WO2019047028A1 - 拍摄界面显示方法、装置及终端 - Google Patents

拍摄界面显示方法、装置及终端 Download PDF

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Publication number
WO2019047028A1
WO2019047028A1 PCT/CN2017/100590 CN2017100590W WO2019047028A1 WO 2019047028 A1 WO2019047028 A1 WO 2019047028A1 CN 2017100590 W CN2017100590 W CN 2017100590W WO 2019047028 A1 WO2019047028 A1 WO 2019047028A1
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WO
WIPO (PCT)
Prior art keywords
component
shooting
display
display screen
displayed
Prior art date
Application number
PCT/CN2017/100590
Other languages
English (en)
French (fr)
Inventor
李辉
Original Assignee
广东欧珀移动通信有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 广东欧珀移动通信有限公司 filed Critical 广东欧珀移动通信有限公司
Priority to EP17924308.4A priority Critical patent/EP3672211A4/en
Priority to PCT/CN2017/100590 priority patent/WO2019047028A1/zh
Publication of WO2019047028A1 publication Critical patent/WO2019047028A1/zh
Priority to US16/804,209 priority patent/US11418702B2/en

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04MTELEPHONIC COMMUNICATION
    • H04M1/00Substation equipment, e.g. for use by subscribers
    • H04M1/72Mobile telephones; Cordless telephones, i.e. devices for establishing wireless links to base stations without route selection
    • H04M1/724User interfaces specially adapted for cordless or mobile telephones
    • H04M1/72403User interfaces specially adapted for cordless or mobile telephones with means for local support of applications that increase the functionality
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/60Control of cameras or camera modules
    • H04N23/62Control of parameters via user interfaces
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04MTELEPHONIC COMMUNICATION
    • H04M1/00Substation equipment, e.g. for use by subscribers
    • H04M1/02Constructional features of telephone sets
    • H04M1/0202Portable telephone sets, e.g. cordless phones, mobile phones or bar type handsets
    • H04M1/026Details of the structure or mounting of specific components
    • H04M1/0264Details of the structure or mounting of specific components for a camera module assembly
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04MTELEPHONIC COMMUNICATION
    • H04M1/00Substation equipment, e.g. for use by subscribers
    • H04M1/72Mobile telephones; Cordless telephones, i.e. devices for establishing wireless links to base stations without route selection
    • H04M1/725Cordless telephones
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/60Control of cameras or camera modules
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/60Control of cameras or camera modules
    • H04N23/63Control of cameras or camera modules by using electronic viewfinders
    • H04N23/633Control of cameras or camera modules by using electronic viewfinders for displaying additional information relating to control or operation of the camera
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04MTELEPHONIC COMMUNICATION
    • H04M2250/00Details of telephonic subscriber devices
    • H04M2250/52Details of telephonic subscriber devices including functional features of a camera
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/60Control of cameras or camera modules
    • H04N23/63Control of cameras or camera modules by using electronic viewfinders
    • H04N23/631Graphical user interfaces [GUI] specially adapted for controlling image capture or setting capture parameters
    • H04N23/632Graphical user interfaces [GUI] specially adapted for controlling image capture or setting capture parameters for displaying or modifying preview images prior to image capturing, e.g. variety of image resolutions or capturing parameters

Definitions

  • the embodiment of the present invention relates to the field of human-computer interaction, and in particular, to a shooting interface display method, device, and terminal.
  • the terminal may adopt a design that integrates the image capturing component on the touch display.
  • Two related integration methods are provided in the related art to integrate the image acquisition component on the touch display screen: first, a circular hole is formed in the top or bottom area of the touch display screen, and the image acquisition component is integrated in a small circle. The cavity formed by the hole; secondly, after splitting the photosensitive element in the image capturing component into a plurality of photosensitive pixels, each photosensitive pixel is integrated in each display pixel of all or part of the display area of the touch display screen In the black area, the image acquisition component is fully integrated with the touch display.
  • the embodiment of the present application provides a shooting interface display method, device and terminal, which can solve the problem that when the image capturing component is integrated into the touch display screen, the image capturing component and the touch display screen are visually integrated, and the user does not easily recognize the image. Collect problems with the location of the component.
  • the technical solution is as follows:
  • a method for displaying a shooting interface is provided, which is applied to a terminal integrated with an image capturing component in a touch display screen, the method comprising:
  • the first operational signal being a signal for enabling the image acquisition component to capture
  • a shooting interface is displayed on the touch display screen, and component location information is displayed on the shooting interface, and the component location information is prompt information for indicating a location of the image capturing component.
  • a photographing interface display device for use in a terminal integrated with an image capture component in a touch display screen, the device comprising:
  • a receiving module configured to receive a first operation signal, where the first operation signal is a signal for enabling the image acquisition component to perform shooting;
  • control module configured to enable the image acquisition component according to the first operation signal
  • a display module configured to display a shooting interface on the touch display screen, where component location information is displayed on the shooting interface, and the component location information is prompt information used to indicate a location of the image capturing component.
  • a terminal comprising a processor and a memory, the memory storing at least one instruction loaded by the processor and executed to implement the first aspect The shooting interface display method.
  • a computer readable storage medium having stored therein at least one instruction loaded by a processor and executed to implement a capture interface display as described in the first aspect method.
  • component shooting information is displayed on the shooting interface
  • the component position information is prompt information for indicating an edge contour of the image capturing component
  • the image capturing component is integrated in the terminal of the touch display screen.
  • the image capturing component and the touch screen display are visually integrated, and the user does not easily recognize the problem of the position of the image capturing component, so that the user can clearly determine the position information of the component displayed on the shooting interface when using the image capturing component.
  • the location of the image acquisition component is convenient for the user to use the image acquisition component to aim at the subject.
  • FIG. 1 is a structural block diagram of a terminal provided by an exemplary embodiment of the present application.
  • FIG. 2 is a structural block diagram of a terminal provided by another exemplary embodiment of the present application.
  • 3A to 3F are schematic diagrams of appearances of a terminal provided by an exemplary embodiment of the present application.
  • FIG. 4 is a flowchart of a shooting interface display method provided by an exemplary embodiment of the present application.
  • 5A to 5D are schematic diagrams of user interfaces of a photographing application provided by an exemplary embodiment of the present application.
  • FIG. 6 is a flowchart of a shooting interface display method provided by another exemplary embodiment of the present application.
  • FIG. 7 is a cross-sectional view of a touch display screen using a circular aperture integrated image acquisition assembly according to an exemplary embodiment of the present application
  • FIG. 8A is a schematic diagram of a shooting parameter control according to an exemplary embodiment of the present application.
  • FIG. 8B is a schematic diagram of a shooting parameter control according to another exemplary embodiment of the present application.
  • FIG. 9 is a flowchart of a shooting interface display method provided by another exemplary embodiment of the present application.
  • FIG. 10 is a display pixel array diagram of a touch display screen integrated with a photosensitive pixel according to an exemplary embodiment of the present application.
  • FIG. 11 is a structural block diagram of a photographing interface display apparatus provided by an exemplary embodiment of the present application.
  • a “module” as referred to herein generally refers to a program or instruction stored in a memory that is capable of performing certain functions;
  • "unit” as referred to herein generally refers to a functional structure that is logically divided, the "unit” It can be implemented by pure hardware or a combination of hardware and software.
  • Multiple as referred to herein means two or more. "and/or”, describing the association relationship of the associated objects, indicating that there may be three relationships, for example, A and/or B, which may indicate that there are three cases where A exists separately, A and B exist at the same time, and B exists separately.
  • the character "/" generally indicates that the contextual object is an "or" relationship.
  • the terminal 100 can be a mobile phone, a tablet computer, a notebook computer, an e-book, and the like.
  • the terminal 100 in this application may include one or more of the following components: a processor 110, a memory 120, and a touch display screen 130.
  • Processor 110 can include one or more processing cores.
  • the processor 110 connects various portions of the entire terminal 100 using various interfaces and lines, and executes the terminal by running or executing an instruction, program, code set or instruction set stored in the memory 120, and calling data stored in the memory 120. 100 various functions and processing data.
  • the processor 110 may use at least one of a digital signal processing (DSP), a field-programmable gate array (FPGA), and a programmable logic array (PLA).
  • DSP digital signal processing
  • FPGA field-programmable gate array
  • PDA programmable logic array
  • a form of hardware is implemented.
  • the processor 110 can integrate a central processing unit (Central Processing A combination of one or more of a Unit, a CPU, a Graphics Processing Unit (GPU), and a modem.
  • CPU central processing unit
  • GPU Graphics Processing Unit
  • the CPU mainly processes the operating system, the user interface, the application, and the like; the GPU is responsible for rendering and rendering of the content that the display screen 130 needs to display; the modem is used to process wireless communication. It can be understood that the above modem may also be integrated into the processor 110 and implemented by a single chip.
  • the memory 120 may include a random access memory (RAM), and may also include a read-only memory.
  • the memory 120 includes a non-transitory computer-readable storage medium.
  • Memory 120 can be used to store instructions, programs, code, code sets, or sets of instructions.
  • the memory 120 may include a storage program area and a storage data area, wherein the storage program area may store instructions for implementing an operating system, instructions for at least one function (such as a touch function, a sound playing function, an image playing function, etc.), The instructions for implementing the various method embodiments described below, etc.; the storage data area can store data (such as audio data, phone book) created according to the use of the terminal 100, and the like.
  • the memory 120 also stores at least one instruction for implementing the file sharing method provided in the following method embodiments when executed by the processor 110.
  • the memory 120 stores a Linux kernel layer 220, a system runtime layer 240, an application framework layer 260, and an application layer 280.
  • the Linux kernel layer 220 provides the underlying drivers for various hardware of the terminal 100, such as display drivers, audio drivers, camera drivers, Bluetooth drivers, Wi-Fi drivers, power management, and the like.
  • the system runtime layer 240 provides major features support for the Android system through some C/C++ libraries. For example, the SQLite library provides support for the database, the OpenGL/ES library provides support for 3D graphics, and the Webkit library provides support for the browser kernel.
  • the Android runtime library 242 (Android Runtime) is also provided in the system runtime layer 240. It mainly provides some core libraries, which can allow developers to write Android applications using the Java language.
  • the application framework layer 260 provides various APIs that may be used when building an application. Developers can also build their own applications by using these APIs, such as event management, window management, view management, notification management, content providers, Package management, call management, resource management, location management.
  • the application layer 280 runs at least one application, which may be a contact program, an SMS program, a clock program, a camera application, etc. that is provided by the operating system; or an application developed by a third-party developer, such as an instant. Communication programs, photo landscaping programs, etc.
  • the IOS system includes: a Core OS layer, a Core Services layer 340, a Media layer 360, and a Cocoa Touch Layer.
  • the core operating system layer 320 includes an operating system kernel, drivers, and an underlying program framework that provide functionality closer to the hardware for use by the program framework located at the core service layer 340.
  • the core service layer 340 provides system services and/or program frameworks required by the application, such as a Foundation framework, an account framework, an advertising framework, a data storage framework, a network connectivity framework, a geographic location framework, a motion framework, and the like.
  • the media layer 360 provides an interface for the audiovisual aspect of the application, such as a graphic image related interface, an audio technology related interface, a video technology related interface, and an audio and video transmission technology wireless play (AirPlay) interface.
  • the touch layer 380 provides various commonly used interface related frameworks for application development, and the touch layer 380 is responsible for user touch interaction operations on the terminal 100. Such as local notification service, remote push service, advertising framework, game tool framework, message user interface (UI) framework, user interface UIKit framework, map framework and so on.
  • frameworks related to most applications include, but are not limited to, the base framework in core service layer 340 and the UIKit framework in touchable layer 380.
  • the underlying framework provides many basic object classes and data types, providing the most basic system services for all applications, regardless of the UI.
  • the classes provided by the UIKit framework are the basic UI class libraries for creating touch-based user interfaces. iOS applications can provide UI based on the UIKit framework, so it provides the application infrastructure for building user interfaces, drawing , handling and user interaction events, responsive gestures, and more.
  • the touch display screen 130 is for receiving a touch operation on or near a user using any suitable object such as a finger, a touch pen, and the like, and displaying a user interface of each application.
  • the touch display screen 130 is typically disposed at the front panel of the terminal 130.
  • the touch display 130 can be designed as a full screen, a curved screen, or a profiled screen.
  • the touch display screen 130 can also be designed as a combination of a full screen and a curved screen, and the combination of the special screen and the curved screen is not limited in this embodiment. among them:
  • the full screen may refer to a screen design in which the touch screen 130 occupies a front panel of the terminal 100 that exceeds a threshold (eg, 80% or 90% or 95%).
  • One calculation method of the screen ratio is: (the area of the touch screen 130 / the area of the front panel of the terminal 100) * 100%; another calculation method of the screen ratio is: (touch the actual display area in the display 130 Area/area of the front panel of the terminal 100) *100%; another calculation of the screen ratio is: (diagonal of the touch screen 130 / diagonal of the front panel of the terminal 100) * 100% .
  • the front of the terminal 100 Nearly all areas on the panel are touch screen displays 130.
  • On the front panel 40 of the terminal 100 all areas except the edges produced by the middle frame 41 are all touch screen displays 130.
  • the four corners of the touch display screen 130 can be right angles or rounded corners.
  • the full screen may also be a screen design that integrates at least one front panel component inside or below the touch display screen 130.
  • the at least one front panel component comprises: a camera, a fingerprint sensor, a proximity light sensor, a distance sensor, and the like.
  • other components on the front panel of the conventional terminal are integrated in all areas or partial areas of the touch display screen 130, such as splitting the photosensitive elements in the camera into a plurality of photosensitive pixels, each of which is photosensitive.
  • the pixels are integrated in a black area in each display pixel in touch display 130. Since at least one front panel component is integrated inside the touch display 130, the full screen has a higher screen ratio.
  • the front panel component on the front panel of the conventional terminal may also be disposed on the side or the back of the terminal 100, such as an ultrasonic fingerprint sensor disposed under the touch display screen 130, and the bone conduction type.
  • the earpiece is disposed inside the terminal 130, and the camera is disposed to be located on the side of the terminal and is pluggable.
  • a single side of the middle frame of the terminal 100 when the terminal 100 adopts a full screen, a single side of the middle frame of the terminal 100, or two sides (such as the left and right sides), or four sides (such as An edge touch sensor 120 is disposed on the four sides of the upper, lower, left, and right sides, and the edge touch sensor 120 is configured to detect a user's touch operation, a click operation, a pressing operation, a sliding operation, and the like on the middle frame. At least one operation.
  • the edge touch sensor 120 may be any one of a touch sensor, a thermal sensor, a pressure sensor, and the like. The user can apply an operation on the edge touch sensor 120 to control the application in the terminal 100.
  • the curved screen refers to a screen design in which the screen area of the touch display screen 130 is not in one plane.
  • the curved screen has at least one cross section: the cross section has a curved shape, and the projection of the curved screen in a plane perpendicular to the plane of the cross section is a flat screen design, wherein the curved shape may be U-shaped.
  • a curved screen refers to a screen design in which at least one side is curved.
  • the curved screen means that at least one side of the touch display screen 130 extends over the middle frame of the terminal 100.
  • the curved screen refers to a screen design in which the left and right side edges 42 are curved shapes; or the curved screen means that the upper and lower sides are curved shapes.
  • the screen design; or, the curved screen refers to the screen design of the four sides of the upper, lower, left and right sides are curved shapes.
  • the curved screen is fabricated using a touch screen material having a certain flexibility.
  • a profiled screen is a touchscreen display with an irregularly shaped shape, and the irregular shape is not a rectangle or a rounded rectangle.
  • the profiled screen refers to a screen design that is provided with raised, notched, and/or punctured holes on a rectangular or rounded rectangular touch display screen 130.
