WO2017018333A1 - Dispositif de réception, procédé de commande d'affichage, et programme - Google Patents

Dispositif de réception, procédé de commande d'affichage, et programme Download PDF

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Publication number
WO2017018333A1
WO2017018333A1 PCT/JP2016/071501 JP2016071501W WO2017018333A1 WO 2017018333 A1 WO2017018333 A1 WO 2017018333A1 JP 2016071501 W JP2016071501 W JP 2016071501W WO 2017018333 A1 WO2017018333 A1 WO 2017018333A1
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WIPO (PCT)
Prior art keywords
image
display
unit
luminance
hdr
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PCT/JP2016/071501
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English (en)
Japanese (ja)
Inventor
藤根 俊之
鈴木 秀樹
吉山 和良
冨沢 一成
涼二 櫻井
智夫 西垣
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シャープ株式会社
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Publication of WO2017018333A1 publication Critical patent/WO2017018333A1/fr

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    • 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
    • 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
    • G09G5/14Display of multiple viewports
    • 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
    • G09G5/36Control arrangements or circuits for visual indicators common to cathode-ray tube indicators and other visual indicators characterised by the display of a graphic pattern, e.g. using an all-points-addressable [APA] memory
    • G09G5/37Details of the operation on graphic patterns
    • G09G5/377Details of the operation on graphic patterns for mixing or overlaying two or more graphic patterns
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N21/00Selective content distribution, e.g. interactive television or video on demand [VOD]
    • H04N21/40Client devices specifically adapted for the reception of or interaction with content, e.g. set-top-box [STB]; Operations thereof
    • H04N21/43Processing of content or additional data, e.g. demultiplexing additional data from a digital video stream; Elementary client operations, e.g. monitoring of home network or synchronising decoder's clock; Client middleware
    • H04N21/431Generation of visual interfaces for content selection or interaction; Content or additional data rendering
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N21/00Selective content distribution, e.g. interactive television or video on demand [VOD]
    • H04N21/40Client devices specifically adapted for the reception of or interaction with content, e.g. set-top-box [STB]; Operations thereof
    • H04N21/43Processing of content or additional data, e.g. demultiplexing additional data from a digital video stream; Elementary client operations, e.g. monitoring of home network or synchronising decoder's clock; Client middleware
    • H04N21/44Processing of video elementary streams, e.g. splicing a video clip retrieved from local storage with an incoming video stream, rendering scenes according to MPEG-4 scene graphs
    • H04N21/4402Processing of video elementary streams, e.g. splicing a video clip retrieved from local storage with an incoming video stream, rendering scenes according to MPEG-4 scene graphs involving reformatting operations of video signals for household redistribution, storage or real-time display

Definitions

  • the present invention relates to a receiving device, a display control method, and a program.
  • Non-Patent Document 1 describes a data configuration of information for controlling a state such as activation of an application program.
  • the broadcast service based on the conventional display luminance range (hereinafter, referred to as SDR (Standard Dynamic Range)) video is immediately terminated.
  • SDR Standard Dynamic Range
  • the television receiving apparatus also includes a receiving apparatus that displays HDR video as HDR and a receiving apparatus that converts HDR video into SDR for display. In such a situation, if the broadcast content and the communication content are to be displayed simultaneously on one television receiver, each content may not be displayed with appropriate brightness.
  • the communication content when the video signal of the communication content is directly synthesized with the video signal of the broadcast content, the communication content may be displayed excessively brightly. The same thing can also occur when displaying menus and subtitles. Various contents, menus, subtitles, and the like are desirably displayed with appropriate brightness.
  • Some aspects of the present invention have an object to provide a receiving apparatus, a display control method, and a program that can display various contents, menus, subtitles, and the like with appropriate brightness.
  • Another object of another aspect of the present invention is to provide a receiving device, a display control method, and a program that can achieve the effects described in the embodiments described later.
  • an aspect of the present invention provides a first acquisition unit that acquires a first image signal indicating a first image of a broadcast program, and a second image that indicates a second image different from the first image.
  • a second acquisition unit that acquires two image signals, a display unit that displays both the first image and the second image, and a luminance range when the display unit displays the second image is a predetermined range
  • a conversion unit that converts a luminance signal level of the second image, and the display unit is a receiving device that displays the second image after conversion by the conversion unit.
  • a receiving device acquires a first image signal indicating a first image of a broadcast program, and the receiving device displays a second image different from the first image.
  • the display control method includes three steps and a fourth step in which the receiving apparatus displays both the first image and the second image after the conversion in the third step.
  • a first step of acquiring a first image signal indicating a first image of a broadcast program in a computer of a receiving device, and a second image indicating a second image different from the first image A second step of acquiring a signal, a third step of converting a luminance signal level of the second image so that a luminance range when the second image is displayed is a predetermined range, and the third step. And a fourth step for displaying both the first image and the second image after the conversion by.
  • FIG. 1 for demonstrating adjustment of the signal level of the brightness
  • FIG. 2 for demonstrating adjustment of the signal level of the brightness
  • FIG. 3 for demonstrating adjustment of the signal level of the brightness
  • FIG. 1 shows the outline
  • FIG. 3 shows an example of the pattern of the luminance conversion process by the receiver which concerns on the same embodiment.
  • FIG. 6 is a diagram showing an example of a data configuration of an MH-event information table according to the embodiment.
  • FIG. It is a figure which shows an example of a data structure of the video component descriptor which concerns on the embodiment. It is a figure which shows the example of a setting of the value of HDR discrimination
  • FIG. 1 is a diagram showing an overview of a broadcasting system 1 according to the present embodiment.
  • the broadcast system 1 (FIG. 13) according to the present embodiment is a system that broadcasts an HDR broadcast program and an SDR broadcast program.
  • An HDR broadcast program is a broadcast program composed of HDR video sources.
  • the HDR broadcast program is a broadcast program created on the assumption that it is displayed with HDR brightness.
  • the SDR broadcast program is a broadcast program composed of SDR video sources.
  • the SDR broadcast program is a broadcast program created on the assumption that it is displayed with SDR brightness. That is, the broadcast system 1 is a system capable of broadcasting a plurality of broadcast programs having different luminance dynamic ranges.
  • the optical luminance is one of psychophysical quantities representing the brightness of the light source.
  • the optical brightness is used, for example, when representing the brightness of the display.
  • a luminance range of 0 to 2000 [cd / m 2 ] is referred to as HDR
  • a luminance range of 0 to 300 [cd / m 2 ] is referred to as SDR.
