DISPLAY METHOD AND FINISH DEVICE
Patent Information
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- BEIJING XIAOMI MOBILE SOFTWARE CO LTD
- Filing Date
- 2020-06-23
- Publication Date
- 2026-04-22
AI Technical Summary
Existing display panels face challenges in integrating in-screen functional components like image acquisition units, leading to reduced resolution and performance due to limited space and interference with display elements, particularly in LCD screens, which affect the display aperture ratio and image detection accuracy.
The image detection units are distributed at different positions adjacent to display units, utilizing gaps between pixels, with specific arrangements such as first and second distribution positions, allowing for higher resolution without impacting display pixel distribution, and using RGBW pixel layouts to improve aperture ratio and reduce backlight interference.
This approach achieves image detection resolutions up to 600dpi while maintaining or improving display resolution, ensuring adequate image detection accuracy and aperture ratio, suitable for fingerprint recognition and other image acquisition tasks.
Description
TECHNICAL FIELD
[0001] The present disclosure generally relates to electronic technologies, and particularly to a display panel and a terminal device.BACKGROUND
[0002] Along with continuous innovation of display technologies, full screen has been widely used in various electronic products. For obtaining a full screen, various functional components may be integrated with a display screen, so that it is unnecessary to reserve a space for arranging functional components outside the screen. For example, an in-screen image acquisition component and sensor, etc. may be arranged in gaps between pixels of the display screen, and sensing functions thereof may be realized based on the display gaps of the display screen.
[0003] However, a display screen is required to meet requirements on an aperture ratio, a resolution and the like and consequently cannot provide a too large arrangement space for functional components. Therefore, such an in-screen functional component for image acquisition usually has relatively low resolution and other problems, thereby impacting performance of operation. Display panel technology is also disclosed in US2016 / 266695, US 2008 / 036951, CN108828816 and US 2018 / 267354.SUMMARY
[0004] The present disclosure provides a display panel and a terminal device.
[0005] According to a first aspect of the present invention, a display panel is provided as defined by claim 1.
[0006] In some embodiments, each image detection unit at the second distribution position in a non-display edge region may be below the first color display subunit; a distance between a first end of each image detection unit at the first distribution position and the first color display subunit may be a first distance; a distance between a first end of each image detection unit at the second distribution position and the first color display subunit may be a second distance; and the first distance may be equal to the second distance.
[0007] In some embodiments, the first color display subunit may be a white display subunit; the second color display subunit may be a unicolor or multicolor display subunit; and in each of the plurality of display units, a length of the first color display subunit may be less than a length of the second color display subunit.
[0008] In some embodiments, in each of the plurality of display units, central points of the first color display subunit and the second color display subunit may be on a same straight line; or, in each of the plurality of display units, bottom edges of the first color display subunit and the second color display subunit may be on a same straight line.
[0009] In some embodiments, the second color display subunit may include a red display subunit, a green display subunit and a blue display subunit; the display panel may include: display unit rows formed by the first color display subunits and second color display subunits that are laid out in a first sequence, the first sequence being the red display subunit, the green display subunit, the blue display subunit and the white display subunit, and display unit rows formed by the first color display subunits and second color display subunits that are laid out in a second sequence, the second sequence being the blue display subunit, the white display subunit, the red display subunit and the green display subunit; the display unit rows laid out in the first sequence and the display unit rows laid out in the second sequence may be alternately laid out as odd and even rows; and in the display panel, the image detection units at the first distribution positions may be above each white display subunit, and the image detection units at the second distribution positions may be above the green display subunits at an interval of three white display subunits in each display unit row.
[0010] In some embodiments, the plurality of display units may include: first-type display units and second-type display units; the first-type display units may include the second color display subunits; the second-type display units may at least include the first color display subunits and the second color subunits; and the first color display subunits are white display subunits and the second color display subunits are unicolor or multicolor display subunits.
[0011] In some embodiments, the second-type display units may include: red display subunits, green display subunits and white display subunits.
[0012] In some embodiments, in the first-type display unit, the second color display subunits may be laid out in a third sequence, the third sequence being the red display subunit, the green display subunit and the blue display subunit; in the second-type display unit, the first color display subunits and the second color display subunits may be laid out in a fourth sequence, the fourth sequence being the red display subunit, the green display subunit and the white display subunit; the first-type display units and the second-type display units may be alternately laid out in a same display unit row and alternately arranged in a same display unit column; and the image detection units at the first distribution positions and the image detection units at the second distribution positions may be alternately distributed in each row, and first ends of the image detection units are close to the first-type display units and far from the second-type display units.
[0013] In some embodiments, the display panel may further include: a first transparent substrate, and a second transparent substrate, arranged opposite to the first transparent substrate and serving as a display surface of the display panel, the display array being between the first transparent substrate and the second transparent substrate.
[0014] Black matrixes (BM) isolating different display subunits may further be distributed between the first transparent substrate and the second transparent substrate.
[0015] The plurality of image detection units may be arranged on the BM and face the second transparent substrate.
[0016] In some embodiments, the display panel may further include: a detection image processing unit, configured to generate the target detection image according to the photosignals detected by the plurality of image detection units and position information of each of the plurality of image detection units distributed on the display panel.
[0017] In some embodiments, each of the plurality of image detection units may include: an emitting element, configured to emit detection light; a receiving element, configured to receive reflected light returned based on an action of the detection light on a detection target; and an imaging element, connected with the receiving element and configured to generate the target detection image based on the reflected light, the target detection image including a fingerprint image.
[0018] According to a second aspect of the present invention, a terminal device is provided as defined by claim 12.
[0019] The technical solutions provided in the embodiments of the present disclosure may have the following advantages. Through the technical solutions of the embodiments of the present disclosure, a plurality of image detection units may be distributed at different positions adjacent to a plurality of display units of a display array. In such a manner, gaps between the display units may be reasonably utilized. When a high image detection resolution is required, the image detection units may be arranged at different types of distribution positions without impacting distribution of display pixels, so that adequate image detection units may be distributed in the display panel to further obtain the target detection image meeting a resolution requirement.
[0020] For example, when the display resolution is reduced from 400 Dots Per Inch (dpi) to 300dpi due to the Red Green Blue White (RGBW) pixel layout and if the image detection units are distributed at positions relatively unified with each display unit, the image detection resolution may be also 300dpi and may not meet the detection requirement.