  • the protrusions, notches, and/or holes may be located at the edge of the touch screen display 130, at the center of the screen, or both. When the protrusions, notches, and/or holes are provided at one edge, they may be disposed at the middle or both ends of the edge; when the protrusions, notches, and/or holes are disposed in the center of the screen, they may be placed above the screen.
  • the protrusions, the notches, and the holes may be concentrated or distributed; they may be symmetrically distributed or asymmetrically distributed.
  • the number of the protrusions, the notches and/or the holes is also not limited.
  • the shaped screen covers the upper and/or lower forehead area of the touch display screen as a displayable area and/or an operable area, so that the touch display screen occupies more space on the front panel of the terminal, the shaped screen also has A larger screen ratio.
  • the notch and/or the bore are for receiving at least one front panel component, including a camera, a fingerprint sensor, a proximity light sensor, a distance sensor, an earpiece, an ambient light level sensor, a physical button At least one of them.
  • the indentation may be provided on one or more edges, which may be semi-circular notches, right-angled rectangular indentations, rounded rectangular indentations or irregularly shaped indentations.
  • the profiled screen may be a screen design in which a semicircular notch 43 is provided at a central position of the upper edge of the touch screen display 130, and the position of the semicircular notch 43 is vacated.
  • the distance sensor also referred to as a proximity sensor
  • the earpiece and the ambient light brightness sensor
  • the shaped screen may be at the lower edge of the touch display screen 130.
  • the central position is provided with a screen design of a semi-circular notch 44, the vacant position of the semi-circular notch 44 for accommodating at least one of a physical button, a fingerprint sensor, and a microphone; schematically shown in FIG. 3E
  • the profiled screen may be a screen design in which a semi-elliptical notch 45 is disposed at a central position of the lower edge of the touch display screen 130, and a semi-elliptical notch, two semi-ellipses are formed on the front panel of the terminal 100.
  • the shaped notch is formed into an elliptical area for accommodating a physical button or a fingerprint recognition module; in the example shown in FIG.
  • the shaped screen can be touched
  • the upper half 130 is provided with a display screen designed at least one aperture 45, the aperture 45 vacated
  • the position is for accommodating at least one of the front panel components of the camera, the distance sensor, the earpiece, and the ambient light level sensor.
  • the structure of the terminal 100 shown in the above figure does not constitute a limitation on the terminal 100, and the terminal may include more or less components than the illustration, or a combination of some Parts, or different parts.
  • the terminal 100 further includes components such as a radio frequency circuit, an input unit, a sensor, an audio circuit, a wireless fidelity (WiFi) module, a power supply, a Bluetooth module, and the like, and details are not described herein.
  • WiFi wireless fidelity
  • Android operating system A Linux-based free and open source operating system produced by Google Inc. of the United States, mainly used in mobile devices.
  • an application in an Android operating system, an application usually includes at least one program component.
  • Program components There are four types of program components: Activity: Activity component, Service component, Content Provider component, and Broadcast Receiver component.
  • the shooting interface display method described in the embodiment of the present application is applied to an image capturing component integrated in a terminal of a touch display screen.
  • the terminal integrates the image acquisition component on the touch display screen in two ways: first, forming an opening in the top or bottom area of the touch display screen, and integrating the image acquisition component into the cavity formed by the opening; Second, after splitting the photosensitive element in the image capturing component into a plurality of photosensitive pixels, each photosensitive pixel is integrated in a black area of each display pixel of all or part of the display area of the touch display screen, so that the image capturing component and the image capturing component
  • the touch screen is fully integrated.
  • the image capturing component of the terminal is integrated on the touch display screen by using one of the above two methods for illustration.
  • FIG. 4 is a flowchart of a shooting interface display method provided by an exemplary embodiment of the present application.
  • the shooting interface display method can be applied to an image capturing component integrated in a terminal of a touch display screen, and the shooting interface display method comprises:
  • step 401 the terminal receives a first operational signal, which is a signal for enabling the image acquisition component to take a picture.
  • the user performs a first operation on the terminal, and the first operation may be a sliding touch display screen, or a pressing end
  • the CPU in the terminal receives the first operation signal, where the first operation signal may be a sliding signal generated by the touch display screen according to the sliding operation of the user, or the physical button component is generated according to the pressing operation of the user. Pressing the signal, or touching the display signal generated by the user's click operation.
  • the touch display screen reports the first operation signal to the CPU.
  • step 402 the terminal enables the image acquisition component based on the first operational signal.
  • the CPU in the terminal After receiving the first operation signal, the CPU in the terminal sends an instruction to the image acquisition component, the instruction is used to instruct the image acquisition component to start, and the image acquisition component starts to enter the working mode after receiving the instruction of the terminal.
  • step 403 the terminal displays a shooting interface on the touch display screen, and component shooting information is displayed on the shooting interface, and the component position information is prompt information for indicating an edge contour of the image capturing component.
  • the terminal While the image acquisition component is activated, the terminal displays a shooting interface on the touch display screen, which may be a user interface of the shooting application, or a user interface of the online video calling application, or a user interface of the live video application.
  • the component position information is displayed on the shooting interface.
  • the component position information is located at the edge of the image capturing component, and the position information of the component can clearly determine the position of the image capturing component.
  • 5A-5D are schematic diagrams showing a user interface of a photographing application of one embodiment of the present application.
  • the shooting application interface includes component location information 501a or 501b, a shot identification 502, an image capture component switch logo 503, a photo preview logo 504, a capture parameter identifier 505, an effect logo 506, a flash logo 507, and a high dynamic lighting rendering.
  • HDR High-Dynamic Range
  • an opening 509a is formed in the touch display screen 130, and the image capturing assembly is integrated into the cavity formed by the opening 509a, and the component position information is the outline mark 501a.
  • the edge of the aperture 509a will display the outline identification 501a, and the user can clearly determine the location of the image capture component by the outline identification 501a.
  • an opening 509a is formed in the touch display screen 130 to integrate the image capturing assembly into the cavity formed by the opening 509a, and the component position information is the position indicator 501b.
  • the peripheral side of the opening 509a displays the position identification 501b, and the position identification 501b points to the opening 509a, and the user can clearly determine the position of the image capturing component by the position identification 501b.
  • each photosensitive pixel is integrated in a black area of each display pixel of the predetermined area 509b.
  • the image acquisition component is fully integrated with the touch display screen, and the component position information is the outline identifier 501c.
  • the edge of the predetermined area 509b will display the outline mark 501c, and the user can clearly determine the location of the image capture component by the outline mark 501c.
  • each photosensitive pixel is integrated in a black area of each display pixel of the predetermined area 509b.
  • the image acquisition component is fully integrated with the touch display screen, and the component location information is the location identifier 501d.
  • the peripheral side of the predetermined area 509b displays the position identification 501d, and the position identification 501d points to the predetermined area 509b, and the user can clearly determine the position of the image capturing component by the position identification 501d.
  • the shooting interface display method displays a shooting interface on the touch display screen, and the component position information is displayed on the shooting interface, and the component position information is a prompt for indicating the location of the image capturing component.
  • the information solves the problem that the image acquisition component is integrated in the terminal of the touch display screen, and the image acquisition component and the touch display screen are visually integrated, and the user does not easily recognize the problem of the location of the image acquisition component, so that the user integrates using the image acquisition component.
  • the image capturing component of the terminal of the display screen is touched, the position of the image capturing component can be clearly determined according to the component position information displayed on the shooting interface, so that the user can use the image capturing component to align the shooting target for shooting.
  • FIG. 6 is a flowchart of a shooting interface display method provided by an exemplary embodiment of the present application.
  • the shooting interface display method can be applied to an image capturing component integrated in a terminal of a touch display screen, the touch display screen of the terminal has an opening, and the image capturing component is integrated in a cavity formed by the opening, the shooting interface display method include:
  • step 601 the terminal receives a first operational signal, the first operational signal being a signal for enabling the image acquisition component to capture.
  • the user performs a first operation on the terminal, and the first operation may be sliding the touch display screen, or pressing a physical button component of the terminal, or clicking an application icon related to the image capturing component on the touch display screen, for example, the application may be Shoot an app, an online video call app, or a live video app.
  • the CPU in the terminal receives the first operation signal, where the first operation signal may be a sliding signal generated by the touch display screen according to the sliding operation of the user, or the physical button component is generated according to the pressing operation of the user. Pressing the signal, or touching the display signal generated by the user's click operation.
  • the touch display screen reports the first operation signal to the CPU.
  • step 602 the terminal enables the image acquisition component based on the first operational signal.
  • the CPU in the terminal After receiving the first operation signal, the CPU in the terminal sends an instruction to the image acquisition component, the instruction is used to instruct the image acquisition component to start, and the image acquisition component starts the operation mode after receiving the instruction of the terminal, and proceeds to step 603a or step 603b.
  • step 603a the terminal displays a first shooting interface on the touch display screen, and component position information is displayed on the first shooting interface, and the component position information is displayed around the edge contour of the opening.
  • the terminal displays the first shooting interface on the touch display screen, and the first shooting interface may be a user interface of the shooting application, or a user interface of the online video calling application, or a user interface of the video live application. .
  • component position information is displayed on the first shooting interface, and the component position information is displayed around the edge contour of the opening, and the component position information is a prompt for indicating the edge contour of the opening. Information, the user can clearly determine the location of the image acquisition component through the component location information.
  • the first capture interface is a user interface of the capture application shown in Figure 5A.
  • the touch display screen 130 is formed with an opening 509a.
  • the image capturing assembly is integrated in a cavity formed by the opening 509a.
  • the component position information is a contour mark 501a, and the outline mark 501a is displayed around the edge of the opening 509a. Through the contour identifier 501a, the user can clearly determine the location of the image acquisition component.
  • step 603b the terminal displays a first shooting interface on the touch display screen.
  • the first shooting interface displays component position information, and the component position information is located on the circumferential side of the position where the opening is located, and points to the position of the opening.
  • the terminal displays the first shooting interface on the touch display screen, and the first shooting interface may be a user interface of the shooting application, or a user interface of the online video calling application, or a user interface of the video live application. .
  • the component position information is displayed on the first shooting interface, and the component position information is located on the circumferential side of the position where the opening is located, and points to the position of the opening, and the position information of the component can be clearly defined by the user. Determine the location of the image capture component.
  • the first capture interface is a user interface of the capture application shown in Figure 5B.
  • the touch display screen 130 is formed with an opening 509a.
  • the image capturing assembly is integrated in the cavity formed by the opening 509a.
  • the position information of the component is the position mark 501b, and the position mark 501b is located at the position of the opening 509a.
  • FIG. 7 is a cross-sectional view of a touch display screen using an aperture integrated image acquisition assembly.
  • the touch display screen 130 has an opening 509a therein, and the image acquisition assembly 701 is disposed in the cavity 702 formed by the opening 509a, and The touch display 130 is visually integrated.
  • step 604 the terminal acquires a shooting parameter, and the shooting parameter includes at least one of an aperture value, a shutter value, an exposure value, focus information, and a sensitivity value.
  • the terminal acquires the shooting parameters through a built-in program, and the shooting parameters may be at least one of an aperture value, a shutter value, an exposure value, a focus information, and a sensitivity value.
  • Aperture is a device used to control the amount of light that passes through the lens and into the photosensitive element.
  • the aperture in the terminal is the result of the built-in program simulation, which corresponds to the amount of light passing through the image acquisition component and the depth of field, and image acquisition.
  • the shutter speed is the physical quantity related to the exposure time.
  • Sensitivity is the speed at which the photosensitive element reacts to light. The higher the sensitivity value, the faster the photosensitive element reacts to light.
  • the focus information reflects the sharpness of the image in the area where the focus is located. For example, the terminal determines whether the image of the area where the focus is located is the highest according to the image information collected by the image capturing component, and if so, determines that the focus is successful.
  • the exposure value corresponds to the combination of the shooting parameters.
  • step 605a the terminal determines the display size of the component location information according to the shooting parameters.
  • the terminal adjusts the display size of the component location information according to the obtained parameters. For example, when the aperture value is small and the corresponding aperture is large, the larger component position information is displayed. When the aperture value is larger and the corresponding aperture is smaller, smaller component position information is displayed; when the shutter value is larger, Display larger component position information, display smaller component position information when the shutter value is smaller; display larger component position information when the exposure value is larger, and display smaller component position information when the exposure value is smaller When there is no focus on the upper part, the smaller component position information is displayed. When the focus is successful, the larger component position information is displayed; when the sensitivity value is larger, the larger component position information is displayed, when the sensitivity value is compared Hours, showing smaller component location information.
  • the shooting parameter control method is described in detail by taking the user interface of the shooting application as an example.
  • FIG. 8A is a schematic diagram of a shooting parameter control method according to an embodiment of the present application.
  • the component position information is a contour identifier 501a.
  • the user interface of the shooting application is displayed on the touch display 130, the user community The face includes a contour mark 501a and a shooting parameter identification 505.
  • the shooting parameter identifier 505 as the aperture value identifier as an example
  • the user can slide the operation on the touch display screen 130, and the touch display screen 130 generates a sliding signal according to the sliding operation of the user.
  • the sliding signal is the second operation signal
  • the touch display screen 130 reports the second operation signal to the CPU in the terminal, and the second operation signal of the CPU adjusts the aperture value. If the aperture value becomes larger, as shown in the right figure, the corresponding aperture
  • the aperture icon of the value indicator 505 is displayed as a large aperture icon, at the same time, the outline marker 501a also becomes larger, and its outline is correspondingly thicker.
  • the shooting parameter selected by the user is an exposure value, a shutter value or a sensitivity value
  • a sliding operation is performed on the touch display screen 130, and the touch display screen 130 generates a sliding signal according to the sliding operation of the user, and the sliding signal is the third operation.
  • the signal or the fourth operation signal the touch display screen 130 reports the third operation signal or the fourth operation signal to the CPU in the terminal, and the CPU compares the exposure value and the shutter value according to the third operation signal or the fourth operation signal reported by the touch display screen 130.
  • the sensitivity value is adjusted, and the size of the outline mark 501a and/or the thickness of the outline may also vary depending on the exposure value, the shutter value, or the sensitivity value.
  • the size of the location identifier can also be changed by changing the shooting parameters.
  • step 605b the terminal determines the display color of the component location information according to the shooting parameters.
  • the terminal adjusts the color of the component position information according to the obtained parameters.
  • the component position information displays a bright color.
  • the component position information displays a dim color, and the image is collected due to a large aperture.
  • the light passing amount of the component is large, so the user is prompted by the bright color to have a larger amount of light passing through the aperture at this time.
  • the amount of light passing through the image capturing component is small when the aperture is small, the user is reminded of the aperture by the dim color. Small amount of light is small.
  • the component position information displays a dim color.
  • the component position information displays a bright color. Since the shutter value is large, the shutter speed is slow, and the hand-held shooting tends to cause the photo to be unclear.
  • the dim color reminds the user that the photo taken at a slow shutter speed is easily blurred. Since the shutter speed is small, the shutter speed is faster, so the bright color prompts that the shutter speed is faster and the shooting is safe.
  • the component position information shows a bright color
  • the component The position information shows a dim color
  • the component position information is displayed as a dim color to remind the user that the focus has not been successful, and is not suitable for shooting.
  • the component position information is displayed as a bright color to prompt the user to focus successfully, which is suitable for shooting.
  • the component position information When the sensitivity value is large, the component position information displays a dim color. When the sensitivity value is small, the component position information displays a bright color, and since the sensitivity value is large, the photograph taken is more noisy, so the dim is used. The color reminds the user that the sensitivity value is relatively poor, and correspondingly, since the photos taken are less noise when the sensitivity value is small, the brightness color is used to prompt the user that the sensitivity value is small and the image quality is superior.
  • the shooting parameters are different, and the color of the component position information may be different.
  • the display color of determining the component position information according to the shooting parameters is merely exemplary, and the actual application is not limited thereto.
