WO2022104952A1 - 屏幕状态控制方法、装置及存储介质 - Google Patents

屏幕状态控制方法、装置及存储介质 Download PDF

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Publication number
WO2022104952A1
WO2022104952A1 PCT/CN2020/135235 CN2020135235W WO2022104952A1 WO 2022104952 A1 WO2022104952 A1 WO 2022104952A1 CN 2020135235 W CN2020135235 W CN 2020135235W WO 2022104952 A1 WO2022104952 A1 WO 2022104952A1
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WO
WIPO (PCT)
Prior art keywords
capacitance
sensing area
preset
screen
area
Prior art date
Application number
PCT/CN2020/135235
Other languages
English (en)
French (fr)
Inventor
杨波
罗光跃
阮思旭
Original Assignee
捷开通讯(深圳)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 捷开通讯(深圳)有限公司 filed Critical 捷开通讯(深圳)有限公司
Publication of WO2022104952A1 publication Critical patent/WO2022104952A1/zh
Priority to US18/317,659 priority Critical patent/US20230291827A1/en

Links

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
    • H04M1/72448User interfaces specially adapted for cordless or mobile telephones with means for adapting the functionality of the device according to specific conditions
    • H04M1/72454User interfaces specially adapted for cordless or mobile telephones with means for adapting the functionality of the device according to specific conditions according to context-related or environment-related conditions
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/16Constructional details or arrangements
    • G06F1/1613Constructional details or arrangements for portable computers
    • G06F1/1633Constructional details or arrangements of portable computers not specific to the type of enclosures covered by groups G06F1/1615 - G06F1/1626
    • G06F1/1637Details related to the display arrangement, including those related to the mounting of the display in the housing
    • G06F1/1641Details related to the display arrangement, including those related to the mounting of the display in the housing the display being formed by a plurality of foldable display components
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01DMEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
    • G01D5/00Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable
    • G01D5/12Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means
    • G01D5/14Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage
    • G01D5/24Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage by varying capacitance
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/16Constructional details or arrangements
    • G06F1/1613Constructional details or arrangements for portable computers
    • G06F1/1633Constructional details or arrangements of portable computers not specific to the type of enclosures covered by groups G06F1/1615 - G06F1/1626
    • G06F1/1637Details related to the display arrangement, including those related to the mounting of the display in the housing
    • G06F1/1643Details related to the display arrangement, including those related to the mounting of the display in the housing the display being associated to a digitizer, e.g. laptops that can be used as penpads
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/16Constructional details or arrangements
    • G06F1/1613Constructional details or arrangements for portable computers
    • G06F1/1633Constructional details or arrangements of portable computers not specific to the type of enclosures covered by groups G06F1/1615 - G06F1/1626
    • G06F1/1637Details related to the display arrangement, including those related to the mounting of the display in the housing
    • G06F1/1652Details related to the display arrangement, including those related to the mounting of the display in the housing the display being flexible, e.g. mimicking a sheet of paper, or rollable
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/048Interaction techniques based on graphical user interfaces [GUI]
    • G06F3/0487Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser
    • G06F3/0488Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser using a touch-screen or digitiser, e.g. input of commands through traced gestures
    • 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
    • H04M1/0206Portable telephones comprising a plurality of mechanically joined movable body parts, e.g. hinged housings
    • H04M1/0208Portable telephones comprising a plurality of mechanically joined movable body parts, e.g. hinged housings characterized by the relative motions of the body parts
    • H04M1/0214Foldable telephones, i.e. with body parts pivoting to an open position around an axis parallel to the plane they define in closed position
    • 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
    • H04M1/0206Portable telephones comprising a plurality of mechanically joined movable body parts, e.g. hinged housings
    • H04M1/0241Portable telephones comprising a plurality of mechanically joined movable body parts, e.g. hinged housings using relative motion of the body parts to change the operational status of the telephone set, e.g. switching on/off, answering incoming call
    • H04M1/0245Portable telephones comprising a plurality of mechanically joined movable body parts, e.g. hinged housings using relative motion of the body parts to change the operational status of the telephone set, e.g. switching on/off, answering incoming call using open/close detection
    • 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
    • H04M1/0266Details of the structure or mounting of specific components for a display module assembly
    • H04M1/0268Details of the structure or mounting of specific components for a display module assembly including a flexible display panel
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04MTELEPHONIC COMMUNICATION
    • H04M2250/00Details of telephonic subscriber devices
    • H04M2250/12Details of telephonic subscriber devices including a sensor for measuring a physical value, e.g. temperature or motion

Definitions

  • the present invention relates to the field of electronic technology, and in particular, to a screen state control method, device and storage medium.
  • the terminal needs to set specific sensor elements to judge the folding state of the folding screen to determine the display mode of the screen, which will increase the manufacturing cost of the terminal and occupy the space of the terminal.
  • the present application provides a screen state control method, the method comprising:
  • the screen state is controlled based on the coupling capacitor meeting a first preset condition.
  • the coupling capacitor meets the first preset condition, including:
  • the detecting whether the capacitance change value of the capacitance sensor corresponding to the coupling capacitance is greater than a preset threshold value includes:
  • the detecting whether the capacitance change value of the capacitance sensing area corresponding to the coupling capacitance is greater than a preset threshold value includes:
  • the coupling capacitor meets the first preset condition, including:
  • the detecting whether the capacitance change rule of the capacitance sensor corresponding to the coupling capacitance satisfies a preset rule includes:
  • the detecting whether the capacitance change rule of the capacitance sensing area corresponding to the coupling capacitance satisfies a preset rule includes:
  • the coupling capacitor meets the first preset condition, including:
  • the detecting whether the capacitance change area of the capacitance sensor corresponding to the coupling capacitance is greater than a preset area threshold value includes:
  • the detecting whether the capacitance change area of the capacitance sensing area corresponding to the coupling capacitance is greater than a preset area threshold value includes:
  • the method further includes:
  • the coupling capacitor meets the first preset condition, it is determined that the screen is in a folded state, and the folded screen is controlled to be displayed in the first display state;
  • the coupling capacitor does not meet the first preset condition, it is determined that the screen is in the unfolded state, and the folding screen is controlled to be displayed in the second display state.
  • the method is applied to a terminal with a folding screen, and the folding screen is divided into a first capacitive sensing area and a second capacitive sensing area, including:
  • the first capacitive sensing area and the second capacitive sensing area interact with each other to generate the coupling capacitance
  • the screen state is controlled based on the coupling capacitance meeting the first preset condition.
  • the method further includes:
  • the waveform of the voltage applied to the driving line 102 of the first capacitive sensing area and/or the second capacitive sensing area is changed.
  • the present application provides a computer-readable storage medium, where a computer program is stored in the storage medium, and when the computer program is run on a computer, the computer is caused to perform the following steps:
  • the screen state is controlled based on the capacitance change value being greater than the preset threshold.
  • the detecting whether the capacitance change value of the capacitance sensing area corresponding to the coupling capacitance is greater than a preset threshold value includes:
  • the storage medium it also includes:
  • the screen state is controlled based on satisfying the preset rule based on the capacitance change rule.
  • the storage medium it also includes:
  • the screen state is controlled based on whether the capacitance change area is greater than the preset area threshold.
  • the present application provides a screen state control device, comprising:
  • a receiving module for receiving the coupling capacitance generated according to the folding event
  • a judgment module for judging that the coupling capacitor meets the first preset condition
  • a control module configured to control the screen state based on the coupling capacitance meeting a first preset condition.
  • the present application judges the folding state of the folding screen through sensors commonly used in terminals, including an angular acceleration sensor and a capacitive sensor.
  • a coupling capacitance generated according to a folding event is received; the coupling capacitance conforms to a first preset condition; and the screen state is controlled based on the coupling capacitance conforming to the first preset condition.
  • Detecting that the capacitive sensor corresponding to the coupling capacitor meets the first preset condition determining that the screen is in a folded state, and controlling the foldable screen to display in the first display state; detecting that the coupling capacitor does not meet the first preset condition, determining that the screen is unfolded state, control the folding screen to display in the second display state.
  • common sensor elements of the terminal can be used to control the state of the screen of the folding screen, thereby reducing the manufacturing cost of the terminal and increasing the available space of the terminal.
  • FIG. 1 provides a schematic structural diagram of a prior art capacitive touch screen touch panel for implementing the present application.
  • FIG. 2 is a schematic flowchart of a screen state control method provided by an embodiment of the present application.
  • FIG. 3 is a schematic structural diagram of a screen state control device according to an embodiment of the present application.
  • FIG. 4 is a schematic structural diagram of a mobile terminal according to an embodiment of the present application.
  • the present application provides a screen state control method, which is applied to a terminal device with a folding screen.
  • the terminal device receives a coupling capacitance generated according to a folding event, and the coupling capacitance conforms to a first preset condition; based on the coupling capacitance conforming to the first A preset condition controls the state of the screen.
  • An exemplary embodiment of the present application provides a method for controlling a screen state, which is applied to a terminal device with a folding screen, and the terminal device may be a smartphone, a tablet computer, a notebook, a wearable device, or the like.
  • the terminal device judges the folding state of the folding screen by using common sensor devices, including: angular acceleration sensor and capacitive sensor, so as to determine the display mode of the screen state.
  • the screen state control method is applied to a terminal device with a foldable screen, and the foldable screen can be folded inward.
  • the inward folding here means that the light emitted by the screen state of the terminal device in the folded state after folding occurs in the opposite direction. or partially opposite.
  • the folding screen of the terminal device includes a capacitive touch screen.
  • the capacitive sensor in the capacitive touch screen in the prior art is first introduced.
  • FIG. 1 provides a touch panel for implementing a capacitive touch screen in accordance with the present application.
  • the folding screen can be divided into a first capacitive sensing area 101 and a second capacitive sensing area 103, respectively corresponding to two areas where the folding screen is relatively folded, the first capacitive sensing area 101 and the second capacitive sensing area 103 includes one or more capacitive sensors.
  • the capacitive sensor of the capacitive touch screen of the folding screen includes a transmitting end and a receiving end.
  • the transmitting end includes a driving line 102
  • the receiving end includes a sensing line 104.
  • the driving line 102 and the sensing line 104 are crossed to form a capacitance matrix.
  • the column-driven scanning method also adopts a row-by-row data acquisition method for the sensing lines.
  • the processor of the terminal can control whether the driving line 102 and the sensing line 104 are loaded with voltage, and detect the capacitance value between the driving line 102 and the sensing line 104 .
  • the capacitive sensors in the first capacitive sensing area 101 and the second capacitive sensing area 103 are close to each other, and a coupling capacitance will be generated, and the capacitance value of the capacitive sensor between the driving line and the sensing line will change. Changes in capacitance values of the capacitance sensors in the first capacitance sensing area 101 and/or the second capacitance sensing area 103 are detected to determine the folding state of the folding screen.
  • FIG. 2 is a schematic flowchart of a screen state control method provided by an embodiment of the present application.
  • FIG. 2 provides a screen state control method, which can be applied to a terminal device with a folding screen.
  • the method may include the following steps:
  • S101 receives the coupling capacitance generated according to the folding event.
  • the terminal device receives the coupling capacitance generated according to the folding event.
  • the folding screen can be divided into a first capacitive sensing area and a second capacitive sensing area, and the folding event is that the first capacitive sensing area or the second capacitive sensing area is folded inward, and the inward folding here refers to The direction of the light emitted from the screen state of the terminal device in the folded state after folding occurs is opposite or partially opposite.
  • the terminal device can monitor the data collected by the angular acceleration sensor disposed in the first capacitive sensing area or the second capacitive sensing area, calculate the angle change value according to the collected data, and further determine whether the angle change value is within the preset value. within the angle range.
  • the preset angle is between the first angle and 180°, and the first angle is between 20° and 35°. If the collected data is within the preset angle range, the terminal obtains the screen state detection instruction.
  • the above examples are not intended to limit the embodiments of the present application.
  • the preset angle is not limited to "between the first angle and 180°, and the first angle is 20° to 35°", and can be adjusted according to actual needs, as long as the judgment is included. Whether the angle change value is within the preset angle range belongs to the protection scope of the present application.
  • the folding screen is divided into a first capacitive sensing area and a second capacitive sensing area. After the folding screen is folded, a coupling capacitance is generated, and the capacitance values of the capacitive sensors in the first capacitive sensing area and the second capacitive sensing area are change.
  • the folding screen is divided into a first capacitive sensing area and a second capacitive sensing area.