  • HDR shows a dynamic range with a wider optical brightness than SDR.
  • the HDR and SDR luminance ranges are not limited to those described above, and may be arbitrarily determined according to the broadcasting system, for example.
  • the dynamic range refers to the dynamic range of optical brightness.
  • Image brightness is the brightness in the color system of the video source.
  • the broadcast system 1 transmits a broadcast program in two data formats (formats), ie, two types of HDR formats and SDR formats.
  • the HDR format is a format applicable to transmission of both the HDR broadcast program and the SDR broadcast program.
  • the HDR format is a video format for UHDTV (Ultra-High Definition Television), for example, Rec. ITU-R (International Telecommunication Union-Radiocommunication Sector, International Telecommunication Union Radiocommunication Division) BT.
  • the video format defined by 2020.
  • the video source of a broadcast program is the data expressed by the color space of YCbCr as an example is demonstrated. However, the video source may be data expressed in another color space such as RGB.
  • the signal level of image luminance is associated with HDR.
  • an image luminance signal level of 0 to 50 [%] corresponds to an optical luminance of 0 to 300 [cd / m 2 ]
  • an image luminance signal level of 50 to 100 [%] is 300 to 300%. This corresponds to an optical luminance of 2000 [cd / m 2 ]. Therefore, when transmitting an HDR video source in the HDR format, the signal level of the image luminance of the video source can be in the range of 0 to 100 [%].
  • the video source when transmitting an SDR broadcast program in the HDR format, is a video source in which the signal level of the image luminance is 0.5 times that of an SDR video source in the SDR format described later.
  • the signal level of the image luminance of the source can be in the range of 0 to 50 [%].
  • the range of the signal level of the image luminance with respect to the video signal is referred to as a level range.
  • the SDR format is a format applicable only to SDR broadcast programs.
  • the SDR format is a video format for HDTV (High Definition Television), for example, Rec. ITU-R BT. 709 is a video format defined by 709.
  • the signal level of image luminance is associated with SDR.
  • a level range of 0 to 100 [%] corresponds to an optical luminance of 0 to 300 [cd / m 2 ].
  • the signal level of the image luminance of the video source can be in the range of 0 to 100 [%].
  • the correspondence relationship between the signal level of the image luminance and the dynamic range is different between the HDR format and the SDR format.
  • the receiving device 10 and the display device 11 may be configured as an integrated device such as a television, but here, as an example, the receiving device 10 and the display device 11 are configured as separate devices.
  • the display device 11 is a device including a display panel such as a television.
  • the receiving device 10 is a device such as a set-top box that receives a broadcast signal and converts the received broadcast signal into a signal that can be viewed on the display device 11.
  • the display device 11 (FIG. 13) connected to the receiving device 10 may include an SDR display that supports only SDR, or an HDR display that supports SDR and HDR.
  • the receiving device 10 and the display device 11 perform communication conforming to the HDMI (registered trademark) 2.0a standard will be described.
  • the SDR display is a display capable of displaying with the optical brightness of SDR. Specifically, when the signal level of the input image luminance is 0 to 100 [%], the SDR display displays with an optical luminance of 0 to 300 [cd / m 2 ]. Specifically, the SDR display performs display with an optical luminance corresponding to the signal level of the image luminance based on, for example, an electro-optic transfer function (EOTF, Electro Optical Transfer Function) of the graph EO1 shown in FIG.
  • EOTF electro-optic transfer function
  • EOTF Electro Optical Transfer Function
  • EOTF is a mathematical function that describes the correspondence between the luminance input value to the display and the luminance output value of the display.
  • the vertical axis represents the optical luminance (brightness)
  • the horizontal axis represents the signal level of the image luminance.
  • the HDR display is a display capable of displaying with HDR optical luminance. Specifically, the HDR display displays an optical luminance of 0 to 2000 [cd / m 2 ] when the input image luminance signal level is 0 to 100 [%]. In addition, when the signal level of the input image luminance is 0 to 50 [%], the HDR display displays with an optical luminance of 0 to 300 [cd / m 2 ]. Specifically, the HDR display performs display with optical luminance corresponding to the signal level of image luminance based on, for example, EOTF of the graph EO2 shown in FIG. In the graph EO2, the vertical axis represents the optical luminance (brightness), and the horizontal axis represents the signal level of the image luminance.
  • the image source imaging device CR images a subject SU including light sources SU1 to SU5.
  • the light sources SU1 to SU5 are objects having different optical brightness when viewed from the imaging device CR.
  • the optical luminance of the light source SU1 is 100 [cd / m 2 ].
  • the optical luminance of the light source SU2 is 200 [cd / m 2 ], and the optical luminance of the light source SU3 is 300 [cd / m 2 ].
  • the optical luminance of the light source SU4 is 500 [cd / m 2 ].
  • the optical luminance of the light source SU5 is 2000 [cd / m 2 ]. That is, the optical brightness of the light sources SU1 to SU3 is in the SDR, but the optical brightness of the light sources SU4 to SU5 is equal to or higher than the upper limit of the SDR.
  • a broadcast program including a video source imaged by the imaging device CR is broadcast as data in SDR format or HDR format.
  • FIG. 1 three conceptual diagrams SG1 to SG3 are diagrams each showing a concept of a video signal of the subject SU imaged by the imaging device CR.
  • the vertical axis represents the signal level of image luminance.
  • the horizontal axis corresponds to the horizontal direction of the subject SU.
  • the video signal of the SDR broadcast program is referred to as an SDR video signal.
  • the video signal of the HDR broadcast program is referred to as an HDR video signal.
  • the conceptual diagram SG1 is a conceptual diagram of a video signal of an SDR broadcast program in the SDR format.
  • the signal level of the video signal SG11 corresponding to the light sources SU1 to SU3 is 0 to 100 [%].
  • the signal level of the video signal SG12 corresponding to the light sources SU4 to SU5 is 100 [%].
  • a display screen MV1 in FIG. 1 shows an example of a display screen when a video signal corresponding to the conceptual diagram SG1 is displayed on the SDR display.
  • images MV11 to MV13 corresponding to the light sources SU1 to SU3 reproduce the optical luminance of the light sources SU1 to SU3.
  • the optical brightness of the images MV14 to MV15 corresponding to the light sources SU4 to SU5 is not as high as that of the light sources SU4 to SU5, and the difference in optical brightness between the light sources SU1 to SU3 and the light sources SU4 to SU5 is compressed. Yes.