  • step 605b the shooting parameters can be controlled according to the user's operation. For example, after clicking a selected shooting parameter, the shooting parameter value is changed by sliding, and the display color of the component position information is along with the shooting parameter. The change has changed.
  • step 605c the terminal determines the display shape of the component position information according to the shooting parameters.
  • the terminal adjusts the display shape of the component position information according to the obtained parameters.
  • the contour of the component position information is displayed as a dotted line.
  • the component position information is displayed as a solid line, because the aperture is large.
  • the photographed photo has a shallow depth of field. Therefore, the dotted line representing the blur indicates that the user has a large aperture and a large amount of light passing through the aperture.
  • the photographed photograph has a deep depth of field when the aperture is small, the user is prompted with a solid line representing the clear line. At this time, the aperture has a small amount of light passing through.
  • the component position information is displayed as a dotted line.
  • the component position information is displayed as a solid line. Since the shutter value is large, the shutter speed is slow, and the hand-held shooting is likely to cause the photo to be unclear.
  • the dotted line reminds the user that the photo taken at a slower shutter speed is easy to blur. Since the shutter speed is small, the shutter speed is faster. Therefore, it is safe to shoot with a solid line indicating that the shutter speed is faster.
  • the component position information is displayed as a solid line, and when the exposure value is small, the component position is The information is displayed as a dotted line. Since the photograph taken when the exposure value is large is brighter, the photograph with a larger exposure value indicating that the user has a larger exposure value is brighter, correspondingly, when the exposure value is small, the photograph is taken. The photo is darker, so the dotted line representing the unclear blur is used to remind the user that the exposure value is smaller and the photograph taken is darker.
  • the component position information is displayed as a dotted line to remind the user that the focus has not been successful, and is not suitable for shooting.
  • the component position information is displayed as a solid line to prompt the user to focus successfully, which is suitable for shooting.
  • the component position information is displayed as a dotted line.
  • the component position information is displayed as a solid line. Since the photo sensitivity value is large, the photo taken is more noisy, so the representative blur is not used.
  • the clear dotted line reminds the user that the sensitivity value is relatively poor, and correspondingly, the photo taken is less noise when the sensitivity value is smaller, so the user with a clear solid line is less sensitive to the image quality. .
  • the shooting parameters are different, and the shape of the component position information may be different.
  • the display color of determining the component position information according to the shooting parameters is merely exemplary, and the actual application is not limited thereto.
  • step 605c the shooting parameters can be controlled according to the user's operation. For example, after clicking a selected shooting parameter, the shooting parameter value is changed by sliding, and the display shape of the component position information is along with the shooting parameter. The change has changed.
  • step 605d the terminal determines a display animation of the component position information according to the shooting parameters.
  • the terminal adjusts the display animation of the component position information according to the obtained parameters.
  • the display animation of the component position information is constant brightness.
  • the display animation of the component position information is from bright to dark, and then From dark to bright gradation animation, since the amount of light passing through the image acquisition component is large when the aperture is large, the position information of the component with constant brightness prompts the user that the aperture has a large amount of light passing through, and the photograph taken is normal, corresponding to Since the amount of light passing through the image acquisition component is small when the aperture is small, the gradient animation from light to dark and then from dark to bright is used to remind the user that the aperture has a small amount of light passing through, and the photograph taken will be Dark or fuzzy.
  • the display animation of the component position information is from light to dark, and then from dark to bright
  • the display animation of the component position information is constant brightness, and since the shutter speed is slow, the photograph is easily blurred, so the light with the breathing effect is dark to dark, and then dark to The bright gradient animation reminds the user that the photo taken at a slow shutter speed is easy to blur. Since the shutter speed is small, the shutter speed is faster. Therefore, the component position information with constant brightness indicates that the shutter speed is faster and the shooting speed is safe.
  • the display animation of the component position information is from light to dark, and then from dark to bright, due to the exposure value.
  • the exposure value is greater than the second threshold, the exposure is not enough.
  • the exposure value is less than the third threshold, the exposure is not enough. Therefore, the gradient animation from light to dark and then from dark to bright is used to remind the user that the exposure is excessive or insufficient, when the exposure value is When between the first threshold and the second threshold, the display animation of the component position information is a constant brightness, prompting the user to have normal exposure.
  • the display animation of the component position information is constant brightness, reminding the user that the focus has not been applied, and is not suitable for shooting.
  • the display animation of the component position information is flashing display, prompting the user to fit. Shooting.
  • the display animation of the component position information is a gradient animation from light to dark, and then from dark to bright.
  • the display animation of the component position information is constant brightness, due to the sensitivity value.
  • the photo is taken out, the photo is more noisy, so the gradient animation from light to dark and then from dark to bright is used to remind the user that the sensitivity value is relatively poor, correspondingly, due to sensitivity.
  • the photos taken are less noisy, so the component position information with constant brightness prompts the user that the sensitivity value is smaller and the picture quality is better.
  • the shooting parameters can be controlled according to the user's operation. For example, after clicking a selected shooting parameter, the shooting parameter value is changed by sliding, and at the same time, the display animation of the component position information follows the shooting parameter. The change has changed.
  • step 605a, step 605b, step 605c, and step 605d may be performed in series, or only step 605a, step 605b, step 605c or step 605d may be performed.
  • the shooting interface display method displays a first shooting interface on the touch display screen, where the component shooting position information is displayed on the first shooting interface, and the component position information is used to indicate the image capturing component.
  • the prompt information of the edge contour solves the integration of the image acquisition component in the terminal of the touch display screen, and the image acquisition component and the touch display screen are visually integrated, and the user does not easily recognize the problem of the location of the image acquisition component, so that the user When the image acquisition component is integrated in the image acquisition component of the terminal of the touch display screen, it can be cleared according to the component position information displayed on the shooting interface.
  • Chu determines the location of the image acquisition component, which is convenient for the user to use the image acquisition component to aim at the target.
  • the user can determine the display size and display of the component position information by determining at least one of the display size, the display color, the display shape, and the display animation of the component position information according to the shooting parameters.
  • At least one of the color, the display shape, and the display animation intuitively obtains the influence of the shooting parameters on the shooting effect, and is convenient for the user to perform the shooting parameters according to at least one of the display size, the display color, the display shape, and the display animation of the component position information. Adjustment.
  • FIG. 9 is a flowchart of a shooting interface display method provided by an exemplary embodiment of the present application.
  • the shooting interface display method can be applied to an image capturing component integrated in a terminal of a touch display screen, and the terminal splits the photosensitive element in the image capturing component into a plurality of photosensitive pixels, and discretely integrates each photosensitive pixel in the touch display.
  • the shooting interface display method includes:
  • step 901 the terminal receives a first operational signal, the first operational signal being a signal for enabling the image acquisition component to capture.
  • the user performs a first operation on the terminal, and the first operation may be sliding the touch display screen, or pressing a physical button component of the terminal, or clicking an application icon related to the image capturing component on the touch display screen, for example, the application may be Shoot an app, an online video call app, or a live video app.
  • the CPU in the terminal receives the first operation signal, where the first operation signal may be a sliding signal generated by the touch display screen according to the sliding operation of the user, or the physical button component is generated according to the pressing operation of the user. Pressing the signal, or touching the display screen to generate a pressed signal according to the user's click operation.
  • the first operation signal may be a sliding signal generated by the touch display screen according to the sliding operation of the user, or the physical button component is generated according to the pressing operation of the user. Pressing the signal, or touching the display screen to generate a pressed signal according to the user's click operation.
  • the touch display screen reports the first operation signal to the CPU.
  • step 902 the terminal enables the image acquisition component based on the first operational signal.
  • the CPU in the terminal After receiving the first operation signal, the CPU in the terminal sends an instruction to the image acquisition component, the instruction indicates that the image acquisition component is started, and the image acquisition component starts to enter the working mode after receiving the instruction of the terminal, and proceeds to step 903a or step 903b.
  • step 903a a second shooting interface is displayed on the touch display screen, and component position information is displayed on the second shooting interface, and the component position information is displayed around the edge contour of the predetermined area.
  • the terminal While the image acquisition component is activated, the terminal displays a second shooting interface on the touch display screen, and the second shooting interface may be a user interface of the shooting application, or a user boundary of the online video calling application. Face, or the user interface of the live video application.
  • component position information is displayed on the second shooting interface, the component position information is displayed around the edge contour of the predetermined area, and the component position information is used to indicate the edge contour of the image capturing component.
  • the prompt information the user can clearly determine the location of the image acquisition component through the component location information.
  • the second capture interface is a user interface of the capture application shown in Figure 5B.
  • the predetermined area 509b of the touch display screen 130 is integrated with an image capturing component.
  • each photosensitive pixel is integrated into each display pixel of the predetermined area 509b.
  • the image capturing component is fully integrated with the touch screen display, the component position information is a contour identifier 501c, and the contour identifier 501c is displayed around the edge of the predetermined area 509b for indicating the edge contour of the image capturing component. Through the contour identifier 501c, the user can clearly determine the location of the image capturing component.
  • step 903b the terminal displays a second shooting interface on the touch display screen, and the second shooting interface displays component position information, and the component position information is located on the circumferential side of the position where the predetermined area is located, and points to the position of the predetermined area.
  • the terminal While the image capturing component is activated, the terminal displays a second shooting interface on the touch display screen, and the second shooting interface may be a user interface of the shooting application, or a user interface of the online video calling application, or a user interface of the live video application. .
  • the component position information is displayed on the second shooting interface, and the component position information is located on the circumferential side of the predetermined area, and points to the position of the predetermined area, and the user can clearly know the position information of the component. Determine the location of the image capture component.
  • the first capture interface is a user interface of the capture application shown in Figure 5D.
  • the predetermined area 509b of the touch display screen 130 is integrated with an image capturing component. After the photosensitive elements in the image capturing assembly are split into a plurality of photosensitive pixels, each photosensitive pixel is integrated into each display pixel of the predetermined area 509b.
  • the image capturing component is completely integrated with the touch screen display, the component location information is the location identifier 501d, the location identifier 501d is located on the circumferential side of the location where the predetermined area 509b is located, and points to the location of the predetermined area 509b, and the user passes the
  • the location identification 501d can clearly determine the location of the image capture component.
  • FIG. 10 shows a display pixel array diagram of a touch display screen integrated with photosensitive pixels.
  • each display pixel includes three sub-pixel units, which are an R (RED, red) sub-pixel unit, a G (Green) sub-pixel unit, and a B (Blue) sub-pixel unit.
  • Each sub-pixel unit 1002 Each has a black area 1001, and each photosensitive pixel 1003 of the image capturing component is integrated in the black area 1001 of each sub-pixel unit 1002.
  • the predetermined area 509b formed by the display pixels integrated with the photosensitive pixels 1003 is the image capturing component. position. When the image capturing component is activated, the display pixels located in the predetermined area 509b are in a closed state, so that the image capturing component photosensitive pixels 1003 located in the predetermined area 509b can operate normally.
  • step 904 the terminal acquires a shooting parameter, and the shooting parameter includes at least one of an aperture value, a shutter value, an exposure value, focus information, and a sensitivity value.
  • the terminal acquires the shooting parameters through a built-in program, and the shooting parameters may be at least one of an aperture value, an exposure degree, and a sensitivity.
  • Aperture is a device used to control the amount of light that passes through the lens and into the photosensitive element.
  • the aperture in the terminal is the result of the built-in program simulation, which corresponds to the amount of light passing through the image acquisition component and the depth of field, and image acquisition.
  • the shutter speed is the physical quantity related to the exposure time.
  • Sensitivity is the speed at which the photosensitive element reacts to light. The higher the sensitivity value, the faster the photosensitive element reacts to light.
  • the focus information reflects the sharpness of the image in the area where the focus is located. For example, the terminal determines whether the image of the area where the focus is located is the highest according to the image information collected by the image capturing component, and if so, determines that the focus is successful.
  • the exposure value corresponds to the combination of the shooting parameters.
  • the larger the exposure value the combination of the shooting parameters is adjusted in the direction in which the photo is bright, and the smaller the exposure value, the combination of the shooting parameters is adjusted in the dark direction of the photo.
  • step 905a the terminal determines the display size of the component location information according to the shooting parameters.
  • the terminal adjusts the display size of the component location information according to the obtained parameters. For example, when the aperture value is small and the corresponding aperture is large, the larger component position information is displayed. When the aperture value is larger and the corresponding aperture is smaller, smaller component position information is displayed; when the shutter value is larger, Display larger component position information, display smaller component position information when the shutter value is smaller; display larger component position information when the exposure value is larger, and display smaller component position information when the exposure value is smaller ; when there is no focus, display smaller component position information, when the focus is successful, display a larger component position letter When the sensitivity value is large, the larger component position information is displayed, and when the sensitivity value is small, the smaller component position information is displayed.
  • FIG. 8C is a schematic diagram showing a shooting parameter control method of an embodiment of the present application, in which the component position information is a contour identifier 501c.
  • a user interface of a shooting application is displayed on the touch display 130, and the user interface includes a contour identification 501c and a shooting parameter identification 505.
  • the shooting parameter identifier 505 as the aperture value identifier as an example
  • the user can slide the operation on the touch display screen 130, and the touch display screen 130 generates a sliding signal according to the sliding operation of the user.
  • the sliding signal is the fifth operation signal
  • the touch display screen 130 reports the fifth operation signal to the CPU in the terminal, and the fifth operation signal of the CPU adjusts the aperture value. If the aperture value becomes larger, as shown in the right figure, the corresponding aperture
  • the aperture icon of the value indicator 505 is displayed as a large aperture icon, at the same time, the outline marker 501c also becomes larger, and its outline is correspondingly thicker.
  • the shooting parameter selected by the user is an exposure value, a shutter value or a sensitivity value
  • a sliding operation is performed on the touch display screen 130, and the touch display screen 130 generates a sliding signal according to the sliding operation of the user, and the sliding signal is the sixth operation.
  • the signal or the seventh operation signal the touch display screen 130 reports the sixth operation signal or the seventh operation signal to the CPU in the terminal, and the CPU compares the exposure value and the shutter value according to the sixth operation signal or the seventh operation signal reported by the touch display screen 130.
  • the sensitivity value is adjusted, and the size of the outline mark 501c and/or the thickness of the outline may also vary depending on the exposure value, the shutter value, or the sensitivity value.
  • the size of the location identifier can also be changed by changing the shooting parameters.
  • step 905a in step 905a, the shooting parameters can be controlled according to the user's operation. For example, after clicking a selected shooting parameter, the shooting parameter value is changed by sliding, and the display position of the component position information is along with the shooting parameter. The change has changed.
  • step 905b the terminal determines the display color of the component location information according to the shooting parameters.
  • the terminal adjusts the color of the component position information according to the obtained parameters.
  • the component position information displays a bright color.
  • the component position information displays a dim color, and the image is collected due to a large aperture.
  • the component has a large amount of light passing through, so the user is prompted with a bright color to have a larger aperture.
  • the amount of light passing through is relatively large.
  • the dim color is used to remind the user that the aperture has a small amount of light passing through at this time.
  • the component position information displays a dim color.
  • the component position information displays a bright color. Since the shutter value is large, the shutter speed is slow, and the hand-held shooting tends to cause the photo to be unclear.
  • the dim color reminds the user that the photo taken at a slow shutter speed is easily blurred. Since the shutter speed is small, the shutter speed is faster, so the bright color prompts that the shutter speed is faster and the shooting is safe.
  • the component position information When the exposure value is large, the component position information displays a bright color. When the exposure value is small, the component position information displays a dim color. Since the photograph taken is large when the exposure value is large, the user is prompted with a bright color. At this time, the photograph with a larger exposure value is brighter, and correspondingly, since the photograph taken as a whole has a small exposure value, the dim color is used to remind the user that the photograph taken at a small exposure value is dark.
  • the component position information is displayed as a dim color to remind the user that the focus has not been successful, and is not suitable for shooting.