[0021] According to the technical solutions of the embodiments of the present application, image detection units may be distributed at different distribution positions of display units respectively. For example, there is an image detection unit at the first distribution position of each display unit, and meanwhile, there are also image detection units at the second distribution positions of part of display units. In such a manner, a detection resolution of the image detection unit can be 300dpi to 600dpi, so that an image detection resolution meeting the requirement is achieved.
[0022] It is to be understood that the above general descriptions and detailed descriptions below are only exemplary and explanatory and not intended to limit the present disclosure.BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present disclosure and, together with the description, serve to explain the principles of the present disclosure. FIG. 1 is a schematic diagram illustrating fingerprint acquisition within a display panel according to an exemplary embodiment. FIG. 2 is a schematic diagram illustrating improvement of a display aperture ratio according to an exemplary embodiment. FIG. 3 is a schematic diagram illustrating distribution of photosensors according to an exemplary embodiment. FIG. 4 is a schematic diagram illustrating pixel layout of a display panel according to an exemplary embodiment. FIG. 5A is a structure diagram of a display panel according to an exemplary embodiment. FIG. 5B is a schematic diagram illustrating a position relationship between display units and image detection units according to an exemplary embodiment. FIG. 5C is a schematic diagram illustrating another position relationship between display units and image detection units according to an exemplary embodiment. FIG. 5D is a schematic diagram illustrating distribution of display units and image detection units according to an exemplary embodiment. FIG. 6 is a schematic diagram illustrating distribution positions of image detection units in a display panel according to an exemplary embodiment. FIG. 7 is a schematic diagram illustrating distribution directions of image detection units in a display panel according to an exemplary embodiment. FIG. 8A is a first schematic diagram illustrating distribution of each display subunit in a display unit according to an exemplary embodiment. FIG. 8B is a second schematic diagram illustrating distribution of each display subunit in a display unit according to an exemplary embodiment. FIG. 9 is a structure diagram of a display unit according to an exemplary embodiment. FIG. 10 is a schematic diagram illustrating layout of pixels and photosensors of a display panel according to an exemplary embodiment. FIG. 11 is a first schematic diagram illustrating arrangement of pixels and photosensors of a display panel according to an exemplary embodiment. FIG. 12 is a second schematic diagram illustrating arrangement of pixels and photosensors of a display panel according to an exemplary embodiment. FIG. 13 is a schematic diagram illustrating distribution of photosensors of a display panel according to an exemplary embodiment. FIG. 14 is a schematic diagram illustrating another layout of pixels and photosensors of a display panel according to an exemplary embodiment. FIG. 15 is a physical structure block diagram of a terminal device according to an exemplary embodiment. DETAILED DESCRIPTION
[0024] Reference will now be made in detail to exemplary embodiments, examples of which are illustrated in the accompanying drawings. The following description refers to the accompanying drawings in which the same numbers in different drawings represent the same or similar elements unless otherwise represented. The implementations set forth in the following description of exemplary embodiments do not represent all implementations consistent with the present disclosure. Instead, they are merely examples of apparatuses and methods consistent with aspects related to the present disclosure as recited in the appended claims.
[0025] Because of problems about the cost and the display effect, an in-screen fingerprint technology for full screens is only applied to Organic Light-Emitting Diode (OLED) display screens. For a Liquid Crystal Display (LCD) screen, due to the existence of backlight, photosensors and circuits, i.e., the abovementioned image detection units, may be integrated into a Thin Film Transistor (TFT) substrate, as shown in FIG. 1, to acquire a fingerprint image.
[0026] However, integrating a photosensor into TFT glass may block transmitted light of part of backlight, resulting in impacting a display aperture ratio. Therefore, it is unlikely to take both the display aperture ratio and in-screen fingerprint recognition into consideration. For improving the aperture ratio, RGBW pixel layout may be adopted, as shown in FIG. 2, so that power consumption of a backlight source may be reduced while the same display brightness is maintained, or the display brightness may be improved while brightness of the backlight source is kept unchanged.
[0027] A Full High Definition (FHD) display screen is taken as an example. When it is a 6.5-inch (16.28cm) display screen, a pixel resolution is about 400dpi. As shown in FIG. 3, a photosensor S may be arranged for each pixel (including RGB subpixels), so that the fingerprint recognition resolution can be also about 400dpi. An image, which has a resolution greater than 363dpi or which has a resolution greater than 326dpi and has a larger area, is required to be acquired during fingerprint acquisition, for example, a 10mm×10mm image, and then fingerprint recognition can be implemented.
[0028] After pixels W are added, if a size of a subpixel is kept unchanged, (note: the subpixel represents a minimum pixel unit in a single color herein), the resolution may be reduced to about 300dpi, and meanwhile, the resolution of the photosensor is also reduced to about 300dpi. Consequently, the fingerprint recognition effect is worsened.
[0029] A pixel layout shown in FIG. 4 is an RGBW layout. Since an area ratio of RGBW may be 1:1:1:0.75 according to a requirement of a relationship between a visual effect and a display algorithm, photosensors may be arranged near pixels W, and meanwhile, for improving a detection resolution, the photosensors may be laid out more densely. However, in such a manner, ambient light around each photosensor may be different, bringing inconvenience to data processing and further reducing the detection accuracy. If twice as many sensors are directly adopted, for example, a photosensor is correspondingly arranged near RG pixels and then a photosensor is arranged near pixels BW, the overall sensor resolution may be improved to 600dpi. However, the photosensors are required to be arranged on a BM, resulting in almost the whole aperture being ocuppied by the circuit and the wiring space and the display brightness being reduced. In addition, the BM may be further enlarged, and a dark region gets visible to naked eyes accordingly. Therefore, for the number of the sensors in an LCD panel, bigger does not mean better, and the display effect needs to be considered at the same time.
[0030] FIG. 5A is a structure diagram of a display panel according to an exemplary embodiment. As shown in FIG. 5A, the display panel includes: a display array 100 including a plurality of display units 110, each display unit 110 including at least one display subunit; and a plurality of image detection units 200 configured to detect photosignals to obtain a target detection image.
[0031] The plurality of image detection units 200 may be adjacent to the plurality of display units 110 and have first distribution positions and second distribution positions, the first distribution positions being different from the second distribution positions.