  • the signal level of the image luminance of 300 [cd / m 2 ] or higher in the subject SU is 100 [%], and 300 [cd / m 2 ].
  • the above difference in optical brightness is not expressed.
  • the conceptual diagram SG2 is a conceptual diagram of a video signal of an HDR broadcast program in the HDR format.
  • the signal level of the video signal SG21 corresponding to the light sources SU1 to SU3 is 0 to 50 [%].
  • the signal level of the video signal SG22 corresponding to the light sources SU4 to SU5 is 100 [%].
  • a display screen MV2 in FIG. 1 shows an example of a display screen when a video signal corresponding to the conceptual diagram SG2 is displayed on the HDR display.
  • the images MV21 to MV23 corresponding to the light sources SU1 to SU3 reproduce the optical luminance of the light sources SU1 to SU3.
  • the optical luminance of the images MV24 to MV15 corresponding to the light sources SU4 to SU5 reproduces the optical luminance of the light sources SU4 to SU5.
  • the light source SU1 to SU3 and the light sources SU4 to SU5 can be expressed with different optical brightness because the dynamic range corresponding to the signal level of the image brightness is wide.
  • the conceptual diagram SG3 is a conceptual diagram of a video signal of an SDR broadcast program in the HDR format.
  • the signal level of the video signal SG11 corresponding to the light sources SU1 to SU3 is 0 to 50 [%].
  • the signal level of the video signal SG12 corresponding to the light sources SU4 to SU5 is 50 [%].
  • a display screen MV3 in FIG. 1 shows an example of a display screen when a video signal corresponding to the conceptual diagram SG3 is displayed on the HDR display.
  • the images MV31 to MV33 corresponding to the light sources SU1 to SU3 reproduce the optical luminance of the light sources SU1 to SU3.
  • the image luminances of the images MV14 to MV15 corresponding to the light sources SU4 to SU5 are not as high as those of the light sources SU4 to SU5, and the difference in optical luminance between the light sources SU1 to SU3 and the light sources SU4 to SU5 is different. It is compressed.
  • the optical brightness of the images MV31 to MV35 on the display screen MV3 is equivalent to the optical brightness of the images MV11 to MV15 on the display screen MV1 described above.
  • the signal level of the image luminance of 300 [cd / m 2 ] or more in the subject SU is 50%, which is 300 [cd / m 2 ].
  • the above difference in optical brightness is not expressed.
  • a broadcast program can be displayed with the same optical brightness even on a display having a different dynamic range.
  • the SDR broadcast program is transmitted in both the SDR format and the HDR format, in order to appropriately reproduce the optical luminance of the subject SU, the signal level of the image luminance is adjusted according to the dynamic range of the display. It may be necessary.
  • the broadcasting system 1 provides a communication service in addition to the broadcasting service.
  • the receiving apparatus 10 can display the content acquired through communication simultaneously with the broadcast program.
  • content acquired via communication is referred to as communication content.
  • the video signal of the communication content is generally generated so that the level range is 0 to 100 [%] on the assumption that the dynamic range of the display is SDR.
  • the dynamic range of the display includes SDR, HDR, etc. and is not unified. Therefore, for example, when communication content having a level range of 0 to 100 [%] is displayed on an HDR display, it exceeds the SDR optical luminance range assumed at the time of generation and is displayed in the HDR optical luminance range. It will become too bright.
  • the level range of the video signal of the communication content is matched with the level range of the broadcast program displayed on the screen together with the communication content, communication is performed according to the data format and level range of the broadcast program and the dynamic range of the display.
  • the optical brightness of the content fluctuates and the communication content is not displayed with an appropriate optical brightness.
  • the receiving device 10 converts the signal level of the image luminance of the communication content so that the optical luminance range when the display displays the communication content is SDR. Thereby, the receiving device 10 can display the communication content and the broadcast program with appropriate brightness.
  • information (image) displayed on the display other than the broadcast program such as communication contents and menus is referred to as a graphic.
  • the adjustment of the signal level of the graphic image luminance and the adjustment of the signal level of the image luminance of the broadcast program will be described, but the image luminance of the caption may be adjusted similarly.
  • the signal level of the subtitle image brightness is adjusted, for example, in the same way as with graphics.
  • the conversion processing of the signal level of the image luminance is referred to as level conversion processing.
  • the graphic GP1 is an image with an image luminance signal level of 0 to 100 [%] and an optical luminance range of 0 to 300 [cd / m 2 ] when displayed on the SDR display.
  • the graphic GP2 is an image with an image luminance signal level of 0 to 50 [%], and an image with an optical luminance range of 0 to 300 [cd / m 2 ] when displayed on the HDR display.
  • the graphic GP3 is an image having an image luminance signal level of 0 to 50 [%], and an optical luminance range of 0 to 300 [cd / m 2 ] when displayed on the HDR display. As described above, the receiving apparatus 10 adjusts the level range and displays a graphic with the same optical luminance even when connected to a display having a different dynamic range.
  • the broadcast system 1 performs broadcast program level conversion processing and graphic level conversion processing according to six scenarios. These six scenarios have three conditions: the data format of the broadcast program, the level range of the video signal of the broadcast program (that is, the SDR broadcast program or the HDR broadcast program), and the dynamic range of the display connected to the receiving device 10. It depends on.
  • 2 to 4 are diagrams for explaining adjustment of the signal level of the image luminance of the broadcast program in the broadcast system according to the embodiment.
  • the SDR broadcast program broadcast in the HDR format is displayed on the SDR display.
  • the HDR flag information FL indicating the HDR format and the reference conversion rate information RT are notified to the receiving device 10.
  • the HDR flag information is information representing the data format of the video signal of the broadcast program. More specifically, the HDR flag information is information indicating whether the data format of the video signal of the broadcast program is the HDR format.
  • the standard conversion rate is the video level for the white reference level (Video level for reference white). level). Below, the case where a reference
  • the receiving device 10 converts the signal level of the image luminance of the SDR broadcast program to double.
  • the conversion rate at this time is the reciprocal of the reference conversion rate.
  • the signal level of the image luminance of the video signal of the broadcast program is converted from SG31 to SG35 shown in the conceptual diagram SG3 of FIG. 2 to SG31 'to SG35' shown in the conceptual diagram SG3 'of FIG. That is, the signal level of the image luminance is converted to be equivalent to SG11 to SG15 shown in the conceptual diagram SG1 of FIG.
  • the SDR display displays the images MV31 'to MV35' shown in the screen MV3 'of FIG.
  • the HDR broadcast program broadcast in the HDR format is displayed on the SDR display.