  • the component position information is displayed as a bright color to prompt the user to focus successfully, which is suitable for shooting.
  • the component position information When the sensitivity value is large, the component position information displays a dim color. When the sensitivity value is small, the component position information displays a bright color, and since the sensitivity value is large, the photograph taken is more noisy, so the dim is used. The color reminds the user that the sensitivity value is relatively poor, and correspondingly, since the photos taken are less noise when the sensitivity value is small, the brightness color is used to prompt the user to have a smaller image quality. Among them, the shooting parameters are different, and the color of the component position information may be different.
  • the shooting parameters are different, and the color of the component position information may be different.
  • the display color of determining the component position information according to the shooting parameters is merely exemplary, and the actual application is not limited thereto.
  • step 905b the shooting parameters can be controlled according to the user's operation. For example, after clicking a selected shooting parameter, the shooting parameter value is changed by sliding, and the display color of the component position information is along with the shooting parameter. The change has changed.
  • step 905c the terminal determines the display shape of the component position information based on the shooting parameters.
  • the terminal adjusts the display shape of the component position information according to the obtained parameters.
  • the contour of the component position information is displayed as a dotted line.
  • the contour of the component position information is displayed as a solid line due to the aperture.
  • the photo is taken at a large time, the depth of field is shallow, so the user is prompted with a dotted line.
  • the aperture has a large amount of light passing through, and correspondingly, since the photograph taken at a small aperture has a deep depth of field, the solid line representing the clearness prompts the user that the aperture has a small amount of light passing through at this time.
  • the component position information is displayed as a dotted line.
  • the component position information is displayed as a solid line. Since the shutter value is large, the shutter speed is slow, and the hand-held shooting is likely to cause the photo to be unclear.
  • the dotted line reminds the user that the photo taken at a slower shutter speed is easy to blur. Since the shutter speed is small, the shutter speed is faster. Therefore, it is safe to shoot with a solid line indicating that the shutter speed is faster.
  • the outline of the component position information is displayed as a solid line.
  • the outline of the component position information is displayed as a broken line, and since the photograph taken by the exposure value is brighter, the representative is used.
  • a clear solid line prompts the user that the exposure value is larger, and the photograph taken is darker.
  • the photograph taken is darker because the exposure value is small. Therefore, the dotted line representing the blur is unclear to remind the user that the exposure value is small.
  • the photo is darker.
  • the outline of the component position information is displayed as a broken line.
  • the outline of the component position information is displayed as a solid line, and the photo taken when the sensitivity value is large is more noise. Therefore, the dotted line indicating that the blur is unclear reminds the user that the sensitivity value is relatively poor, and correspondingly, since the photograph taken is less noise when the sensitivity value is small, the user's sensitivity is indicated by a solid line representing the clearness. The value is smaller and the picture quality is better.
  • the component position information is displayed as a dotted line to remind the user that the focus has not been successful, and is not suitable for shooting.
  • the component position information is displayed as a solid line to prompt the user to focus successfully, which is suitable for shooting.
  • the shooting parameters are different, and the shape of the component position information may be different.
  • the display color of determining the component position information according to the shooting parameters is merely exemplary, and the actual application is not limited thereto.
  • step 905c the shooting parameters can be controlled according to the user's operation. For example, after clicking a selected shooting parameter, the shooting parameter value is changed by sliding, and the display shape of the component position information is along with the shooting parameter. The change has changed.
  • step 905d the terminal determines a display animation of the component position information based on the shooting parameters.
  • the terminal adjusts the display animation of the component position information according to the obtained parameters.
  • the display animation of the component position information is constant brightness.
  • the display animation of the component position information is from bright to dark, and then From dark to bright gradient animation, the amount of light passing through the image acquisition component is larger due to the larger aperture. Therefore, the position information of the component with constant brightness is used to prompt the user that the aperture has a large amount of light passing through, and the photograph taken is normal.
  • the amount of light passing through the image acquisition component is small when the aperture is small, the light with the breathing effect is bright. To dark, then the dark to bright gradient animation reminds the user that the aperture is smaller and the amount of light is smaller, and the captured photos will be dark or blurred.
  • the display animation of the component position information is from light to dark, and then from dark to bright, when the shutter value is smaller, less than the first Threshold value, when the corresponding shutter speed is faster, the display animation of the component position information is constant brightness, and the photograph is easily blurred when the shutter speed is slow, so the light-to-dark, and then dark-to-light with breathing effect is used.
  • Gradient animation reminds the user that the photo taken at a slow shutter speed is easy to blur. Since the shutter speed is small, the shutter speed is faster. Therefore, the component position information with constant brightness indicates that the shutter speed is faster and the shooting is safe.
  • the display animation of the component position information is from light to dark, and then from dark to bright, due to the exposure value.
  • the exposure value is greater than the second threshold, the exposure is not enough.
  • the exposure value is less than the third threshold, the exposure is not enough. Therefore, the gradient animation from light to dark and then from dark to bright is used to remind the user that the exposure is excessive or insufficient, when the exposure value is When between the first threshold and the second threshold, the display animation of the component position information is a constant brightness, prompting the user to have normal exposure.
  • the display animation of the component position information is constant brightness, reminding the user that the focus has not been applied, and is not suitable for shooting.
  • the display animation of the component position information is flashing display, prompting the user to fit. Shooting.
  • the display animation of the component position information is a gradient animation from light to dark, and then from dark to bright.
  • the component position information display animation is constant brightness, because the sensitivity value is large.
  • the photos taken at the time are more noisy, so the gradient animation from light to dark and then from dark to bright is used to remind the user that the sensitivity value is relatively poor, correspondingly, because the sensitivity value is higher.
  • Photographs taken in hours are less noisy, so the component position information with constant brightness prompts the user that the sensitivity value is smaller and the picture quality is better.