  • the terminal device stops applying voltage to the driving line 102 of the second capacitive sensing area according to the folding event, and the capacitance of the first capacitive sensing area The capacitance value of the sensor will decrease.
  • a coupling capacitance is generated.
  • the capacitance value of the first capacitance sensing area and the capacitance value of the second capacitance sensing area affect each other.
  • the change value of the capacitance value of the second capacitance sensing area is generated.
  • the folding screen is divided into a first capacitive sensing area and a second capacitive sensing area.
  • the terminal device changes the value of the voltage loaded on the driving line 102 of the second capacitive sensing area according to the folding event.
  • the Coupling capacitance, the capacitance value of the first capacitance sensing area and the capacitance value of the second capacitance sensing area influence each other, and the change value of the capacitance value of the first capacitance sensing area and the capacitance value of the second capacitance sensing area is detected.
  • the folding screen is divided into a first capacitive sensing area and a second capacitive sensing area.
  • the terminal device changes the waveform of the voltage loaded on the driving line 102 of the second capacitive sensing area according to the folding event.
  • the Coupling capacitance, the capacitance value of the first capacitance sensing area and the capacitance value of the second capacitance sensing area influence each other, and detect the capacitance value of the first capacitance sensing area and/or the capacitance change value of the second capacitance sensing area.
  • the folding screen receives the coupling capacitance, and the coupling capacitance meets the first preset condition.
  • the screen state detection instruction can be obtained according to the folding event.
  • the coupling capacitance conforms to the first preset condition, including: detecting whether the capacitance change value of the capacitance sensing area receiving the coupling capacitance is greater than a preset threshold, and if the capacitance change value is greater than the preset threshold, determining that the coupling capacitance conforms to The first preset condition.
  • the first data list of the capacitive sensing area is detected at a first specified time, where the first specified time is the time after the screen state detection instruction is obtained according to the folding event, and the first data list records are obtained according to the folding event.
  • the coupling capacitance meeting the first preset condition includes: detecting whether the capacitance change rule of the capacitance sensing area satisfies the preset rule.
  • the first data list of the capacitive sensing area is detected at a first specified time, where the first specified time is the time after the screen state detection instruction is obtained according to the folding event, and the first data list records are obtained according to the folding event.
  • the pre-stored basic data list includes:
  • the data lists of the capacitive sensors corresponding to each second designated time are respectively obtained, wherein the second designated time is the time when the screen state detection instruction is not obtained according to the folding event, and the second designated time corresponds to the second data list one-to-one.
  • the second data list records the third capacitance values of the capacitance sensors corresponding to the capacitance sensors at the second specified moment;
  • the sum of the third capacitance value corresponding to the capacitive sensor is obtained, wherein the capacitive sensor is any one of the capacitive touch screen capacitance matrix;
  • the specified average capacitance value corresponding to the capacitance sensor, and the average capacitance value corresponding to each capacitance sensor is obtained according to the calculation process of the specified average capacitance value; the average capacitance value corresponding to each capacitance sensor is assigned to each capacitance sensor in a one-to-one correspondence
  • the basic data list is obtained respectively corresponding to the second capacitance values.
  • the coupling capacitance meeting the first preset condition includes: detecting whether the capacitance change area of the capacitance sensing region is greater than a preset area threshold.
  • detecting whether the capacitance change area of the capacitance sensing area is greater than a preset area threshold includes:
  • S103 controls the screen state based on the coupling capacitor meeting the first preset condition.
  • the screen is a folding screen
  • the folding screen can be folded inward.
  • the folding inward here means that the direction of light emitted by the screen in the folded state of the terminal device is opposite after the folding occurs. or partially opposite.
  • the folding screen is controlled to be displayed in the first display state.
  • the folding screen is controlled to be displayed in a second display state, wherein the first display state is an off state, and the second display state is an on state.
  • a terminal device with at least two screens, and at least one screen is a folding screen.
  • the two screens are respectively parallel to the planes formed by the intersection of the X axis and the Y axis, and the two screens are arranged in the direction of the Z axis, facing away from each other.
  • the back-to-back setting here means that when the two screens are on, the light emitted by the two screens is emitted in opposite directions.
  • only one screen may be a folding screen, and the other screen may be a flat screen; or both screens may be folding screens.
  • the folding screen can be folded inward, and the folding inward here means that the directions of light emitted by the screen in the folded state of the terminal device after folding are opposite or partially opposite.
  • one of the two screens of the terminal device is a folding screen
  • the other screen is a flat screen.
  • the folding screen is in an unfolded state
  • the flat screen and the folding screen are arranged facing away from each other.
  • the folding screen is used as the inner screen of the terminal device
  • the flat screen is used as the outer screen of the terminal device
  • the folding screen is the first screen
  • the flat screen is the second screen.
  • both screens are folding screens, and the sizes of the two screens can be exactly the same; when one of the two screens is a folding screen and the other is a flat screen, the area of the flat screen is smaller than that of the folding screen, for example, The area of the flat screen may be equal to half of the area of the folding screen, or may be smaller than half of the folding screen.
  • the coupling capacitance meets the first preset condition, it is determined that the screen is in a folded state, and the folded screen is controlled to be displayed in the first display state, and the other screen of the two screens is controlled to be displayed in the second display state; wherein the first display The state is the OFF state, and the second display state is the ON state. It is detected that the coupling capacitance does not meet the first preset condition, and when it is determined that the folding screen is in the unfolded state, the folding screen is controlled to be displayed in the second display state, and the other screen of the two screens is controlled to be displayed in the first display state; wherein the first display The state is the OFF state, and the second display state is the ON state.
  • the embodiment of the present application further provides a screen state control apparatus, which may be integrated in a mobile terminal, and the mobile terminal may be a smart phone, a tablet computer, a desktop computer, a smart watch, or other devices.
  • FIG. 3 is a schematic diagram of a first structure of a screen state control apparatus provided by an embodiment of the present application.
  • the screen state control device 30 may include:
  • a receiving module 31 configured to receive the coupling capacitance generated according to the folding event
  • the judgment module 32 is used for judging that the coupling capacitor complies with the first preset condition
  • the control module 33 is configured to control the screen state based on the coupling capacitance meeting the first preset condition.
  • the receiving module 31 is specifically configured to:
  • the terminal device receives the coupling capacitance generated according to the folding event.
  • the receiving module 31 is specifically configured to:
  • the folding screen can be divided into a first capacitive sensing area and a second capacitive sensing area.
  • the folding event is that the first capacitive sensing area or the second capacitive sensing area is folded inward, and the inward folding here refers to after the folding occurs.
  • the directions of light emitted from the screen state of the terminal device in the folded state are opposite or partially opposite.
  • the receiving module 31 is specifically configured to:
  • the terminal device can monitor the data collected by the angular acceleration sensor arranged in the first capacitive sensing area or the second capacitive sensing area, calculate the angle change value according to the collected data, and further judge whether the angle change value is within the preset angle range .
  • the receiving module 31 is specifically configured to:
  • the preset angle is between the first angle and 180°, and the first angle is between 20° and 35°. If the collected data is within the preset angle range, the terminal obtains the screen state detection instruction.
  • the above examples are not intended to limit the embodiments of the present application.
  • the preset angle is not limited to "between the first angle and 180°, and the first angle is 20° to 35°", and can be adjusted according to actual needs, as long as the judgment is included. Whether the angle change value is within the preset angle range belongs to the protection scope of the present application.
  • the receiving module 31 is specifically configured to:
  • the folding screen is divided into a first capacitive sensing area and a second capacitive sensing area. After the folding screen is folded, a coupling capacitance is generated, and the capacitance values of the capacitive sensors in the first capacitive sensing area and the second capacitive sensing area change.
  • the receiving module 31 is specifically configured to:
  • the folding screen is divided into a first capacitive sensing area and a second capacitive sensing area.
  • the terminal device stops applying voltage to the driving line 102 of the second capacitive sensing area according to the folding event.
  • the capacitance of the capacitive sensor in the first capacitive sensing area is The value will decrease.
  • a coupling capacitance is generated.
  • the capacitance value of the first capacitance sensing area and the capacitance value of the second capacitance sensing area affect each other. Detect the capacitance value of the first capacitance sensing area and the second capacitance. The change in capacitance value of the sensing area.
  • the receiving module 31 is specifically configured to:
  • the folding screen is divided into a first capacitive sensing area and a second capacitive sensing area.
  • the terminal device changes the value of the voltage loaded on the driving line 102 of the second capacitive sensing area according to the folding event. After the folding screen is folded, a coupling capacitance is generated.
  • the capacitance value of the first capacitance sensing area and the capacitance value of the second capacitance sensing area influence each other, and the change value of the capacitance value of the first capacitance sensing area and the capacitance value of the second capacitance sensing area is detected.
  • the receiving module 31 is specifically configured to:
  • the folding screen is divided into a first capacitive sensing area and a second capacitive sensing area.
  • the terminal device changes the waveform of the voltage loaded on the driving line 102 of the second capacitive sensing area according to the folding event. After the folding screen is folded, a coupling capacitance is generated.
  • the capacitance value of the first capacitance sensing area and the capacitance value of the second capacitance sensing area influence each other, and the capacitance value of the first capacitance sensing area and/or the capacitance change value of the second capacitance sensing area are detected.
  • the judging module 32 is specifically configured to:
  • the judging module 32 is specifically configured to:
  • the folding screen receives the coupling capacitance, and the coupling capacitance meets the first preset condition.
  • the judging module 32 is specifically configured to:
  • the screen state detection instruction can be obtained according to the folding event.
  • the judging module 32 is specifically configured to:
  • the coupling capacitance conforms to the first preset condition, including: detecting whether the capacitance change value of the capacitance sensing area receiving the coupling capacitance is greater than a preset threshold, and if the capacitance change value is greater than the preset threshold, determining that the coupling capacitance conforms to the first preset Set conditions.
  • the judging module 32 is specifically configured to:
  • the first data list of the capacitive sensing area at the first specified time, wherein the first specified time is the time after the screen state detection instruction is obtained according to the folding event, and the first data list records the screen state detection obtained according to the folding event. After instructing the first capacitance value of each capacitance sensor in the capacitance sensing area.
  • the judging module 32 is specifically configured to:
  • the coupling capacitance meeting the first preset condition includes: detecting whether the capacitance change rule of the capacitance sensor area satisfies the preset rule.
  • the judging module 32 is specifically configured to:
  • the first specified time is the time after the screen state detection instruction is obtained according to the folding event
  • the first data list records the screen state detection obtained according to the folding event.
  • the judging module 32 is specifically configured to:
  • the pre-stored basic data list includes:
  • the data lists of the capacitive sensors corresponding to each second designated time are respectively obtained, wherein the second designated time is the time when the screen state detection instruction is not obtained according to the folding event, and the second designated time corresponds to the second data list one-to-one.
  • the second data list records the third capacitance values of the capacitance sensors corresponding to the capacitance sensors at the second specified moment;
  • the sum of the third capacitance values corresponding to the capacitive sensors is obtained, wherein the capacitive sensor is any one of the capacitive touch screen capacitance matrix;
  • the specified average capacitance value corresponding to the capacitance sensor, and the average capacitance value corresponding to each capacitance sensor is obtained according to the calculation process of the specified average capacitance value; the average capacitance value corresponding to each capacitance sensor is assigned to each capacitance sensor in a one-to-one correspondence
  • the basic data list is obtained respectively corresponding to the second capacitance values.
  • the judging module 32 is specifically configured to:
  • the coupling capacitance conforms to the first preset condition, including: detecting whether the capacitance change area of the capacitance sensor region is greater than a preset area threshold.
  • the judging module 32 is specifically configured to:
  • Detecting whether the capacitance change area of the capacitance sensor area is greater than a preset area threshold includes:
  • the judging module 32 is specifically configured to:
  • control module 33 is specifically configured to:
  • the screen state is controlled based on the coupling capacitor meeting a first preset condition.
  • control module 33 is specifically configured to:
  • the screen is a folding screen
  • the folding screen can be folded inward.
  • the inward folding means that the direction of the light emitted by the screen in the folded state of the terminal device is opposite or partially after the folding occurs. opposite.
  • the folding screen is controlled to display in the first display state. If the coupling capacitance is detected not to meet the first preset condition, it is determined that the folding screen is in an unfolded state, and the folding screen is controlled to be displayed. The screen is displayed in a second display state, wherein the first display state is an off state, and the second display state is an on state.
  • control module 33 is specifically configured to:
  • a terminal device with at least two screens, and at least one screen is a folding screen.