  • the receiving device 10 converts the signal level of the image luminance of the HDR video signal HH by a factor of 2 and displays it on the SDR display.
  • the portion where the signal level exceeds 100 [%] due to the conversion is set to 100 [%].
  • This conversion rate is the reciprocal of the reference conversion rate.
  • the signal level of the image luminance of the video signal of the broadcast program is converted from SG21 to SG25 shown in the conceptual diagram SG2 of FIG. 3 to SG21 ′ to SG25 ′ shown in the conceptual diagram SG2 ′ of FIG.
  • the signal level of the image luminance is converted to be equivalent to SG11 to SG15 shown in the conceptual diagram SG1 of FIG.
  • images MV21 ′ to MV25 ′ shown in the screen MV2 ′ of FIG. 2 are displayed on the SDR display with the same optical luminance as the images MV11 to MV15 shown in the screen MV1 of FIG. Accordingly, in the SDR display, for example, it is possible to prevent an area with low optical brightness such as the light sources SU1 to SU3 from being displayed too darkly against the intention of the broadcast program producer.
  • the SDR broadcast program broadcast in the SDR format is displayed on the SDR display.
  • the receiving apparatus 10 displays the signal level of the image luminance of the SDR video signal SS on the SDR display without converting the magnification.
  • the SDR broadcast program broadcast in the SDR format is displayed on the HDR display.
  • the reception device 10 converts the signal level of the image luminance of the SDR video signal SS to 0.5 times and converts it into an HDR display.
  • This conversion rate is a reference conversion rate.
  • the signal level of the image luminance of the video signal of the broadcast program is converted from SG21 to SG25 shown in the conceptual diagram SG2 of FIG. 4 to SG11 ′ to SG15 ′ shown in the conceptual diagram SG1 ′ of FIG. That is, the signal level of the image luminance is converted to be equivalent to SG11 to SG15 shown in the conceptual diagram SG1 of FIG.
  • images MV21 ′ to MV25 ′ shown in the screen MV2 ′ of FIG. 2 are displayed on the SDR display with the same optical luminance as the images MV11 to MV15 shown in the screen MV1 of FIG. Accordingly, in the HDR display, for example, it is possible to prevent a low optical luminance area such as the light sources SU1 to SU3 from being displayed brightly against the intention of the broadcast program producer.
  • the broadcast system 1 converts the graphic image luminance according to the above-described six scenarios.
  • the receiving apparatus 10 is displayed on the SDR display, and a case where the graphic is generated in a level range between 0 and 100 [%] will be described. That is, when the receiving device 10 includes an SDR display, the receiving device 10 generates a graphic corresponding to the SDR dynamic range. Further, when the receiving device 10 includes an HDR display, the receiving device 10 generates a graphic corresponding to the dynamic range of HDR.
  • the receiving device 80 to be compared has a configuration similar to that of the receiving device 10, but is different from the receiving device 10 in that it does not convert the image luminance of the graphic video signal.
  • FIG. 22 is a diagram showing an outline of image luminance conversion processing by the receiving device 80 to be compared.
  • the receiving device 80 includes a decoder unit 850, a graphic processing unit 860, a level conversion unit 890, and a synthesis unit 900.
  • the decoder unit 850 decodes the video stream of the broadcast program and outputs the video signal to the level conversion unit 890.
  • the graphic processing unit 860 generates various graphics such as characters, browsers, and menus, and outputs the generated graphic video signal to the combining unit 900.
  • the level conversion unit 890 converts the image luminance of the video signal of the broadcast program based on the reference conversion rate that is a control signal, according to the above-described six scenarios.
  • Level conversion section 890 outputs the video signal of the converted broadcast program to combining section 900.
  • the synthesizer 900 synthesizes a broadcast program video signal and a graphic video signal.
  • the synthesizing unit 900 synthesizes various video signals so that broadcast programs and graphics are arranged or overlapped on the screen.
  • the video signal synthesized by the synthesis unit 200 is output to the display device 11 to display the video.
  • FIG. 5 is a diagram showing an overview of level conversion processing by the receiving apparatus 10 according to the present embodiment.
  • the receiving apparatus 10 includes a decoder unit 150, a graphic processing unit 160, a level conversion unit 190, and a synthesis unit 200.
  • the decoder unit 150, the graphic processing unit 160, and the display unit 210 are the same as the decoder unit 850 and the graphic processing unit 860, respectively.
  • the level conversion unit 190 converts the image luminance of the video signal of the broadcast program based on a reference conversion rate that is a control signal. However, the level conversion unit 190 is different from the level conversion unit 890 in that the image luminance of the graphic video signal is also converted based on the reference conversion rate.
  • the level conversion unit 890 outputs the video signal of the broadcast program after the level conversion process and the graphic video signal after the level conversion process to the synthesis unit 200.
  • the synthesizing unit 200 synthesizes the video signal of the broadcast program acquired from the level converting unit 190 and the graphic video signal. As a result, the receiving apparatus 10 displays the broadcast program and the graphic with the same optical luminance range regardless of the data format of the broadcast program, the level range of the video source of the broadcast program, the dynamic range of the display, and the like. be able to.
  • FIG. 6 is a diagram illustrating a pattern of image luminance conversion processing by the receiving device 10 according to the present embodiment.
  • FIG. 23 is a diagram illustrating a pattern of image luminance conversion processing by the receiving device 80 to be compared.
  • transmission format information (“transmission format” in FIGS. 6 and 23) indicates the data format of the broadcast program.
  • the video source information (“video source” in FIGS. 6 and 24) represents an assumed dynamic range at the time of production of a broadcast program.
  • the display information (“Display” in FIGS. 6 and 23) is information representing the dynamic range of the display.
  • the display information is, for example, EDID (Extended Display Identification Data).
  • the video signal level conversion information (“level conversion (video source)” in FIGS. 6 and 23) represents the conversion rate of the image luminance of the video signal of the broadcast program.
  • the graphic level conversion information (“level conversion (graphic)” in FIGS. 6 and 23) represents the conversion rate of the image luminance of the graphic video signal.
  • Scenario information (“scenario” in FIGS. 6 and 23) represents a scenario according to the values of transmission format information, video source information, and display information.
  • the receiving apparatus 10 converts the image luminance of the graphic video signal to 0.5 times in the second scenario SE2, the fourth scenario SE4, and the sixth scenario SE6.
  • the receiving device 80 does not convert the image luminance of the graphic video signal as described above.