  • step 905d the shooting parameters can be controlled according to the user's operation. For example, after clicking a selected shooting parameter, the shooting parameter value is changed by sliding, and at the same time, the display animation of the component position information follows the shooting parameter. The change has changed.
  • step 905a, step 905b, step 905c, and step 905d may be performed in series, or only step 905a, step 905b, step 905c or step 905d may be performed.
  • the shooting interface display method displays a second shooting interface on the touch display screen, and the second shooting interface displays component position information, where the component position information is used to indicate the image capturing component.
  • the prompt information of the edge contour solves the integration of the image acquisition component in the terminal of the touch display screen, and the image acquisition component and the touch display screen are visually integrated, and the user does not easily recognize the problem of the location of the image acquisition component, so that the user
  • the position of the image acquisition component can be clearly determined according to the component position information displayed on the shooting interface, so that the user can use the image acquisition component to aim at the target object for shooting.
  • the user can determine the display size and display of the component position information by determining at least one of the display size, the display color, the display shape, and the display animation of the component position information according to the shooting parameters.
  • At least one of the color, the display shape, and the display animation intuitively obtains the influence of the shooting parameters on the shooting effect, and is convenient for the user to shoot according to the display size of the component position information, the display color, the display shape, and the prompt of at least one of the displayed animations.
  • the parameters are adjusted.
  • FIG. 11 is a structural block diagram of a shooting interface display device according to an exemplary embodiment of the present application.
  • the shooting interface display device can be implemented as all or part of the terminal by software, hardware, and a combination of the two, and the shooting interface display device is applied to a terminal adopting a full screen design.
  • the shooting interface display device includes a receiving module 1101, an obtaining module 1102, a control module 1103, and a display module 1104.
  • the receiving module 1101 is configured to implement the functions related to receiving implied in the foregoing steps 401, 601, 901, and steps.
  • the obtaining module 1102 is configured to implement the functions related to obtaining implied in the foregoing step 604, step 904 and each step.
  • the control module 1103 is configured to implement the foregoing steps 402, 602, 605a, 605b, 605c, 605d, 902, 905a, 905b, 905c, 905d and related controls implied in each step. Features.
  • the display module 1104 is configured to implement the functions related to display implied in the foregoing step 403, step 603a, step 603b, step 903a, step 903b, and each step.
  • the shooting interface display device displays a second shooting interface on the touch display screen, and the second shooting interface displays component position information, where the component position information is used to indicate the image capturing component.
  • the prompt information of the location solves the problem that the image acquisition component is integrated in the terminal of the touch display screen, and the image acquisition component and the touch display screen are visually integrated, and the user does not easily recognize the problem of the location of the image acquisition component, so that the user is using
  • the position of the image acquisition component can be clearly determined according to the component position information displayed on the shooting interface, and the user can conveniently use the image acquisition component to aim at the target object for shooting.
  • the photographing interface display device provided by the embodiment can determine the display size and display of the component position information by determining at least one of the display size, the display color, the display shape, and the display animation of the component position information according to the photographing parameter.
  • At least one of the color, the display shape, and the display animation intuitively obtains the influence of the shooting parameters on the shooting effect, and is convenient for the user to shoot according to the display size of the component position information, the display color, the display shape, and the prompt of at least one of the displayed animations. The parameters are adjusted.
  • the embodiment of the present application further provides a terminal, where the terminal includes a processor and a memory, where the memory stores at least one instruction, and the instruction is loaded and executed by the processor to implement the shooting as described in the foregoing embodiments. Interface display method.
  • the embodiment of the present application further provides a computer readable medium storing at least one instruction loaded by the processor and executed to implement the shooting interface display as described in the foregoing embodiments. method.
  • the embodiment of the present application further provides a computer program product, where the computer program product stores at least one instruction, and the at least one instruction is loaded and executed by the processor to implement the shooting interface display method described in the foregoing embodiments.
  • the functions described in the embodiments of the present application may be implemented in hardware, software, firmware, or any combination thereof.
  • the functions may be stored in a computer readable medium or transmitted as one or more instructions or code on a computer readable medium.
  • the computer readable medium includes a computer storage medium and a communication medium, wherein the communication medium includes a computer program that facilitates transfer of the computer program from one location to another. Any medium.
  • a storage medium may be any available media that can be accessed by a general purpose or special purpose computer.

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Abstract

本申请实施例提供了一种拍摄界面显示方法、装置及终端,应用于触摸显示屏中集成有图像采集组件的终端中,所述方法包括:接收第一操作信号,所述第一操作信号是用于启用所述图像采集组件进行拍摄的信号;根据所述第一操作信号启用所述图像采集组件;在所述触摸显示屏上显示拍摄界面,所述拍摄界面上显示有组件位置信息,所述组件位置信息是用于指示所述图像采集组件所在位置的提示信息。通过拍摄界面上显示有组件位置信息,该组件位置信息是用于指示图像采集组件所在位置的提示信息,解决了图像采集组件集成在触摸显示屏的终端中,图像采集组件与触摸显示屏在视觉上融为一体,用户不容易辨认图像采集组件所在位置的问题,方便用户使用图像采集组件对准拍摄目标物进行拍摄。

Description

拍摄界面显示方法、装置及终端 技术领域
本申请实施例涉及人机交互领域,特别涉及一种拍摄界面显示方法、装置及终端。
背景技术
由于终端的触摸显示屏占据终端的前面板的比例越来越大,终端可能采用将图像采集组件集成在触摸显示屏上的设计。
相关技术中提供了两种可能的集成方式将图像采集组件集成在触摸显示屏上:第一,在触摸显示屏的顶部区域或底部区域形成圆形小孔,将图像采集组件集成在圆形小孔所形成的空腔内;第二,将图像采集组件中的感光元件拆分为多个感光像素后,将每个感光像素集成在触摸显示屏的全部或部分显示区域的每个显示像素的黑色区域中,使得图像采集组件与触摸显示屏完全融合为一体。
发明内容
本申请实施例提供了一种拍摄界面显示方法、装置及终端,可以解决将图像采集组件集成在触摸显示屏中时,图像采集组件与触摸显示屏在视觉上融为一体,用户不容易辨认图像采集组件所在位置的问题。所述技术方案如下:
根据本申请的第一方面,提供了一种拍摄界面显示方法,应用于触摸显示屏中集成有图像采集组件的终端中,所述方法包括:
接收第一操作信号,所述第一操作信号是用于启用所述图像采集组件进行拍摄的信号;
根据所述第一操作信号启用所述图像采集组件;
在所述触摸显示屏上显示拍摄界面,所述拍摄界面上显示有组件位置信息,所述组件位置信息是用于指示所述图像采集组件所在位置的提示信息。
根据本申请的第二方面,提供了一种拍摄界面显示装置,应用于触摸显示屏中集成有图像采集组件的终端中,所述装置包括:
接收模块,用于接收第一操作信号,所述第一操作信号是用于启用所述图像采集组件进行拍摄的信号;
控制模块,用于根据所述第一操作信号启用所述图像采集组件;
显示模块,用于在所述触摸显示屏上显示拍摄界面,所述拍摄界面上显示有组件位置信息,所述组件位置信息是用于指示所述图像采集组件所在位置的提示信息。
根据本申请的第三方面,提供了一种终端,所述终端包括处理器和存储器,所述存储器中存储有至少一条指令,所述指令由所述处理器加载并执行以实现如第一方面所述的拍摄界面显示方法。
根据本申请的第四方面,提供了一种计算机可读存储介质,所述存储介质中存储有至少一条指令,所述指令由处理器加载并执行以实现如第一方面所述的拍摄界面显示方法。
本申请实施例提供的技术方案的有益效果是:
通过在触摸显示屏上显示拍摄界面,该拍摄界面上显示有组件位置信息,该组件位置信息是用于指示图像采集组件的边缘轮廓的提示信息,解决了图像采集组件集成在触摸显示屏的终端中,图像采集组件与触摸显示屏在视觉上融为一体,用户不容易辨认图像采集组件所在位置的问题,使得用户在使用图像采集组件时,能够根据拍摄界面上显示的组件位置信息清楚地确定图像采集组件所在的位置,方便用户使用图像采集组件对准拍摄目标物进行拍摄。
附图说明
为了更清楚地说明本申请实施例中的技术方案,下面将对实施例描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本申请的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图获得其他的附图。
图1是本申请一个示例性实施例提供的终端的结构方框图;
图2是本申请另一个示例性实施例提供的终端的结构方框图;
图3A至图3F是本申请一个示例性实施例提供的终端的外观示意图;
图4是本申请一个示例性实施例提供的拍摄界面显示方法的流程图;
