WO2020042654A1 - 用于降低显示面板功耗的方法及低功耗的显示装置 - Google Patents

用于降低显示面板功耗的方法及低功耗的显示装置 Download PDF

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Publication number
WO2020042654A1
WO2020042654A1 PCT/CN2019/084895 CN2019084895W WO2020042654A1 WO 2020042654 A1 WO2020042654 A1 WO 2020042654A1 CN 2019084895 W CN2019084895 W CN 2019084895W WO 2020042654 A1 WO2020042654 A1 WO 2020042654A1
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WIPO (PCT)
Prior art keywords
display panel
ambient light
measured
distance
brightness
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Ceased
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PCT/CN2019/084895
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English (en)
French (fr)
Inventor
左清成
袁小玲
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Wuhan China Star Optoelectronics Technology Co Ltd
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Wuhan China Star Optoelectronics Technology Co Ltd
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Priority to US16/603,240 priority Critical patent/US20200227004A1/en
Publication of WO2020042654A1 publication Critical patent/WO2020042654A1/zh
Anticipated expiration legal-status Critical
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Classifications

    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G3/00Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes
    • G09G3/20Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters
    • G09G3/2092Details of a display terminals using a flat panel, the details relating to the control arrangement of the display terminal and to the interfaces thereto
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G5/00Control arrangements or circuits for visual indicators common to cathode-ray tube indicators and other visual indicators
    • G09G5/10Intensity circuits
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G5/00Control arrangements or circuits for visual indicators common to cathode-ray tube indicators and other visual indicators
    • G09G5/003Details of a display terminal, the details relating to the control arrangement of the display terminal and to the interfaces thereto
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2320/00Control of display operating conditions
    • G09G2320/06Adjustment of display parameters
    • G09G2320/0626Adjustment of display parameters for control of overall brightness
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2330/00Aspects of power supply; Aspects of display protection and defect management
    • G09G2330/02Details of power systems and of start or stop of display operation
    • G09G2330/021Power management, e.g. power saving
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2340/00Aspects of display data processing
    • G09G2340/04Changes in size, position or resolution of an image
    • G09G2340/0407Resolution change, inclusive of the use of different resolutions for different screen areas
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2354/00Aspects of interface with display user
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2360/00Aspects of the architecture of display systems
    • G09G2360/14Detecting light within display terminals, e.g. using a single or a plurality of photosensors
    • G09G2360/144Detecting light within display terminals, e.g. using a single or a plurality of photosensors the light being ambient light

Definitions

  • the invention relates to the technical field of displays, and in particular, to a method for reducing power consumption of a display panel and a device with a display panel having low power consumption.
  • CABC Content Adaptive Brightness Control
  • LOC Light Adaptive Brightness Control
  • the purpose of the present invention is to provide a method for reducing the power consumption of a display panel and a device with a low power consumption display panel, which ensure the visual effect of the display panel and reduce the power consumption of the backlight.
  • the present invention provides a method for reducing power consumption of a display panel.
  • the method includes the following steps:
  • Step 100 measuring a distance from the user's eyes to the display panel through an infrared sensing unit, and measuring an ambient light brightness through an ambient light sensing unit;
  • Step 200 transmitting the measured distance to a processing control unit through the infrared sensing unit, and transmitting the measured ambient light brightness to the processing control unit through the ambient light sensing unit; as well as
  • Step 300 Adjust the resolution of the display panel by the processing control unit according to the measured distance and the measured ambient light brightness.
  • the method further includes the following steps: Step 400: Through the processing control unit, adjust the display panel's distance based on the measured distance and the measured ambient light brightness. brightness.
  • the resolution of the display panel when the measured distance is longer, the resolution of the display panel is lowered; when the measured distance is shorter, the resolution of the display panel is adjusted. The higher.
  • the resolution of the display panel when the measured ambient light brightness is brighter, the resolution of the display panel is lowered; when the measured ambient light brightness is darker, the display panel is adjusted The higher the resolution.
  • the brightness of the display panel when the measured ambient light brightness is brighter, the brightness of the display panel is adjusted higher; when the measured ambient light brightness is darker, the display panel's The lower the brightness is adjusted.
  • the brightness of the display panel when the measured distance is longer, the brightness of the display panel is adjusted higher; when the measured distance is shorter, the brightness of the display panel is lowered. .
  • the step 200 includes:
  • the step 300 includes:
  • the processing control unit adjusts the resolution of the display panel according to the distance coefficient and the ambient light coefficient.
  • the step 300 includes:
  • the processing control unit By the processing control unit, the measured distance is converted into a distance coefficient, and the measured ambient light brightness is converted into an ambient light coefficient, and the measured distance is adjusted according to the distance coefficient and the ambient light coefficient.
  • the resolution of the display panel will be described.
  • the invention also provides a device with a low power consumption display panel, characterized in that the device with a low power consumption display panel includes:
  • An infrared sensing unit including an infrared sensor configured to measure a distance from the user's eyes to the display panel and transmit the measured distance to a processing control unit;
  • An ambient light sensing unit includes an ambient light sensor configured to measure an ambient light brightness and transmit the measured distance to a processing control unit;
  • the processing control unit includes a processor configured to adjust a resolution of the display panel according to the measured distance and the measured ambient light brightness.
  • the processing control unit is configured to adjust the brightness of the display panel according to the measured distance and the measured ambient light brightness.
  • the processing control unit is configured to adjust the resolution of the display panel to be lowered in response to the measured distance being higher than a threshold, in response to the measured The distance is lower than another threshold, and the resolution of the display panel is adjusted down.
  • the processing control unit is configured to reduce the resolution of the display panel in response to the measurement when the ambient light brightness is higher than a threshold value in response to the measurement. Ambient light brightness is lower than another threshold, reducing the resolution of the display panel.
  • the processing control unit is configured to increase the brightness of the display panel in response to the measured ambient light brightness being higher than a threshold value in response to the measured The brightness of the ambient light is lower than another threshold, which reduces the brightness of the display panel.
  • the processing control unit is configured to increase the brightness of the display panel in response to the measured distance being higher than a threshold value in response to the measured distance. Below another threshold, the brightness of the display panel is reduced.