  • FIG. 7 is a diagram illustrating an outline of processing in the first scenario SE1 of the reception device 10 according to the present embodiment.
  • the level range of the SDR video signal is 0 to 50%. Therefore, if the SDR video signal is displayed on the SDR display as it is, the video becomes darker than the optical luminance 0 to 300 [cd / m 2 ] assumed when the SDR broadcast program is created. Therefore, the receiving apparatus 10 doubles the signal level of the image luminance of the SDR video signal and synthesizes it with the graphic video signal. As a result, it is possible to display the graphic at an appropriate brightness while displaying the broadcast program at the brightness assumed when the SDR broadcast program was created.
  • FIG. 8 is a diagram illustrating an outline of processing in the second scenario SE2 of the receiving device 10 according to the present embodiment.
  • FIG. 24 is a diagram illustrating an outline of processing in the second scenario SE2 of the receiving device 80 to be compared.
  • the level range of the SDR video signal is 0 to 50%.
  • the level range of the graphic video signal is 0 to 100 [%].
  • the receiving device 80 to be compared synthesizes the SDR video signal and the graphic video signal without converting the signal level of the image luminance of the graphic video signal.
  • the optical brightness of the broadcast program displayed on the HDR display is 0 to 300 [cd / m 2 ], whereas the optical brightness of the graphic is 0 to 2000 [cd / m 2 ].
  • the graphic becomes too bright and the brightness is uneven across the screen.
  • the receiving device 10 multiplies the signal level of the image luminance of the graphic video signal by 0.5 and combines it with the SDR video signal. As a result, it is possible to display the graphic at an appropriate brightness while displaying the broadcast program at the brightness assumed when the SDR broadcast program was created.
  • FIG. 9 is a diagram illustrating an outline of processing in the third scenario of the receiving device 10 according to the present embodiment.
  • the level range of the HDR video signal is 0 to 100%.
  • the receiving apparatus 10 doubles the signal level of the image luminance of the HDR video signal and combines it with the graphic video signal. Thereby, it is possible to display the graphic with appropriate brightness while appropriately reproducing the optical brightness of the broadcast program.
  • FIG. 10 is a diagram illustrating an outline of processing in the fourth scenario of the reception device 10 according to the present embodiment.
  • FIG. 25 is a diagram illustrating an outline of processing in the fourth scenario of the receiving device 80 to be compared.
  • the level range of the HDR video signal is 0 to 100%. Therefore, even if the HDR video signal is output to the HDR display as it is, no particular problem occurs.
  • the level range of the graphic video signal is 0 to 100 [%].
  • the receiving device 80 to be compared synthesizes the SDR video signal and the graphic video signal without converting the signal level of the image luminance of the graphic video signal. Therefore, the optical brightness of the broadcast program displayed on the HDR display is 0 to 2000 [cd / m 2 ], and the optical brightness of the graphic is 0 to 2000 [cd / m 2 ]. In this case, at first glance, since the optical luminance range of the broadcast program and the optical luminance range of the graphic are aligned, it seems that the brightness can be adjusted appropriately. However, since the graphic is generated assuming SDR, it becomes too bright when displayed at 0 to 2000 [cd / m 2 ].
  • the receiving apparatus 10 multiplies the image level of the graphic video signal by 0.5 times and synthesizes it with the HDR video signal. As a result, it is possible to display the graphic with an appropriate brightness while displaying the broadcast program with the brightness assumed when the HDR broadcast program was created.
  • FIG. 11 is a diagram illustrating an outline of processing in the fifth scenario of the reception device 10 according to the present embodiment.
  • the level range of the SDR video signal is 0 to 100%. Therefore, even if the HDR video signal is output to the SDR display as it is, no particular problem occurs. Therefore, the receiving apparatus 10 combines the SDR video signal and the graphic video signal without converting the signal level of the image luminance. Thereby, a graphic can be displayed with appropriate brightness.
  • FIG. 12 is a diagram illustrating an outline of processing in the sixth scenario of the reception device 10 according to the present embodiment.
  • FIG. 26 is a diagram illustrating an outline of processing in the sixth scenario of the receiving device 80 to be compared.
  • the level range of the SDR video signal is 0 to 100%. Therefore, when the SDR video signal is displayed on the HDR display as it is, it becomes 0 to 2000 [cd / m 2 ], and 0 to 300 [cd / m 2 ] assumed at the time of producing the SDR broadcast program can be appropriately reproduced. Can not. Therefore, the receiving apparatus 10 converts the signal level of the image luminance of the SDR video signal to 0.5 times.
  • the receiving device 80 to be compared synthesizes the SDR video signal and the graphic video signal without converting the image luminance of the graphic video signal.
  • the optical brightness of the broadcast program displayed on the HDR display is 0 to 300 [cd / m 2 ]
  • the optical brightness of the graphic is 0 to 2000 [cd / m 2 ].
  • Graphics become excessively bright and brightness is uneven across the screen.
  • the receiving apparatus 10 synthesizes the image level of the graphic video signal with the SDR video signal after increasing the signal level by 0.5 times. As a result, it is possible to display the graphic at an appropriate brightness while displaying the broadcast program at the brightness assumed when the SDR broadcast program was created.
  • FIG. 13 is a block diagram illustrating an example of the configuration of the broadcast system 1 according to the present embodiment.
  • the broadcast system 1 is a system that provides both a broadcast service and a communication service.
  • MMT MPEG Media Transport
  • the broadcast system 1 includes a reception device 10, a display device 11, a broadcast side transmission device 30, and a communication side transmission device 50.
  • the receiving device 10 is an electronic device that can receive a broadcast service and a communication service.
  • the receiving device 10 is, for example, a set top box, a television, a personal computer, a mobile phone, a tablet, a smartphone, a PHS (Personal Handy-phone System) terminal device, or a PDA (Personal Digital Assistant).
  • a set top box a television, a personal computer, a mobile phone, a tablet, a smartphone, a PHS (Personal Handy-phone System) terminal device, or a PDA (Personal Digital Assistant).
  • PHS Personal Handy-phone System
  • PDA Personal Digital Assistant
  • the display device 11 is a device provided with a display panel.
  • the display device 11 and the receiving device 10 are connected so that at least a video signal corresponding to a dynamic range of a display included in the display device 11 can be transmitted.
  • a cable compliant with HDMI (registered trademark) 2.0a may be employed for connection between the display device 11 and the receiving device 10.
  • the broadcast-side transmission device 30 is a device that transmits a broadcast wave in which broadcast content i1 and program information i2 are multiplexed.