[0032] The display unit may be a pixel unit configured to form a display picture. The plurality of display units may form the display array in the form of multiple rows and multiple columns. Different display units may present different brightness to form the display picture to realize a display function of the display panel.
[0033] The display unit may further include at least one display subunit, and each display subunit may be a subpixel. Different display subunits of the same display unit may emit light in different colors, for example, three primary colors of colored light. A display picture with a colored effect may be formed by display subunits of different colors and brightness.
[0034] Gaps may be between the display units of the display panel, i.e., at the adjacent positions of the display units, and the image detection units may be arranged in these gaps. The image detection units may be configured to detect the photosignals, including photosignals of ambient light or a preset wavelength. The photosignals detected by the plurality of image detection units at different positions may be processed to generate the target detection image, thereby realizing an image detection function.
[0035] In an in-screen image acquisition product, image detection units, for example, light sensors and brightness sensors, may be arranged near pixel units. Ambient photosignals may be acquired through a plurality of image detection units respectively and then synthesized into an acquired target detection image. Such a method may be applied to functions such as optical fingerprint acquisition and in-screen photographing. In some implementations, an OLED screen may be adopted to implement in-screen image detection, and the image detection units may be arranged in gaps beside each OLED pixel. In some other embodiments, an LCD may be adopted. However, the LCD may provide light energy through a backlight source. Overall transmittance, or called an aperture ratio, of the display screen may be one of important factors impacting the energy efficiency of the display screen.
[0036] The positions of the pixel units generally may be arranged with a non-light-tight thin film, including an Indium Tin Oxide (ITO) thin film and a Color Filter (CF). However, the positions of non-pixel units may be needed to be arranged with wirings, switching devices and the like, at which electrical interference from backlight is required to be reduced and thus a light-tight BM is required to be adopted for blocking light. If image detection units are to be arranged, the image detection units are needed to be arranged at the positions of the non-pixel units. It can be seen that, if a region blocked by the BM is larger, the aperture ratio of the display screen is lower.
[0037] For improving the aperture ratio, an RGBW or Red Green Blue Yellow (RGBY) pixel layout, etc. may be adopted, and the pixels may be alternately laid out in different rows, so that the overall display brightness may be improved (the brightness is improved in case of fixed backlight brightness, or the backlight brightness may be reduced in case of the same display brightness).
[0038] When the image detection units are arranged, for facilitating wiring and layout of the switching devices, one image detection unit may usually be arranged for each pixel unit (including four RGBW subpixels), and may be arranged at the same position of the pixels. However, when RGBW or RGBY pixel layout is adopted instead of RGB pixel layout, if a size of a subpixel is kept unchanged, the pixel resolution may be reduced, and the number of pixels in a unit area may be reduced.
[0039] A Full High Definition (FHD) display screen is taken as an example. The RGB pixel layout may be adopted, namely each display unit includes three subpixels RGB, and meanwhile, the same pixel layout may be adopted for different rows. That is, the subpixels in the same column may be in the same color. In such case, the display resolution of the display panel may be about 400dpi, and correspondingly, the detection resolution of the image detection unit may be also about 400dpi. After the subpixels W are added, if an area of the subpixel is kept unchanged, both the display resolution and the detection resolution may be reduced to 300dpi. However, such a resolution may not meet an image detection requirement. For example, a detection resolution for fingerprint detection is about 363dpi.
[0040] If the manner that one image detection unit is arranged for each pixel unit is still adopted, the image acquisition resolution may be reduced, and the image acquisition quality may be impacted. For example, during fingerprint acquisition, if the resolution is low, fingerprint recognition may not be implemented, and a using effect may be degraded.
[0041] However, when the image detection units are laid out more densely but not laid out corresponding to the display pixels, the subpixels around each image detection unit may be different in color, resulting in the problems that the wirings of the image detection units are unreasonably arranged and thus impact the display pixels and the like. For example, if twice as many image detection units are arranged to improve the detection resolution to 600dpi, for example, the RG subpixels correspond to an image detection unit and the BW subpixels correspond to an image detection unit, a circuit and a wiring space almost occupy the whole aperture, and the display brightness is reduced. Therefore, for the number of the image detection units, bigger does not mean better, and the display effect and the image detection requirement are required to be considered at the same time.
[0042] The problem above is not limited to the RGBW or RGBY pixel layout. For other pixel layouts, including RGB and RGW layout, etc., if the image detection resolution is required to be improved or the subpixels in different colors in adjacent rows are alternately distributed, there may be the same problem.
[0043] Therefore, it is proposed that the image detection units may be distributed at different distribution positions, namely distributed at different adjacent positions of the display units in at least two different manners. A plurality of image detection units may be distributed at different distribution positions at the adjacent positions of the display units. Herein, the first distribution positions and the second distribution positions may be different positions near the display units. Herein, the adjacent position of a display unit refers to a gap between the display unit and another display unit near the display unit. If the display unit is at an edge of the display panel, the adjacent position may also include a position, other than the position of the display unit, at the edge of the display panel.
[0044] In an implementation, the image detection unit at the first distribution position may be in a first orientation of the display unit, and the image detection unit at the second distribution may be in a second orientation of the display unit. For example, the image detection unit at the first distribution position is above the display unit, and the image detection unit at the second distribution is below the same display unit. In some implementations, the orientations may be based on a display direction of the display panel, for example, "upper and lower sides of a display picture", and "left and right" defined based on a direction of a viewer when the viewer faces the display panel. However, "above", "below" and the like are adopted herein not to limit a direction of a practical product but only to represent relative positions and directions.
[0045] It is to be noted that both the first distribution position and the second distribution position are based on the same display unit herein. For example, an image detection unit at a first distribution unit is above a display unit, and correspondingly, the image detection unit at a second distribution unit is below the display unit. In such a manner, the display panel may be formed by laying out multiple combinations of display units and image detection units distributed in form of an array. For a display panel, the abovementioned combinations may be adopted for part of display units only, and only image detection units at first distribution positions may be distributed near the other part of display units or only image detection units at second distribution positions may be distributed near the other part of display units. Therefore, a practical distribution of the edge or different regions of the display panel may be determined according to a combination of the display units and the image detection units and an overall layout of the display units.
[0046] In some implementations, the first orientation and the second orientation may be opposite orientations of the display unit. In some other embodiments, the first orientation and the second orientation may be two adjacent orientations of the display unit. Like the abovementioned explanations about the orientations, the opposite orientations and the adjacent orientations may be also described relative to the same display unit and the orientations may be based on the display unit of the display panel. For example, orientations of being above and below a display unit may be opposite, and a left upper corner and right upper corner of a display unit may adjacent.