  • the infrared sensing unit is further configured to convert the measured distance into a distance coefficient and transmit it to a processing control unit;
  • the ambient light sensing unit is further configured to convert the measured ambient light brightness into an ambient light coefficient and transmit it to the processing control unit;
  • the processing control unit is further configured to adjust a resolution of the display panel according to the distance coefficient and the ambient light coefficient.
  • the processing control unit is further configured to convert the measured distance into a distance coefficient, and convert the measured ambient light brightness into an ambient light coefficient, and Adjusting the resolution of the display panel according to the distance coefficient and the ambient light coefficient.
  • the infrared sensing unit measures a distance from a user's eyes to the display panel.
  • the eye's perception of information for example, resolution of the resolution
  • the processing control unit lowers the resolution of the display panel
  • the processing control unit adjusts the resolution of the display panel higher to ensure the visual effect of the display panel and reduce backlight power consumption.
  • FIG. 1 is a schematic diagram of a device with a display panel with low power consumption in the prior art, which adjusts the corresponding backlight brightness by sensing the intensity of ambient light intensity, that is, Light Adaptive Brightness Control (LABC) ;
  • LABC Light Adaptive Brightness Control
  • FIG. 2 is a schematic diagram of a device having a display panel with low power consumption according to an embodiment of the present invention.
  • the resolution of the display panel is adjusted mainly by measuring the distance from the user's eyes to the display panel. ;
  • FIG. 3 is a flowchart of steps in a method for reducing power consumption of a display panel according to an embodiment of the present invention.
  • FIG. 4 is a schematic block diagram of a device having a display panel with low power consumption according to an embodiment of the present invention.
  • FIG. 2 is a schematic diagram of a device 1 having a display panel 40 with low power consumption according to an embodiment of the present invention.
  • FIG. 3 is a flowchart of steps of a method for reducing power consumption of a display panel according to an embodiment of the present invention.
  • a method for reducing power consumption of a display panel including the following steps:
  • Step 100 measuring a distance from the user's eyes to the display panel 40 through an infrared sensing unit 10, and measuring an ambient light brightness through an ambient light sensing unit 20;
  • Step 200 transmitting the measured distance to a processing control unit 30 through the infrared sensing unit 10, and transmitting the measured ambient light brightness to the processing through the ambient light sensing unit 20.
  • Step 300 Through the processing control unit 30, adjust the resolution of the display panel 40 according to the measured distance and the measured ambient light brightness.
  • the method further includes the following steps:
  • Step 400 Adjust the brightness of the display panel by the processing control unit according to the measured distance and the measured ambient light brightness.
  • the measured distance is converted into a distance coefficient by the infrared sensing unit 10 and transmitted to the processing control unit 30.
  • the ambient light sensing unit 20 converts the measured ambient light brightness into an ambient light coefficient and transmits it to the processing control unit 30; and in step 300, the processing control unit 30 includes The distance coefficient and the ambient light coefficient adjust the brightness of the display panel 40 and the resolution of the display panel 40.
  • step 300 includes, through the processing control unit 30, converting the measured distance into a distance coefficient, and converting the measured ambient light brightness into an ambient light coefficient. And adjusting the resolution of the display panel 40 according to the distance coefficient and the ambient light coefficient.
  • the distance coefficient ranges from 0 to 1. When the distance is 40 cm, the distance coefficient is 0.8 and the distance is close to 10. The distance coefficient in centimeters is 0.2. However, the distance and the distance coefficient are only examples, which should not be used to limit the protection scope of the present invention.
  • the ambient light coefficient ranges from 0 to 1.
  • the illuminance is 30,000 lux and the coefficient is 0.9.
  • the illuminance is 800 lux and the coefficient is 0.2.
  • the ambient light brightness and ambient light coefficient are only examples, and the protection scope of the present invention should not be limited by this.
  • the processing control unit 30 when the distance between the eye and the display panel measured by the infrared sensing unit 10 is relatively long, at this time, the eye's Perceived to decline, the processing control unit 30 lowers the resolution of the display panel 40 to reduce backlight power consumption; when the distance between the measured eyes of the infrared sensing unit 10 and the display panel is short At this time, the eye's perception of information (such as the resolution of the resolution) rises, the processing control unit 30 adjusts the resolution of the display panel 40 up to maintain the visual effect of the display panel 40.
  • the processing The control unit 30 lowers the resolution of the display panel 40 to reduce the power consumption of the backlight.
  • the processing control unit 30 increases the resolution of the display panel 40 to maintain the visual effect of the display panel 40.
  • the processing control unit 30 sets the display panel 40 The brightness is increased to maintain the visual effect of the display panel 40.
  • the ambient light measured by the ambient light sensing unit 20 is dark, the perception of information by the eyes rises, and the brightness of the display panel 40 is adjusted. Low to reduce backlight power consumption.
  • the processing control unit 30 displays the display.
  • the brightness of the panel 40 is increased to maintain the visual effect of the display panel 40.
  • the processing control unit 30 reduces the brightness of the display panel 40 to reduce the backlight power consumption.
  • the resolution of the display panel 40 when the measured distance is greater than a threshold value, the resolution of the display panel 40 is adjusted down; when the measured distance is less than a threshold value, the display panel is adjusted. Increase the resolution of 40.
  • the brightness of the display panel 40 when the measured ambient light brightness is greater than a threshold value, the brightness of the display panel 40 is increased; when the measured ambient light brightness is less than a threshold value, the The brightness of the display panel 40 is described below.
  • the brightness of the display panel 40 when the measured distance is greater than a threshold, the brightness of the display panel 40 is increased; when the measured distance is less than a threshold, the display panel 40 is adjusted. Turn down the brightness.
  • the resolution of the display panel is a function of the distance coefficient and the ambient light coefficient:
  • the distance coefficient and the ambient light coefficient are independent variables, and the resolution is the strain number.
  • the distance coefficient and the ambient light coefficient together affect the resolution. Generally speaking, the larger the distance coefficient and the ambient light coefficient, the smaller the resolution; the smaller the distance coefficient and the ambient light coefficient, the greater the resolution.
  • the brightness of the display panel is a function of the distance coefficient and the ambient light coefficient:
  • the distance coefficient and the ambient light coefficient are independent variables, and the brightness of the display panel is a strain number.