  • the program information i2 is information indicating details of the program.
  • the program information i2 is specifically MMT-SI (service information, service information) information in the MMT system.
  • the MMT-SI information includes, for example, an MH-EIT (MH-Event Information Table, MH-Event Information Table) that is a table for transmitting information on the program such as the program name, broadcast date and time, and description of the broadcast content. .
  • the broadcast wave transmitted by the broadcast side transmission device 30 is transmitted to the reception device 10 via the broadcast satellite BS.
  • the communication-side transmission device 50 is, for example, a server device, and a device that transmits the communication content i3 to the reception device 10.
  • the communication-side transmitting device 50 and the receiving device 10 can be connected to the network NW and communicate with each other.
  • the network NW is an information communication network configured by a WAN (Wide Area Network), a LAN (Local Area Network), and the like.
  • the WAN includes, for example, a mobile phone network, a PHS (Personal Handy-phone System) network, a PSTN (Public Switched Telephone Network), a dedicated communication network, and a VPN (Virtual). Private Network) and the like.
  • FIG. 14 is a schematic diagram showing the data structure of the MH-EIT according to the present embodiment. In the example illustrated in FIG.
  • MH-EIT (MH-Event_Information_Table ()) includes an event identification (event_ID), a start time (start_time), and a duration (duration).
  • the event identification indicates an event identification number. Specifically, for example, the event identification indicates program identification information.
  • the start time indicates the start time of the event. That is, the start time indicates the start time (date and time) of the program.
  • the duration indicates the duration of the event. That is, the duration indicates the broadcast time length of the program.
  • the MH-EIT includes a descriptor area (descriptor ()) for each event identification.
  • the descriptor area is an area for storing a descriptor.
  • the MH-EIT according to the present embodiment can include, for example, a video component descriptor.
  • FIG. 15 is a schematic diagram showing the data structure of the video component descriptor according to the present embodiment.
  • the video component descriptor includes an HDR discrimination (video_hdr_flag).
  • the HDR discrimination is performed by, for example, 1 bit or 2 bits of the “Reserved (FIG. 14)” field of 2 bits provided in the video component descriptor described in Non-Patent Document 1 (ARIB STD-B60 1.2 version). May be assigned and described.
  • the HDR discrimination is HDR flag information indicating that the video signal is in the HDR format.
  • the HDR discrimination is information indicating the luminance characteristics of the video signal.
  • FIG. 16 is a diagram illustrating an example of setting a value for HDR discrimination according to the present embodiment.
  • FIG. 16 shows a setting example of HDR discrimination when 2-bit information is described in HDR discrimination.
  • the HDR determination value is “0”, it indicates that the data format of the video signal is the SDR format and the reference conversion rate is 100 [%].
  • the HDR discrimination value is “1”, it indicates that the data format of the video signal is the HDR format and “white reference” is “50%”.
  • HDR flag information and conversion rate information may be aggregated and transmitted as one piece of information.
  • FIG. 17 is a block diagram illustrating an example of the configuration of the broadcast-side transmission device 30 according to the present embodiment.
  • the broadcast-side transmission device 30 includes a program information acquisition unit 310, a broadcast content acquisition unit 320, a multiplexing unit 330, an encryption unit 340, and a transmission unit 350.
  • the program information acquisition unit 310 generates program information based on an input from an external device, for example.
  • the program information acquisition unit 310 outputs the generated program information to the multiplexing unit 330.
  • the broadcast content acquisition unit 320 acquires program data from an external device, for example.
  • the program data is data including video data and audio data expressing a broadcast program corresponding to HDR or SDR.
  • the broadcast content acquisition unit 320 converts the acquired program data into a predetermined format such as a stream format, for example. Then, the broadcast content acquisition unit 320 outputs the converted program data to the multiplexing unit 330.
  • the multiplexing unit 330 multiplexes the program information acquired from the program information acquisition unit 310 and the broadcast content acquired from the broadcast content acquisition unit 320 to generate multiplexed data in a predetermined format (for example, transport stream). To do.
  • the multiplexing unit 330 outputs the generated multiplexed data to the encryption unit 340.
  • the encryption unit 340 encrypts the multiplexed data acquired from the multiplexing unit 330 using a predetermined encryption method (for example, MULTI2).
  • the encryption unit 340 outputs the encrypted multiplexed data to the transmission unit 350.
  • the transmission unit 350 broadcasts the multiplexed data acquired from the encryption unit 340.
  • the transmission unit 350 modulates a carrier wave having a predetermined carrier frequency with multiplexed data that is a baseband signal, and radiates a radio wave (broadcast wave) in a channel band corresponding to the carrier frequency using an antenna. .
  • the broadcast program and the program information are transmitted to the receiving device 10 via the broadcast transmission path.
  • FIG. 18 is a block diagram illustrating an example of a functional configuration of the receiving device 10 and the display device 11 according to the present embodiment.
  • the receiving device 10 includes a tuner unit 110, a demodulation unit 120, a communication unit 130, a separation unit 140, a decoder unit 150, a graphic processing unit 160, a display information storage unit 170, a determination unit 180, and a level conversion.
  • the tuner unit 110 includes a tuner and receives broadcast waves.
  • the tuner unit 110 outputs the received broadcast signal to the demodulation unit 120.
  • the demodulator 120 demodulates the broadcast signal acquired from the tuner unit 110.
  • Demodulation section 120 outputs the demodulated broadcast signal to separation section 140.
  • the communication unit 130 communicates with the communication-side transmission device 50 and acquires data distributed from the communication-side transmission device 50.
  • the communication-side transmission device 50 outputs the acquired data to the separation unit 140.
  • the separation unit 140 separates the video signal of the broadcast program, the audio signal of the broadcast program, and the program information from the broadcast signal acquired from the demodulation unit 120. Further, the separation unit 140 separates communication content data from the data acquired from the communication unit 130. In addition, the separation unit 140 separates the caption data of the broadcast program from the broadcast signal acquired from the demodulation unit 120 or the data acquired from the communication unit 130. Separating section 140 outputs the separated broadcast program video signal, audio signal, and caption data to decoder section 150. Further, the separation unit 140 outputs the separated communication content data and program information to the graphic processing unit 160.
  • the decoder unit 150 decodes (decodes) various signals.
  • An audio decoder unit 151, a video decoder unit 152, and a caption decoder unit 153 are provided.
  • the audio decoder unit 151 decodes the audio signal of the broadcast program acquired from the separation unit 140.
  • the audio output unit 220 outputs the decoded audio signal to the display-side communication unit 210.