[0047] In such a manner, the image detection units may be arranged in different position spaces around the display units respectively, not limited to the arrangement manner of one-to-one correspondence between the image detection units and the display units. Therefore, there may be a plurality of image detection units at the adjacent positions of the same display unit, and the resolution of the image detection units may be higher than the resolution of the display units. A higher image detection resolution may be achieved even for a display panel with a low requirement on a resolution of a display picture.
[0048] In some implementations, the first distribution positions may be the adjacent positions of each display unit in the same direction, for example, positions between the display units of two rows. Therefore, each display unit may correspond to an image detection unit. In addition, the image detection units at the second distribution positions may be also distributed. The second distribution positions may be the adjacent positions of part of display units in the same direction, for example, besides the first distribution positions. The first distribution position and the second distribution position may be understood as positions above the left and right (below the left and right, etc.) of the same display unit. Therefore, different image detection resolutions may be achieved according to the image detection units at the second distribution positions.
[0049] Exemplarily, as shown in FIG. 5B, the first distribution position 201 is above the left of the display unit 110, namely there is an image detection unit S above the left of the display unit. Meanwhile, the second distribution position 202 is above the right of the display unit, namely there is an image detection unit S above the right of the display unit. For the whole display panel, there may be image detection units at the first distribution positions 201 and the second distribution positions 202 for all the display units, so that the resolution of the image detection units is twice the display resolution.
[0050] Considering arrangement of too many image detection units may further reduce the aperture ratio or increase the process complexity, the number of image detection units may also be appropriately reduced. Two different combinations of the display units and the image detection units may be adopted for the same display panel, for example, a combination shown in FIG. 5C, namely there is only an image detection unit S at the first distribution position 201 for the display unit 110. For example, there is an image detection unit above each display unit, and meanwhile, an image detection unit is arranged at the second distribution position, namely below the display unit at an interval of three display units in a row. That is, combinations, shown in FIG. 5B, of the display units and the image detection units are arranged at an interval of three combinations, shown in FIG. 5C, of the display units 110 and the image detection units S to form a layout shown in FIG. 5D. In such a manner, the resolution of the image detection units is about 1.25 times the display resolution. It is to be noted that "at the interval of three" is not limited to the specific display unit in the display panel and is only adopted to represent a distribution rule of all the display units and image detection units in the display panel. Therefore, a specific layout of the display units at positions such as the edge of the display panel or boundaries of different regions may be determined according to a practical requirement and is not limited herein.
[0051] Accordingly, different types of distribution positions may be set to make the numbers of the image detection units and the display units different and increase the number of the image detection units to conveniently control the resolution of the image detection units and meet different using requirements.
[0052] In some implementations, as shown in FIG. 6, at least part of the plurality of display units in the display array include first color display subunits. Each display unit may include at least one second color display subunit different from the first color display subunit. The first color display subunits in the display units in adjacent rows may be in different columns respectively.
[0053] The first distribution positions may be above the first color display subunits respectively 111.
[0054] The second distribution positions may be above at least part of the second color display subunits 112.
[0055] Herein, the position above (and the corresponding position below) refers to a position relationship when the image detection unit and the display subunit are projected onto a plane that is the display panel. When a viewer faces the display panel, a position relationship between an image detection unit and a display subunit projected onto the display panel may be a vertical relationship for the viewer, namely the first distribution positions are above the first color display subunits and the second distribution positions are above at least part of the second color display subunits.
[0056] For convenient understanding, descriptions are made herein with the display unit 100 boxed with bold lines in FIG. 6 as an example. An image detection unit S, i.e., an image detection unit at the first distribution position, may be arranged above the first color display subunit 111 on the rightmost side of the display unit 100, and another image detection unit S, i.e., an image detection unit at the second distribution position, may be arranged above the second color display subunit 112 (for example, the green display subunit G in the figure) of the display unit 100. Such a combination is called a one-to-two combination of the display unit and the image detection units herein. For the whole display panel, there may be a plurality of one-to-two combinations of the display units and the image detection units. In addition, the same display panel may further include a plurality of one-to-one combinations of the display units and the image detection units (a display unit corresponds to only one image detection unit at the first distribution position or the second distribution position). For example, for the first display unit in the upper left corner, there is no image detection unit above the second color display subunit but an image detection unit S above the first color display subunit W only. After such different combinations form the display array in the display panel, a layout shown in FIG. 2 may be presented.
[0057] The first color display subunit or the second color display subunit may be a display subunit in any color in the display unit, or may also be a display subunit occupying a smaller area or a display subunit with a larger gap around, etc. In a practical application, the first color display subunit may be selected according to a layout characteristic of the display pixels.
[0058] Therefore, the image detection units may be distributed respectively on the display panel according to a rule that the two distribution positions are fixed, so that data statistics and processing may be facilitated in a signal acquisition process.
[0059] In some embodiments, each image detection unit at the second distribution position in a non-display edge region may be below the first color display subunit; a distance between a first end of each image detection unit at the first distribution position and the first color display subunit may be a first distance; a distance between a first end of each image detection unit at the second distribution position and the first color display subunit may be a second distance; and the first distance may be equal to the second distance.
[0060] For ensuring that the image detection units at the first distribution positions and the second distribution positions are in the same environment, first image detection units and second image detection units may be arranged at approximately the same distances away from the first color display subunits. Since each image detection unit has the same physical structure, the distance between each image detection unit and the second color display subunit may be also approximately the same. That is, the image detection unit at any distribution position may be subjected to interference of the same display light.
[0061] As shown in FIG. 7, edges, adjacent to the first display subunits 111, of the image detection units 200 at the first distribution position and the second distribution position are the same edges 210 of the same parts of the image detection units. The non-display edge region is a region between the first row of display units and the last row of display units of the display panel.
[0062] Herein, the same part refers to a part with the same structure in the physical structure of the image detection unit. All the image detection units at the first distribution positions and the second distribution positions practically may have the same physical structures, for example, having the same switching devices, sensing devices and circuit wirings. If a green display subpixel is above and a white display subpixel is below at the first distribution position and if a white display subpixel is above and a green display subpixel is below at the second distribution position, then the end, close to the green display subpixel, of the image detection unit at the first distribution position and the end, close to the green display subpixel, of the image detection unit at the second distribution position are the same ends of the image detection units; similarly, the end, close to the white display subpixel, of the image detection unit at the first distribution position and the end, close to the white display subpixel, of the image detection unit at the second distribution position are another same ends of the image detection units.