  • the distance coefficient and the ambient light coefficient together affect the brightness of the display panel. Generally speaking, the larger the distance coefficient and the ambient light coefficient, the greater the brightness; the smaller the distance coefficient and the ambient light coefficient, the greater the brightness.
  • a device 1 having a display panel 40 with low power consumption including:
  • An infrared sensing unit 10 includes an infrared sensor configured to measure a distance from the user's eyes to the display panel 40, and transmits the measured distance to a processing control unit 30;
  • An ambient light sensing unit 20 including an ambient light sensor, configured to measure the brightness of an ambient light and transmit the measured distance to a processing control unit 30;
  • the processing control unit 30 includes a processor configured to adjust the resolution of the display panel 40 according to the measured distance and the measured ambient light brightness.
  • the infrared sensing unit 10 includes an infrared sensor.
  • the infrared sensor may be a thermal infrared sensor or a light infrared sensor (also referred to as a quantum infrared sensor).
  • the thermal infrared sensor includes a pyroelectric infrared sensor, a thermopile infrared sensor, and a bolometer infrared sensor.
  • the pyroelectric infrared sensor is an infrared sensor that uses the heat of an object to radiate infrared rays onto a material to generate a pyroelectric phenomenon of charge.
  • thermopile infrared sensor is an infrared sensor that uses a plurality of groups of thermocouples connected in series to sense a temperature difference to generate a voltage.
  • the thermistor infrared sensor is an infrared sensor that utilizes a thermistor that absorbs infrared light and changes in temperature, thereby causing a change in resistance value.
  • the optical infrared sensor includes a photoelectric effect infrared sensor (hotoelectric effect infrared sensor) and photocell infrared sensor.
  • the photoelectric effect infrared sensor is an infrared sensor utilizing a photoelectric effect of a photocurrent generated by a sensing element receiving a photon impact, such as a photodiode, a charged-coupled device (CCD), and materials such as CdS and PbS.
  • the photoresistor infrared sensor is an infrared sensor using a photoresistor that undergoes a change in resistance value upon receiving a photon impact.
  • the infrared sensor may be an active infrared sensor or a passive infrared sensor.
  • the active infrared sensor can actively emit an infrared light to measure distance.
  • the passive infrared sensor does not emit infrared rays, but detects infrared rays emitted by objects to measure distance.
  • the infrared sensing unit 10 may further include a chip or a circuit to process the distance measured by the infrared sensor and transmit the processed data to the local control unit 30.
  • the internal components of the infrared sensing unit 10 are only examples, and the scope of the present invention should not be limited.
  • the ambient light sensing unit 20 includes an ambient light sensor.
  • the ambient light sensor includes one or more light-sensitive elements for obtaining ambient brightness data, such as a complementary metal-oxide-semiconductor (CMOS) image sensor, a photodiode, Charge coupled device, etc.
  • CMOS complementary metal-oxide-semiconductor
  • the ambient light sensor can be implemented with a single light-sensitive element, in which case the acquired brightness data is the output of said single light-sensitive element.
  • the ambient light sensor may include multiple photosensitive elements, in which case the acquired brightness data is the output of the single photosensitive element.
  • the ambient light sensing unit 20 may further include a chip or a circuit to process the brightness measured by the ambient light sensor and transmit the processed data to the local control unit. 30.
  • the internal components of the ambient light sensing unit 20 are only examples and should not limit the scope of this creation.
  • the processing control unit 30 includes a central processing unit (central processing unit). unit, CPU) and a memory.
  • the processing control unit 30 may be implemented as a microcomputer, which uses a microprocessor as a central processing unit (central processing unit, CPU), where multiple functions of the central processing unit are integrated into a single integrated circuit (IC) or circuit.
  • the processing control unit 30 may also be implemented as a microcontroller, also known as a single-chip microcomputer, which is a microcomputer in which a central processing unit and a memory are integrated in An integrated circuit chip.
  • the memory is used for storing instructions, data, and patient data, including volatile memory, such as dynamic random access memory (DRAM) or static random access memory (SRAM), and Non-volatile memory, for example, includes read-only memory (ROM), flash memory (flash memoery), solid state drive (solid state drive), or magnetic drive (magnetic drive).
  • volatile memory such as dynamic random access memory (DRAM) or static random access memory (SRAM)
  • SRAM static random access memory
  • Non-volatile memory includes read-only memory (ROM), flash memory (flash memoery), solid state drive (solid state drive), or magnetic drive (magnetic drive).
  • ROM read-only memory
  • flash memory flash memory
  • solid state drive solid state drive
  • magnetic drive magnetic drive
  • the infrared sensing unit 10 is further configured to convert the measured distance into a distance coefficient and transmit it to the processing control unit 30; the ambient light sensing unit 20. It is further configured to convert the measured ambient light brightness into an ambient light coefficient and transmit it to the processing control unit 30; and the processing control unit 30 is further configured to convert the measured ambient light brightness to The ambient light coefficient adjusts the brightness of the display panel 40 and the resolution of the display panel 40.
  • the processing control unit 30 is further configured to convert the measured distance into a distance coefficient, and convert the measured ambient light brightness into an ambient light coefficient, and according to The distance coefficient and the ambient light coefficient adjust the resolution of the display panel 40.
  • the distance coefficient ranges from 0 to 1. When the distance is 40 cm, the distance coefficient is 0.8. When the distance is close to 10 cm, the distance coefficient is 0.2.
  • the distance and the distance coefficient are only examples, which should not be used to limit the protection scope of the present invention.
  • the ambient light coefficient ranges from 0 to 1.
  • the illuminance is 30,000 lux and the coefficient is 0.9.
  • the illuminance is 800 lux and the coefficient is 0.2.
  • the ambient light brightness and ambient light coefficient are only examples, and the protection scope of the present invention should not be limited by this.
  • the processing control unit 30 lowers the resolution of the display panel 40 to reduce backlight power consumption; when the distance between the measured eyes of the infrared sensing unit 10 and the display panel is short At this time, the eye's perception of information (such as the resolution of the resolution) rises, and the processing control unit 30 adjusts the resolution of the display panel 40 up to maintain the visual effect of the display panel 40.
  • the processing The control unit 30 lowers the resolution of the display panel 40 to reduce the power consumption of the backlight.