  • the two screens are respectively parallel to the planes formed by the intersection of the X axis and the Y axis, and the two screens are arranged in the direction of the Z axis, facing away from each other.
  • the back-to-back setting here means that when the two screens are on, the light emitted by the two screens is emitted in opposite directions.
  • only one screen may be a folding screen, and the other screen may be a flat screen; or both screens may be folding screens.
  • the folding screen can be folded inward, and the folding inward here means that the directions of light emitted by the screen in the folded state of the terminal device after folding are opposite or partially opposite.
  • control module 33 is specifically configured to:
  • One of the two screens of the terminal device is a folding screen, and the other screen is a flat screen.
  • the folding screen When the folding screen is in an unfolded state, the flat screen and the folding screen are arranged facing away from each other.
  • the folding screen is used as the inner screen of the terminal device
  • the flat screen is used as the outer screen of the terminal device
  • the folding screen is the first screen
  • the flat screen is the second screen.
  • control module 33 is specifically configured to:
  • Both screens are folding screens, and the sizes of the two screens can be exactly the same; when one of the two screens is a folding screen and the other is a flat screen, the area of the flat screen is smaller than that of the folding screen.
  • the area can be equal to half of the area of the folding screen, or it can be less than half of the folding screen.
  • the screen is in a folded state, and the folding screen is controlled to be displayed in the first display state, and the other screen of the two screens is controlled to be displayed in the second display state; wherein the first display state is Off state, the second display state is on state. If it is detected that the coupling capacitance does not meet the first preset condition, it is determined that the folding screen is in the unfolded state, the folding screen is controlled to be displayed in the second display state, and the other screen of the two screens is controlled to be displayed in the first display state; wherein the first display state is an off state, and the second display state is a lighted state.
  • the receiving module 31 is used for receiving the coupling capacitance generated according to the folding event;
  • the judging module 32 is used for judging that the coupling capacitance meets the first preset condition;
  • the control module 33 for controlling the screen state based on the coupling capacitance meeting a first preset condition.
  • the present application provides a computer-readable storage medium, where a computer program is stored in the storage medium, and when the computer program runs on a computer, the computer is made to perform the following steps:
  • the data collected by the angular acceleration sensor disposed in the first capacitive sensing area or the second capacitive sensing area can be monitored, the angle change value can be calculated according to the collected data, and it can be further judged whether the angle change value is within the within the preset angle range.
  • the preset angle is between the first angle and 180°, and the first angle is between 20° and 35°. If the collected data is within the preset angle range, the screen state detection instruction is obtained.
  • the capacitance value of the capacitive sensor in the first capacitive sensing area will decrease, and after the folding screen is folded, a coupling capacitance is generated,
  • the capacitance value of the first capacitance sensing area and the capacitance value of the second capacitance sensing area influence each other, and the change value of the capacitance value of the first capacitance sensing area and the capacitance value of the second capacitance sensing area is detected.
  • the value of the applied voltage of the driving line in the second capacitive sensing area is changed.
  • a coupling capacitance is generated, and the capacitance value of the first capacitive sensing area and the second capacitive transmission
  • the capacitance values of the sensing regions influence each other, and the change value of the capacitance value of the first capacitance sensing region and the capacitance value of the second capacitance sensing region is detected.
  • the waveform of the applied voltage of the driving line in the second capacitive sensing area is changed.
  • a coupling capacitance is generated, and the capacitance value of the first capacitive sensing area and the second capacitive transmission
  • the capacitance values of the sensing regions influence each other, and the capacitance value of the first capacitance sensing region and/or the capacitance change value of the second capacitance sensing region are detected.
  • the screen state detection instruction can be acquired according to the folding event.
  • the coupling capacitor complies with the first preset condition, including: detecting whether the capacitance change value of the capacitance sensing region receiving the coupling capacitor is greater than a preset threshold value, and if the capacitance change value is greater than the preset threshold value, then It is determined that the coupling capacitor meets the first preset condition.
  • a first data list of the capacitive sensing area at a first specified time is detected, wherein the first specified time is a time after the screen state detection instruction is obtained according to the folding event, and the first data list records
  • the folding event acquires the first capacitance value of each capacitance sensor in the capacitance sensing area after the screen state detection instruction is acquired.
  • the coupling capacitance complies with the first preset condition, including: detecting whether the capacitance change rule of the capacitance sensing area satisfies the preset rule.
  • a first data list of the capacitive sensing area at a first specified time is detected, wherein the first specified time is a time after the screen state detection instruction is obtained according to the folding event, and the first data list records The first capacitance value of the capacitance sensor after the folding event obtains the screen state detection instruction;
  • the pre-stored basic data list includes:
  • the data lists of the capacitive sensors corresponding to each second designated time are respectively obtained, wherein the second designated time is the time when the screen state detection instruction is not obtained according to the folding event, and the second designated time corresponds to the second data list one-to-one.
  • the second data list records the third capacitance values of the capacitance sensors corresponding to the capacitance sensors at the second specified moment;
  • the sum of the third capacitance values corresponding to the capacitive sensors is obtained, wherein the capacitive sensor is any one of the capacitive touch screen capacitance matrix;
  • the specified average capacitance value corresponding to the capacitance sensor, and the average capacitance value corresponding to each capacitance sensor is obtained according to the calculation process of the specified average capacitance value; the average capacitance value corresponding to each capacitance sensor is assigned to each capacitance sensor in a one-to-one correspondence
  • the basic data list is obtained respectively corresponding to the second capacitance values.
  • the coupling capacitance conforming to the first preset condition includes: detecting whether the capacitance change area of the capacitance sensing region is greater than a preset area threshold.
  • detecting whether the capacitance change area of the capacitance sensing region is greater than a preset area threshold includes:
  • the screen state is controlled based on the coupling capacitor meeting a first preset condition.
  • the storage medium if the detected coupling capacitance meets the first preset condition, it is determined that the screen is in a folded state, then the folded screen is controlled to be displayed in the first display state, and the other screen of the two screens is controlled to be displayed in the second display state ;
  • the first display state is an off state
  • the second display state is a lighted state. It is detected that the coupling capacitance does not meet the first preset condition, and when it is determined that the folding screen is in the unfolded state, the folding screen is controlled to be displayed in the second display state, and the other screen of the two screens is controlled to be displayed in the first display state; wherein the first display The state is the off state, and the second display state is the on state.
  • the embodiments of the present application also provide a mobile terminal.
  • the mobile terminal may be a device such as a smart phone, a tablet computer, a desktop computer, and a smart watch.
  • FIG. 4 shows a schematic structural diagram of a mobile terminal provided by an embodiment of the present application, and the mobile terminal can be used to implement the screen state control method provided in the foregoing embodiment.
  • the mobile terminal 1200 may be a smart phone or a tablet computer.
  • FIG. 4 shows a schematic structural diagram of a mobile terminal provided by an embodiment of the present application, and the mobile terminal can be used to implement the screen state control method provided in the foregoing embodiment.
  • the mobile terminal 1200 may be a smart phone or a tablet computer.
  • the mobile terminal 1200 may include an RF (Radio Frequency, radio frequency) circuit 110 , a memory 120 including one or more (only one is shown in the figure) computer-readable storage medium, an input unit 130 , and a display unit 140 , the sensor 150 , the audio circuit 160 , the transmission module 170 , the processor 180 including one or more (only one is shown in the figure) processing core, and the power supply 190 and other components.
  • RF Radio Frequency, radio frequency
  • the structure of the mobile terminal 1200 shown in FIG. 4 does not constitute a limitation to the mobile terminal 1200, and may include more or less components than the one shown, or combine some components, or different components layout. in:
  • the RF circuit 110 is used for receiving and sending electromagnetic waves, realizing mutual conversion between electromagnetic waves and electrical signals, so as to communicate with a communication network or other devices.
  • RF circuitry 110 may include various existing circuit elements for performing these functions, eg, antennas, radio frequency transceivers, digital signal processors, encryption/decryption chips, Subscriber Identity Module (SIM) cards, memory, and the like.
  • SIM Subscriber Identity Module
  • the RF circuit 110 may communicate with various networks such as the Internet, an intranet, a wireless network, or with other devices over a wireless network.
  • the memory 120 can be used to store software programs and modules, such as program instructions/modules corresponding to the screen state control method in the above-mentioned embodiment, and the processor 180 executes various functional applications and data by running the software programs and modules stored in the memory 120. deal with.
  • Memory 120 may include high-speed random access memory, and may also include non-volatile memory, such as one or more magnetic storage devices, flash memory, or other non-volatile solid-state memory.
  • the memory 120 may further include memory disposed remotely with respect to the processor 180, and these remote memories may be connected to the mobile terminal 1200 through a network. Examples of such networks include, but are not limited to, the Internet, an intranet, a local area network, a mobile communication network, and combinations thereof.
  • the input unit 130 may be used to receive input numerical or character information, and generate keyboard, mouse, joystick, optical or trackball signal input related to user settings and function control.
  • the input unit 130 may include a touch-sensitive surface 131 as well as other input devices 132 .
  • Touch-sensitive surface 131 also known as a touch display or trackpad, collects touch operations by a user on or near it (such as a user using a finger, stylus, etc., any suitable object or accessory on or on touch-sensitive surface 131). operations near the touch-sensitive surface 131 ), and drive the corresponding connection device according to a preset program.
  • the input unit 130 may also include other input devices 132 .
  • other input devices 132 may include, but are not limited to, one or more of physical keyboards, function keys (such as volume control keys, switch keys, etc.), trackballs, mice, joysticks, and the like.
  • the display unit 140 may be used to display information input by or provided to the user and various graphical user interfaces of the mobile terminal 1200, which may be composed of graphics, text, icons, videos, and any combination thereof.
  • the display unit 140 may include a display panel 141 .
  • the touch-sensitive surface 131 may cover the display panel 141, and when the touch-sensitive surface 131 detects a touch operation on or near it, it is transmitted to the processor 180 to determine the type of the touch event, and then the processor 180 determines the type of the touch event according to the touch event. Type provides corresponding visual output on display panel 141 .
  • the display unit 140 is the screen in the above embodiment.
  • the mobile terminal 1200 may further include at least one sensor 150, such as a light sensor, a motion sensor, and other sensors. As for other sensors such as a barometer, a hygrometer, a thermometer, and an infrared sensor that can be configured on the mobile terminal 1200, details are not described here.
  • sensors 150 such as a light sensor, a motion sensor, and other sensors.
  • other sensors such as a barometer, a hygrometer, a thermometer, and an infrared sensor that can be configured on the mobile terminal 1200, details are not described here.
  • the audio circuit 160 , the speaker 161 , and the microphone 162 may provide an audio interface between the user and the mobile terminal 1200 .
  • the audio circuit 160 can transmit the received audio data converted electrical signal to the speaker 161, and the speaker 161 converts it into a sound signal for output; on the other hand, the microphone 162 converts the collected sound signal into an electrical signal, which is converted by the audio circuit 160 into an electrical signal. After receiving, it is converted into audio data, and then the audio data is output to the processor 180 for processing, and then sent to, for example, another terminal through the RF circuit 110, or the audio data is output to the memory 120 for further processing.
  • the audio circuit 160 may also include an earplug jack to provide communication between peripheral headphones and the mobile terminal 1200 .
  • the mobile terminal 1200 can help the user to send and receive emails, browse web pages, access streaming media, etc. through the transmission module 170 (eg, a Wi-Fi module), and it provides the user with wireless broadband Internet access.
  • the transmission module 170 eg, a Wi-Fi module
  • FIG. 4 shows the transmission module 170, it can be understood that it does not belong to the necessary structure of the mobile terminal 1200, and can be completely omitted as required without changing the essence of the invention.
  • the processor 180 is the control center of the mobile terminal 1200, uses various interfaces and lines to connect various parts of the entire mobile phone, runs or executes the software programs and/or modules stored in the memory 120, and calls the data stored in the memory 120. , perform various functions of the mobile terminal 1200 and process data, so as to monitor the mobile phone as a whole.
  • the processor 180 may include one or more processing cores; in some embodiments, the processor 180 may integrate an application processor and a modem processor, wherein the application processor mainly handles the operating system, user interface and Applications, etc., the modem processor mainly deals with wireless communication. It can be understood that, the above-mentioned modulation and demodulation processor may not be integrated into the processor 180 .
  • the mobile terminal 1200 also includes a power supply 190 (such as a battery) for supplying power to various components.
  • the power supply can be logically connected to the processor 180 through a power management system, so as to manage charging, discharging, and power consumption management functions through the power management system.
  • Power supply 190 may also include one or more DC or AC power sources, recharging systems, power failure detection circuits, power converters or inverters, power status indicators, and any other components.