[0063] In some implementations, the image detection unit may be in a regular shape, for example, a symmetric structure such as a cube or a sphere.
[0064] In some other embodiments, for facilitating layout of the image detection units and various switching devices, wirings and the like in the display screen, the image detection units are not always shaped into symmetric structures such as squares, rectangles or rounds but are distributed on the display panel in irregular shapes, as shown in FIG. 7. Considering probable interference from the display units around the image detection units to the signals acquired by the image detection units, it is necessary to eliminate data changes brought by the interference by operation and the like during data processing.
[0065] If directions of the image detection units are not considered, the two types of image detection units may be arranged asymmetrically and the image detection units distributed in two different manners may be subjected to different ambient interference, which increases difficulties in data processing. Therefore, as shown in FIG. 7, an orientation of each edge of the image detection unit 200 may be changed herein to ensure that the same edge of each image detection unit 200 is closest to the same display subunit to further ensure that each image detection unit 200 is subjected to substantially the same ambient interference. The image detection units at the display edge, for example, the image detection units above the display units of the first row, may be all adjacent to the display units of the first row only, so that an environment around the image detection units of the first row may be different from an environment around the image detection units in the non-display edge region. However, the overall effect may be impacted a little if only the edge of the whole display panel is involved, therefore, when the image detection units at the edge are laid out according to the same rule for the non-edge region, it is also unnecessary to consider whether there are subpixels in all colors or not.
[0066] When the image detection units are arranged in the display panel, the image detection units may usually be arranged in part of regions in the display panel. In such case, there may be no image detection units at the display edge, and thus it is unnecessary to consider edge data processing problems.
[0067] In such a manner, the display subunits around image sensors at different distribution positions may be the same in color, so that image detection differences brought by different distribution manners may be reduced, and detection data post-processing may be facilitated.
[0068] In some implementations, the first color display subunit may be a white display subunit; the second color display subunit may be a unicolor or multicolor display subunit; and in each of the plurality of display units, a length of the first color display subunit may be less than a length of the second color display subunit.
[0069] Herein, the color display subunit may be set according to the display requirement of the display screen. For example, for a full-color display screen, the three primary colors RGB of the colored light may be adopted to form a colored display picture. For improving the aperture ratio, display pixels W may be added, namely RGBW display pixel arrangement may be adopted, or display pixels Y may be added, namely another display pixel distribution design such as RGBY may be adopted. Each display unit may include four display subunits in different colors respectively.
[0070] In the embodiments, the white display subunit may be taken as the first color display subunit. An area of the white display subunit may be different from an area of a color display subunit. For example, an area ratio of each display subunit of RGBW may be 1:1:1:0.75, and based on such an area ratio, a better visual effect and an adequate aperture ratio may be achieved. The length of the white display subunit may be set to be less than the length of the second color display subunit to achieve different area ratios.
[0071] Since the area of the first color display subunit, i.e., the white display subunit, is relatively small, a gap around the first color display subunit may be relatively large, and there may be an efficient space for arrangement of the image detection unit at the first distribution position. Since the image detection unit at the second distribution position is adjacent to the other side of the first color display subunit, the relatively small area of the first color display subunit may also facilitate arrangement of the image detection unit at the second distribution position.
[0072] In some implementations, as shown in FIG. 8A, in the same display unit 110, central points of the first-color display subunit 111 and the second-color display subunit 112 may be on the same straight line; or, as shown in FIG. 8B, in the same display unit 110, bottom edges of the first-color display subunit 111 and the second-color display subunit 112 may be on the same straight line.
[0073] The display units may be laid out row by row and column by column, and centers of each display subunit in each display unit may be connected into a straight line to ensure that upper and lower edges of the white display subunit in each display unit are at the same distances away from another display units. When the image detection units at the first distribution positions and the image detection units at the second distribution positions are arranged, there may be two image detection units that are centrosymmetric about the center of the first color display subunit above and below the first color display subunit respectively. Therefore, the environments around the image detection units at the two types of distribution positions may be more consistent.
[0074] For convenient arrangement of the display units, the bottom edges of the first color display subunit and the second color display subunit may also be arranged on the same straight line. A specific arrangement manner may also be regulated according to a requirement of the product during the practical application, and there is only provided an exemplary arrangement manner herein.
[0075] In some embodiments, as shown in FIG. 6, the second color display subunit includes a red display subunit, a green display subunit and a blue display subunit.
[0076] The display panel may include: display unit rows formed by the first color display subunits and second color display subunits that are laid out in a first sequence, the first sequence being the red display subunit, the green display subunit, the blue display subunit and the white display subunit, and display unit rows formed by the first color display subunits and second color display subunits that are laid out in a second sequence, the second sequence being the blue display subunit, the white display subunit, the red display subunit and the green display subunit.
[0077] The display unit rows laid out in the first sequence and the display unit rows laid out in the second sequence may be alternately laid out as odd and even rows.
[0078] In the display panel, the image detection units at the first distribution positions may be above each white display subunit, and the image detection units at the second distribution positions may be above the green display subunits at an interval of three white display subunits in each display unit row.
[0079] In some implementations, as shown in FIG. 9, the display unit 110 includes: a first-type display unit 110a and a second-type display unit 110b.
[0080] The first-type display unit 110a may include the second color display subunit 112.
[0081] The second-type display unit 110b may at least include the first color display subunit 111 and the second color subunit 112.
[0082] The first color display subunit 111 may be the white display subunit and the second color display subunit 112 may be a unicolor or multicolor display subunit.
[0083] The essence of the layout shown in FIG. 9 is that each display unit corresponds to an S and each S is relatively far from the white subpixel unit. The distribution manner of the image detection units may be applied to different pixel layouts to implement full utilization of the pixel gaps and simultaneously ensure the detection resolution of the image detection units.
[0084] In some implementations, the second-type display unit may include: the red display subunit, the green display subunit and the white display subunit.