  • the processing control unit 30 increases the resolution of the display panel 40 to maintain the visual effect of the display panel 40.
  • the processing control unit 30 sets the display panel 40 The brightness is increased to maintain the visual effect of the display panel 40.
  • the ambient light measured by the ambient light sensing unit 20 is dark, the perception of information by the eyes rises, and the brightness of the display panel 40 is adjusted. Low to reduce backlight power consumption.
  • the processing control unit 30 displays the display.
  • the brightness of the panel 40 is increased to maintain the visual effect of the display panel 40.
  • the processing control unit 30 reduces the brightness of the display panel 40 to reduce the backlight power consumption.
  • the resolution of the display panel 40 when the measured distance is greater than a threshold value, the resolution of the display panel 40 is adjusted down; when the measured distance is less than a threshold value, the display panel is adjusted. Increase the resolution of 40.
  • the brightness of the display panel 40 when the measured ambient light brightness is greater than a threshold value, the brightness of the display panel 40 is increased; when the measured ambient light brightness is less than a threshold value, the The brightness of the display panel 40 is described below.
  • the brightness of the display panel 40 when the measured distance is greater than a threshold, the brightness of the display panel 40 is increased; when the measured distance is less than a threshold, the display panel 40 is adjusted. Turn down the brightness.
  • the resolution of the display panel is a function of the distance coefficient and the ambient light coefficient:
  • the distance coefficient and the ambient light coefficient are independent variables, and the resolution is the strain number.
  • the distance coefficient and the ambient light coefficient together affect the resolution. Generally speaking, the larger the distance coefficient and the ambient light coefficient, the smaller the resolution; the smaller the distance coefficient and the ambient light coefficient, the greater the resolution.
  • the brightness of the display panel is a function of the distance coefficient and the ambient light coefficient:
  • the distance coefficient and the ambient light coefficient are independent variables, and the brightness of the display panel is a strain number.
  • the distance coefficient and the ambient light coefficient together affect the brightness of the display panel. Generally speaking, the larger the distance coefficient and the ambient light coefficient, the greater the brightness; the smaller the distance coefficient and the ambient light coefficient, the greater the brightness.
  • the infrared sensing unit measures a distance from a user's eyes to the display panel.
  • the eye's perception of information such as resolution of the resolution
  • the processing control unit lowers the resolution of the display panel; the measured distance is shorter