  • the mobile terminal 1200 may further include a camera (eg, a front-facing camera, a rear-facing camera), a Bluetooth module, and the like, which will not be repeated here.
  • the display unit 140 of the mobile terminal 1200 is a touch screen display, and the mobile terminal 1200 further includes a memory 120 and one or more programs, wherein one or more programs are stored in the memory 120 and configured Execution of one or more programs by one or more processors 180 includes instructions for:
  • the coupling capacitance generated according to the folding event is received, it is determined that the coupling capacitance meets the first preset condition, and the screen state is controlled based on the coupling capacitance meeting the first preset condition.
  • the processor 180 is configured to receive the coupling capacitance generated according to the folding event, including:
  • the processor 180 is configured to receive the coupling capacitance generated according to the folding event, including:
  • the capacitance value of the capacitive sensor in the first capacitive sensing area will decrease, and after the folding screen is folded, a coupling capacitance is generated, and the first capacitive sensing area
  • the capacitance value of the first capacitance sensing region and the capacitance value of the second capacitance sensing region influence each other, and the change value of the capacitance value of the first capacitance sensing region and the capacitance value of the second capacitance sensing region is detected.
  • the processor 180 is configured to receive the coupling capacitance generated according to the folding event, including:
  • the value of the voltage loaded on the driving line 102 of the second capacitive sensing area is changed.
  • a coupling capacitance is generated.
  • the capacitance value of the first capacitive sensing area and the capacitance value of the second capacitive sensing area are mutually exclusive. Influence, the change value of the capacitance value of the first capacitance sensing area and the capacitance value of the second capacitance sensing area is detected.
  • the processor 180 is configured to receive the coupling capacitance generated according to the folding event, including:
  • the waveform of the voltage loaded on the driving line 102 of the second capacitive sensing area is changed, and after the folding screen is folded, a coupling capacitance is generated, the capacitance value of the first capacitive sensing area and the capacitance of the second capacitive sensing area
  • the values influence each other, and the capacitance value of the first capacitance sensing area and/or the capacitance change value of the second capacitance sensing area are detected.
  • the processor 180 is configured to determine that the coupling capacitor meets the first preset condition, including:
  • the coupling capacitance conforms to the first preset condition, including: detecting whether the capacitance change value of the capacitance sensing area receiving the coupling capacitance is greater than a preset threshold, and if the capacitance change value is greater than the preset threshold, determining that the coupling capacitance conforms to the first preset Set conditions.
  • the processor 180 is configured to determine that the coupling capacitor meets the first preset condition, including:
  • the first specified time is the time after the screen state detection instruction is obtained according to the folding event
  • the first data list records the time after the screen state detection instruction is obtained according to the folding event.
  • the processor 180 is configured to determine that the coupling capacitor meets the first preset condition, including:
  • the processor 180 is configured to determine that the coupling capacitor meets the first preset condition, including:
  • the first specified time is the time after the screen state detection instruction is obtained according to the folding event
  • the first data list records the screen state detection obtained according to the folding event.
  • the pre-stored basic data list includes: obtaining a data list corresponding to each second specified time of each capacitive sensor in the capacitive sensing area according to a preset method, wherein the second specified time is the time when the screen state detection instruction is not obtained according to the folding event. , the second specified time corresponds to the second data list one-to-one, and the second data list records the third capacitance value corresponding to each capacitive sensor of the capacitive sensor at the second specified time;
  • the sum of the third capacitance values corresponding to the capacitive sensors is obtained, wherein the capacitive sensor is any one of the capacitive touch screen capacitance matrix;
  • the specified average capacitance value corresponding to the capacitance sensor, and the average capacitance value corresponding to each capacitance sensor is obtained according to the calculation process of the specified average capacitance value; the average capacitance value corresponding to each capacitance sensor is assigned to each capacitance sensor in a one-to-one correspondence
  • the basic data list is obtained respectively corresponding to the second capacitance values.
  • the processor 180 is configured to determine that the coupling capacitor meets the first preset condition, including:
  • the coupling capacitance conforms to the first preset condition, including: detecting whether the capacitance change area of the capacitance sensor region is greater than a preset area threshold.
  • the processor 180 is configured to determine that the coupling capacitor meets the first preset condition, including:
  • the processor 180 is configured to control the screen state based on the coupling capacitance meeting a first preset condition.
  • the folding screen is controlled to display in the first display state. If the coupling capacitance is detected not to meet the first preset condition, it is determined that the folding screen is in an unfolded state, and the folding screen is controlled to be displayed. The screen is displayed in a second display state, wherein the first display state is an off state, and the second display state is an on state.