[0085] Based on such a design, blue light may be reduced, meanwhile, the overall brightness may be increased, and the aperture ratio is improved. In addition, the resolution of the pixel may not be reduced too much. Under this structure, arranging the image detection units according to the adjacent positions of the white display subunits respectively may also reduce resolution reduction of the image detection units and ensure both the display effect and the image detection accuracy.
[0086] In some implementations, as shown in FIG. 9, the display panel may include that: in the first-type display unit, the second color display subunits are laid out in a third sequence, the third sequence being the red display subunit, the green display subunit and the blue display subunit; in the second-type display unit, the first color display subunits and the second color display subunits are laid out in a fourth sequence, the fourth sequence being the red display subunit, the green display subunit and the white display subunit; the first-type display units and the second-type display units are alternately laid out in the same display unit row and alternately arranged in the same display unit column; and the image detection units at the first distribution positions and the image detection units at the second distribution positions are alternately distributed in each row, and the first ends of the image detection units are relatively close to the first-type display units and relatively far from the second-type display units.
[0087] The first end refers to one end of the physical structure of the image detection unit in practice. The first end of each image detection unit may be the same structural part, and the structural part herein may be any part of the image detection unit, for example, a part where the sensing device of the image detection unit is located or any edge part (for example, circuit wiring) of the image detection unit, so that the same structural part may refer to the sensor or the circuit wiring, etc. That is, distances of the image detection unit at the first distribution position and the image detection unit at the second distribution position far away from the first-type display unit may be the same, and may be called distances to the first-type display unit; and distances between the image detection unit at the first distribution position and the image detection unit at the second distribution position far away from the second-type display unit may be also the same, and may be called distances to the second-type display unit herein.
[0088] Moreover, the distance to the first-type display unit may be shorter than the distance to the second-type display unit. That is, the first end of each image detection unit may be relatively close to the first-type display unit and relatively far from the second-type display unit.
[0089] In some implementations, the display panel may further include: a first transparent substrate, and a second transparent substrate, arranged opposite to the first transparent substrate and serving as a display surface of the display panel, the display array being between the first transparent substrate and the second transparent substrate.
[0090] BMs isolating different display subunits may be further distributed between the first transparent substrate and the second transparent substrate.
[0091] The image detection units may be arranged on the BMs and face the second transparent substrate.
[0092] Herein, the first transparent substrate and the second transparent substrate may be arranged opposite to each other, the display units may be distributed therebetween; a display driving circuit, liquid crystals, pixel switches and other related elements may be included, and the image detection units and related circuit wirings thereof may be further included. The first transparent substrate may be a substrate configured to bear the display driving circuit, the pixel switches and other circuit elements, for example, a TFT substrate. In addition, the image detection units may also be arranged on the first transparent substrate. The second transparent substrate, arranged opposite to the first transparent substrate, may be a substrate configured to bear, for example, CFs corresponding to the display units, thereby forming color pixels with TFTs, and may serve as the display surface of the display panel.
[0093] Various electrical elements may be arranged on the first transparent substrate. For reducing impact of the backlight source on the performance of these electrical elements, the first transparent substrate may be coated with the BM, the electrical elements may be arranged on the BM, and then the BM may block light between the backlight source and the electrical elements.
[0094] Since the image detection unit is a photosensitive device and may be impacted by the ambient light, the image detection unit may also be arranged on the BM for reducing the impact from the backlight source to the image detection unit. Alternatively, a position where the image detection unit is required to be arranged may be coated with a layer of BM as a photoresist, and then the related elements of the image detection unit may be formed on the BM. The BM may be formed by a non-light-tight thin film only without any complex structure such as a circuit, and a shape and position thereof may be conveniently regulated, so that bearing the image detection units with the BM may bring convenience to design and manufacturing and may also reduce the impact of the backlight source and the like to the image detection units.
[0095] Therefore, the image detection units in the embodiment may be applied to an LCD to ensure the aperture ratio of the display panel, simultaneously ensure an adequate image detection resolution and accuracy and improve the image detection effect.
[0096] In some implementations, the display panel may further include: a detection image processing unit, configured to generate the target detection image according to the photosignals detected by the plurality of image detection units and position information of each of the plurality of image detection units distributed on the display panel.
[0097] The plurality of image detection units may be distributed at different positions of the display panel, and each image detection unit is configured to detect the photosignal corresponding to a part of the image. The image detection units may be distributed at two different types of distribution positions and thus may wholly be prevented from being distributed irregularly or non-uniformly. Therefore, during detection data processing, the target detection image may be generated with taking position information of each image detection unit into consideration. That is, an information component provided by each image detection unit in the generated target detection image is required to depend on a practical position, so that a correct detection image may be obtained even if the image detection units are not distributed according to a rule.
[0098] In some implementations, the image detection unit may include: an emitting element, configured to emit detection light; a receiving element, configured to receive reflected light returned based on an action of the detection light on a detection target; and an imaging element, connected with the receiving element and configured to generate the target detection image based on the reflected light, the target detection image including a fingerprint image.
[0099] The image detection unit may utilize the reflected light for imaging and may emit the detection light out of the display panel through the emitting element. When the display panel is covered with a finger, the finger may reflect the detection light back into the display panel for the receiving element to receive light. Since the photosignals reflected by different positions of a fingerprint of the finger are different, the imaging elements may recover lines of the fingerprint according to the reflected light received by the plurality of image detection units, thereby forming the fingerprint image.
[0100] In some implementations, the image detection unit may be an image detection unit for fingerprint detection or may also be an image detection unit for vein detection or may be a camera. The camera may be a front camera and may acquire visible or invisible portrait or object image, etc.
[0101] The embodiments of the present disclosure may provide the following examples.
[0102] A distribution manner is proposed as shown in FIG. 10. A photosensor S is arranged above each W pixel, and R (upper left and right lower), G (upper), B (left lower and right upper) and W (lower) are distributed around the photosensor S. Then, a photosensor S above the G pixel (below the W pixel) may be added after every three pixel cycles, and pixels RGBW may be also distributed around the photosensor S: R (left lower and right upper), G (lower), B (left upper and right lower) and W (upper). Therefore, environments around each photosensor may be consistent, and the resolution of the photosensor may also reach 400dpi.
[0103] Since different environments are observed by such special photosensors as shown in the figure, directivity is required to be considered when the photosensor is designed. As shown in FIG. 11, designs and layouts of the photosensors and the circuits are symmetric and inverted, and a shape of the photosensor, a solution for blocking stray light in a box and the like are designed symmetrically.