  • the processing control unit adjusts the resolution of the display panel higher to ensure the visual effect of the display panel and reduce the backlight power consumption.

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  • Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Computer Hardware Design (AREA)
  • General Physics & Mathematics (AREA)
  • Theoretical Computer Science (AREA)
  • Controls And Circuits For Display Device (AREA)
  • Control Of Indicators Other Than Cathode Ray Tubes (AREA)
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Abstract

一种用于降低一显示面板(40)功耗的方法,包括以下步骤:通过一红外线传感单元(10)测量使用者的眼睛至显示面板(40)的一距离,以及通过一环境光传感单元(20)测量一环境光亮度;通过红外线传感单元(10),将测量的距离传输至一处理控制单元(30),以及通过环境光传感单元(20),将测量的环境光亮度传输至处理控制单元(30);以及通过处理控制单元(30),根据测量的距离与测量的环境光亮度,调整显示面板(40)的解析度。

Description

用于降低显示面板功耗的方法及低功耗的显示装置 技术领域
涉及显示器技术领域,特别是涉及一种用于降低一显示面板功耗的方法及一种具有低功耗的显示面板的装置。
背景技术
目前,各种手机、平板等便携式装置的显示模组中功耗最大的部分即为背光发光二极管(backlight LED)部分。而且手机、平板中轻薄化的趋势又使得电池的大小和容量的发展性极其有限的。为了解决电池容量大小的限制而又想降低功耗问题,人们发明了内容自适应亮度控制(Content Adaptive Brightness Control, CABC)技术和光自适应亮度控制 (Light Adaptive Brightness Control, LABC)技术。所谓的LABC技术主要是:通过感应环境光强的强度来,来调整便携式装置2对应背光亮度控制技术,如图1。然而,当眼睛离显示面板距离发生变化时,眼睛感知显示面板的信息将会变化,尤其是当在环境光相对较亮,且距离变远时,眼睛对信息的感知将大幅下降。目前可以简单地通过调整背光亮度来补偿此问题,但却造成功耗大幅上升(对于中小尺寸液晶显示面板功耗,背光功耗约占80%以上),如何保证显示面板的视觉效果,同时降低背光功耗,是值得研究的课题。
技术问题
本发明的目的在于提供一种用于降低显示面板功耗的方法及一种具有低功耗的显示面板的装置,其保证所述显示面板的视觉效果,同时降低背光功耗。
技术解决方案
为解决上述技术问题,本发明提供一种用于降低显示面板功耗的方法,所述方法包括以下步骤:
步骤100:通过一红外线传感单元测量使用者的眼睛至所述显示面板的一距离,以及通过一环境光传感单元测量一环境光亮度;
步骤200:通过所述红外线传感单元,将所述测量的距离传输至一处理控制单元,以及通过所述环境光传感单元,将所述测量的环境光亮度传输至所述处理控制单元;以及
步骤300:通过所述处理控制单元,根据所述测量的距离与所述测量的环境光亮度,调整所述显示面板的解析度。
根据本发明的一个实施例的一特征,所述方法还包括以下步骤:步骤400:通过所述处理控制单元,根据所述测量的距离与所述测量的环境光亮度,调整所述显示面板的亮度。
根据本发明的一个实施例的一特征,所述测量的距离较远时,将所述显示面板的解析度调越低;所述测量的距离较近时,将所述显示面板的解析度调越高。
根据本发明的一个实施例的一特征,所述测量的环境光亮度越亮时,将所述显示面板的解析度调越低;所述测量的环境光亮度越暗时,将所述显示面板的解析度调越高。
根据本发明的一个实施例的进一步特征,所述测量的环境光亮度越亮时,将所述显示面板的亮度调越高;所述测量的环境光亮度越暗时,将所述显示面板的亮度调越低。
根据本发明的一个实施例的进一步特征,所述测量的距离较远时,将所述显示面板的亮度调越高;所述测量的距离较近时,将所述显示面板的亮度调越低。
根据本发明的一个实施例的一特征,所述步骤200包括:
通过所述红外线传感单元,将所述测量的距离转变为一距离系数,并传输至一处理控制单元,以及通过所述环境光传感单元,将所述测量的环境光亮度转变为一环境光系数,并传输至所述处理控制单元;
通过所述处理控制单元,所述步骤300包括:
通过所述处理控制单元,根据所述距离系数与所述环境光系数调整所述显示面板的解析度。
根据本发明的一个实施例的一特征,通过所述处理控制单元,所述步骤300包括:
通过所述处理控制单元,将所述测量的距离转变为一距离系数,以及将所述测量的环境光亮度转变为一环境光系数,并且根据所述距离系数与所述环境光系数,调整所述显示面板的解析度。
本发明还提供一种具有低功耗的显示面板的装置,其特征在于:所述具有低功耗的显示面板的装置包括:
一红外线传感单元,包括一红外线传感器,配置用以测量使用者的眼睛至所述显示面板的一距离,并将所述测量的距离传输至一处理控制单元;
一环境光传感单元,包括一环境光传感器,配置用以测量一环境光亮度,并将所述测量的距离传输至一处理控制单元;
所述处理控制单元,包括一处理器,配置用以根据所述测量的距离与所述测量的环境光亮度,调整所述显示面板的解析度。
根据本发明的一个实施例的一特征,所述处理控制单元,配置用以根据所述测量的距离与所述测量的环境光亮度,调整所述显示面板的亮度。
根据本发明的一个实施例的一特征,所述处理控制单元,配置用以因应于所述测量的距离高于一阀值,将所述显示面板的解析度调降低,因应于所述测量的距离低于另一阀值,将所述显示面板的解析度调降高。
根据本发明的一个实施例的一特征,所述处理控制单元,配置用以因应于所述测量的环境光亮度高于一阀值,将所述显示面板的解析度降低,因应于所述测量的环境光亮度低于另一阀值,将所述显示面板的解析度降高。
根据本发明的一个实施例的进一步特征,所述处理控制单元,配置用以因应于所述测量的环境光亮度高于一阀值,将所述显示面板的亮度提高,因应于所述测量的环境光亮度低于另一阀值,将所述显示面板的亮度提低。
根据本发明的一个实施例的进一步特征,所述处理控制单元,配置用以因应于所述测量的距离高于一阀值,将所述显示面板的亮度调提高,因应于所述测量的距离低于另一阀值,将所述显示面板的亮度调提低。
根据本发明的一个实施例的一特征,所述红外线传感单元,进一步配置用以将所述测量的距离转变为一距离系数,并传输至一处理控制单元;