  • the video decoder unit 152 decodes the video signal of the broadcast program acquired from the separation unit 140.
  • the video decoder unit 152 outputs the decoded video signal to the level conversion unit 190.
  • the caption decoder unit 153 decodes the caption data acquired from the separation unit 140, and generates a caption display video signal.
  • the subtitle decoder unit 153 outputs the generated subtitle video signal to the level conversion unit 190.
  • the graphic processing unit 160 generates a graphic video signal.
  • the graphic processing unit 160 includes a browser execution unit 161 and an SI processing unit 162.
  • the browser execution unit 161 executes a browser application.
  • the browser execution unit 161 generates, for example, a video signal of a browser application or a video signal of communication content presented on the browser application.
  • the browser execution unit 161 outputs the generated video signal to the level conversion unit 190.
  • the SI processing unit 162 processes program information.
  • the SI processing unit 162 analyzes the program information acquired from the separation unit 140, and acquires HDR flag information and reference conversion rate information. Specifically, the SI processing unit 162 extracts the MH-EIT video component descriptor, and acquires the HDR flag information and the reference conversion rate information by referring to the HDR determination value.
  • the SI processing unit 162 outputs the extracted HDR flag information and reference conversion rate information to the determination unit 180. Further, for example, the SI processing unit 162 generates a video signal of information that can be presented, such as an electronic program guide (EPG) extracted from the program information.
  • EPG electronic program guide
  • the display information storage unit 170 stores display attribute information of the display device 11 connected to the receiving device 10. Specifically, the display information storage unit 170 stores display information indicating the dynamic range of the display as display attribute information.
  • the determination unit 180 determines whether it is necessary to convert the signal level of the image luminance of various video signals output from the decoder unit 150 and the graphic processing unit 160. The determination unit 180 obtains HDR flag information and reference conversion rate information from the SI processing unit 162. The determination unit 180 identifies the data format of the broadcast program based on the HDR flag information. In addition, the determination unit 180 specifies the level range of the broadcast program based on the reference conversion rate value. In addition, the determination unit 180 reads display dynamic range information from the display information storage unit 170.
  • the determination unit 180 identifies a scenario corresponding to the data format of the broadcast program, the dynamic range of the broadcast program, and the dynamic range of the display, and the conversion rate of the video signal of the broadcast program, the conversion rate of the graphic video signal, To decide.
  • the determination unit 180 notifies the level conversion unit 190 of the determined conversion rate of the video signal of the broadcast program and the conversion rate of the graphic video signal.
  • the level conversion unit 190 executes level conversion processing for converting the signal level of the image luminance of various video signals based on the conversion rate notified from the determination unit 180. Specifically, the level conversion unit 190 converts the signal level by converting the value of the luminance Y in the video signal in the color space of YCbCr, for example. When the video signal is in another color space such as RGB, the value of luminance Y may be converted after conversion to the YCbCr color space.
  • the level conversion unit 190 includes a video level conversion unit 191, a subtitle level conversion unit 192, a browser level conversion unit 193, and an SI level conversion unit 194.
  • the video level conversion unit 191 acquires the video signal of the broadcast program from the video decoder unit 152.
  • the video decoder unit 152 converts the image luminance signal level of the acquired video signal at the conversion rate of the video signal of the broadcast program notified from the determination unit 180. Specifically, in the case of the first scenario SE1, the video decoder unit 152 converts the signal level of the image luminance to double. Further, in the case of the second scenario SE2, the video decoder unit 152 does not convert the signal level of the image luminance (set to the same magnification). In the case of the sixth scenario SE6, the video decoder unit 152 converts the signal level of the image luminance to 0.5 times. The video decoder unit 152 outputs the video signal after the signal level conversion to the synthesis unit 200.
  • the caption level conversion unit 192 acquires a caption video signal from the caption level conversion unit 192.
  • the caption level conversion unit 192 converts the signal level of the image luminance of the acquired video signal with the conversion rate of the graphic video signal notified from the determination unit 180. Specifically, in the example illustrated in FIG. 6, in the case of the first scenario, the subtitle level conversion unit 192 does not convert the signal level of the image luminance (set to the same magnification). In the case of the second scenario SE2, the fourth scenario SE4, and the sixth scenario SE6, the caption level conversion unit 192 converts the signal level of the image luminance to 0.5 times.
  • the subtitle level conversion unit 192 outputs the video signal after the signal level conversion to the synthesis unit 200.
  • the browser level conversion unit 193 acquires the video signal of the communication content from the browser execution unit 161.
  • the browser level conversion unit 193 converts the signal level of the image luminance of the acquired video signal with the conversion rate of the graphic video signal notified from the determination unit 180.
  • the conversion rate at this time is the same as that of the caption level conversion unit 192 described above.
  • the browser level conversion unit 193 outputs the video signal after the signal level conversion to the synthesis unit 200.
  • the SI level conversion unit 194 acquires a video signal such as an electronic program guide from the SI processing unit 162, for example.
  • the SI processing unit 162 converts the signal level of the image luminance of the acquired video signal at the conversion rate of the graphic video signal notified from the determination unit 180.
  • the conversion rate at this time is the same as that of the caption level conversion unit 192 described above.
  • the SI processing unit 162 outputs the video signal after the signal level conversion to the combining unit 200.
  • the synthesizer 200 acquires various video signals from the video level converter 191, the subtitle level converter 192, the browser level converter 193, and the SI level converter 194.
  • the combining unit 200 combines the acquired various video signals based on, for example, a predetermined screen layout.
  • the combining unit 200 outputs the combined video signal to the display-side communication unit 210.
  • the display-side communication unit 210 includes, for example, a communication IC compliant with the HDMI (registered trademark) 2.0a standard, and communicates with the display device 11.
  • the display-side communication unit 210 transmits the video signal output from the synthesis unit 200 and the audio signal output from the audio decoder unit 151 to the display device 11. Thereby, the display apparatus 11 can reproduce
  • the display side communication unit 210 when the display side communication unit 210 is first connected to the display device 11, the display side communication unit 210 receives display information from the display device 11 and stores the received display information in the display information storage unit 170. Thereby, the receiving device 10 can refer to the information on the dynamic range of the display device 11 connected to the receiving device 10.
  • the display device 11 includes a display device communication unit 111, a display information storage unit 112, a display unit 113, and an audio output unit 114.
  • the display device communication unit 111 includes, for example, a communication IC conforming to the HDMI (registered trademark) 2.0a standard, and communicates with the reception device 10.
