1 terminal, etc.), the drain of the transistor (or the second terminal, etc.), and Y. It can be expressed as "connected to the source (or the first The first terminal of the transistor is electrically connected to X, and the drain of the transistor is electrically connected to the second terminal of the transistor. The transistor source (or first terminal, etc.) is electrically connected to Y, and the transistor source (or first terminal, etc.) is electrically connected to X. The drain (or second terminal, etc.) of the transistor, Y, is electrically connected in this order. " Alternatively, "X is the source (or first terminal, etc.) of the transistor. and the drain (or second terminal, etc.) are electrically connected to Y, and X, the source (or first terminal, etc.) of a transistor, the drain (or second terminal, etc.) of a transistor ), Y is provided in this order of connection. By specifying the order of connections in the circuit configuration using a simple expression method, Distinguish between the source (or first terminal, etc.) and the drain (or second terminal, etc.) of a transistor. The technical scope can be determined by the above.
[0554] Alternatively, for example, "the source (or first terminal, etc.) of a transistor" is electrically connected to X through at least a first connection path, and the first connection path is , and the second connection path is a transistor through a transistor. The source (or first terminal, etc.) of the transistor and the drain (or second terminal, etc.) of the transistor The first connection path is a path via Z1, and the second connection path is a path between the first and second transistors. The drain (or second terminal, etc.) of the capacitor is electrically connected to Y through at least a third connection path. the third connection path does not have the second connection path, and the third connection path The connection path is the path via Z2. The source (or first terminal, etc.) of the resistor is connected to the resistor via Z1 by at least the first connection path. and electrically connected to X, and the first connection path does not have a second connection path; The second connection path has a connection path through a transistor, and (or the second terminal, etc.) is connected to Y via Z2 by at least a third connection path. The third connection path does not have the second connection path. Alternatively, the source (or first terminal, etc.) of the transistor may be at least The first electrical path is electrically connected to X through Z1. The primary path does not have a second electrical path, and the second electrical path is a From the source (or first terminal, etc.) to the drain (or second terminal, etc.) of the transistor The drain (or second terminal, etc.) of the transistor is connected to at least a third The third electrical path is electrically connected to Y through Z2. , does not have a fourth electrical path, and the fourth electrical path is (or second terminal, etc.) to the source (or first terminal, etc.) of the transistor. Using the same expression as these examples, the circuit configuration By defining the connection path in Distinguishing between the first terminal (or the second terminal, etc.) and the drain (or the second terminal, etc.) to determine the technical scope. can be done.
[0555] These representation methods are merely examples, and the present invention is not limited to these representation methods. , Y, Z1, Z2 are objects (e.g., devices, elements, circuits, wiring, electrodes, terminals, conductive films, layer, etc.).
[0556] In addition, the circuit diagram shows independent components as if they are electrically connected to each other. Even if the components are different, one component may have the functions of multiple components. For example, when a part of the wiring also functions as an electrode, one conductive film functions as both the wiring and the electrode. Therefore, the electrode in this specification has the functions of both components. The term "electromagnetic connection" refers to a case where one conductive film has the functions of multiple components. This also falls within the scope of the above. [Explanation of symbols]
[0557] ACF1: Conductive material, AF1: Alignment film, AF2: Alignment film, ANO: Conductive film, C11: Capacitor element, C12: capacitance element, C21: capacitance element, C22: capacitance element, CI: control information, CS COM: Conductive film, CP: Conductive material, DS: Detection information, GCLK: Signal, G1: Scan line, G 2: Scan line, II: Input information, KB1: Structure, M: Transistor, P1: Position information, P WC1: signal, PWC2: signal, S1: signal line, S2: signal line, SP: control signal, SW1 1: Switch, SW12: Switch, SW21: Switch, SW22: Switch, SW2 3: Switch, SW24: Switch, V0: Conductive film, V11: Information, VCOM1: Conductive film ,VI: Image information, FPC1: Flexible printed circuit board, 200: Information processing device, 21 0: arithmetic unit, 211: arithmetic unit, 212: memory unit, 213: artificial intelligence unit, 214: transmission line 215: Input / output interface, 220: Input / output device, 230: Display unit, 231: Table display area, 233: control circuit, 234: expansion circuit, 235: image processing circuit, 238: control unit 240: Input unit, 241: Detection area, 248: Control unit, 250: Detection unit, 290: Communication part, 501C: insulating film, 504: conductive film, 506: insulating film, 508: semiconductor film, 508A :Area, 508B:Area, 508C:Area, 510:Base material, 512A:Conductive film, 512B : Conductive film, 516: Insulating film, 518: Insulating film, 519B: Terminal, 520: Functional layer, 521 A: insulating film, 521B: insulating film, 524: conductive film, 530: pixel circuit, 591A: opening ,700: Display panel, 700TP: Input / output panel, 702: Pixel, 705: Sealant, 7 50: display element, 751: electrode, 752: electrode, 753: layer, 754: conductive film, 770: Base material, 770P: functional film, 802: detector, 5200B: information processing device, 5210: calculation Device, 5220: Input / output device, 5230: Display unit, 5240: Input unit, 5250: Detection unit , 5290: Communications Department
Claims
1. A semiconductor device comprising first to fifth transistors, a first capacitance element, a second capacitance element, a light-emitting element, and first to fourth wirings, one of a source and a drain of the first transistor is electrically connected to the second wiring; the other of the source and the drain of the first transistor is electrically connected to the gate of the fifth transistor; one of a source and a drain of the second transistor is electrically connected to the first wiring; the other of the source and the drain of the second transistor is electrically connected to a first electrode of the second capacitor element; one of a source and a drain of the third transistor is electrically connected to the fourth wiring; the other of the source and the drain of the third transistor is electrically connected to a first electrode of the first capacitor element; one of a source and a drain of the fourth transistor is electrically connected to a first electrode of the first capacitor; the other of the source and the drain of the fourth transistor is electrically connected to the light-emitting element; one of a source and a drain of the fifth transistor is electrically connected to the third wiring; the other of the source and the drain of the fifth transistor is electrically connected to a first electrode of the first capacitor element; the other electrode of the first capacitance element is electrically connected to the gate of the fifth transistor; the other electrode of the second capacitance element is electrically connected to the gate of the fifth transistor; Semiconductor device.
2. A semiconductor device comprising first to fifth transistors, a first capacitance element, a second capacitance element, a light-emitting element, and first to seventh wirings, one of a source and a drain of the first transistor is electrically connected to the second wiring; the other of the source and the drain of the first transistor is electrically connected to the gate of the fifth transistor; a gate of the first transistor is electrically connected to the sixth wiring; one of a source and a drain of the second transistor is electrically connected to the first wiring; the other of the source and the drain of the second transistor is electrically connected to a first electrode of the second capacitor element; a gate of the second transistor is electrically connected to the fifth wiring; one of a source and a drain of the third transistor is electrically connected to the fourth wiring; the other of the source and the drain of the third transistor is electrically connected to a first electrode of the first capacitor element; a gate of the third transistor is electrically connected to the fifth wiring; one of a source and a drain of the fourth transistor is electrically connected to a first electrode of the first capacitor; the other of the source and the drain of the fourth transistor is electrically connected to the light-emitting element; a gate of the fourth transistor is electrically connected to the seventh wiring; one of a source and a drain of the fifth transistor is electrically connected to the third wiring; the other of the source and the drain of the fifth transistor is electrically connected to a first electrode of the first capacitor element; the other electrode of the first capacitance element is electrically connected to the gate of the fifth transistor; the other electrode of the second capacitance element is electrically connected to the gate of the fifth transistor; Semiconductor device.