图5A至图5D是本申请一个示例性实施例提供的拍摄应用程序的用户界面示意图;
图6是本申请另一个示例性实施例提供的拍摄界面显示方法的流程图;
图7是本申请一个示例性实施例提供的采用圆孔集成图像采集组件的触摸显示屏的剖面图;
图8A是本申请一个示例性实施例提供的一种拍摄参数控制示意图;
图8B是本申请另一个示例性实施例提供的一种拍摄参数控制示意图;
图9是本申请另一个示例性实施例提供的拍摄界面显示方法的流程图;
图10是本申请一个示例性实施例提供的一种集成有感光像素的触摸显示屏的显示像素阵列图;
图11是本申请一个示例性实施例提供的拍摄界面显示装置的结构框图。
具体实施方式
为使本申请的目的、技术方案和优点更加清楚,下面将结合附图对本申请实施方式作进一步地详细描述。
在本文提及的“模块”通常是指存储在存储器中的能够实现某些功能的程序或指令;在本文中提及的“单元”通常是指按照逻辑划分的功能性结构,该“单元”可以由纯硬件实现,或者,软硬件的结合实现。
在本文中提及的“多个”是指两个或两个以上。“和/或”,描述关联对象的关联关系,表示可以存在三种关系,例如,A和/或B,可以表示:单独存在A,同时存在A和B,单独存在B这三种情况。字符“/”一般表示前后关联对象是一种“或”的关系。
参考图1和图2所示,其示出了本申请一个示例性实施例提供的终端100的结构方框图。该终端100可以是手机、平板电脑、笔记本电脑和电子书等。本申请中的终端100可以包括一个或多个如下部件:处理器110、存储器120和触摸显示屏130。
处理器110可以包括一个或者多个处理核心。处理器110利用各种接口和线路连接整个终端100内的各个部分,通过运行或执行存储在存储器120内的指令、程序、代码集或指令集,以及调用存储在存储器120内的数据,执行终端100的各种功能和处理数据。可选地,处理器110可以采用数字信号处理(Digital Signal Processing,DSP)、现场可编程门阵列(Field-Programmable Gate Array,FPGA)、可编程逻辑阵列(Programmable Logic Array,PLA)中的至少一种硬件形式来实现。处理器110可集成中央处理器(Central Processing  Unit,CPU)、图像处理器(Graphics Processing Unit,GPU)和调制解调器等中的一种或几种的组合。其中,CPU主要处理操作系统、用户界面和应用程序等;GPU用于负责触摸显示屏130所需要显示的内容的渲染和绘制;调制解调器用于处理无线通信。可以理解的是,上述调制解调器也可以不集成到处理器110中,单独通过一块芯片进行实现。
存储器120可以包括随机存储器(Random Access Memory,RAM),也可以包括只读存储器(Read-Only Memory)。可选地,该存储器120包括非瞬时性计算机可读介质(non-transitory computer-readable storage medium)。存储器120可用于存储指令、程序、代码、代码集或指令集。存储器120可包括存储程序区和存储数据区,其中,存储程序区可存储用于实现操作系统的指令、用于至少一个功能的指令(比如触控功能、声音播放功能、图像播放功能等)、用于实现下述各个方法实施例的指令等;存储数据区可存储根据终端100的使用所创建的数据(比如音频数据、电话本)等。该存储器120中还存储有至少一个指令,该至少一个指令被处理器110执行时用于实现如下方法实施例中所提供的文件分享方法。
以操作系统为安卓(Android)系统为例,存储器120中存储的程序和数据如图1所示,存储器120中存储有Linux内核层220、系统运行库层240、应用框架层260和应用层280。Linux内核层220为终端100的各种硬件提供了底层的驱动,如显示驱动、音频驱动、摄像头驱动、蓝牙驱动、Wi-Fi驱动、电源管理等。系统运行库层240通过一些C/C++库来为Android系统提供了主要的特性支持。如SQLite库提供了数据库的支持,OpenGL/ES库提供了3D绘图的支持,Webkit库提供了浏览器内核的支持等。在系统运行库层240中还提供有Android运行时库242(Android Runtime),它主要提供了一些核心库,能够允许开发者使用Java语言来编写Android应用。应用框架层260提供了构建应用程序时可能用到的各种API,开发者也可以通过使用这些API来构建自己的应用程序,比如活动管理、窗口管理、视图管理、通知管理、内容提供者、包管理、通话管理、资源管理、定位管理。应用层280中运行有至少一个应用程序,这些应用程序可以是操作系统自带的联系人程序、短信程序、时钟程序、相机应用等;也可以是第三方开发者所开发的应用程序,比如即时通信程序、相片美化程序等。
以操作系统为IOS系统为例,存储器120中存储的程序和数据如图2所示, IOS系统包括:核心操作系统层320(Core OS layer)、核心服务层340(Core Services layer)、媒体层360(Media layer)、可触摸层380(Cocoa Touch Layer)。核心操作系统层320包括了操作系统内核、驱动程序以及底层程序框架,这些底层程序框架提供更接近硬件的功能,以供位于核心服务层340的程序框架所使用。核心服务层340提供给应用程序所需要的系统服务和/或程序框架,比如基础(Foundation)框架、账户框架、广告框架、数据存储框架、网络连接框架、地理位置框架、运动框架等等。媒体层360为应用程序提供有关视听方面的接口,如图形图像相关的接口、音频技术相关的接口、视频技术相关的接口、音视频传输技术的无线播放(AirPlay)接口等。可触摸层380为应用程序开发提供了各种常用的界面相关的框架,可触摸层380负责用户在终端100上的触摸交互操作。比如本地通知服务、远程推送服务、广告框架、游戏工具框架、消息用户界面接口(User Interface,UI)框架、用户界面UIKit框架、地图框架等等。
在图3所示出的框架中,与大部分应用程序有关的框架包括但不限于:核心服务层340中的基础框架和可触摸层380中的UIKit框架。基础框架提供许多基本的对象类和数据类型,为所有应用程序提供最基本的系统服务,和UI无关。而UIKit框架提供的类是基础的UI类库,用于创建基于触摸的用户界面,iOS应用程序可以基于UIKit框架来提供UI,所以它提供了应用程序的基础架构,用于构建用户界面,绘图、处理和用户交互事件,响应手势等等。
触摸显示屏130用于接收用户使用手指、触摸笔等任何适合的物体在其上或附近的触摸操作,以及显示各个应用程序的用户界面。触摸显示屏130通常设置在终端130的前面板。触摸显示屏130可被设计成为全面屏、曲面屏或异型屏。触摸显示屏130还可被设计成为全面屏与曲面屏的结合,异型屏与曲面屏的结合,本实施例对此不加以限定。其中:
全面屏
全面屏可以是指触摸显示屏130占用终端100的前面板的屏占比超过阈值(比如80%或90%或95%)的屏幕设计。屏占比的一种计算方式为:(触摸显示屏130的面积/终端100的前面板的面积)*100%;屏占比的另一种计算方式为:(触摸显示屏130中实际显示区域的面积/终端100的前面板的面积)*100%;屏占比的再一种计算方式为:(触摸显示屏130的对角线/在终端100的前面板的对角线)*100%。示意性的如图3A所示的例子中,终端100的前 面板上近乎所有区域均为触摸显示屏130,在终端100的前面板40上,除中框41所产生的边缘之外的其它区域,全部为触摸显示屏130。该触摸显示屏130的四个角可以是直角或者圆角。
全面屏还可以是将至少一种前面板部件集成在触摸显示屏130内部或下层的屏幕设计。可选地,该至少一种前面板部件包括:摄像头、指纹传感器、接近光传感器、距离传感器等。在一些实施例中,将传统终端的前面板上的其他部件集成在触摸显示屏130的全部区域或部分区域中,比如将摄像头中的感光元件拆分为多个感光像素后,将每个感光像素集成在触摸显示屏130中每个显示像素中的黑色区域中。由于将至少一种前面板部件集成在了触摸显示屏130的内部,所以全面屏具有更高的屏占比。
当然在另外一些实施例中,也可以将传统终端的前面板上的前面板部件设置在终端100的侧边或背面,比如将超声波指纹传感器设置在触摸显示屏130的下方、将骨传导式的听筒设置在终端130的内部、将摄像头设置成位于终端的侧边且可插拔的结构。
在一些可选的实施例中,当终端100采用全面屏时,终端100的中框的单个侧边,或两个侧边(比如左、右两个侧边),或四个侧边(比如上、下、左、右四个侧边)上设置有边缘触控传感器120,该边缘触控传感器120用于检测用户在中框上的触摸操作、点击操作、按压操作和滑动操作等中的至少一种操作。该边缘触控传感器120可以是触摸传感器、热力传感器、压力传感器等中的任意一种。用户可以在边缘触控传感器120上施加操作,对终端100中的应用程序进行控制。
曲面屏
曲面屏是指触摸显示屏130的屏幕区域不处于一个平面内的屏幕设计。一般的,曲面屏至少存在这样一个截面:该截面呈弯曲形状,且曲面屏在沿垂直于该截面的任意平面方向上的投影为平面的屏幕设计,其中,该弯曲形状可以是U型。可选地,曲面屏是指至少一个侧边是弯曲形状的屏幕设计方式。可选地,曲面屏是指触摸显示屏130的至少一个侧边延伸覆盖至终端100的中框上。由于触摸显示屏130的侧边延伸覆盖至终端100的中框,也即将原本不具有显示功能和触控功能的中框覆盖为可显示区域和/或可操作区域,从而使得曲面屏具有了更高的屏占比。可选地,如图3B所示的例子中,曲面屏是指左右两个侧边42是弯曲形状的屏幕设计;或者,曲面屏是指上下两个侧边是弯曲形状 的屏幕设计;或者,曲面屏是指上、下、左、右四个侧边均为弯曲形状的屏幕设计。在可选的实施例中,曲面屏采用具有一定柔性的触摸屏材料制备。
异型屏
异型屏是外观形状为不规则形状的触摸显示屏,不规则形状不是矩形或圆角矩形。可选地,异型屏是指在矩形或圆角矩形的触摸显示屏130上设置有凸起、缺口和/或挖孔的屏幕设计。可选地,该凸起、缺口和/或挖孔可以位于触摸显示屏130的边缘、屏幕中央或两者均有。当凸起、缺口和/或挖孔设置在一条边缘时,可以设置在该边缘的中间位置或两端;当凸起、缺口和/或挖孔设置在屏幕中央时,可以设置在屏幕的上方区域、左上方区域、左侧区域、左下方区域、下方区域、右下方区域、右侧区域、右上方区域中的一个或多个区域中。当设置在多个区域中时,凸起、缺口和挖孔可以集中分布,也可以分散分布;可以对称分布,也可以不对称分布。可选地,该凸起、缺口和/或挖孔的数量也不限。
由于异型屏将触摸显示屏的上额区和/或下额区覆盖为可显示区域和/或可操作区域,使得触摸显示屏在终端的前面板上占据更多的空间,所以异型屏也具有更大的屏占比。在一些实施例中,缺口和/或挖孔中用于容纳至少一种前面板部件,该前面板部件包括摄像头、指纹传感器、接近光传感器、距离传感器、听筒、环境光亮度传感器、物理按键中的至少一种。
示例性的,该缺口可以设置在一个或多个边缘上,该缺口可以是半圆形缺口、直角矩形缺口、圆角矩形缺口或不规则形状缺口。示意性的如图3C所示的例子中,异型屏可以是在触摸显示屏130的上边缘的中央位置设置有半圆形缺口43的屏幕设计,该半圆形缺口43所空出的位置用于容纳摄像头、距离传感器(又称接近传感器)、听筒、环境光亮度传感器中的至少一种前面板部件;示意性的如图3D所示,异型屏可以是在触摸显示屏130的下边缘的中央位置设置有半圆形缺口44的屏幕设计,该半圆形缺口44所空出的位置用于容纳物理按键、指纹传感器、麦克风中的至少一种部件;示意性的如图3E所示的例子中,异型屏可以是在触摸显示屏130的下边缘的中央位置设置有半椭圆形缺口45的屏幕设计,同时在终端100的前面板上还形成有一个半椭圆型缺口,两个半椭圆形缺口围合成一个椭圆形区域,该椭圆形区域用于容纳物理按键或者指纹识别模组;示意性的如图3F所示的例子中,异型屏可以是在触摸显示屏130中的上半部中设置有至少一个小孔45的屏幕设计,该小孔45所空出的 位置用于容纳摄像头、距离传感器、听筒、环境光亮度传感器中的至少一种前面板部件。
除此之外,本领域技术人员可以理解,上述附图所示出的终端100的结构并不构成对终端100的限定,终端可以包括比图示更多或更少的部件,或者组合某些部件,或者不同的部件布置。比如,终端100中还包括射频电路、输入单元、传感器、音频电路、无线保真(Wireless Fidelity,WiFi)模块、电源、蓝牙模块等部件,在此不再赘述。
首先对本申请所涉及的几个名词进行简介:
安卓操作系统:由美国谷歌公司出品的一种基于Linux的自由及开放源代码的操作系统,主要使用于移动设备。
应用程序:简称应用,在安卓操作系统中,一个应用程序通常包括至少一个程序组件。程序组件分为四种:活动(英文:Activity)组件、服务(英文:Service)组件、内容提供者(英文:Content Provider)组件和广播接收器(英文:Broadcast Receiver)组件。
本申请实施例中所述的拍摄界面显示方法,应用于图像采集组件集成在触摸显示屏的终端中。终端采用两种方式将图像采集组件集成在触摸显示屏上:第一,在触摸显示屏的顶部区域或底部区域形成具有开孔,将图像采集组件集成在开孔所形成的空腔内;第二,将图像采集组件中的感光元件拆分为多个感光像素后,将每个感光像素集成在触摸显示屏的全部或部分显示区域的每个显示像素的黑色区域中,使得图像采集组件与触摸显示屏完全融合为一体。示意性的,下述实施例中以该终端的图像采集组件采用上述两种方式之一集成在触摸显示屏上进行举例说明。
图4是本申请一个示例性实施例提供的拍摄界面显示方法的流程图。该拍摄界面显示方法可以应用于图像采集组件集成在触摸显示屏的终端中,该拍摄界面显示方法包括:
在步骤401中,终端接收第一操作信号,该第一操作信号是用于启用图像采集组件进行拍摄的信号。
用户对终端执行第一操作,该第一操作可以是滑动触摸显示屏,或按压终 端的物理按键组件,或点击触摸显示屏上和图像采集组件相关的应用程序图标,例如,该应用程序可以是拍摄应用程序,在线视频通话应用程序,或视频直播应用程序。
用户对终端执行第一操作后,终端中的CPU接收第一操作信号,该第一操作信号可以是触摸显示屏根据用户的滑动操作生成的滑动信号,或物理按键组件根据用户的按压操作生成的按压信号,或触摸显示屏根据用户的点击操作生成的按压信号。
触摸显示屏将第一操作信号上报给CPU。
在步骤402中,终端根据第一操作信号启用图像采集组件。
终端中的CPU接收第一操作信号后,向图像采集组件发送指令,该指令用于指示图像采集组件启动,图像采集组件接收终端的指令后启动进入工作模式。
在步骤403中,终端在触摸显示屏上显示拍摄界面,该拍摄界面上显示有组件位置信息,该组件位置信息是用于指示图像采集组件的边缘轮廓的提示信息。
图像采集组件启动的同时,终端在触摸显示屏上显示拍摄界面,该拍摄界面可以是拍摄应用程序的用户界面,或在线视频通话应用程序的用户界面,或视频直播应用程序的用户界面。
触摸显示屏上显示拍摄界面时,在拍摄界面上显示有组件位置信息,该组件位置信息位于图像采集组件的边缘,用户通过该组件位置信息可以清楚地确定图像采集组件所在的位置。
示意性的,以拍摄应用程序的用户界面为例对本申请的技术方案做详细描述。
图5A至图5D示出了本申请一个实施例的拍摄应用程序的用户界面示意图。如图所示,拍摄应用程序界面包括组件位置信息501a或501b、拍摄标识502、图像采集组件切换标识503、照片预览标识504、拍摄参数标识505、效果标识506、闪光灯标识507以及高动态光照渲染(High-Dynamic Range,HDR)标识508。
在一个示例性实施例中,如图5A所示,在触摸显示屏130上形成开孔509a,将图像采集组件集成在开孔509a所形成的空腔内,组件位置信息为轮廓标识501a。
当图像采集组件启动时,开孔509a的边缘会显示轮廓标识501a,用户可通过轮廓标识501a清楚地确定图像采集组件所在的位置。
在一个示例性实施例中,如图5B所示,在触摸显示屏130上形成开孔509a,将图像采集组件集成在开孔509a所形成的空腔内,组件位置信息是位置标识501b。
当图像采集组件启动时,开孔509a的周侧会显示位置标识501b,位置标识501b指向开孔509a,用户可通过位置标识501b清楚地确定图像采集组件所在的位置。
在一个示例性实施例中,如图5C所示,将图像采集组件中的感光元件拆分为多个感光像素后,将每个感光像素集成在预定区域509b的每个显示像素的黑色区域中,使得图像采集组件与触摸显示屏完全融合为一体,组件位置信息为轮廓标识501c。
当图像采集组件启动时,预定区域509b的边缘会显示轮廓标识501c,用户可通过轮廓标识501c清楚地确定图像采集组件所在的位置。
在一个示例性实施例中,如图5D所示,将图像采集组件中的感光元件拆分为多个感光像素后,将每个感光像素集成在预定区域509b的每个显示像素的黑色区域中,使得图像采集组件与触摸显示屏完全融合为一体,组件位置信息为位置标识501d。
当图像采集组件启动时,预定区域509b的周侧会显示位置标识501d,位置标识501d指向预定区域509b,用户可通过位置标识501d清楚地确定图像采集组件所在的位置。
在拍摄应用界面中,用户点击拍摄标识502即可完成拍摄;用户点击图像采集组件切换标识503即可从正在工作中的图像采集组件切换到另外的图像采集组件,例如,目前正在使用后置图像采集组件拍摄,点击图像采集组件切换标识503,后置图像采集组件停止工作,由前置图像采集组件开始工作;用户点击照片预览标识504,即可进入照片预览模式预览照片;用户点击拍摄参数标识505,即可选择拍摄参数,拍摄参数可以是光圈值、快门值、曝光值或感光度值等;用户点击效果标识506即可选择拍摄效果,例如黑白模式、旧照片模式、胶片模拟模式等;用户点击闪光灯标识507即可选择闪光工作模式,例如闪光灯强制开启模式、闪光灯自动开启模式、闪光灯关闭模式等;用户点击HDR标识即可选择HDR模式,例如HDR开启模式、HDR自动模式、HDR 关闭模式等。
综上所述,本实施例提供的拍摄界面显示方法,通过在触摸显示屏上显示拍摄界面,该拍摄界面上显示有组件位置信息,该组件位置信息是用于指示图像采集组件所在位置的提示信息,解决了图像采集组件集成在触摸显示屏的终端中,图像采集组件与触摸显示屏在视觉上融为一体,用户不容易辨认图像采集组件所在位置的问题,使得用户在使用图像采集组件集成在触摸显示屏的终端的图像采集组件时,能够根据拍摄界面上显示的组件位置信息清楚地确定图像采集组件所在的位置,方便用户使用图像采集组件对准拍摄目标物进行拍摄。
图6是本申请一个示例性实施例提供的拍摄界面显示方法的流程图。该拍摄界面显示方法可以应用于图像采集组件集成在触摸显示屏的终端中,该终端的触摸显示屏上具有开孔,图像采集组件集成在开孔所形成的空腔内,该拍摄界面显示方法包括:
在步骤601中,终端接收第一操作信号,第一操作信号是用于启用图像采集组件进行拍摄的信号。
用户对终端执行第一操作,该第一操作可以是滑动触摸显示屏,或按压终端的物理按键组件,或点击触摸显示屏上和图像采集组件相关的应用程序图标,例如,该应用程序可以是拍摄应用程序,在线视频通话应用程序,或视频直播应用程序。
用户对终端执行第一操作后,终端中的CPU接收第一操作信号,该第一操作信号可以是触摸显示屏根据用户的滑动操作生成的滑动信号,或物理按键组件根据用户的按压操作生成的按压信号,或触摸显示屏根据用户的点击操作生成的按压信号。
触摸显示屏将第一操作信号上报给CPU。
在步骤602中,终端根据第一操作信号启用图像采集组件。
终端中的CPU接收第一操作信号后,向图像采集组件发送指令,该指令用于指示图像采集组件启动,图像采集组件接收终端的指令后启动进入工作模式,进入步骤603a或步骤603b。