[0104] In addition, it can also be seen from FIG. 11 that the distances between the white parts and the photosensors are inconsistent, so that pixel designs may be finely regulated as shown in FIG. 12, namely the W pixels are regulated towards the middle part to be symmetric to make differences of the environments around each photosensor smaller.
[0105] During the practical application, the photosensor and the circuit may not be completely symmetric. In such case, the photosensor and impact of the stray light may be mainly considered and the circuit may be arranged at another part and then connected through a wire, or the photosensor may be superposed on the circuit to reduce a used space.
[0106] After all the photosensors S are designed in such a manner, a form shown in FIG. 13 may be presented, namely there may be an interlacing condition for image acquisition. Therefore, during data processing, data processing and regulation may be performed according to the distribution rule of the photosensors S with the positions of the photosensors S being considered to obtain a practical detection image.
[0107] In addition, the abovementioned idea may also be applied to other pixel layouts. As shown in FIG. 14, arrangement directions of the photosensors corresponding to different pixels are different, so that the environments around each photosensor are consistent.
[0108] FIG. 15 is a physical structure block diagram of a terminal device 1500 including any display panel in the abovementioned embodiments. In an example, the device 1500 may be a mobile phone, a computer, a digital broadcast terminal, a messaging device, a gaming console, a tablet, a medical device, exercise equipment, a personal digital assistant and the like.
[0109] Referring to FIG. 15, the device 1500 may include one or more of the following components: a processing component 1501, a memory 1502, a power component 1503, a multimedia component 1504, an audio component 1505, an Input / Output (I / O) interface 1506, a sensor component 1507, and a communication component 1508.
[0110] The processing component 1501 is typically configured to control overall operations of the device 1500, such as the operations associated with display, telephone calls, data communications, camera operations, and recording operations. The processing component 1501 may include one or more processors 1510 to execute instructions to perform all or part of the steps in the abovementioned method. Moreover, the processing component 1501 may further include one or more modules which facilitate interaction between the processing component 1501 and other components. For instance, the processing component 1501 may include a multimedia module to facilitate interaction between the multimedia component 1504 and the processing component 1501.
[0111] The memory 1510 is configured to store various types of data to support the operation of the device 1500. Examples of such data include instructions for any applications or methods operated on the device 1500, contact data, phonebook data, messages, pictures, video, etc. The memory 1502 may be implemented by any type of volatile or non-volatile memory devices, or a combination thereof, such as a Static Random Access Memory (SRAM), an Electrically Erasable Programmable Read-Only Memory (EEPROM), an Erasable Programmable Read-Only Memory (EPROM), a Programmable Read-Only Memory (PROM), a Read-Only Memory (ROM), a magnetic memory, a flash memory, and a magnetic or optical disk.
[0112] The power component 1503 may provide power for various components of the device 1500. The power component 1503 may include a power management system, one or more power supplies, and other components associated with generation, management and distribution of power for the device 1500.
[0113] The multimedia component 1504 may include a screen providing an output interface between the device 1500 and a user. In some implementations, the screen may include an LCD and a Touch Panel (TP). If the screen includes the TP, the screen may be implemented as a touch screen to receive an input signal from the user. The TP includes one or more touch sensors to sense touches, swipes and gestures on the TP. The touch sensors may not only sense a boundary of a touch or swipe action but also detect a duration and pressure associated with the touch or swipe action. In some implementations, the multimedia component 1504 includes a front camera and / or a rear camera. The front camera and / or the rear camera may receive external multimedia data when the device 1500 is in an operation mode, such as a photographing mode or a video mode. Each of the front camera and / or the rear camera may be a fixed optical lens system or have focusing and optical zooming capabilities.
[0114] The audio component 1505 is configured to output and / or input an audio signal. For example, the audio component 1505 includes a Microphone (MIC), and the MIC is configured to receive an external audio signal when the device 1500 is in the operation mode, such as a call mode, a recording mode and a voice recognition mode. The received audio signal may further be stored in the memory 1510 or sent through the communication component 1508. In some implementations, the audio component 1505 further includes a speaker configured to output the audio signal.
[0115] The I / O interface 1506 may provide an interface between the processing component 1501 and a peripheral interface module, and the peripheral interface module may be a keyboard, a click wheel, a button and the like. The button may include, but not limited to: a home button, a volume button, a starting button and a locking button.
[0116] The sensor component 1507 may include one or more sensors configured to provide status assessment in various aspects for the device 1500. For instance, the sensor component 1507 may detect an on / off status of the device 1500 and relative positioning of components, such as a display and small keyboard of the device 1500, and the sensor component 1507 may further detect a change in a position of the device 1500 or a component of the device 1500, presence or absence of contact between the user and the device 1500, orientation or acceleration / deceleration of the device 1500 and a change in temperature of the device 1500. The sensor component 1507 may include a proximity sensor configured to detect presence of an object nearby without any physical contact. The sensor component 1507 may also include a light sensor, such as a Complementary Metal Oxide Semiconductor (CMOS) or Charge Coupled Device (CCD) image sensor, configured for use in an imaging application. In some implementations, the sensor component 1507 may also include an acceleration sensor, a gyroscope sensor, a magnetic sensor, a pressure sensor or a temperature sensor.
[0117] The communication component 1508 is configured to facilitate wired or wireless communication between the device 1500 and another device. The device 1500 may access a communication-standard-based wireless network, such as a Wireless Fidelity (WiFi) network, a 2nd-Generation (2G) or 3rd-Generation (3G) network or a combination thereof. In an exemplary embodiment, the communication component 1508 receives a broadcast signal or broadcast associated information from an external broadcast management system through a broadcast channel. In an exemplary embodiment, the communication component 1508 further includes a Near Field Communication (NFC) module to facilitate short-range communication. For example, the NFC module may be implemented based on a Radio Frequency Identification (RFID) technology, an Infrared Data Association (IrDA) technology, an Ultra-WideBand (UWB) technology, a Bluetooth (BT) technology or another technology.
[0118] According to the technical solutions of the embodiments of the present disclosure, a plurality of image detection portions may be distributed at different positions adjacent to a plurality of display portions of a display array. In such a manner, gaps between the display portions may be reasonably utilized. When a high image detection resolution is required, the image detection portions may be arranged at different types of distribution positions without impacting distribution of display pixels, so that adequate image detection portions may be distributed in the display panel to further obtain the target detection image meeting a resolution requirement.