  • one of the two screens of the terminal device is a folding screen
  • the other screen is a flat screen.
  • the folding screen is in an unfolded state
  • the flat screen and the folding screen are arranged facing away from each other.
  • the folding screen is used as the inner screen of the terminal device
  • the flat screen is used as the outer screen of the terminal device
  • the folding screen is the first screen
  • the flat screen is the second screen.
  • the folding screen is controlled to be displayed in the first display state, and the other screen of the two screens is controlled to be displayed in the second display state; wherein the first display state is Off state, the second display state is on state. It is detected that the coupling capacitance does not meet the first preset condition, and when it is determined that the folding screen is in the unfolded state, the folding screen is controlled to be displayed in the second display state, and the other screen of the two screens is controlled to be displayed in the first display state; wherein the first display The state is the OFF state, and the second display state is the ON state.
  • the computer program may be stored in a computer-readable storage medium, such as a memory of a mobile terminal, and executed by at least one processor in the mobile terminal, and may include, during execution, a screen as described Flow of an embodiment of a state control method.
  • the storage medium may be a magnetic disk, an optical disk, a read only memory (ROM, Read Only Memory), a random access memory (RAM, Random Access Memory), and the like.
  • each functional module may be integrated in one processing chip, or each module may exist physically alone, or two or more modules may be integrated into one module.
  • the above-mentioned integrated modules can be implemented in the form of hardware, and can also be implemented in the form of software function modules. If the integrated modules are implemented in the form of software functional modules and sold or used as independent products, they may also be stored in a computer-readable storage medium, such as a read-only memory, a magnetic disk or an optical disk.

Abstract

一种屏幕状态控制方法、装置(30)、存储介质,该方法包括:接收根据折叠事件产生的耦合电容(201),所述耦合电容符合第一预设条件(202);基于所述耦合电容符合第一预设条件,控制所述屏幕状态(203)。

Description

屏幕状态控制方法、装置及存储介质
本申请要求于2020年11月19日提交中国专利局、申请号为202011303040.5、发明名称为“一种屏幕状态控制方法、装置、存储介质及移动终端”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本发明涉及电子技术领域,尤其涉及一种屏幕状态控制方法、装置及存储介质。
背景技术
现如今,随着柔性屏技术的飞速发展,柔性可折叠屏幕或者可打开屏幕已经逐渐应用到终端设备上,终端设备例如可以是手机、平板电脑、可穿戴设备等。而现有技术中通常需要额外设置特定的传感器元件对折叠屏的折叠状态进行判断,其中包括:霍尔元件、红外线传感器、雷达传感器和多个角加速传感器,以确定屏幕状态的显示方式。
技术问题
终端需要特定设置传感器元件对折叠屏的折叠状态进行判断来确定屏幕的显示方式,会增加终端制造成本和占用终端的空间。
技术解决方案
第一方面,本申请提供了一种屏幕状态控制方法,该方法包括:
接收根据折叠事件产生的耦合电容,所述耦合电容符合第一预设条件;
基于所述耦合电容符合第一预设条件,控制所述屏幕状态。
在所述的一种屏幕状态控制方法中,所述耦合电容符合第一预设条件,包括:
检测所述耦合电容对应的电容传感器的电容变化值是否大于预设阈值;
判断所述电容变化值大于所述预设阈值。
在所述的一种屏幕状态控制方法中,所述检测所述耦合电容对应的电容传感器的电容变化值是否大于预设阈值,包括:
检测第一指定时刻所述电容传感器的第一数据列表;
根据所述第一数据列表和预存的基础数据列表,计算得到所述电容传感器电容变化值,判断所述电容变化值是否大于预设阈值。
在所述的一种屏幕状态控制方法中,所述检测所述耦合电容对应的电容传感区域的电容变化值是否大于预设阈值,包括:
检测第一指定时刻所述电容传感区域的第一数据列表,所述第一指定时刻为所述折叠事件之后的时刻,所述第一数据列表记录所述折叠事件之后所述电容传感区域的各电容传感器的第一电容值;
根据所述第一数据列表和预存的基础数据列表,计算得到所述电容传感区域电容变化值,根据所述电容变化值判断所述电容变化值是否大于预设阈值,所述基础数据列表记录了所述折叠事件之前所述电容传感区域的各电容传感器分别对应的第二电容值。
在所述的一种屏幕状态控制方法中,所述耦合电容符合第一预设条件,包括:
检测所述电容传感器的电容变化规则是否满足预设规则。
在所述的一种屏幕状态控制方法中,所述检测所述耦合电容对应的电容传感器的电容变化规则是否满足预设规则,包括:
检测第一指定时刻所述电容传感区域的第一数据列表;
根据所述第一数据列表和预存的基础数据列表,计算得到所述电容传感区域电容变化值,获取各所述第一指定时刻对应的电容变化值得到电容传感区域电容变化规则,判断所述电容变化规则是否满足预设规则。
在所述的一种屏幕状态控制方法中,所述检测所述耦合电容对应的电容传感区域的电容变化规则是否满足预设规则,包括:
检测第一指定时刻所述电容传感区域的第一数据列表,所述第一指定时刻为所述折叠事件之后的时刻,所述第一数据列表记录所述折叠事件之后所述电容传感区域的各电容传感器的第一电容值;
根据所述第一数据列表和预存的基础数据列表,计算得到所述电容传感区域电容变化值,获得各所述第一指定时刻对应的所述电容变化值得到所述电容传感区域电容变化规则,判断所述电容变化规则是否满足预设规则。
在所述的一种屏幕状态控制方法中,所述耦合电容符合第一预设条件,包括:
检测所述电容传感器的电容变化面积是否大于预设面积阈值。
在所述的一种屏幕状态控制方法中,所述检测所述耦合电容对应的电容传感器的电容变化面积是否大于预设面积阈值,包括:
确定接收到所述耦合电容的电容传感器的数量以及单个传感器尺寸,确定电容变化面积;
基于所述确定电容变化面积检测所述电容传感器的电容变化面积是否大于预设面积阈值。
在所述的一种屏幕状态控制方法中,所述检测所述耦合电容对应的电容传感区域的电容变化面积是否大于预设面积阈值,包括:
检测所述电容传感区域的排列编号或者在预设二维坐标系中的坐标;
基于所述排列编号或者所述坐标的数量确定接收到所述电容传感区域的电容传感器的数量;
基于接收到所述电容传感器的数量以及单个传感器尺寸,确定电容变化面积;
基于所述电容变化面积检测所述电容传感器区域的所述电容变化面积是否大于预设面积阈值。
在所述的一种屏幕状态控制方法中,所述根据折叠事件,包括:
监测第一传感器采集的数据;
判断所述采集的数据是否满足第二预设条件;
若满足所述第二预设条件,判断发生折叠事件。
在所述的一种屏幕状态控制方法中,所述根据折叠事件,包括:
监测第一传感器采集的数据;
根据所述采集的数据计算出所述第一传感器设置于的电容传感器的角度变化值;
判断所述角度变化值是否在预设角度范围内,若在所述预设角度范围内,则判断发生折叠事件。
在所述的一种屏幕状态控制方法中,所述耦合电容符合第一预设条件之后,还包括:
检测所述耦合电容符合所述第一预设条件,则判定屏幕为折叠状态,控制折叠屏以第一显示状态显示;
检测所述耦合电容不符合所述第一预设条件,则判定屏幕为展开状态,控制折叠屏以第二显示状态显示。
在所述的一种屏幕状态控制方法中,所述方法应用于具有折叠屏的终端上,所述折叠屏分为第一电容传感区域和第二电容传感区域,其中,包括:
根据所述折叠事件,所述第一电容传感区域和所述第二电容传感区域相互影响,产生所述耦合电容;
接收根据所述折叠事件产生的所述耦合电容,所述耦合电容符合所述第一预设条件;
基于所述耦合电容符合所述第一预设条件,控制所述屏幕状态。
在所述的一种屏幕状态控制方法中,所述根据所述折叠事件,还包括:
改变所述第一电容传感区域和/或所述第二电容传感区域的驱动线102加载电压的值;和/或
改变所述第一电容传感区域和/或所述第二电容传感区域的驱动线102加载电压的波形。
第二方面,本申请提供一种计算机可读存储介质,所述存储介质中存储有计算机程序,当所述计算机程序在计算机上运行时,使得所述计算机执行如下步骤:
接收根据折叠事件产生的耦合电容;
检测所述耦合电容对应的电容传感区域的电容变化值是否大于预设阈值;
判断所述电容变化值大于所述预设阈值;
基于所述电容变化值大于所述预设阈值,控制所述屏幕状态。
在所述存储介质中,所述检测所述耦合电容对应的电容传感区域的电容变化值是否大于预设阈值,包括:
检测第一指定时刻所述电容传感区域的第一数据列表,所述第一指定时刻为所述折叠事件之后的时刻,所述第一数据列表记录所述折叠事件之后所述电容传感区域的各电容传感器的第一电容值;
根据所述第一数据列表和预存的基础数据列表,计算得到所述电容传感区域电容变化值,根据所述电容变化值判断所述电容变化值是否大于预设阈值,所述基础数据列表记录了所述折叠事件之前所述电容传感区域的各电容传感器分别对应的第二电容值。
在所述存储介质中,还包括:
接收根据折叠事件产生的耦合电容;
检测所述耦合电容对应的所述电容传感区域的电容变化规则是否满足预设规则;
判断所述电容变化规则满足预设规则;
基于所述电容变化规则满足所述预设规则,控制所述屏幕状态。
在所述存储介质中,还包括:
接收根据折叠事件产生的耦合电容;
检测所述耦合电容对应的所述电容传感区域的电容变化面积是否大于预设面积阈值;
判断所述电容变化面积大于所述预设面积阈值;
基于所述电容变化面积是否大于所述预设面积阈值,控制所述屏幕状态。
第三方面,本申请提供一种屏幕状态控制装置,包括:
接收模块,用于接收根据折叠事件产生的耦合电容;
判断模块,用于判断耦合电容符合第一预设条件;
控制模块,用于基于所述耦合电容符合第一预设条件,控制所述屏幕状态。
有益效果
本申请的有益效果是:本申请通过终端常用的传感器,包括:角加速度传感器和电容传感器来判断折叠屏的折叠状态。接收根据折叠事件产生的耦合电容;所述耦合电容符合第一预设条件;基于所述耦合电容符合第一预设条件,控制所述屏幕状态。检测所述耦合电容对应的电容传感器符合第一预设条件,判定屏幕为折叠状态,控制折叠屏以第一显示状态显示;检测所述耦合电容不符合第一预设条件,则判定屏幕为展开状态,控制折叠屏以第二显示状态显示。本申请实施例可以利用终端常用传感器元件,来实现控制折叠屏屏幕的状态,降低终端制造成本,增加终端可用空间。
附图说明
图1为本申请实施提供一种现有技术电容式触摸屏触控面板结构示意图。
图2为本申请实施例提供的一种屏幕状态控制方法的流程示意图。
图3为本申请实施例提供的一种屏幕状态控制装置的结构示意图。
图4为本申请实施例提供的一种移动终端的结构示意图。
本发明的实施方式