所述环境光传感单元,进一步配置用以将所述测量的环境光亮度转变为一环境光系数,并传输至所述处理控制单元;以及
所述处理控制单元,进一步配置用以根据所述距离系数与所述环境光系数,调整所述显示面板的解析度。
根据本发明的一个实施例的一特征,所述处理控制单元,进一步配置用以将所述测量的距离转变为一距离系数,以及将所述测量的环境光亮度转变为一环境光系数,并且根据所述距离系数与所述环境光系数,调整所述显示面板的解析度。
有益效果
本发明的所述用于降低一显示面板功耗的方法及所述具有低功耗的显示面板的装置中,所述红外线传感单元测量使用者的眼睛至所述显示面板的一距离。当所述测量的距离较远时,眼睛对信息(例如对检析度的分辨)的感知下降,所述处理控制单元将所述显示面板的解析度调低;所述测量的距离较近时,眼睛对信息(例如对检析度的分辨)的感知上升,所述处理控制单元将所述显示面板的解析度调越高,从而保证所述显示面板的视觉效果,同时降低背光功耗。
附图说明
图1为先前技术中,一种具有低功耗的显示面板的装置的示意图,通过感应环境光强的强度来,来调整对应背光亮度,即光自适应亮度控制 (Light Adaptive Brightness Control, LABC);
图2为根据本发明的一实施例中,一种具有低功耗的显示面板的装置的示意图,主要通过测量使用者的眼睛至所述显示面板的距离,来调整所述显示面板的解析度;
图3为根据本发明的一实施例中,一种用于降低一显示面板功耗的方法的步骤流程图;及
图4为根据本发明的一实施例中,一种具有低功耗的显示面板的装置的示意性框图。
本发明的实施方式
以下各实施例的说明是参考附加的图式,用以例示本发明可用以实施的特定实施例。本发明所提到的方向用语,例如「上」、「下」、「前」、「后」、「左」、「右」、「内」、「外」、「侧面」等,仅是参考附加图式的方向。因此,使用的方向用语是用以说明及理解本发明,而非用以限制本发明。在图中,结构相似的单元是以相同标号表示。
请参考图2和图3,图2为根据本发明的一实施例中,一种具有低功耗的显示面板40的装置1的示意图,主要通过测量使用者的眼睛42至所述显示面板40的距离,来调整所述显示面板40的解析度,图3为根据本发明的一实施例中,一种用于降低一显示面板功耗的方法的步骤流程图。
在本发明中提供,一种用于降低显示面板功耗的方法,包括以下步骤:
步骤100:通过一红外线传感单元10测量使用者的眼睛至所述显示面板40的一距离,以及通过一环境光传感单元20测量一环境光亮度;
步骤200:通过所述红外线传感单元10,将所述测量的距离传输至一处理控制单元30,以及通过所述环境光传感单元20,将所述测量的环境光亮度传输至所述处理控制单元30;以及
步骤300:通过所述处理控制单元30,根据所述测量的距离与所述测量的环境光亮度,调整所述显示面板40的解析度。
根据本发明的一个实施例,所述方法还包括以下步骤:
步骤400:通过所述处理控制单元,根据所述测量的距离与所述测量的环境光亮度,调整所述显示面板的亮度。
根据在本发明的一实施例,在步骤200中包括,通过所述红外线传感单元10,将所述测量的距离转变为一距离系数,并传输至所述处理控制单元30,以及通过所述环境光传感单元20,将所述测量的环境光亮度转变为一环境光系数,并传输至所述处理控制单元30;并且在步骤300中包括,通过所述处理控制单元30,根据所述距离系数与所述环境光系数调整所述显示面板40的亮度以及所述显示面板40的解析度。
根据在本发明的另一实施例,步骤300中包括,通过所述处理控制单元30,将所述测量的距离转变为一距离系数,以及将所述测量的环境光亮度转变为一环境光系数,并且根据所述距离系数与所述环境光系数,调整所述显示面板40的解析度。
举例而言,所述距离系数,范围为0 至1,距离为40 公分时,所述距离系数为0.8,距离近10 公分时时距离系数0.2。然而所述距离与距离系数仅为一实施范例,不应以此限制本发明的保护范围。
举例而言,所述环境光系数,范围为0 至1,例如在户外环境的阳光下,照度为30000勒克斯,系数为0.9,例如在室内环境下,照度为800勒克斯,系数为0.2。然而所述环境光亮度与环境光系数仅为一实施范例,不应以此限制本发明的保护范围。
根据本发明的一个实施例的一特征中,当所述红外线传感单元10所测量的眼睛与显示面板之间的距离较远时,此时眼睛对信息(例如对检析度的分辨)的感知下降,所述处理控制单元30将所述显示面板40的解析度调低,以降低背光功耗;当所述红外线传感单元10所述测量的眼睛与显示面板之间的距离较近时,此时眼睛对信息(例如对检析度的分辨)的感知上升,所述处理控制单元30将所述显示面板40的解析度调高,以维持所述显示面板40的视觉效果。
根据本发明的一个实施例的一特征中,当所述环境光传感单元20所测量的环境光亮度较亮时,眼睛对信息(例如对检析度的分辨)的感知下降,所述处理控制单元30将所述显示面板40的解析度调低,以降低背光功耗;当所述环境光传感单元20所测量的环境光亮度较暗时,眼睛对信息(例如对检析度的分辨)的感知上升,所述处理控制单元30将所述显示面板40的解析度调高,以维持所述显示面板40的视觉效果。
根据本发明的一个实施例的一特征,当所述环境光传感单元20所测量的环境光亮度较亮时,眼睛对信息的感知下降,所述处理控制单元30将所述显示面板40的亮度调高,以维持所述显示面板40的视觉效果;当所述环境光传感单元20所测量的环境光亮度较暗时,眼睛对信息的感知上升,将所述显示面板40的亮度调低,以降低背光功耗。
根据本发明的一个实施例的一特征,所述红外线传感单元10所测量的眼睛与显示面板之间的距离较远时,眼睛对信息的感知下降,所述处理控制单元30将所述显示面板40的亮度调高,以维持所述显示面板40的视觉效果;所所述红外线传感单元10所测量的眼睛与显示面板之间的距离较近时,眼睛对信息的感知上升,所述处理控制单元30将所述显示面板40的亮度调低,以降低背光功耗。
根据本发明的一个实施例的进一步特征,所述测量的距离大于一阀值时,将所述显示面板40的解析度调低;所述测量的距离小于一阀值时,将所述显示面板40的解析度调高。
根据本发明的一个实施例的进一步特征,所述测量的环境光亮度大于一阀值时,将所述显示面板40的亮度调高;所述测量的环境光亮度小于一阀值时,将所述显示面板40的亮度调低。
根据本发明的一个实施例的进一步特征,所述测量的距离大于一阀值时,将所述显示面板40的亮度调高;所述测量的距离小于一阀值时,将所述显示面板40的亮度调低。
根据本发明的一个实施例的进一步特征,所述显示面板的解析度为所述距离系数与所述环境光系数的一函数:
解析度= f(距离系数, 环境光系数)  [式一]
其中距离系数与环境光系数为自变数,解析度为应变数。距离系数与环境光系数共同影响解析度,一般而言,距离系数和环境光系数越大,则解析度越小;距离系数和环境光系数越小,则解析度越大。
根据本发明的一个实施例的进一步特征,所述显示面板的亮度为所述距离系数与所述环境光系数的一函数:
亮度= g(距离系数, 环境光系数)  [式二]
其中距离系数与环境光系数为自变数,显示面板的亮度为应变数。距离系数与环境光系数共同影响显示面板的亮度,一般而言,距离系数和环境光系数越大,则亮度越大;距离系数和环境光系数越小,则亮度越大。