在步骤603a中,终端在触摸显示屏上显示第一拍摄界面,第一拍摄界面上显示有组件位置信息,组件位置信息围绕开孔的边缘轮廓进行展示。
图像采集组件启动的同时,终端在触摸显示屏上显示第一拍摄界面,第一拍摄界面可以是拍摄应用程序的用户界面,或在线视频通话应用程序的用户界面,或视频直播应用程序的用户界面。
触摸显示屏上显示第一拍摄界面时,在第一拍摄界面上显示有组件位置信息,该组件位置信息围绕开孔的边缘轮廓进行展示,组件位置信息是用于指示开孔的边缘轮廓的提示信息,用户通过该组件位置信息可以清楚地确定图像采集组件所在的位置。
在一个示例性实施例中,第一拍摄界面为图5A所示的拍摄应用程序的用户界面。如图所示,触摸显示屏130上形成有开孔509a,图像采集组件集成在开孔509a所形成的空腔内,组件位置信息为轮廓标识501a,轮廓标识501a围绕开孔509a的边缘进行展示,用户通过该轮廓标识501a可以清楚地确定图像采集组件所在的位置。
在步骤603b中,终端在触摸显示屏上显示第一拍摄界面,第一拍摄界面上显示有组件位置信息,组件位置信息位于开孔所在位置的周侧,且指向开孔所在位置。
图像采集组件启动的同时,终端在触摸显示屏上显示第一拍摄界面,第一拍摄界面可以是拍摄应用程序的用户界面,或在线视频通话应用程序的用户界面,或视频直播应用程序的用户界面。
触摸显示屏上显示第一拍摄界面时,在第一拍摄界面上显示有组件位置信息,组件位置信息位于开孔所在位置的周侧,且指向开孔所在位置,用户通过该组件位置信息可以清楚地确定图像采集组件所在的位置。
在一个示例性实施例中,第一拍摄界面为图5B所示的拍摄应用程序的用户界面。如图所示,触摸显示屏130上形成有开孔509a,图像采集组件集成在开孔509a所形成的空腔内,组件位置信息为位置标识501b,位置标识501b位于开孔509a所在位置的周侧,且指向开孔509a所在位置,用户通过该位置标识501b可以清楚地确定图像采集组件所在的位置。
图7是采用开孔集成图像采集组件的触摸显示屏的剖面图,如图所示,触摸显示屏130上具有开孔509a,图像采集组件701设置于开孔509a形成的空腔702内,和触摸显示屏130在视觉上融为一体。
在步骤604中,终端获取拍摄参数,拍摄参数包括:光圈值、快门值、曝光值、对焦信息、感光度值中的至少一种。
终端通过内置的程序获取拍摄参数,拍摄参数可以是光圈值、快门值、曝光值、对焦信息、感光度值中的至少一种。
光圈是一种用来控制光线透过镜头,进入感光元件的光量的装置。对于设置于终端中的图像采集组件而言,通常不具备可调节的物理光圈,因此,终端中的光圈是内置的程序模拟的结果,其对应的是图像采集组件的通光量和景深,图像采集组件通光量越大,光圈值越小,通光量越小,光圈值越大;图像采集组件景深越浅,光圈值越小,景深越深,光圈值越大。
快门速度是和曝光时间相关的物理量,快门速度越快,曝光时间越短,快门速度越慢,曝光时间越长,同时,快门值和快门速度成反比,快门值越大,快门速度越慢,快门值越小,快门速度越快。
感光度是感光元件对光线的反应速度,感光度值越高,感光元件对光线的反应速度越快。
对焦信息反映的是对焦点所在区域的图像的清晰度,例如,终端根据图像采集组件采集到的图像信息判断对焦点所在区域的图像的清晰度是否最高,如果是,则确定对焦成功。
曝光值对应的是拍摄参数的组合,曝光值越大,拍摄参数的组合往照片偏亮的方向调整;曝光值越小,拍摄参数的组合往照片偏暗的方向调整。
在步骤605a中,终端根据拍摄参数确定组件位置信息的显示大小。
终端根据获得的参数对组件位置信息的显示大小进行调节。例如,当光圈值较小,对应的光圈较大时,显示较大的组件位置信息,当光圈值较大,对应的光圈较小时,显示较小的组件位置信息;当快门值较大时,显示较大的组件位置信息,当快门值较小时,显示较小的组件位置信息;当曝光值较大时,显示较大的组件位置信息,当曝光值较小时,显示较小的组件位置信息;当没有对上焦时,显示较小的组件位置信息,当对焦成功时,显示较大的组件位置信息;当感光度值较大时,显示较大的组件位置信息,当感光度值较小时,显示较小的组件位置信息。
示意性的,以拍摄应用程序的用户界面为例对拍摄参数控制方法做详细描述。
图8A示出了本申请一个实施例的拍摄参数控制方法的示意图,本实施例中,组件位置信息为轮廓标识501a。
如左图所示,触摸显示屏130上显示有拍摄应用程序的用户界面,用户界 面包括轮廓标识501a以及拍摄参数标识505。
以拍摄参数标识505为光圈值标识为例,当用户点击拍摄参数标识505选择光圈值标识后,用户可在触摸显示屏130上滑动操作,触摸显示屏130根据用户的滑动操作生成滑动信号,该滑动信号为第二操作信号,触摸显示屏130将第二操作信号上报给终端中的CPU,CPU第二操作信号对光圈值进行调节,若光圈值变大,如右图所示,对应的光圈值标识505的光圈图标显示为大光圈图标,与此同时,轮廓标识501a也会变大,其轮廓线也相应地变粗。
同理,当用户选择的拍摄参数为曝光值、快门值或感光度值时,在触摸显示屏130上滑动操作,触摸显示屏130根据用户的滑动操作生成滑动信号,该滑动信号为第三操作信号或第四操作信号,触摸显示屏130向终端中的CPU上报第三操作信号或第四操作信号,CPU根据触摸显示屏130上报的第三操作信号或第四操作信号对曝光值、快门值或感光度值进行调节,轮廓标识501a的大小和/或轮廓线的粗细也会随着曝光值、快门值或感光度值的变化而变化。
同理,当组件位置信息为位置标识时,也可以通过改变拍摄参数改变位置标识的大小。
需要说明的是,上述根据拍摄参数确定组件位置信息的大小,以及通过点击拍摄参数标识选择拍摄参数进而通过滑动操作改变操作参数只是示例性的,实际应用中并不局限于此。
在步骤605b中,终端根据拍摄参数确定组件位置信息的显示颜色。
终端根据获得的参数对组件位置信息的颜色进行调节。
例如,当光圈值较小,对应的光圈较大时,组件位置信息显示明亮的颜色,当光圈值较大,对应的光圈较小时,组件位置信息显示暗淡的颜色,由于光圈较大时图像采集组件的通光量较大,因此用明亮的颜色提示用户此时光圈较大通光量较大,相对应的,由于光圈较小时图像采集组件的通光量小,因此用暗淡的颜色提醒用户此时光圈较小通光量较小。
当快门值较大时,组件位置信息显示暗淡的颜色,当快门值较小时,组件位置信息显示明亮的颜色,由于快门值较大时,快门速度较慢,手持拍摄容易导致照片不清晰,因此用暗淡的颜色提醒用户此时快门速度较慢拍摄出的照片容易模糊,由于快门值较小时,快门速度较快,因此用明亮的颜色提示此时快门速度较快拍摄安全。
当曝光值较大时,组件位置信息显示明亮的颜色,当曝光值较小时,组件 位置信息显示暗淡的颜色,由于曝光值较大时拍摄出的照片整体偏亮,因此用明亮的颜色提示用户此时曝光值较大拍摄出的照片较亮,相对应的,由于曝光值较小时拍摄出的照片整体偏暗,因此用暗淡的颜色提醒用户此时曝光值较小,拍摄出的照片较暗。
当对焦未能成功时,组件位置信息显示为暗淡的颜色提醒用户对焦尚未成功,不适合拍摄,当对焦成功时,组件位置信息显示为明亮的颜色提示用户对焦成功,适合拍摄。
当感光度值较大时,组件位置信息显示暗淡的颜色,当感光度值较小时,组件位置信息显示明亮的颜色,由于感光度值较大时拍摄出的照片噪点较多,因此用暗淡的颜色提醒用户感光度值较大画质较劣,相对应的,由于感光度值较小时拍摄出的照片噪点更少,因此用明亮的颜色提示用户感光度值较小,画质较优。
上述实施例中,拍摄参数不同,组件位置信息的颜色可以不同。
需要说明的是,上述根据拍摄参数确定组件位置信息的显示颜色只是示例性的,实际应用中并不局限于此。
和步骤605a相同,在步骤605b中,拍摄参数可根据用户的操作进行控制,例如,点击选定一个拍摄参数后,通过滑动改变该拍摄参数值,同时,组件位置信息的显示颜色随着拍摄参数的变化而变化。
在步骤605c中,终端根据拍摄参数确定组件位置信息的显示形状。
终端根据获得的参数对组件位置信息的显示形状进行调节。
例如,当光圈值较小,对应的光圈较大时,组件位置信息的轮廓线显示为虚线,当光圈值较大,对应的光圈较小时,组件位置信息显示为实线,由于光圈较大时拍摄出的照片景深较浅,因此用代表模糊的虚线提示用户此时光圈较大通光量较大,相对应的,由于光圈较小时拍摄出的照片景深较深,因此用代表清晰的实线提示用户此时光圈较小通光量较小。
当快门值较大时,组件位置信息显示为虚线,当快门值较小时,组件位置信息显示为实线,由于快门值较大时,快门速度较慢,手持拍摄容易导致照片不清晰,因此用代表模糊的虚线提醒用户此时快门速度较慢拍摄出的照片容易模糊,由于快门值较小时,快门速度较快,因此用代表清晰的实线提示此时快门速度较快拍摄安全。
当曝光值较大时,组件位置信息显示为实线,当曝光值较小时,组件位置 信息显示为虚线,由于曝光值较大时拍摄出的照片更明亮,因此用代表清晰的实线提示用户曝光值较大拍摄出的照片较亮,相对应的,由于曝光值较小时拍摄出的照片更暗,因此用代表模糊不清楚的虚线提醒用户曝光值较小拍摄出的照片较暗。
当对焦未能成功时,组件位置信息显示为虚线提醒用户对焦尚未成功,不适合拍摄,当对焦成功时,组件位置信息显示为实线提示用户对焦成功,适合拍摄。
当感光度值较大时,组件位置信息显示为虚线,当感光度值较小时,组件位置信息显示为实线,由于感光度值较大时拍摄出的照片噪点较多,因此用代表模糊不清楚的虚线提醒用户感光度值较大画质较劣,相对应的,由于感光度值较小时拍摄出的照片噪点更少,因此用代表清晰的实线提示用户感光度较小画质较优。
上述实施例中,拍摄参数不同,组件位置信息的形状可以不同。
需要说明的是,上述根据拍摄参数确定组件位置信息的显示颜色只是示例性的,实际应用中并不局限于此。
和步骤605a相同,在步骤605c中,拍摄参数可根据用户的操作进行控制,例如,点击选定一个拍摄参数后,通过滑动改变该拍摄参数值,同时,组件位置信息的显示形状随着拍摄参数的变化而变化。
在步骤605d中,终端根据拍摄参数确定组件位置信息的显示动画。
终端根据获得的参数对组件位置信息的显示动画进行调节。
例如,当光圈值较小,对应的光圈较大时,组件位置信息的显示动画为亮度恒定,当光圈值较大,对应的光圈较小时,组件位置信息的显示动画为由亮到暗,再由暗到亮的渐变动画,由于光圈较大时图像采集组件的通光量较大,因此用亮度恒定的组件位置信息提示用户此时光圈较大通光量较大,拍摄出的照片正常,相对应的,由于光圈较小时图像采集组件的通光量小,因此用带有呼吸效果的由亮到暗,再由暗到亮的渐变动画提醒用户此时光圈较小通光量较小,拍摄出的照片会偏暗或模糊。
当快门值较大,大于第一阈值,其对应的快门速度较慢时,组件位置信息的显示动画为由亮到暗,再由暗到亮的渐变动画,当快门值较小,小于第一阈值,其对应的快门速度较快时,组件位置信息的显示动画为亮度恒定,由于快门速度较慢时拍摄照片容易模糊,因此用带有呼吸效果的由亮到暗,再由暗到 亮的渐变动画提醒用户此时快门速度较慢拍摄出的照片容易模糊,由于快门值较小时,快门速度较快,因此用亮度恒定的组件位置信息提示此时快门速度较快拍摄安全。
当曝光值较大,大于第二阈值时,或,当曝光值较小,小于第三阈值时,组件位置信息的显示动画为由亮到暗,再由暗到亮的渐变动画,由于曝光值大于第二阈值时曝光过度,当曝光值小于第三阈值时曝光不够,因此用带有呼吸效果的由亮到暗,再由暗到亮的渐变动画提醒用户曝光过度或曝光不够,当曝光值介于第一阈值和第二阈值之间时,组件位置信息的显示动画为恒定的亮度,提示用户曝光正常。
当未对上焦时,组件位置信息的显示动画为亮度恒定,提醒用户还未对上焦,不适合拍摄,当对焦信息表示对焦成功时,组件位置信息的显示动画为闪烁展示,提示用户适合拍摄。
当感光度值较大时,组件位置信息的显示动画为由亮到暗,再由暗到亮的渐变动画,当感光度值较小时,组件位置信息的显示动画为亮度恒定,由于感光度值较大时拍摄出的照片噪点较多,因此用带有呼吸效果的由亮到暗,再由暗到亮的渐变动画提醒用户感光度值较大画质较劣,相对应的,由于感光度值较小时拍摄出的照片噪点更少,因此用亮度恒定的组件位置信息提示用户感光度值较小画质较优。
需要说明的是,上述根据拍摄参数确定组件位置信息的显示动画只是示例性的,实际应用中并不局限于此。
和步骤605a相同,在步骤605d中,拍摄参数可根据用户的操作进行控制,例如,点击选定一个拍摄参数后,通过滑动改变该拍摄参数值,同时,组件位置信息的显示动画随着拍摄参数的变化而变化。
需要说明的是,步骤605a、步骤605b、步骤605c、步骤605d可以是先后串联执行,也可以只执行步骤605a、步骤605b、步骤605c或步骤605d。
综上所述,本实施例提供的拍摄界面显示方法,通过在触摸显示屏上显示第一拍摄界面,该第一拍摄界面上显示有组件位置信息,该组件位置信息是用于指示图像采集组件的边缘轮廓的提示信息,解决了图像采集组件集成在触摸显示屏的终端中,图像采集组件与触摸显示屏在视觉上融为一体,用户不容易辨认图像采集组件所在位置的问题,使得用户在使用图像采集组件集成在触摸显示屏的终端的图像采集组件时,能够根据拍摄界面上显示的组件位置信息清 楚地确定图像采集组件所在的位置,方便用户使用图像采集组件对准拍摄目标物进行拍摄。
进一步的,本实施例提供的拍摄界面显示方法,通过根据拍摄参数确定组件位置信息的显示大小、显示颜色、显示形状和显示动画中的至少一种,用户可以通过组件位置信息的显示大小、显示颜色、显示形状和显示动画中的至少一种直观的获得拍摄参数对拍摄效果的影响,方便用户根据组件位置信息的显示大小、显示颜色、显示形状和显示动画中至少一种提示对拍摄参数进行调节。
图9是本申请一个示例性实施例提供的拍摄界面显示方法的流程图。该拍摄界面显示方法可以应用于图像采集组件集成在触摸显示屏的终端中,该终端将图像采集组件中的感光元件拆分为多个感光像素后,将每个感光像素分散地集成在触摸显示屏上的预定区域内,该拍摄界面显示方法包括:
在步骤901中,终端接收第一操作信号,第一操作信号是用于启用图像采集组件进行拍摄的信号。
用户对终端执行第一操作,该第一操作可以是滑动触摸显示屏,或按压终端的物理按键组件,或点击触摸显示屏上和图像采集组件相关的应用程序图标,例如,该应用程序可以是拍摄应用程序,在线视频通话应用程序,或视频直播应用程序。
用户对终端执行第一操作后,终端中的CPU接收第一操作信号,该第一操作信号可以是触摸显示屏根据用户的滑动操作生成的滑动信号,或物理按键组件根据用户的按压操作生成的按压信号,或触摸显示屏根据用户的点击操作反生成的按压信号。
触摸显示屏将第一操作信号上报给CPU。
在步骤902中,终端根据第一操作信号启用图像采集组件。
终端中的CPU接收第一操作信号后,向图像采集组件发送指令,该指令指示图像采集组件启动,图像采集组件接收终端的指令后启动进入工作模式,进入步骤903a或步骤903b。
在步骤903a中,在触摸显示屏上显示第二拍摄界面,第二拍摄界面上显示有组件位置信息,组件位置信息围绕预定区域的边缘轮廓进行展示。
图像采集组件启动的同时,终端在触摸显示屏上显示第二拍摄界面,第二拍摄界面可以是拍摄应用程序的用户界面,或在线视频通话应用程序的用户界 面,或视频直播应用程序的用户界面。
触摸显示屏上显示第二拍摄界面时,在第二拍摄界面上显示有组件位置信息,该组件位置信息围绕预定区域的边缘轮廓进行展示,组件位置信息是用于指示图像采集组件的边缘轮廓的提示信息,用户通过该组件位置信息可以清楚地确定图像采集组件所在的位置。
在一个示例性实施例中,第二拍摄界面为图5B所示的拍摄应用程序的用户界面。如图所示,触摸显示屏130的预定区域509b集成有图像采集组件,图像采集组件中的感光元件拆分为多个感光像素后,将每个感光像素集成在预定区域509b的每个显示像素的黑色区域中,使得图像采集组件与触摸显示屏完全融合为一体,组件位置信息为轮廓标识501c,轮廓标识501c围绕预定区域509b的边缘进行展示,用于指示图像采集组件的边缘轮廓的提示信息,用户通过该轮廓标识501c可以清楚地确定图像采集组件所在的位置。
在步骤903b中,终端在触摸显示屏上显示第二拍摄界面,第二拍摄界面上显示有组件位置信息,组件位置信息位于预定区域所在位置的周侧,且指向预定区域所在位置。
图像采集组件启动的同时,终端在触摸显示屏上显示第二拍摄界面,第二拍摄界面可以是拍摄应用程序的用户界面,或在线视频通话应用程序的用户界面,或视频直播应用程序的用户界面。
触摸显示屏上显示第二拍摄界面时,在第二拍摄界面上显示有组件位置信息,组件位置信息位于预定区域所在位置的周侧,且指向预定区域所在位置,用户通过该组件位置信息可以清楚地确定图像采集组件所在的位置。
在一个示例性实施例中,第一拍摄界面为图5D所示的拍摄应用程序的用户界面。如图所示,触摸显示屏130的预定区域509b集成有图像采集组件,图像采集组件中的感光元件拆分为多个感光像素后,将每个感光像素集成在预定区域509b的每个显示像素的黑色区域中,使得图像采集组件与触摸显示屏完全融合为一体,组件位置信息为位置标识501d,位置标识501d位于预定区域509b所在位置的周侧,且指向预定区域509b所在位置,用户通过该位置标识501d可以清楚地确定图像采集组件所在的位置。
图10示出了一种集成有感光像素的触摸显示屏的显示像素阵列图。如图所示,每个显示像素包括3个子像素单元,分别为R(RED,红)子像素单元、G(Green,绿)子像素单元、B(Blue,蓝)子像素单元。每个子像素单元1002 中都具有一个黑色区域1001,图像采集组件的每个感光像素1003集成在每个子像素单元1002的黑色区域1001中,集成有感光像素1003的显示像素形成的预定区域509b即为图像采集组件所在的位置。当图像采集组件启动时,位于预定区域509b的的显示像素处于关闭状态,使位于预定区域509b的图像采集组件感光像素1003可以正常工作。
在步骤904中,终端获取拍摄参数,拍摄参数包括:光圈值、快门值、曝光值、对焦信息、感光度值中的至少一种。
终端通过内置的程序获取拍摄参数,拍摄参数可以是光圈值、曝光度、感光度中的至少一种。
光圈是一种用来控制光线透过镜头,进入感光元件的光量的装置。对于设置于终端中的图像采集组件而言,通常不具备可调节的物理光圈,因此,终端中的光圈是内置的程序模拟的结果,其对应的是图像采集组件的通光量和景深,图像采集组件通光量越大,光圈值越小,通光量越小,光圈值越大;图像采集组件景深越浅,光圈值越小,景深越深,光圈值越大。
快门速度是和曝光时间相关的物理量,快门速度越快,曝光时间越短,快门速度越慢,曝光时间越长,同时,快门值和快门速度成反比,快门值越大,快门速度越慢,快门值越小,快门速度越快。
感光度是感光元件对光线的反应速度,感光度值越高,感光元件对光线的反应速度越快。
对焦信息反映的是对焦点所在区域的图像的清晰度,例如,终端根据图像采集组件采集到的图像信息判断对焦点所在区域的图像的清晰度是否最高,如果是,则确定对焦成功。
曝光值对应的是拍摄参数的组合,曝光值越大,拍摄参数的组合往照片偏亮的方向调整,曝光值越小,拍摄参数的组合往照片偏暗的方向调整。
在步骤905a中,终端根据拍摄参数确定组件位置信息的显示大小。
终端根据获得的参数对组件位置信息的显示大小进行调节。例如,当光圈值较小,对应的光圈较大时,显示较大的组件位置信息,当光圈值较大,对应的光圈较小时,显示较小的组件位置信息;当快门值较大时,显示较大的组件位置信息,当快门值较小时,显示较小的组件位置信息;当曝光值较大时,显示较大的组件位置信息,当曝光值较小时,显示较小的组件位置信息;当没有对上焦时,显示较小的组件位置信息,当对焦成功时,显示较大的组件位置信 息;当感光度值较大时,显示较大的组件位置信息,当感光度值较小时,显示较小的组件位置信息。
图8C示出了本申请一个实施例的拍摄参数控制方法的示意图,在该实施例中,组件位置信息为轮廓标识501c。
如左图所示,触摸显示屏130上显示有拍摄应用程序的用户界面,用户界面包括轮廓标识501c以及拍摄参数标识505。