下面将结合本发明实施例中的附图,对本发明实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本发明一部分实施例,并不是全部的实施例。基于本发明中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其他实施例,都属于本发明保护的范围。
本申请提供了一种屏幕状态的控制方法,应用于具有折叠屏的终端设备,终端设备接收根据折叠事件产生的耦合电容,所述耦合电容符合第一预设条件;基于所述耦合电容符合第一预设条件,控制所述屏幕状态。本申请的一示例性实施例提供了一种屏幕状态的控制方法,应用于具有折叠屏的终端设备,终端设备可以是智能手机、平板电脑、笔记本、可穿戴设备等。终端设备通过使用常用的传感器器件,包括:角加速度传感器和电容传感器,对折叠屏的折叠状态进行判断,以确定屏幕状态的显示方式。
本实施例中,屏幕状态控制方法应用于具有折叠屏的终端设备,折叠屏可以向里折叠,这里的向里折叠是指发生折叠后终端设备折叠状态的屏幕状态发出的光的射出方向是相向的或部分相向的。
本实施例中,终端设备的折叠屏包含电容式触控屏。
为了更好的理解本发明,首先介绍现有技术中电容式触控屏中的电容传感器。
请参阅图1,图1为本申请实施提供一种电容式触控屏的触控面板。
具体地,折叠屏可以分为第一电容传感区域101和第二电容传感区域103,分别对应折叠屏发生相对折叠的两个区域,第一电容传感区域101和第二电容传感区域103包括一个或多个电容传感器。折叠屏的电容式触控屏的电容传感器包括发射端和接收端,发射端包括驱动线102,接收端包括感应线104,驱动线102和感应线104交叉分布形成电容矩阵,对驱动线采用逐列驱动扫描方式,对感应线也采用逐行采集数据的方式。终端的处理器可以控制驱动线102和感应线104是否加载电压,检测驱动线102和感应线104之间的电容值。当折叠屏屏幕发生折叠时,第一电容传感区域101和第二电容传感区域103的电容传感器相互靠近,会产生耦合电容,驱动线和感应线之间的电容传感器的电容值发生变化,检测第一电容传感区域101和/或第二电容传感区域103电容传感器的电容值的变化,以判断折叠屏屏幕折叠状态。
请参阅图2,图2所示为本申请实施例提供的一种屏幕状态控制方法的流程示意图。
图2提供了一种屏幕状态控制方法,该方法可以应用于具有折叠屏的终端设备上。
该方法可以包括以下步骤:
S101 接收根据折叠事件产生的耦合电容。
具体地,终端设备接收根据折叠事件产生耦合电容。
具体地,折叠屏可以分为第一电容传感区域和第二电容传感区域,折叠事件为第一电容传感区域或第二电容传感区域发生向里折叠,这里的向里折叠是指发生折叠后终端设备折叠状态的屏幕状态发出的光的方向是相向的或部分相向的。
具体地,终端设备可以监测设置在第一电容传感区域或第二电容传感区域的角加速度传感器采集的数据,根据采集的数据计算出角度变化值,进一步判断该角度变化值是否在预设角度范围内。
具体地,预设角度是在第一角度至180°之间,第一角度为20°至35°,若采集的数据在预设角度范围内,则终端获取到屏幕状态检测指令。上述举例说明不作为对本申请实施例的限定,预设角度并不限于“在第一角度至180°之间,第一角度为20°至35°”,可以根据实际需要进行调整,只要包含判断角度变化值是否在预设角度范围内都属于本申请的保护范围。
具体地,折叠屏分为第一电容传感区域和第二电容传感区域,折叠屏发生折叠后,产生耦合电容,第一电容传感区域和第二电容传感区域的电容传感器的电容值发生变化。
具体地,折叠屏分为第一电容传感区域和第二电容传感区域,终端设备根据折叠事件,停止给第二电容传感区域的驱动线102加载电压,第一电容传感区域的电容传感器的电容值会降低,折叠屏发生折叠后,产生耦合电容,第一电容传感区域的电容值和第二电容传感区域的电容值相互影响,检测第一电容传感区域的电容值和第二电容传感区域的电容值的变化值。
具体地,折叠屏分为第一电容传感区域和第二电容传感区域,终端设备根据折叠事件,改变第二电容传感区域的驱动线102加载电压的值,折叠屏发生折叠后,产生耦合电容,第一电容传感区域的电容值和第二电容传感区域的电容值相互影响,检测第一电容传感区域的电容值和第二电容传感区域的电容值的变化值。
具体地,折叠屏分为第一电容传感区域和第二电容传感区域,终端设备根据折叠事件,改变第二电容传感区域的驱动线102加载电压的波形,折叠屏发生折叠后,产生耦合电容,第一电容传感区域的电容值和第二电容传感区域的电容值相互影响,检测第一电容传感区域的电容值和/或第二电容传感区域的电容变化值。
S102 所述耦合电容符合第一预设条件。
具体地,根据折叠事件产生的耦合电容,折叠屏接收耦合电容,该耦合电容符合第一预设条件。
具体地,根据折叠事件可以获取屏幕状态检测指令。
具体地,耦合电容符合第一预设条件,包括:检测接收到耦合电容的电容传感区域的电容变化值是否大于预设阈值,若电容变化值大于所述预设阈值,则确定耦合电容符合第一预设条件。
具体地,检测第一指定时刻电容传感区域的第一数据列表,其中,第一指定时刻为根据所述折叠事件获取屏幕状态检测指令之后的时刻,第一数据列表记录根据所述折叠事件获取屏幕状态检测指令之后所述电容传感区域的各电容传感器的第一电容值。
根据第一数据列表和预存的基础数据列表,计算得到电容传感区域电容变化值,根据电容变化值判断电容变化值是否大于预设阈值,其中,基础数据列表记录了根据所述折叠事件获取屏幕状态检测指令所述电容传感区域的各电容传感器分别对应的第二电容值。
具体地,耦合电容符合第一预设条件,包括:检测所述电容传感区域的电容变化规则是否满足预设规则。
具体地,检测第一指定时刻电容传感区域的第一数据列表,其中,第一指定时刻为根据所述折叠事件获取屏幕状态检测指令之后的时刻,第一数据列表记录根据所述折叠事件获取屏幕状态检测指令之后电容传感器的第一电容值;
根据第一数据列表和预存的基础数据列表,计算得到电容传感区域电容变化值,获得各第一指定时刻对应的电容变化值得到电容传感器电容变化规则,判断电容变化规则是否满足预设规则。
具体地,预存的基础数据列表包括:
按照预设方法分别获取电容传感器对应各第二指定时刻的数据列表,其中第二指定时刻为没有根据所述折叠事件获取屏幕状态检测指令的时刻,第二指定时刻与第二数据列表一一对应,第二数据列表记录了电容传感器在第二指定时刻各电容传感器分别对应的第三电容值;
按照各第二数据列表中的电容传感器的预设对应关系,获取电容传感器对应的第三电容值总和,其中,电容传感器为组成电容触摸屏电容矩阵的中的任意一个;根据第三电容值总和计算所述电容传感器对应的指定平均电容值,并根据指定平均电容值的计算过程得到各电容传感器分别对应的平均电容值;将各电容传感器分别对应的平均电容值一一对应地赋值于各电容传感器分别对应的所述第二电容值,获得所述基础数据列表。
具体地,耦合电容符合第一预设条件,包括:检测所述电容传感区域的电容变化面积是否大于预设面积阈值。
具体地,检测所述电容传感区域的电容变化面积是否大于预设面积阈值,包括:
确定接收到耦合电容的电容传感器的数量以及单个传感器尺寸,确定电容变化面积;
基于确定电容变化面积检测电容传感器的电容变化面积是否大于预设面积阈值。
具体地,检测电容传感器区域的排列编号或者在预设二维坐标系中的坐标;
基于排列编号或者坐标的数量确定接收到所述电容传感器区域的电容传感器的数量;
基于接收到所述电容传感器区域的电容传感器的数量以及单个传感器尺寸,确定电容变化面积;
基于确定电容变化面积检测所述电容传感器区域的电容变化面积是否大于预设面积阈值。
S103 基于所述耦合电容符合第一预设条件,控制所述屏幕状态。
具体地,应用于至少具有一个屏幕的终端设备,该屏幕为折叠屏,该折叠屏可以向里折叠,这里的向里折叠是指发生折叠后终端设备折叠状态的屏幕发出的光的方向是相向的或部分相向的。
检测耦合电容符合所述第一预设条件,则判定屏幕为折叠状态,则控制折叠屏以第一显示状态显示,检测耦合电容不符合第一预设条件,则判定折叠屏为展开状态时,控制折叠屏以第二显示状态显示,其中,第一显示状态为熄灭状态,第二显示状态为点亮状态。
具体地,应用于至少具有两个屏幕的终端设备,至少一个屏幕为折叠屏。两个屏幕分别于X轴和Y轴相交形成的平面平行,且两个屏幕在Z轴方向上,背对设置。这里的背对设置是指,两个屏幕在点亮状态下,两个屏幕发出的光的射出方向相反。两个屏幕中,可以仅有一个屏幕是折叠屏,另一个屏幕是平面屏;也可以是两个屏幕都为折叠屏。该折叠屏可以向里折叠,这里的向里折叠是指发生折叠后终端设备折叠状态的屏幕发出的光的方向是相向的或部分相向的。
具体地,终端设备的两个屏幕中一个屏幕为折叠屏,另一个屏幕为平面屏,折叠屏在展开状态下,平面屏与折叠屏背对设置。折叠屏作为终端设备的内屏使用,平面屏作为终端设备的外屏使用,折叠屏为第一屏幕,平面屏为第二屏幕。
具体地,两个屏幕都是折叠屏,两个屏幕的大小可以完全相等;当两个屏幕中,一个是折叠屏,另一个是平面屏时,平面屏的面积小于折叠屏的面积,比如,平面屏的面积可以等于折叠屏的面积的一半,也可以小于折叠屏的一半。
检测耦合电容符合所述第一预设条件,则判定屏幕为折叠状态,则控制折叠屏以第一显示状态显示,控制两个屏幕中的另一个屏幕以第二显示状态显示;其中第一显示状态为熄灭状态,第二显示状态为点亮状态。检测耦合电容不符合第一预设条件,则判定折叠屏为展开状态时,控制折叠屏以第二显示状态显示,控制两个屏幕中的另一个屏幕以第一显示状态显示;其中第一显示状态为熄灭状态,第二显示状态为点亮状态。
本申请实施例还提供一种屏幕状态控制装置,所述屏幕状态控制装置可以集成在移动终端中,所述移动终端可以是智能手机、平板电脑、台式计算机、智能手表等设备。
请参阅图3,图3为本申请实施例提供的屏幕状态控制装置的第一结构示意图。所述屏幕状态控制装置30可以包括:
接收模块31,用于接收根据折叠事件产生的耦合电容;
判断模块32,用于判断耦合电容符合第一预设条件;
控制模块33,用于基于所述耦合电容符合第一预设条件,控制所述屏幕状态。
在一些实施例中,所述接收模块31,具体用于:
终端设备接收根据折叠事件产生耦合电容。
在一些实施例中,所述接收模块31,具体用于:
折叠屏可以分为第一电容传感区域和第二电容传感区域,折叠事件为第一电容传感区域或第二电容传感区域发生向里折叠,这里的向里折叠是指发生折叠后终端设备折叠状态的屏幕状态发出的光的方向是相向的或部分相向的。
在一些实施例中,所述接收模块31,具体用于:
终端设备可以监测设置在第一电容传感区域或第二电容传感区域的角加速度传感器采集的数据,根据采集的数据计算出角度变化值,进一步判断该角度变化值是否在预设角度范围内。
在一些实施例中,所述接收模块31,具体用于:
预设角度是在第一角度至180°之间,第一角度为20°至35°,若采集的数据在预设角度范围内,则终端获取到屏幕状态检测指令。上述举例说明不作为对本申请实施例的限定,预设角度并不限于“在第一角度至180°之间,第一角度为20°至35°”,可以根据实际需要进行调整,只要包含判断角度变化值是否在预设角度范围内都属于本申请的保护范围。
在一些实施例中,所述接收模块31,具体用于:
折叠屏分为第一电容传感区域和第二电容传感区域,折叠屏发生折叠后,产生耦合电容,第一电容传感区域和第二电容传感区域的电容传感器的电容值发生变化。
在一些实施例中,所述接收模块31,具体用于:
折叠屏分为第一电容传感区域和第二电容传感区域,终端设备根据折叠事件,停止给第二电容传感区域的驱动线102加载电压,第一电容传感区域的电容传感器的电容值会降低,折叠屏发生折叠后,产生耦合电容,第一电容传感区域的电容值和第二电容传感区域的电容值相互影响,检测第一电容传感区域的电容值和第二电容传感区域的电容值的变化值。
在一些实施例中,所述接收模块31,具体用于:
折叠屏分为第一电容传感区域和第二电容传感区域,终端设备根据折叠事件,改变第二电容传感区域的驱动线102加载电压的值,折叠屏发生折叠后,产生耦合电容,第一电容传感区域的电容值和第二电容传感区域的电容值相互影响,检测第一电容传感区域的电容值和第二电容传感区域的电容值的变化值。
在一些实施例中,所述接收模块31,具体用于:
折叠屏分为第一电容传感区域和第二电容传感区域,终端设备根据折叠事件,改变第二电容传感区域的驱动线102加载电压的波形,折叠屏发生折叠后,产生耦合电容,第一电容传感区域的电容值和第二电容传感区域的电容值相互影响,检测第一电容传感区域的电容值和/或第二电容传感区域的电容变化值。
在一些实施例中,所述判断模块32,具体用于:
判断所述耦合电容符合第一预设条件。
在一些实施例中,所述判断模块32,具体用于:
根据折叠事件产生的耦合电容,折叠屏接收耦合电容,该耦合电容符合第一预设条件。
在一些实施例中,所述判断模块32,具体用于:
根据折叠事件可以获取屏幕状态检测指令。
在一些实施例中,所述判断模块32,具体用于:
耦合电容符合第一预设条件,包括:检测接收到耦合电容的电容传感区域的电容变化值是否大于预设阈值,若电容变化值大于所述预设阈值,则确定耦合电容符合第一预设条件。
在一些实施例中,所述判断模块32,具体用于:
检测第一指定时刻电容传感区域的第一数据列表,其中,第一指定时刻为根据所述折叠事件获取屏幕状态检测指令之后的时刻,第一数据列表记录根据所述折叠事件获取屏幕状态检测指令之后所述电容传感区域的各电容传感器的第一电容值。
根据第一数据列表和预存的基础数据列表,计算得到电容传感区域电容变化值,根据电容变化值判断电容变化值是否大于预设阈值,其中,基础数据列表记录了根据所述折叠事件获取屏幕状态检测指令所述电容传感区域的各电容传感器分别对应的第二电容值。
在一些实施例中,所述判断模块32,具体用于:
耦合电容符合第一预设条件,包括:检测所述电容传感器区域的电容变化规则是否满足预设规则。
在一些实施例中,所述判断模块32,具体用于:
检测第一指定时刻电容传感区域的第一数据列表,其中,第一指定时刻为根据所述折叠事件获取屏幕状态检测指令之后的时刻,第一数据列表记录根据所述折叠事件获取屏幕状态检测指令之后电容传感器的第一电容值;
根据第一数据列表和预存的基础数据列表,计算得到电容传感区域电容变化值,获得各第一指定时刻对应的电容变化值得到电容传感器电容变化规则,判断电容变化规则是否满足预设规则。
在一些实施例中,所述判断模块32,具体用于:
预存的基础数据列表包括:
按照预设方法分别获取电容传感器对应各第二指定时刻的数据列表,其中第二指定时刻为没有根据所述折叠事件获取屏幕状态检测指令的时刻,第二指定时刻与第二数据列表一一对应,第二数据列表记录了电容传感器在第二指定时刻各电容传感器分别对应的第三电容值;