在本发明中提供,一种具有低功耗的显示面板40的装置1,包括:
一红外线传感单元10,包括一红外线传感器,配置用以测量使用者的眼睛至所述显示面板40的一距离,并将所述测量的距离传输至一处理控制单元30;
一环境光传感单元20,包括一环境光传感器,配置用以测量一环境光亮度,并将所述测量的距离传输至一处理控制单元30;
所述处理控制单元30,包括一处理器,配置用以根据所述测量的距离与所述测量的环境光亮度,调整所述显示面板40的解析度。
根据本发明的一实施例,所述红外线传感单元10,包括一红外线传感器。在一实施例中,所述红外线传感器可以为一热型红外线传感器或一光型红外线传感器(或称为量子型红外线传感器)。所述热型红外线传感器包括焦电红外线传感器(pyroelectric infrared sensor)、热电堆红外线传感器(thermopile infrared sensor)、热敏电阻红外线传感器(bolometer infrared sensor)。所述焦电红外线传感器是利用物体热量辐射出红外线照射到材料上而产生电荷的焦电现象的红外线传感器。所述热电堆红外线传感器是利用多组串联的热电偶,感测温度差以产生电压的红外线传感器。所述热敏电阻红外线传感器是利用吸收红外线而温产变化,进而导致电阻值变化的热敏电阻的红外线传感器。
所述光型红外线传感器包括光电效应红外线传感器(hotoelectric effect infrared sensor)及光敏电阻红外线传感器(photocell infrared sensor)。所述光电效应红外线传感器是利用感测元件接受光子撞击而产生的光电流的光电效应的红外线传感器,例如光二极体、电荷耦合装置(charged-coupled device, CCD)以及CdS、PbS 等材料。所述光敏电阻红外线传感器是利用接受光子撞击而产生电阻值变化的光敏电阻的红外线传感器。
在一实施例中,所述红外线传感器可以为一主动型红外线传感器或一被动型红外线传感器。所述主动型红外线传感器可主动发射一红外线以测量距离。所述被动型红外线传感器不发射红外线,而是侦测物体所发出的红外线以测量距离。
在一实施例,所述红外线传感单元10,还可进一步包括一芯片或电路以处理所述红外线传感器所量测得的距离,并将处理过的数据传输至所述处里控制单元30,然而所述红外线传感单元10的内部元件仅为一实施范例,不应限制本创作之范围。
根据本发明的一实施例,所述环境光传感单元20包括一环境光传感器。在一实施例中,所述环境光传感器包括用于获取周围环境亮度数据的一或多个光敏元件,例如互补式金属氧化物半导体(complementary metal-oxide-semiconductor,CMOS)图像传感器、光二极管、电荷耦合装置等。环境光传感器可实施为具有单个光敏元件,在此情形中所获取亮度数据为所述单个光敏元件的输出。在其它实施例中,环境光传感器可包括多个光敏元件,在此情形中所获取亮度数据为所述单个光敏元件的输出。
在一实施例,所述环境光传感单元20,还可进一步包括一芯片或电路以处理所述环境光传感器所量测得的亮度,并将处理过的数据传输至所述处里控制单元30,然而所述环境光传感单元20的内部元件仅为一实施范例,不应限制本创作之范围。
在本发明之一实施例中,所述处理控制单元30包括一中央处理器 (central processing unit, CPU)和一记忆储存器(memory)。所述处理控制单元30可以被实施为一微型电脑(microcomputer),其以一微处理器(microprocessor)作为中央处理器(central processing unit, CPU),其中中央处理单元的多个功能都被整合到单一晶片(integrated circuit, IC)或电路(circuit)。所述处理控制单元30也可被实施为一微控制器(microcontroller),又称为单晶片微电脑(single-chip microcomputer),其为一种微型电脑,其中中央处理单元和记忆体等都整合在一块积体电路晶片。所述记忆储存器(memory)用于储存指令、数据以及患者资料,包括挥发性记忆体(volatile memory),例如动态随机存取记忆体(DRAM)或静态随机存取记忆体(SRAM),以及非挥发性记忆体(non-volatile memory),例如包括唯读记忆体(ROM)、快闪记忆体(flash memoery)、固态硬碟(solid state drive)或磁碟(magnetic drive)等。然而所述处理控制单元30的内部元件仅为一实施范例,不应限制本创作之范围。
根据在本发明的一实施例,所述红外线传感单元10,进一步配置用以将所述测量的距离转变为一距离系数,并传输至所述处理控制单元30;所述环境光传感单元20,进一步配置用以将所述测量的环境光亮度转变为一环境光系数,并传输至所述处理控制单元30;以及所述处理控制单元30,进一步配置用以根据所述距离系数与所述环境光系数,调整所述显示面板40的亮度以及所述显示面板40的解析度。
根据在本发明的一实施例,所述处理控制单元30,进一步配置用以将所述测量的距离转变为一距离系数,以及将所述测量的环境光亮度转变为一环境光系数,并且根据所述距离系数与所述环境光系数,调整所述显示面板40的解析度。
举例而言,所述距离系数,范围为0 至1,距离为40 公分时,所述距离系数为0.8,距离近10 公分时时距离系数0.2。然而所述距离与距离系数仅为一实施范例,不应以此限制本发明的保护范围。
举例而言,所述环境光系数,范围为0 至1,例如在户外环境的阳光下,照度为30000勒克斯,系数为0.9,例如在室内环境下,照度为800勒克斯,系数为0.2。然而所述环境光亮度与环境光系数仅为一实施范例,不应以此限制本发明的保护范围。
根据本发明的一个实施例的一特征中,当所述红外线传感单元10所测量的眼睛与显示面板之间的距离较远时,此时眼睛对信息(例如对检析度的分辨)的感知下降,所述处理控制单元30将所述显示面板40的解析度调低,以降低背光功耗;当所述红外线传感单元10所述测量的眼睛与显示面板之间的距离较近时,此时眼睛对信息(例如对检析度的分辨)的感知上升,所述处理控制单元30将所述显示面板40的解析度调高,以维持所述显示面板40的视觉效果。
根据本发明的一个实施例的一特征中,当所述环境光传感单元20所测量的环境光亮度较亮时,眼睛对信息(例如对检析度的分辨)的感知下降,所述处理控制单元30将所述显示面板40的解析度调低,以降低背光功耗;当所述环境光传感单元20所测量的环境光亮度较暗时,眼睛对信息(例如对检析度的分辨)的感知上升,所述处理控制单元30将所述显示面板40的解析度调高,以维持所述显示面板40的视觉效果。
根据本发明的一个实施例的一特征,当所述环境光传感单元20所测量的环境光亮度较亮时,眼睛对信息的感知下降,所述处理控制单元30将所述显示面板40的亮度调高,以维持所述显示面板40的视觉效果;当所述环境光传感单元20所测量的环境光亮度较暗时,眼睛对信息的感知上升,将所述显示面板40的亮度调低,以降低背光功耗。