[0119] For example, when the display resolution is reduced from 400 Dots Per Inch (dpi) to 300dpi due to the Red Green Blue White (RGBW) pixel layout and if the image detection portions are distributed at positions relatively unified with each display portion, the image detection resolution may be also 300dpi and may not meet the detection requirement.
[0120] Image detection portions may be distributed at different distribution positions of display portions respectively. For example, there is an image detection portion at the first distribution position of each display portion, and meanwhile, there are also image detection portions at the second distribution positions of part of display portions. In such a manner, a detection resolution of the image detection portion can be 300dpi to 600dpi, so that an image detection resolution meeting the requirement is achieved.
[0121] Other implementations of the present disclosure will be apparent to those skilled in the art from consideration of the specification and practice of the present disclosure. This application is intended to cover any variations, uses, or adaptations of the present disclosure following the general principles thereof and including such departures from the present disclosure as come within known or customary practice in the art. It is intended that the specification and examples be considered as exemplary only, with the scope of the invention being defined by the following claims.
[0122] It will be appreciated that the present disclosure is not limited to the exact construction that has been described above and illustrated in the accompanying drawings, and that various modifications and changes may be made without departing from the scope thereof. It is intended that the scope of the invention only be limited by the appended claims.
Claims
1. A display panel, comprising: a display array (100) comprising a plurality of display units (110), where each of the plurality of display units comprises at least one display subunit (111,112); and a plurality of image detection units (200), configured to detect photosignals to obtain a target detection image, wherein the plurality of image detection units are adjacent to the plurality of display units and have first distribution positions (201) and second distribution positions (202), the first distribution positions being different from the second distribution positions; and wherein at least part of the plurality of display units in the display array comprise first-color display subunits (111); each of the plurality of display units (110) comprises at least one second-color display subunit (112) different from the first-color display subunit (111); the first-color display subunits (111) of the display units (110) in adjacent rows are in different columns respectively; the first distribution positions (201) are above the first-color display subunits (111) respectively; and the second distribution positions (202) are above only part of the second-color display subunits (112), wherein each image detection unit (200) at the second distribution position (202) in a non-display edge region is below the first-color display subunit (111) only; and wherein for each row of the display array (100), two types of combinations between the image detection units (200) and the display units (110) coexist, one being a one-to-two combination which means that one display unit (110) corresponds to one image detection unit (200) at the first distribution position (201) and one image detection unit (200) at the second distribution position (202), the other being a one-to-one combination which means that one display unit (110) corresponds to one image detection unit (200) at the first distribution position (201) or one image detection unit (200) at the second distribution position (202)2. The display panel of claim 1, wherein a distance between a first end of each image detection unit at the first distribution position and the first color display subunit is a first distance; a distance between a first end of each image detection unit at the second distribution position and the first-color display subunit is a second distance; and the first distance is equal to the second distance.
3. The display panel of claim 1 or 2, wherein the first color display subunit is a white display subunit; the second color display subunit is a unicolor or multicolor display subunit; and in each of the plurality of display units, a length of the first color display subunit is less than a length of the second color display subunit.
4. The display panel of claim 3, wherein in each of the plurality of display units, central points of the first-color display subunit and the second-color display subunit are on a same straight line; or, in each of the plurality of display units, bottom edges of the first color display subunit and the second color display subunit are on a same straight line.
5. The display panel of claim 4, wherein the second color display subunit comprises a red display subunit, a green display subunit and a blue display subunit; the display panel comprises: display unit rows, formed by the first color display subunits and second color display subunits that are laid out in a first sequence, the first sequence being the red display subunit, the green display subunit, the blue display subunit and the white display subunit, and display unit rows, formed by the first color display subunits and second color display subunits that are laid out in a second sequence, the second sequence being the blue display subunit, the white display subunit, the red display subunit and the green display subunit; wherein the display unit rows laid out in the first sequence and the display unit rows laid out in the second sequence are alternately laid out as odd and even rows; and in the display panel, the image detection units at the first distribution positions are above each white display subunit, and the image detection units at the second distribution positions are above the green display subunits at an interval of three white display subunits in each display unit row.
6. The display panel of claim 1 or 2, wherein the plurality of display units comprise first-type display units and second-type display units; the first-type display units comprise the second color display subunits; the second-type display units at least comprise the first color display subunits and the second color subunits; and the first color display subunits are white display subunit and the second color display subunits are unicolor or multicolor display subunits.
7. The display panel of claim 6, wherein the second-type display units comprise: red display subunits, green display subunits and white display subunits.
8. The display panel of claim 7, wherein in the first-type display unit, the second color display subunits are laid out in a third sequence, the third sequence being the red display subunit, the green display subunit and the blue display subunit; in the second-type display unit, the first color display subunits and the second color display subunits are laid out in a fourth sequence, the fourth sequence being the red display subunit, the green display subunit and the white display subunit; the first-type display units and the second-type display units are alternately laid out in a same display unit row and alternately arranged in a same display unit column; and the image detection units at the first distribution positions and the image detection units at the second distribution positions are alternately distributed in each row, and first ends of the image detection units are close to the first-type display units and far from the second-type display units.
9. The display panel of any preceding claim, further comprising: a first transparent substrate, and a second transparent substrate, arranged opposite to the first transparent substrate and serving as a display surface of the display panel, the display array being between the first transparent substrate and the second transparent substrate, wherein black matrixes, BM, isolating different display subunits are further distributed between the first transparent substrate and the second transparent substrate; and the plurality of image detection units are arranged on the BM and face the second transparent substrate.
10. The display panel of any preceding claim, further comprising: a detection image processing unit (1501), configured to generate the target detection image according to the photosignals detected by the plurality of image detection units and position information of each of the plurality of image detection units distributed on the display panel.
11. The display panel of claim 10, wherein each of the plurality of image detection units comprises: an emitting element, configured to emit detection light; a receiving element, configured to receive reflected light returned based on an action of the detection light on a detection target; and an imaging element, connected with the receiving element and configured to generate the target detection image based on the reflected light, the target detection image comprising a fingerprint image.
12. A terminal device, comprising: a shell; the display panel according to any one of claims 1-11, arranged on the shell; and a controller, arranged in the shell and configured to control the plurality of image detection units in the display panel for image detection.