按照各第二数据列表中的电容传感器的预设对应关系,获取电容传感器对应的第三电容值总和,其中,电容传感器为组成电容触摸屏电容矩阵的中的任意一个;根据第三电容值总和计算所述电容传感器对应的指定平均电容值,并根据指定平均电容值的计算过程得到各电容传感器分别对应的平均电容值;将各电容传感器分别对应的平均电容值一一对应地赋值于各电容传感器分别对应的所述第二电容值,获得所述基础数据列表。
在一些实施例中,所述判断模块32,具体用于:
耦合电容符合第一预设条件,包括:检测所述电容传感器区域的电容变化面积是否大于预设面积阈值。
在一些实施例中,所述判断模块32,具体用于:
检测所述电容传感器区域的电容变化面积是否大于预设面积阈值,包括:
确定接收到耦合电容的电容传感器的数量以及单个传感器尺寸,确定电容变化面积;
基于确定电容变化面积检测电容传感器的电容变化面积是否大于预设面积阈值。
在一些实施例中,所述判断模块32,具体用于:
检测电容传感器区域的排列编号或者在预设二维坐标系中的坐标;
基于排列编号或者坐标的数量确定接收到所述电容传感器区域的电容传感器的数量;
基于接收到所述电容传感器区域的电容传感器的数量以及单个传感器尺寸,确定电容变化面积;
基于确定电容变化面积检测所述电容传感器区域的电容变化面积是否大于预设面积阈值。
在一些实施例中,控制模块33,具体用于:
基于所述耦合电容符合第一预设条件,控制所述屏幕状态。
在一些实施例中,控制模块33,具体用于:
应用于至少具有一个屏幕的终端设备,该屏幕为折叠屏,该折叠屏可以向里折叠,这里的向里折叠是指发生折叠后终端设备折叠状态的屏幕发出的光的方向是相向的或部分相向的。
检测耦合电容符合第一预设条件,则判定屏幕为折叠状态,则控制折叠屏以第一显示状态显示,检测耦合电容不符合第一预设条件,则判定折叠屏为展开状态时,控制折叠屏以第二显示状态显示,其中,第一显示状态为熄灭状态,第二显示状态为点亮状态。
在一些实施例中,控制模块33,具体用于:
应用于至少具有两个屏幕的终端设备,至少一个屏幕为折叠屏。两个屏幕分别于X轴和Y轴相交形成的平面平行,且两个屏幕在Z轴方向上,背对设置。这里的背对设置是指,两个屏幕在点亮状态下,两个屏幕发出的光的射出方向相反。两个屏幕中,可以仅有一个屏幕是折叠屏,另一个屏幕是平面屏;也可以是两个屏幕都为折叠屏。该折叠屏可以向里折叠,这里的向里折叠是指发生折叠后终端设备折叠状态的屏幕发出的光的方向是相向的或部分相向的。
在一些实施例中,控制模块33,具体用于:
终端设备的两个屏幕中一个屏幕为折叠屏,另一个屏幕为平面屏,折叠屏在展开状态下,平面屏与折叠屏背对设置。折叠屏作为终端设备的内屏使用,平面屏作为终端设备的外屏使用,折叠屏为第一屏幕,平面屏为第二屏幕。
在一些实施例中,控制模块33,具体用于:
两个屏幕都是折叠屏,两个屏幕的大小可以完全相等;当两个屏幕中,一个是折叠屏,另一个是平面屏时,平面屏的面积小于折叠屏的面积,比如,平面屏的面积可以等于折叠屏的面积的一半,也可以小于折叠屏的一半。
检测耦合电容符合第一预设条件,则判定屏幕为折叠状态,则控制折叠屏以第一显示状态显示,控制两个屏幕中的另一个屏幕以第二显示状态显示;其中第一显示状态为熄灭状态,第二显示状态为点亮状态。检测耦合电容不符合第一预设条件,则判定折叠屏为展开状态,控制折叠屏以第二显示状态显示,控制两个屏幕中的另一个屏幕以第一显示状态显示;其中第一显示状态为熄灭状态,第二显示状态为点亮状态。
由上可知,本实施例提供的屏幕状态控制装置30,接收模块31,用于接收根据折叠事件产生的耦合电容;判断模块32,用于判断耦合电容符合第一预设条件;控制模块33,用于基于所述耦合电容符合第一预设条件,控制所述屏幕状态。
本申请提供一种计算机可读存储介质,所述存储介质中存储有计算机程序,当所述计算机程序在计算机上运行时,使得所述计算机执行如下步骤:
接收根据折叠事件产生的耦合电容。
在所述存储介质中,可以监测设置在第一电容传感区域或第二电容传感区域的角加速度传感器采集的数据,根据采集的数据计算出角度变化值,进一步判断该角度变化值是否在预设角度范围内。
在所述存储介质中,预设角度是在第一角度至180°之间,第一角度为20°至35°,若采集的数据在预设角度范围内,则获取到屏幕状态检测指令。
在所述存储介质中,根据折叠事件,停止给第二电容传感区域的驱动线加载电压,第一电容传感区域的电容传感器的电容值会降低,折叠屏发生折叠后,产生耦合电容,第一电容传感区域的电容值和第二电容传感区域的电容值相互影响,检测第一电容传感区域的电容值和第二电容传感区域的电容值的变化值。
在所述存储介质中,根据折叠事件,改变第二电容传感区域的驱动线加载电压的值,折叠屏发生折叠后,产生耦合电容,第一电容传感区域的电容值和第二电容传感区域的电容值相互影响,检测第一电容传感区域的电容值和第二电容传感区域的电容值的变化值。
在所述存储介质中,根据折叠事件,改变第二电容传感区域的驱动线加载电压的波形,折叠屏发生折叠后,产生耦合电容,第一电容传感区域的电容值和第二电容传感区域的电容值相互影响,检测第一电容传感区域的电容值和/或第二电容传感区域的电容变化值。
判断所述耦合电容符合第一预设条件。
在所述存储介质中,根据折叠事件可以获取屏幕状态检测指令。
在所述存储介质中,耦合电容符合第一预设条件,包括:检测接收到耦合电容的电容传感区域的电容变化值是否大于预设阈值,若电容变化值大于所述预设阈值,则确定耦合电容符合第一预设条件。
在所述存储介质中,检测第一指定时刻电容传感区域的第一数据列表,其中,第一指定时刻为根据所述折叠事件获取屏幕状态检测指令之后的时刻,第一数据列表记录根据所述折叠事件获取屏幕状态检测指令之后所述电容传感区域的各电容传感器的第一电容值。
根据第一数据列表和预存的基础数据列表,计算得到电容传感区域电容变化值,根据电容变化值判断电容变化值是否大于预设阈值,其中,基础数据列表记录了根据所述折叠事件获取屏幕状态检测指令所述电容传感区域的各电容传感器分别对应的第二电容值。
在所述存储介质中,耦合电容符合第一预设条件,包括:检测所述电容传感区域的电容变化规则是否满足预设规则。
在所述存储介质中,检测第一指定时刻电容传感区域的第一数据列表,其中,第一指定时刻为根据所述折叠事件获取屏幕状态检测指令之后的时刻,第一数据列表记录根据所述折叠事件获取屏幕状态检测指令之后电容传感器的第一电容值;
根据第一数据列表和预存的基础数据列表,计算得到电容传感区域电容变化值,获得各第一指定时刻对应的电容变化值得到电容传感器电容变化规则,判断电容变化规则是否满足预设规则。
在所述存储介质中,预存的基础数据列表包括:
按照预设方法分别获取电容传感器对应各第二指定时刻的数据列表,其中第二指定时刻为没有根据所述折叠事件获取屏幕状态检测指令的时刻,第二指定时刻与第二数据列表一一对应,第二数据列表记录了电容传感器在第二指定时刻各电容传感器分别对应的第三电容值;
按照各第二数据列表中的电容传感器的预设对应关系,获取电容传感器对应的第三电容值总和,其中,电容传感器为组成电容触摸屏电容矩阵的中的任意一个;根据第三电容值总和计算所述电容传感器对应的指定平均电容值,并根据指定平均电容值的计算过程得到各电容传感器分别对应的平均电容值;将各电容传感器分别对应的平均电容值一一对应地赋值于各电容传感器分别对应的所述第二电容值,获得所述基础数据列表。
在所述存储介质中,耦合电容符合第一预设条件,包括:检测所述电容传感区域的电容变化面积是否大于预设面积阈值。
在所述存储介质中,检测所述电容传感区域的电容变化面积是否大于预设面积阈值,包括:
确定接收到耦合电容的电容传感器的数量以及单个传感器尺寸,确定电容变化面积;
基于确定电容变化面积检测电容传感器的电容变化面积是否大于预设面积阈值。
具体地,检测电容传感器区域的排列编号或者在预设二维坐标系中的坐标;
基于排列编号或者坐标的数量确定接收到所述电容传感器区域的电容传感器的数量;
基于接收到所述电容传感器区域的电容传感器的数量以及单个传感器尺寸,确定电容变化面积;
基于确定电容变化面积检测所述电容传感器区域的电容变化面积是否大于预设面积阈值。
基于所述耦合电容符合第一预设条件,控制所述屏幕状态。
在所述存储介质中,检测耦合电容符合第一预设条件,则判定屏幕为折叠状态,则控制折叠屏以第一显示状态显示,控制两个屏幕中的另一个屏幕以第二显示状态显示;其中第一显示状态为熄灭状态,第二显示状态为点亮状态。检测耦合电容不符合第一预设条件,则判定折叠屏为展开状态时,控制折叠屏以第二显示状态显示,控制两个屏幕中的另一个屏幕以第一显示状态显示;其中第一显示状态为熄灭状态,第二显示状态为点亮状态。
本申请实施例还提供一种移动终端。所述移动终端可以是智能手机、平板电脑、台式计算机、智能手表等设备。
请参阅图4,图4示出了本申请实施例提供的移动终端的结构示意图,该移动终端可以用于实施上述实施例中提供的屏幕状态控制方法。该移动终端1200可以为智能手机或平板电脑。
请参阅图4,图4示出了本申请实施例提供的移动终端的结构示意图,该移动终端可以用于实施上述实施例中提供的屏幕状态控制方法。该移动终端1200可以为智能手机或平板电脑。
如图4所示,移动终端1200可以包括RF(Radio Frequency,射频)电路110、包括有一个或一个以上(图中仅示出一个)计算机可读存储介质的存储器120、输入单元130、显示单元140、传感器150、音频电路160、传输模块170、包括有一个或者一个以上(图中仅示出一个)处理核心的处理器180以及电源190等部件。本领域技术人员可以理解,图4中示出的移动终端1200结构并不构成对移动终端1200的限定,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。其中:
RF电路110用于接收以及发送电磁波,实现电磁波与电信号的相互转换,从而与通讯网络或者其他设备进行通讯。RF电路110可包括各种现有的用于执行这些功能的电路元件,例如,天线、射频收发器、数字信号处理器、加密/解密芯片、用户身份模块(SIM)卡、存储器等等。RF电路110可与各种网络如互联网、企业内部网、无线网络进行通讯或者通过无线网络与其他设备进行通讯。
存储器120可用于存储软件程序以及模块,如上述实施例中屏幕状态控制方法对应的程序指令/模块,处理器180通过运行存储在存储器120内的软件程序以及模块,从而执行各种功能应用以及数据处理。存储器120可包括高速随机存储器,还可包括非易失性存储器,如一个或者多个磁性存储装置、闪存、或者其他非易失性固态存储器。在一些实例中,存储器120可进一步包括相对于处理器180远程设置的存储器,这些远程存储器可以通过网络连接至移动终端1200。上述网络的实例包括但不限于互联网、企业内部网、局域网、移动通信网及其组合。
输入单元130可用于接收输入的数字或字符信息,以及产生与用户设置以及功能控制有关的键盘、鼠标、操作杆、光学或者轨迹球信号输入。具体地,输入单元130可包括触敏表面131以及其他输入设备132。触敏表面131,也称为触摸显示屏或者触控板,可收集用户在其上或附近的触摸操作(比如用户使用手指、触笔等任何适合的物体或附件在触敏表面131上或在触敏表面131附近的操作),并根据预先设定的程式驱动相应的连接装置。除了触敏表面131,输入单元130还可以包括其他输入设备132。具体地,其他输入设备132可以包括但不限于物理键盘、功能键(比如音量控制按键、开关按键等)、轨迹球、鼠标、操作杆等中的一种或多种。
显示单元140可用于显示由用户输入的信息或提供给用户的信息以及移动终端1200的各种图形用户接口,这些图形用户接口可以由图形、文本、图标、视频和其任意组合来构成。显示单元140可包括显示面板141。进一步的,触敏表面131可覆盖显示面板141,当触敏表面131检测到在其上或附近的触摸操作后,传送给处理器180以确定触摸事件的类型,随后处理器180根据触摸事件的类型在显示面板141上提供相应的视觉输出。该显示单元140为上述实施例中的屏幕。
移动终端1200还可包括至少一种传感器150,比如光传感器、运动传感器以及其他传感器。至于移动终端1200还可配置的气压计、湿度计、温度计、红外线传感器等其他传感器,在此不再赘述。
音频电路160、扬声器161,传声器162可提供用户与移动终端1200之间的音频接口。音频电路160可将接收到的音频数据转换后的电信号,传输到扬声器161,由扬声器161转换为声音信号输出;另一方面,传声器162将收集的声音信号转换为电信号,由音频电路160接收后转换为音频数据,再将音频数据输出处理器180处理后,经RF电路110以发送给比如另一终端,或者将音频数据输出至存储器120以便进一步处理。音频电路160还可能包括耳塞插孔,以提供外设耳机与移动终端1200的通信。
移动终端1200通过传输模块170(例如Wi-Fi模块)可以帮助用户收发电子邮件、浏览网页和访问流式媒体等,它为用户提供了无线的宽带互联网访问。虽然图4示出了传输模块170,但是可以理解的是,其并不属于移动终端1200的必须构成,完全可以根据需要在不改变发明的本质的范围内而省略。
处理器180是移动终端1200的控制中心,利用各种接口和线路连接整个手机的各个部分,通过运行或执行存储在存储器120内的软件程序和/或模块,以及调用存储在存储器120内的数据,执行移动终端1200的各种功能和处理数据,从而对手机进行整体监控。可选的,处理器180可包括一个或多个处理核心;在一些实施例中,处理器180可集成应用处理器和调制解调处理器,其中,应用处理器主要处理操作系统、用户界面和应用程序等,调制解调处理器主要处理无线通信。可以理解的是,上述调制解调处理器也可以不集成到处理器180中。
移动终端1200还包括给各个部件供电的电源190(比如电池),电源可以通过电源管理系统与处理器180逻辑相连,从而通过电源管理系统实现管理充电、放电、以及功耗管理等功能。电源190还可以包括一个或一个以上的直流或交流电源、再充电系统、电源故障检测电路、电源转换器或者逆变器、电源状态指示器等任意组件。
尽管未示出,移动终端1200还可以包括摄像头(如前置摄像头、后置摄像头)、蓝牙模块等,在此不再赘述。具体在本实施例中,移动终端1200的显示单元140是触摸屏显示器,移动终端1200还包括有存储器120,以及一个或者一个以上的程序,其中一个或者一个以上程序存储于存储器120中,且经配置以由一个或者一个以上处理器180执行一个或者一个以上程序包含用于进行以下操作的指令:
接收根据折叠事件产生的耦合电容,判断耦合电容符合第一预设条件,基于所述耦合电容符合第一预设条件,控制所述屏幕状态。
在一些实施例中,处理器180用于接收根据折叠事件产生的耦合电容,包括:
监测设置在第一电容传感区域或第二电容传感区域的角加速度传感器采集的数据,根据采集的数据计算出角度变化值,进一步判断该角度变化值是否在预设角度范围内。
在一些实施例中,处理器180用于接收根据折叠事件产生的耦合电容,包括:
根据折叠事件,停止给第二电容传感区域的驱动线102加载电压,第一电容传感区域的电容传感器的电容值会降低,折叠屏发生折叠后,产生耦合电容,第一电容传感区域的电容值和第二电容传感区域的电容值相互影响,检测第一电容传感区域的电容值和第二电容传感区域的电容值的变化值。
在一些实施例中,处理器180用于接收根据折叠事件产生的耦合电容,包括:
根据折叠事件,改变第二电容传感区域的驱动线102加载电压的值,折叠屏发生折叠后,产生耦合电容,第一电容传感区域的电容值和第二电容传感区域的电容值相互影响,检测第一电容传感区域的电容值和第二电容传感区域的电容值的变化值。
在一些实施例中,处理器180用于接收根据折叠事件产生的耦合电容,包括:
根据所述折叠事件,改变第二电容传感区域的驱动线102加载电压的波形,折叠屏发生折叠后,产生耦合电容,第一电容传感区域的电容值和第二电容传感区域的电容值相互影响,检测第一电容传感区域的电容值和/或第二电容传感区域的电容变化值。
在一些实施例中,处理器180用于判断耦合电容符合第一预设条件,包括:
耦合电容符合第一预设条件,包括:检测接收到耦合电容的电容传感区域的电容变化值是否大于预设阈值,若电容变化值大于所述预设阈值,则确定耦合电容符合第一预设条件。
在一些实施例中,处理器180用于判断耦合电容符合第一预设条件,包括:
检测第一指定时刻电容传感区域的第一数据列表,其中,第一指定时刻为根据折叠事件获取屏幕状态检测指令之后的时刻,第一数据列表记录根据所述折叠事件获取屏幕状态检测指令之后所述电容传感区域的各电容传感器的第一电容值。
根据第一数据列表和预存的基础数据列表,计算得到电容传感区域电容变化值,根据电容变化值判断电容变化值是否大于预设阈值,其中,基础数据列表记录了根据所述折叠事件获取屏幕状态检测指令所述电容传感区域的各电容传感器分别对应的第二电容值。
在一些实施例中,处理器180用于判断耦合电容符合第一预设条件,包括:
检测所述电容传感器区域的电容变化规则是否满足预设规则。
在一些实施例中,处理器180用于判断耦合电容符合第一预设条件,包括:
检测第一指定时刻电容传感区域的第一数据列表,其中,第一指定时刻为根据所述折叠事件获取屏幕状态检测指令之后的时刻,第一数据列表记录根据所述折叠事件获取屏幕状态检测指令之后所述电容传感区域的各电容传感器的第一电容值;
根据第一数据列表和预存的基础数据列表,计算得到电容传感区域电容变化值,获得各第一指定时刻对应的电容变化值得到电容传感器电容变化规则,判断电容变化规则是否满足预设规则。
预存的基础数据列表包括:按照预设方法分别获取所述电容传感区域的各电容传感器对应各第二指定时刻的数据列表,其中第二指定时刻为没有根据折叠事件获取屏幕状态检测指令的时刻,第二指定时刻与第二数据列表一一对应,第二数据列表记录了电容传感器在第二指定时刻各电容传感器分别对应的第三电容值;
按照各第二数据列表中的电容传感器的预设对应关系,获取电容传感器对应的第三电容值总和,其中,电容传感器为组成电容触摸屏电容矩阵的中的任意一个;根据第三电容值总和计算所述电容传感器对应的指定平均电容值,并根据指定平均电容值的计算过程得到各电容传感器分别对应的平均电容值;将各电容传感器分别对应的平均电容值一一对应地赋值于各电容传感器分别对应的所述第二电容值,获得所述基础数据列表。
在一些实施例中,处理器180用于判断耦合电容符合第一预设条件,包括:
耦合电容符合第一预设条件,包括:检测所述电容传感器区域的电容变化面积是否大于预设面积阈值。
在一些实施例中,处理器180用于判断耦合电容符合第一预设条件,包括:
确定接收到耦合电容的电容传感器的数量以及单个传感器尺寸,确定电容变化面积;
基于确定电容变化面积检测电容传感器的电容变化面积是否大于预设面积阈值。
检测电容传感器区域的排列编号或者在预设二维坐标系中的坐标;
基于排列编号或者坐标的数量确定接收到所述电容传感器区域的电容传感器的数量;
基于接收到所述电容传感器区域的电容传感器的数量以及单个传感器尺寸,确定电容变化面积;
基于确定电容变化面积检测所述电容传感器区域的电容变化面积是否大于预设面积阈值。
在一些实施例中,处理器180用于基于所述耦合电容符合第一预设条件,控制所述屏幕状态。
检测耦合电容符合第一预设条件,则判定屏幕为折叠状态,则控制折叠屏以第一显示状态显示,检测耦合电容不符合第一预设条件,则判定折叠屏为展开状态时,控制折叠屏以第二显示状态显示,其中,第一显示状态为熄灭状态,第二显示状态为点亮状态。
具体地,终端设备的两个屏幕中一个屏幕为折叠屏,另一个屏幕为平面屏,折叠屏在展开状态下,平面屏与折叠屏背对设置。折叠屏作为终端设备的内屏使用,平面屏作为终端设备的外屏使用,折叠屏为第一屏幕,平面屏为第二屏幕。
检测耦合电容符合第一预设条件,则判定屏幕为折叠状态,则控制折叠屏以第一显示状态显示,控制两个屏幕中的另一个屏幕以第二显示状态显示;其中第一显示状态为熄灭状态,第二显示状态为点亮状态。检测耦合电容不符合第一预设条件,则判定折叠屏为展开状态时,控制折叠屏以第二显示状态显示,控制两个屏幕中的另一个屏幕以第一显示状态显示;其中第一显示状态为熄灭状态,第二显示状态为点亮状态。
需要说明的是,对本申请所述屏幕状态控制方法而言,本领域普通测试人员可以理解实现本申请实施例所述屏幕状态控制方法的全部或部分流程,是可以通过计算机程序来控制相关的硬件来完成,所述计算机程序可存储于一计算机可读存储介质中,如存储在移动终端的存储器中,并被该移动终端内的至少一个处理器执行,在执行过程中可包括如所述屏幕状态控制方法的实施例的流程。其中,所述存储介质可为磁碟、光盘、只读存储器(ROM,Read Only Memory)、随机存取记忆体(RAM,Random Access Memory)等。
对本申请实施例的所述屏幕状态控制装置而言,其各功能模块可以集成在一个处理芯片中,也可以是各个模块单独物理存在,也可以两个或两个以上模块集成在一个模块中。上述集成的模块既可以采用硬件的形式实现,也可以采用软件功能模块的形式实现。所述集成的模块如果以软件功能模块的形式实现并作为独立的产品销售或使用时,也可以存储在一个计算机可读存储介质中,所述存储介质譬如为只读存储器,磁盘或光盘等。
以上对本申请实施例所提供的屏幕状态控制方法、装置、存储介质及移动终端进行了详细介绍。本文中应用了具体个例对本申请的原理及实施方式进行了阐述,以上实施例的说明只是用于帮助理解本申请的方法及其核心思想;同时,对于本领域的技术人员,依据本申请的思想,在具体实施方式及应用范围上均会有改变之处,综上所述,本说明书内容不应理解为对本申请的限制。

Claims (20)

  1. 一种屏幕状态控制方法,其中,包括:
    接收根据折叠事件产生的耦合电容,所述耦合电容符合第一预设条件;
    基于所述耦合电容符合第一预设条件,控制所述屏幕状态。
  2. 根据权利要求1所述的方法,其特征在于,所述耦合电容符合第一预设条件,包括:
    检测所述耦合电容对应的电容传感区域的电容变化值是否大于预设阈值;
    判断所述电容变化值大于所述预设阈值。
  3. 根据权利要求2所述的方法,其中,所述检测所述耦合电容对应的电容传感区域的电容变化值是否大于预设阈值,包括:
    检测第一指定时刻所述电容传感区域的第一数据列表;
    根据所述第一数据列表和预存的基础数据列表,计算得到所述电容传感器电容变化值,判断所述电容变化值是否大于预设阈值。
  4. 根据权利要求2所述的方法,其中,所述检测所述耦合电容对应的电容传感区域的电容变化值是否大于预设阈值,包括:
    检测第一指定时刻所述电容传感区域的第一数据列表,所述第一指定时刻为所述折叠事件之后的时刻,所述第一数据列表记录折叠事件之后所述电容传感区域的各电容传感器的第一电容值;
    根据所述第一数据列表和预存的基础数据列表,计算得到所述电容传感区域电容变化值,根据所述电容变化值判断所述电容变化值是否大于预设阈值,所述基础数据列表记录了所述折叠事件之前所述电容传感区域的各电容传感器分别对应的第二电容值。
  5. 根据权利要求1所述的方法,其中,所述耦合电容符合第一预设条件,包括:
    检测所述耦合电容对应的电容传感区域的电容变化规则是否满足预设规则。
  6. 根据权利要求5所述的方法,其中,所述检测所述耦合电容对应的电容传感区域的电容变化规则是否满足预设规则,包括:
    检测第一指定时刻所述电容传感区域的第一数据列表;
    根据所述第一数据列表和预存的基础数据列表,计算得到所述电容传感区域电容变化值,获取各所述第一指定时刻对应的电容变化值得到电容传感区域电容变化规则,判断所述电容变化规则是否满足预设规则。
  7. 根据权利要求5所述的方法,其中,所述检测所述耦合电容对应的电容传感区域的电容变化规则是否满足预设规则,包括:
    检测第一指定时刻所述电容传感区域的第一数据列表,所述第一指定时刻为折叠事件之后的时刻,所述第一数据列表记录所述折叠事件之后所述电容传感区域的各电容传感器的第一电容值;
    根据所述第一数据列表和预存的基础数据列表,计算得到所述电容传感区域电容变化值,获得各所述第一指定时刻对应的所述电容变化值得到所述电容传感区域电容变化规则,判断所述电容变化规则是否满足预设规则。
  8. 根据权利要求1所述的方法,其中,所述耦合电容符合第一预设条件,包括:
    检测所述耦合电容对应的电容传感区域的电容变化面积是否大于预设面积阈值。
  9. 根据权利要求8所述的方法,其中,所述检测所述耦合电容对应的电容传感区域的电容变化面积是否大于预设面积阈值,包括:
    确定接收到所述耦合电容的电容传感器的数量以及单个传感器尺寸,确定电容变化面积;
    基于所述确定电容变化面积检测所述电容传感器的电容变化面积是否大于预设面积阈值。
  10. 根据权利要求8所述的方法,其中,所述检测所述耦合电容对应的电容传感区域的电容变化面积是否大于预设面积阈值,包括:
    检测所述电容传感区域的排列编号或者在预设二维坐标系中的坐标;
    基于所述排列编号或者所述坐标的数量确定接收到所述电容传感区域的电容传感器的数量;
    基于接收到所述电容传感器的数量以及单个传感器尺寸,确定电容变化面积;
    基于所述电容变化面积检测所述电容传感器区域的所述电容变化面积是否大于预设面积阈值。
  11. 根据权利要求1所述的方法,其中,所述根据折叠事件,包括:
    监测第一传感器采集的数据;
    判断所述采集的数据是否满足第二预设条件;
    若满足所述第二预设条件,判断发生折叠事件。
  12. 根据权利要求1所述的方法,其中,所述根据折叠事件,包括:
    监测第一传感器采集的数据;
    根据所述采集的数据计算出所述第一传感器设置于的电容传感区域的角度变化值;
    判断所述角度变化值是否在预设角度范围内,若在所述预设角度范围内,判断发生折叠事件。
  13. 根据权利要求1所述的方法,其中,所述耦合电容符合第一预设条件之后,还包括:
    检测所述耦合电容符合所述第一预设条件,则判定屏幕为折叠状态,控制折叠屏以第一显示状态显示;
    检测所述耦合电容不符合所述第一预设条件,则判定屏幕为展开状态,控制折叠屏以第二显示状态显示。
  14. 根据权利要求1所述的方法,所述方法应用于具有折叠屏的终端上,所述折叠屏分为第一电容传感区域和第二电容传感区域,其中,包括:
    根据所述折叠事件,所述第一电容传感区域和所述第二电容传感区域相互影响,产生所述耦合电容;
    接收根据所述折叠事件产生的所述耦合电容,所述耦合电容符合所述第一预设条件;
    基于所述耦合电容符合所述第一预设条件,控制所述屏幕状态。
  15. 根据权利要求14所述的方法,其中,所述根据所述折叠事件,还包括:
    改变所述第一电容传感区域和/或所述第二电容传感区域的驱动线加载电压的值;和/或
    改变所述第一电容传感区域和/或所述第二电容传感区域的驱动线加载电压的波形。
  16. 一种存储介质,其中,所述存储介质中存储有计算机程序,当所述计算机程序在计算机上运行时,使得所述计算机执行如下步骤:
    接收根据折叠事件产生的耦合电容;
    检测所述耦合电容对应的电容传感区域的电容变化值是否大于预设阈值;
    判断所述电容变化值大于所述预设阈值;
    基于所述电容变化值大于所述预设阈值,控制所述屏幕状态。
  17. 根据权利要求16所述的方法,其中,所述检测所述耦合电容对应的电容传感区域的电容变化值是否大于预设阈值,包括:
    检测第一指定时刻所述电容传感区域的第一数据列表,所述第一指定时刻为所述折叠事件之后的时刻,所述第一数据列表记录折叠事件之后所述电容传感区域的各电容传感器的第一电容值;
    根据所述第一数据列表和预存的基础数据列表,计算得到所述电容传感区域电容变化值,根据所述电容变化值判断所述电容变化值是否大于预设阈值,所述基础数据列表记录了所述折叠事件之前所述电容传感区域的各电容传感器分别对应的第二电容值。
  18. 根据权利要求16所述的存储介质,其中,还包括:
    接收根据折叠事件产生的耦合电容;
    检测所述耦合电容对应的所述电容传感区域的电容变化规则是否满足预设规则;
    判断所述电容变化规则满足预设规则;
    基于所述电容变化规则满足所述预设规则,控制所述屏幕状态。
  19. 根据权利要求16所述的方法,其中,还包括:
    接收根据折叠事件产生的耦合电容;
    检测所述耦合电容对应的所述电容传感区域的电容变化面积是否大于预设面积阈值;
    判断所述电容变化面积大于所述预设面积阈值;
    基于所述电容变化面积是否大于所述预设面积阈值,控制所述屏幕状态。
  20. 一种屏幕状态控制装置,其中,包括:
    接收模块,用于接收根据折叠事件产生的耦合电容;
    判断模块,用于判断耦合电容符合第一预设条件;
    控制模块,用于基于所述耦合电容符合第一预设条件,控制所述屏幕状态。
PCT/CN2020/135235 2020-11-19 2020-12-10 屏幕状态控制方法、装置及存储介质 WO2022104952A1 (zh)

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