根据本发明的一个实施例的一特征,所述红外线传感单元10所测量的眼睛与显示面板之间的距离较远时,眼睛对信息的感知下降,所述处理控制单元30将所述显示面板40的亮度调高,以维持所述显示面板40的视觉效果;所所述红外线传感单元10所测量的眼睛与显示面板之间的距离较近时,眼睛对信息的感知上升,所述处理控制单元30将所述显示面板40的亮度调低,以降低背光功耗。
根据本发明的一个实施例的进一步特征,所述测量的距离大于一阀值时,将所述显示面板40的解析度调低;所述测量的距离小于一阀值时,将所述显示面板40的解析度调高。
根据本发明的一个实施例的进一步特征,所述测量的环境光亮度大于一阀值时,将所述显示面板40的亮度调高;所述测量的环境光亮度小于一阀值时,将所述显示面板40的亮度调低。
根据本发明的一个实施例的进一步特征,所述测量的距离大于一阀值时,将所述显示面板40的亮度调高;所述测量的距离小于一阀值时,将所述显示面板40的亮度调低。
根据本发明的一个实施例的进一步特征,所述显示面板的解析度为所述距离系数与所述环境光系数的一函数:
解析度= f(距离系数, 环境光系数)  [式一]
其中距离系数与环境光系数为自变数,解析度为应变数。距离系数与环境光系数共同影响解析度,一般而言,距离系数和环境光系数越大,则解析度越小;距离系数和环境光系数越小,则解析度越大。
根据本发明的一个实施例的进一步特征,所述显示面板的亮度为所述距离系数与所述环境光系数的一函数:
亮度= g(距离系数, 环境光系数)  [式二]
其中距离系数与环境光系数为自变数,显示面板的亮度为应变数。距离系数与环境光系数共同影响显示面板的亮度,一般而言,距离系数和环境光系数越大,则亮度越大;距离系数和环境光系数越小,则亮度越大。
本发明的所述用于降低一显示面板功耗的方法及所述具有低功耗的显示面板的装置中,所述红外线传感单元测量使用者的眼睛至所述显示面板的一距离。当所述测量的距离较远时,眼睛对信息(例如对检析度的分辨)的感知下降,所述处理控制单元将所述显示面板的解析度调越低;所述测量的距离较近时,眼睛对信息(例如对检析度的分辨)的感知上升,所述处理控制单元将所述显示面板的解析度调越高,从而保证所述显示面板的视觉效果,同时降低背光功耗。
综上所述,虽然本发明已以优选实施例揭露如上,但上述优选实施例并非用以限制本发明,本领域的普通技术人员,在不脱离本发明的精神和范围内,均可作各种更动与润饰,因此本发明的保护范围以权利要求界定的范围为准。

Claims (16)

  1. 一种用于降低一显示面板功耗的方法,包括以下步骤:
    步骤100:通过一红外线传感单元测量使用者的眼睛至所述显示面板的一距离,以及通过一环境光传感单元测量一环境光亮度;
    步骤200:通过所述红外线传感单元,将所述测量的距离传输至一处理控制单元,以及通过所述环境光传感单元,将所述测量的环境光亮度传输至所述处理控制单元;以及
    步骤300:通过所述处理控制单元,根据所述测量的距离与所述测量的环境光亮度,调整所述显示面板的解析度。
  2. 如权利要求1所述的方法,其中所述方法还包括以下步骤:
    步骤400:通过所述处理控制单元,根据所述测量的距离与所述测量的环境光亮度,调整所述显示面板的亮度。
  3. 如权利要求1所述的方法,其中所述测量的距离较远时,将所述显示面板的解析度调低;所述测量的距离较近时,将所述显示面板的解析度调高。
  4. 如权利要求1所述的方法,其中所述测量的环境光亮度较亮时,将所述显示面板的解析度调低;所述测量的环境光亮度较暗时,将所述显示面板的解析度调高。
  5. 如权利要求2所述的方法,其中所述测量的环境光亮度较亮时,将所述显示面板的亮度调高;所述测量的环境光亮度较暗时,将所述显示面板的亮度调低。
  6. 如权利要求2所述的方法,其中所述测量的距离较远时,将所述显示面板的亮度调高;所述测量的距离较近时,将所述显示面板的亮度调低。
  7. 如权利要求1所述的方法,其中
    所述步骤200包括:
    通过所述红外线传感单元,将所述测量的距离转变为一距离系数,并传输至所述处理控制单元,以及通过所述环境光传感单元,将所述测量的环境光亮度转变为一环境光系数,并传输至所述处理控制单元;
    所述步骤300包括:
    通过所述处理控制单元,根据所述距离系数与所述环境光系数,调整所述显示面板的解析度。
  8. 如权利要求1所述的方法,其中
    所述步骤300包括:
    通过所述处理控制单元,将所述测量的距离转变为一距离系数,以及将所述测量的环境光亮度转变为一环境光系数,并且根据所述距离系数与所述环境光系数,调整所述显示面板的解析度。
  9. 一种具有低功耗的显示面板的装置,包括:
    一红外线传感单元,包括一红外线传感器,配置用以测量使用者的眼睛至所述显示面板的一距离,并将所述测量的距离传输至一处理控制单元;
    一环境光传感单元,包括一环境光传感器,配置用以测量一环境光亮度,并将所述测量的距离传输至一处理控制单元;
    所述处理控制单元,包括一处理器,配置用以根据所述测量的距离与所述测量的环境光亮度,调整所述显示面板的解析度。
  10. 如权利要求9所述的具有低功耗的显示面板的装置,其中所述处理控制单元,配置用以根据所述测量的距离与所述测量的环境光亮度,调整所述显示面板的亮度。
  11. 如权利要求9所述的具有低功耗的显示面板的装置,其中所述处理控制单元,配置用以因应于所述测量的距离高于一阀值,将所述显示面板的解析度调降低,因应于所述测量的距离低于另一阀值,将所述显示面板的解析度调降高。
  12. 如权利要求9所述的具有低功耗的显示面板的装置,其中所述处理控制单元,配置用以因应于所述测量的环境光亮度高于一阀值,将所述显示面板的解析度降低,因应于所述测量的环境光亮度低于另一阀值,将所述显示面板的解析度降高。
  13. 如权利要求10所述的具有低功耗的显示面板的装置,其中所述处理控制单元,配置用以因应于所述测量的环境光亮度高于一阀值,将所述显示面板的亮度提高,因应于所述测量的环境光亮度低于另一阀值,将所述显示面板的亮度提低。
  14. 如权利要求10所述的具有低功耗的显示面板的装置,其中所述处理控制单元,配置用以因应于所述测量的距离高于一阀值,将所述显示面板的亮度调提高,因应于所述测量的距离低于另一阀值,将所述显示面板的亮度调提低。
  15. 如权利要求9所述的具有低功耗的显示面板的装置,其中
    所述红外线传感单元,进一步配置用以将所述测量的距离转变为一距离系数,并传输至所述处理控制单元;
    所述环境光传感单元,进一步配置用以将所述测量的环境光亮度转变为一环境光系数,并传输至所述处理控制单元;以及
    所述处理控制单元,进一步配置用以根据所述距离系数与所述环境光系数,调整所述显示面板的解析度。
  16. 如权利要求9所述的具有低功耗的显示面板的装置,其中
    所述处理控制单元,进一步配置用以将所述测量的距离转变为一距离系数,以及将所述测量的环境光亮度转变为一环境光系数,并且根据所述距离系数与所述环境光系数,调整所述显示面板的解析度。
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