以拍摄参数标识505为光圈值标识为例,当用户点击拍摄参数标识505选择光圈值标识后,用户可在触摸显示屏130上滑动操作,触摸显示屏130根据用户的滑动操作生成滑动信号,该滑动信号为第五操作信号,触摸显示屏130将第五操作信号上报给终端中的CPU,CPU第五操作信号对光圈值进行调节,若光圈值变大,如右图所示,对应的光圈值标识505的光圈图标显示为大光圈图标,与此同时,轮廓标识501c也会变大,其轮廓线也相应地变粗。
同理,当用户选择的拍摄参数为曝光值、快门值或感光度值时,在触摸显示屏130上滑动操作,触摸显示屏130根据用户的滑动操作生成滑动信号,该滑动信号为第六操作信号或第七操作信号,触摸显示屏130向终端中的CPU上报第六操作信号或第七操作信号,CPU根据触摸显示屏130上报的第六操作信号或第七操作信号对曝光值、快门值或感光度值进行调节,轮廓标识501c的大小和/或轮廓线的粗细也会随着曝光值、快门值或感光度值的变化而变化。
同理,当组件位置信息为位置标识时,也可以通过改变拍摄参数改变位置标识的大小。
需要说明的是,上述根据拍摄参数确定组件位置信息的大小,以及通过点击拍摄参数标识选择拍摄参数进而通过滑动操作改变操作参数只是示例性的,实际应用中并不局限于此。
和步骤605a相同,在步骤905a中,拍摄参数可根据用户的操作进行控制,例如,点击选定一个拍摄参数后,通过滑动改变该拍摄参数值,同时,组件位置信息的显示大小随着拍摄参数的变化而变化。
在步骤905b中,终端根据拍摄参数确定组件位置信息的显示颜色。
终端根据获得的参数对组件位置信息的颜色进行调节。
例如,当光圈值较小,对应的光圈较大时,组件位置信息显示明亮的颜色,当光圈值较大,对应的光圈较小时,组件位置信息显示暗淡的颜色,由于光圈较大时图像采集组件的通光量较大,因此用明亮的颜色提示用户此时光圈较大 通光量较大,相对应的,由于光圈较小时图像采集组件的通光量小,因此用暗淡的颜色提醒用户此时光圈较小通光量较小。
当快门值较大时,组件位置信息显示暗淡的颜色,当快门值较小时,组件位置信息显示明亮的颜色,由于快门值较大时,快门速度较慢,手持拍摄容易导致照片不清晰,因此用暗淡的颜色提醒用户此时快门速度较慢拍摄出的照片容易模糊,由于快门值较小时,快门速度较快,因此用明亮的颜色提示此时快门速度较快拍摄安全。
当曝光值较大时,组件位置信息显示明亮的颜色,当曝光值较小时,组件位置信息显示暗淡的颜色,由于曝光值较大时拍摄出的照片整体偏亮,因此用明亮的颜色提示用户此时曝光值较大拍摄出的照片较亮,相对应的,由于曝光值较小时拍摄出的照片整体偏暗,因此用暗淡的颜色提醒用户此时曝光值较小拍摄出的照片较暗。
当对焦未能成功时,组件位置信息显示为暗淡的颜色提醒用户对焦尚未成功,不适合拍摄,当对焦成功时,组件位置信息显示为明亮的颜色提示用户对焦成功,适合拍摄。
当感光度值较大时,组件位置信息显示暗淡的颜色,当感光度值较小时,组件位置信息显示明亮的颜色,由于感光度值较大时拍摄出的照片噪点较多,因此用暗淡的颜色提醒用户感光度值较大画质较劣,相对应的,由于感光度值较小时拍摄出的照片噪点更少,因此用明亮的颜色提示用户感光度值较小画质较优。其中,拍摄参数不同,组件位置信息的颜色可以不同。
上述实施例中,拍摄参数不同,组件位置信息的颜色可以不同。
需要说明的是,上述根据拍摄参数确定组件位置信息的显示颜色只是示例性的,实际应用中并不局限于此。
和步骤905a相同,在步骤905b中,拍摄参数可根据用户的操作进行控制,例如,点击选定一个拍摄参数后,通过滑动改变该拍摄参数值,同时,组件位置信息的显示颜色随着拍摄参数的变化而变化。
在步骤905c中,终端根据拍摄参数确定组件位置信息的显示形状。
终端根据获得的参数对组件位置信息的显示形状进行调节。
例如,当光圈值较小,对应的光圈较大时,组件位置信息的轮廓线显示为虚线,当光圈值较大,对应的光圈较小时,组件位置信息的轮廓线显示为实线,由于光圈较大时拍摄出的照片景深较浅,因此用代表模糊的虚线提示用户此时 光圈较大通光量较大,相对应的,由于光圈较小时拍摄出的照片景深较深,因此用代表清晰的实线提示用户此时光圈较小通光量较小。
当快门值较大时,组件位置信息显示为虚线,当快门值较小时,组件位置信息显示为实线,由于快门值较大时,快门速度较慢,手持拍摄容易导致照片不清晰,因此用代表模糊的虚线提醒用户此时快门速度较慢拍摄出的照片容易模糊,由于快门值较小时,快门速度较快,因此用代表清晰的实线提示此时快门速度较快拍摄安全。
当曝光值较大时,组件位置信息的轮廓线显示为实线,当曝光值较小时,组件位置信息的轮廓线显示为虚线,由于曝光值较大时拍摄出的照片更明亮,因此用代表清晰的实线提示用户曝光值较大拍摄出的照片较亮,相对应的,由于曝光值较小时拍摄出的照片更暗,因此用代表模糊不清楚的虚线提醒用户曝光值较小拍摄出的照片较暗。
当感光度值较大时,组件位置信息的轮廓线显示为虚线,当感光度值较小时,组件位置信息的轮廓线显示为实线,由于感光度值较大时拍摄出的照片噪点较多,因此用代表模糊不清楚的虚线提醒用户感光度值较大画质较劣,相对应的,由于感光度值较小时拍摄出的照片噪点更少,因此用代表清晰的实线提示用户感光度值较小画质较优。
当对焦未能成功时,组件位置信息显示为虚线提醒用户对焦尚未成功,不适合拍摄,当对焦成功时,组件位置信息显示为实线提示用户对焦成功,适合拍摄。
上述实施例中,拍摄参数不同,组件位置信息的形状可以不同。
需要说明的是,上述根据拍摄参数确定组件位置信息的显示颜色只是示例性的,实际应用中并不局限于此。
和步骤905a相同,在步骤905c中,拍摄参数可根据用户的操作进行控制,例如,点击选定一个拍摄参数后,通过滑动改变该拍摄参数值,同时,组件位置信息的显示形状随着拍摄参数的变化而变化。
在步骤905d中,终端根据拍摄参数确定组件位置信息的显示动画。
终端根据获得的参数对组件位置信息的显示动画进行调节。
例如,当光圈值较小,对应的光圈较大时,组件位置信息的显示动画为亮度恒定,当光圈值较大,对应的光圈较小时,组件位置信息的显示动画为由亮到暗,再由暗到亮的渐变动画,由于光圈较大时图像采集组件的通光量较大, 因此用亮度恒定的组件位置信息提示用户此时光圈较大通光量较大,拍摄出的照片正常,相对应的,由于光圈较小时图像采集组件的通光量小,因此用带有呼吸效果的由亮到暗,再由暗到亮的渐变动画提醒用户此时光圈较小通光量较小,拍摄出的照片会偏暗或模糊。
当快门值较大,大于第一阈值,其对应的快门速度较慢时,组件位置信息的显示动画为由亮到暗,再由暗到亮的渐变动画,当快门值较小,小于第一阈值,其对应的快门速度较快时,组件位置信息的显示动画为亮度恒定,由于快门速度较慢时拍摄照片容易模糊,因此用带有呼吸效果的由亮到暗,再由暗到亮的渐变动画提醒用户此时快门速度较慢拍摄出的照片容易模糊,由于快门值较小时,快门速度较快,因此用亮度恒定的组件位置信息提示此时快门速度较快拍摄安全。
当曝光值较大,大于第二阈值时,或,当曝光值较小,小于第三阈值时,组件位置信息的显示动画为由亮到暗,再由暗到亮的渐变动画,由于曝光值大于第二阈值时曝光过度,当曝光值小于第三阈值时曝光不够,因此用带有呼吸效果的由亮到暗,再由暗到亮的渐变动画提醒用户曝光过度或曝光不够,当曝光值介于第一阈值和第二阈值之间时,组件位置信息的显示动画为恒定的亮度,提示用户曝光正常。
当未对上焦时,组件位置信息的显示动画为亮度恒定,提醒用户还未对上焦,不适合拍摄,当对焦信息表示对焦成功时,组件位置信息的显示动画为闪烁展示,提示用户适合拍摄。
当感光度值较大时,组件位置信息的显示动画为由亮到暗,再由暗到亮的渐变动画,当感光度较小时,组件位置信息显示动画为亮度恒定,由于感光度值较大时拍摄出的照片噪点较多,因此用带有呼吸效果的由亮到暗,再由暗到亮的渐变动画提醒用户感光度值较大画质较劣,相对应的,由于感光度值较小时拍摄出的照片噪点更少,因此用亮度恒定的组件位置信息提示用户感光度值较小画质较优。
需要说明的是,上述根据拍摄参数确定组件位置信息的显示动画只是示例性的,实际应用中并不局限于此。
和步骤905a相同,在步骤905d中,拍摄参数可根据用户的操作进行控制,例如,点击选定一个拍摄参数后,通过滑动改变该拍摄参数值,同时,组件位置信息的显示动画随着拍摄参数的变化而变化。
需要说明的是,步骤905a、步骤905b、步骤905c、步骤905d可以是先后串联执行,也可以只执行步骤905a、步骤905b、步骤905c或步骤905d。
综上所述,本实施例提供的拍摄界面显示方法,通过在触摸显示屏上显示第二拍摄界面,该第二拍摄界面上显示有组件位置信息,该组件位置信息是用于指示图像采集组件的边缘轮廓的提示信息,解决了图像采集组件集成在触摸显示屏的终端中,图像采集组件与触摸显示屏在视觉上融为一体,用户不容易辨认图像采集组件所在位置的问题,使得用户在使用图像采集组件集成在触摸显示屏的终端的图像采集组件时,能够根据拍摄界面上显示的组件位置信息清楚地确定图像采集组件所在的位置,方便用户使用图像采集组件对准拍摄目标物进行拍摄。
进一步的,本实施例提供的拍摄界面显示方法,通过根据拍摄参数确定组件位置信息的显示大小、显示颜色、显示形状和显示动画中的至少一种,用户可以通过组件位置信息的显示大小、显示颜色、显示形状和显示动画中的至少一种直观的获得拍摄参数对拍摄效果的影响,方便用户根据组件位置信息的显示大小、显示颜色、显示形状和显示动画中的至少一种的提示对拍摄参数进行调节。
以下为本申请实施例的装置实施例,对于装置实施例中未详细阐述的部分,可以参考上述方法实施例中公开的技术细节。
请参考图11,其示出了本发明本申请一个示例性实施例提供的拍摄界面显示装置的结构框图。该拍摄界面显示装置可以通过软件、硬件以及两者的组合实现成为终端的全部或一部分,该拍摄界面显示装置应用于采用全面屏设计的终端中。该拍摄界面显示装置包括:接收模块1101、获取模块1102、控制模块1103以及显示模块1104。
接收模块1101,用于实现上述步骤401、步骤601、步骤901及各个步骤中隐含的有关接收的功能。
获取模块1102,用于实现上述步骤604,步骤904及各个步骤中隐含的有关获取的功能。
控制模块1103,用于实现上述步骤402、步骤602、步骤605a、步骤605b、步骤605c、步骤605d、步骤902、步骤905a、步骤905b、步骤905c、步骤905d及各个步骤中隐含的有关控制的功能。
显示模块1104,用于实现上述步骤403、步骤603a、步骤603b、步骤903a、步骤903b及各个步骤中隐含的有关显示的功能。
综上所述,本实施例提供的拍摄界面显示装置,通过在触摸显示屏上显示第二拍摄界面,该第二拍摄界面上显示有组件位置信息,该组件位置信息是用于指示图像采集组件所在位置的提示信息,解决了图像采集组件集成在触摸显示屏的终端中,图像采集组件与触摸显示屏在视觉上融为一体,用户不容易辨认图像采集组件所在位置的问题,使得用户在使用图像采集组件集成在触摸显示屏的终端的图像采集组件时,能够根据拍摄界面上显示的组件位置信息清楚地确定图像采集组件所在的位置,方便用户使用图像采集组件对准拍摄目标物进行拍摄。
进一步的,本实施例提供的拍摄界面显示装置,通过根据拍摄参数确定组件位置信息的显示大小、显示颜色、显示形状和显示动画中的至少一种,用户可以通过组件位置信息的显示大小、显示颜色、显示形状和显示动画中的至少一种直观的获得拍摄参数对拍摄效果的影响,方便用户根据组件位置信息的显示大小、显示颜色、显示形状和显示动画中的至少一种的提示对拍摄参数进行调节。
本申请实施例还提供了一种终端,该终端包括处理器和存储器,所述存储器中存储有至少一条指令,所述指令由所述处理器加载并执行以实现如上各个实施例所述的拍摄界面显示方法。
本申请实施例还提供了一种计算机可读介质,该计算机可读介质存储有至少一条指令,所述至少一条指令由所述处理器加载并执行以实现如上各个实施例所述的拍摄界面显示方法。
本申请实施例还提供了一种计算机程序产品,该计算机程序产品存储有至少一条指令,所述至少一条指令由所述处理器加载并执行以实现如上各个实施例所述的拍摄界面显示方法。
本领域技术人员应该可以意识到,在上述一个或多个示例中,本申请实施例所描述的功能可以用硬件、软件、固件或它们的任意组合来实现。当使用软件实现时,可以将这些功能存储在计算机可读介质中或者作为计算机可读介质上的一个或多个指令或代码进行传输。计算机可读介质包括计算机存储介质和通信介质,其中通信介质包括便于从一个地方向另一个地方传送计算机程序的 任何介质。存储介质可以是通用或专用计算机能够存取的任何可用介质。
以上所述仅为本申请的较佳实施例,并不用以限制本申请,凡在本申请的精神和原则之内,所作的任何修改、等同替换、改进等,均应包含在本申请的保护范围之内。

Claims (20)

  1. 一种拍摄界面显示方法,其特征在于,应用于触摸显示屏中集成有图像采集组件的终端中,所述方法包括:
    接收第一操作信号,所述第一操作信号是用于启用所述图像采集组件图像采集组件进行拍摄的信号;
    根据所述第一操作信号启用所述图像采集组件;
    在所述触摸显示屏上显示拍摄界面,所述拍摄界面上显示有组件位置信息,组件位置信息所述组件位置信息是用于指示所述图像采集组件所在位置的提示信息。
  2. 根据权利要求1所述的方法,其特征在于,所述触摸显示屏包括开孔所述图像采集组件设置在所述开孔内,所述组件位置信息为轮廓标识;
    所述在所述触摸显示屏上显示拍摄界面,所述拍摄界面上显示有组件位置信息,包括:
    在所述触摸显示屏上显示第一拍摄界面,所述第一拍摄界面上显示有所述轮廓标识,所述轮廓标识围绕所述开孔的边缘轮廓进行展示。
  3. 根据权利要求1所述的方法,其特征在于,所述触摸显示屏包括开孔,所述图像采集组件设置在所述开孔内,所述组件位置信息为位置标识;
    所述在所述触摸显示屏上显示拍摄界面,所述拍摄界面上显示有组件位置信息,包括:
    在所述触摸显示屏上显示第一拍摄界面,所述第一拍摄界面上显示有所述位置标识,所述位置标识位于所述开孔所在位置的周侧,且所述位置标识指向所述开孔所在位置。
  4. 根据权利要求1所述的方法,其特征在于,所述图像采集组件的感光像素分散地集成在所述触摸显示屏上的预定区域内的显示像素中,所述组件位置信息为轮廓标识;
    所述在所述触摸显示屏上显示拍摄界面,所述拍摄界面上显示有组件位置信息,包括:
    在所述触摸显示屏上显示第二拍摄界面,所述第二拍摄界面上显示有所述轮廓标识,所述轮廓标识围绕所述预定区域的边缘轮廓进行展示。
  5. 根据权利要求1所述的方法,其特征在于,所述图像采集组件的感光像素分散地集成在所述触摸显示屏上的预定区域内的显示像素中,所述组件位置信息为位置标识;
    所述在所述触摸显示屏上显示拍摄界面,所述拍摄界面上显示有组件位置信息,包括:
    在所述触摸显示屏上显示第二拍摄界面,所述第二拍摄界面上显示有所述位置标识,所述位置标识位于所述预定区域的周侧,且所述位置标识指向所述预定区域所在位置。
  6. 根据权利要求1至5任一所述的方法,其特征在于,所述方法还包括:
    获取拍摄参数,所述拍摄参数包括:光圈值、快门值、曝光值、合焦信息、感光度值中的至少一种;
    根据所述拍摄参数确定所述组件位置信息的显示大小、显示颜色、显示形状和显示动画中的至少一种。
  7. 根据权利要求6所述的方法,其特征在于,所述根据所述拍摄参数确定所述组件位置信息的显示动画包括:
    若所述快门值大于第一阈值,则确定所述组件位置信息的显示动画为由亮到暗,再由暗到亮的渐变动画。
  8. 根据权利要求6所述的方法,其特征在于,所述根据所述拍摄参数确定所述组件位置信息的显示动画包括:
    若所述曝光值大于第二阈值,则确定所述组件位置信息的显示动画为逐渐变亮;
    若所述曝光值小于第三阈值,则确定所述组件位置信息的显示动画为逐渐变暗。
  9. 根据权利要求6所述的方法,其特征在于,所述根据所述拍摄参数确定 所述组件位置信息的显示动画包括:
    若所述对焦信息表示对焦成功,则确定所述组件位置信息的显示动画为闪烁展示。
  10. 一种拍摄界面显示装置,其特征在于,应用于触摸显示屏中集成有图像采集组件的终端中,所述装置包括:
    接收模块,用于接收第一操作信号,所述第一操作信号是用于启用所述图像采集组件进行拍摄的信号;
    控制模块,用于根据所述第一操作信号启用所述图像采集组件;
    显示模块,用于在所述触摸显示屏上显示拍摄界面,所述拍摄界面上显示有组件位置信息,所述组件位置信息是用于指示所述图像采集组件所在位置的提示信息。
  11. 根据权利要求10所述的装置,其特征在于,所述触摸显示屏上包括开孔,所述图像采集组件集成在所述开孔内,所述组件位置信息为轮廓标识;
    所述显示模块还用于在所述触摸显示屏上显示第一拍摄界面,所述第一拍摄界面上显示有所述轮廓标识,所述轮廓标识围绕所述开孔的边缘轮廓进行展示。
  12. 根据权利要求10所述的装置,其特征在于,所述触摸显示屏上包括开孔,所述图像采集组件集成在所述开孔内,所述组件位置信息为位置标识;
    所述显示模块还用于在所述触摸显示屏上显示第一拍摄界面,所述第一拍摄界面上显示有所述位置标识,所述位置标识位于所述开孔所在位置的周侧,且所述位置标识指向所述开孔所在位置。
  13. 根据权利要求10所述的装置,其特征在于,所述图像采集组件的感光像素分散地集成在所述触摸显示屏上的预定区域内的显示像素中,所述组件位置信息为轮廓标识;
    所述显示模块还用于在所述触摸显示屏上显示第二拍摄界面,所述第二拍摄界面上显示有所述轮廓标识,所述轮廓标识围绕所述预定区域的边缘轮廓进行展示。
  14. 根据权利要求10所述的装置,其特征在于,所述图像采集组件图像采集组件的感光像素分散地集成在所述触摸显示屏上的预定区域内的显示像素中,所述组件位置信息为位置标识;
    所述显示模块还用于在所述触摸显示屏上显示第二拍摄界面,所述第二拍摄界面上显示有所述位置标识,所述位置标识位于所述预定区域的周侧,且所述位置标识指向所述预定区域所在位置组件位置信息。
  15. 根据权利要求10至14任一所述的装置,其特征在于,所述装置还包括:获取模块;
    所述获取模块,用于获取拍摄参数,所述拍摄参数包括:光圈值、快门值、曝光值、合焦信息和感光度值中的至少一种;
    所述控制模块还用于根据所述拍摄参数确定所述信息组件位置信息的显示大小、显示颜色、显示形状和显示动画中的至少一种。
  16. 根据权利要求15所述的装置,其特征在于,所述控制模块还用于若所述快门值大于第一阈值,则确定所述组件位置信息的显示动画为由亮到暗,再由暗到亮的渐变动画。
  17. 根据权利要求15所述的装置,其特征在于,所述控制模块还用于若所述曝光值大于第二阈值,则确定所述组件位置信息的显示动画为逐渐变亮;
    若所述曝光值小于第三阈值,则确定所述组件位置信息的显示动画为逐渐变暗。
  18. 根据权利要求15所述的装置,其特征在于,所述控制模块还用于若所述对焦信息表示对焦成功,则确定所述组件位置信息的显示动画为闪烁展示。
  19. 一种终端,其特征在于,所述终端包括处理器和存储器,所述存储器中存储有至少一条指令,所述指令由所述处理器加载并执行以实现如权利要求1至9任一所述的拍摄界面显示方法。
  20. 一种计算机可读存储介质,其特征在于,所述存储介质中存储有至少一条指令,所述指令由处理器加载并执行以实现如权利要求1至9任一所述的拍摄界面显示方法。
PCT/CN2017/100590 2017-09-05 2017-09-05 拍摄界面显示方法、装置及终端 WO2019047028A1 (zh)

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