  • the display device communication unit 111 receives the video signal from the reception device 10 and outputs the video signal to the display unit 113.
  • the display information storage unit 112 receives an audio signal from the receiving device 10 and outputs the audio signal to the audio output unit 114.
  • the display device communication unit 111 when the display device communication unit 111 is first connected to the receiving device 10, the display device communication unit 111 reads display information from the display information storage unit 112 and transmits the read display information to the receiving device 10.
  • the display information may be transmitted at an arbitrary timing in response to a request from the receiving device 10, for example.
  • the display information storage unit 112 stores display information regarding the display unit 113 of the device itself.
  • the display unit 113 includes, for example, a liquid crystal display panel having a dynamic range such as HDR or SDR, a plasma display panel, or the like.
  • the display unit 113 displays a video based on the video signal acquired from the display device communication unit 111.
  • the audio output unit 114 includes, for example, a speaker and an amplifier. The audio output unit 114 reproduces audio based on the audio signal acquired from the display device communication unit 111.
  • FIG. 19 is a block diagram illustrating an example of a hardware configuration of the receiving device 10 according to the present embodiment.
  • the receiving device 10 includes a CPU 100, a ROM 1001, a RAM 1002, a nonvolatile memory 1003, a tuner 101, a network interface (Network I / F) 102, a demodulation module (Decrypt) 103, a separation module (Demux) 104, a voice decoding module (Audio).
  • the CPU 100, storage medium 1001, tuner 101, network interface 102, demodulation module 103, separation module 104, audio decoding module 105, video decoding module 107, drawing module 108, and video memory 1081 are They are connected to each other via a bus (bus).
  • the display interface 109 is connected to the speech decoding module 105 and the drawing module 108.
  • the CPU100 reads a program and various data, and controls the own apparatus provided with the CPU100 concerned.
  • the CPU 100 generates video signals such as various graphics.
  • the ROM 1001 is a storage medium that stores a program, for example.
  • the RAM 1002 is a storage medium that temporarily stores various data and programs, for example.
  • the nonvolatile memory 1003 is a storage medium such as an HDD or a flash memory, and stores various data, for example.
  • the various data read by the CPU 100 is an example stored in the nonvolatile memory, but may be stored in the ROM 1001 or may be various data downloaded from the network NW.
  • the tuner 101 receives a broadcast wave.
  • the network interface 102 has a communication interface and is connected to the network NW by wire or wireless.
  • the demodulation module 103 demodulates the broadcast signal.
  • the separation module 104 separates various data from the broadcast signal.
  • the audio decoding module 105 decodes the encoded audio signal.
  • the video decoding module 107 decodes the encoded video signal.
  • the drawing module 108 controls synthesis of various video signals, writing of video signals to the video memory 1081, and output of video signals to the display device 11.
  • the video memory 1081 stores a video signal of a video displayed on the display device 11.
  • the display interface 109 transmits the video signal synthesized by the drawing module 108 and the audio signal decoded by the audio decoding module 105 to the display device 11.
  • the display interface 109 receives display information from the display device 11.
  • FIG. 20 is a flowchart illustrating an example of the flow of level adjustment processing by the receiving device 10 according to the present embodiment. Hereinafter, only processing relating to the conversion of the signal level of the image luminance of the video signal will be described.
  • Step S100 The SI processing unit 162 extracts HDR flag information. Thereafter, the receiving apparatus 10 advances the processing to step S102.
  • Step S102 The determination unit 180 determines whether the HDR flag information has been detected. Specifically, the determination unit 180 determines the presence / absence of HDR flag information by referring to the HDR determination of the video component descriptor. If the HDR flag information can be detected (step S102; YES), the receiving apparatus 10 advances the process to step S104. If the HDR flag information cannot be detected (step S102; NO), the receiving apparatus 10 advances the process to step S112.
  • Step S104 The determination unit 180 detects the magnification of the signal level conversion. Specifically, the determination unit 180 specifies the reference conversion rate by referring to the HDR determination value. Thereafter, the receiving apparatus 10 advances the processing to step S106.
  • Step S106 The determination unit 180 determines whether or not the dynamic range of the display of the display device 11 is HDR. Specifically, the determination unit 180 refers to the display information stored in the display information storage unit 170 and identifies the dynamic range of the display. If the display is an HDR display (step S106; YES), the receiving apparatus 10 advances the processing to step S108. If the display is not an HDR display, that is, if it is an SDR display (step S106; NO), the receiving apparatus 10 advances the process to step S110.
  • Step S108 The determination unit 180 sets the reciprocal number of the reference conversion rate to the conversion rate of the signal level of the image luminance for the other than the video signal of the broadcast program, that is, the graphic. Thereafter, the receiving apparatus 10 advances the processing to step S116.
  • Step S ⁇ b> 110 The determination unit 180 sets a reference conversion rate as the conversion rate of the signal level of the image luminance for the video signal of the broadcast program. Thereafter, the receiving apparatus 10 advances the processing to step S116.
  • Step S112 The determination unit 180 determines whether or not the dynamic range of the display is HDR. If the display is an HDR display (step S112; YES), the receiving apparatus 10 advances the process to step S114. If the display is not an HDR display, that is, if it is an SDR display (step S110; NO), the receiving apparatus 10 advances the process to step S116.
  • Step S114 The determination unit 180 sets the reciprocal of the reference conversion rate to the conversion rate of the signal level of the image luminance for all the video signals. Thereafter, the receiving apparatus 10 advances the processing to step S116.
  • Step S116 The level converter 190 converts the signal level of the image luminance for the video signal for which the conversion rate is set. And the receiver 10 complete
  • the receiving apparatus 10 includes the video decoder unit 152 (an example of the first acquisition unit) that acquires the first image signal indicating the first image (video) of the broadcast program, A communication unit 130 (an example of a second acquisition unit) that acquires a second image signal indicating a second image (for example, graphic or caption) that is different from one image, and both the first image and the second image are displayed.
  • the video decoder unit 152 an example of the first acquisition unit
  • a communication unit 130 an example of a second acquisition unit
  • a display unit 210 (an example of a display unit) and a level conversion unit 190 (for converting the luminance signal level of the second image so that the luminance range when the display unit 210 displays the second image becomes a predetermined range)
  • the display unit 210 displays the second image after conversion by the level conversion unit 190.
  • the receiving apparatus 10 can display various contents, menus, subtitles, and the like with appropriate brightness.
  • the receiving device 10 includes a determination unit 180 (an example of a third acquisition unit) that acquires display information indicating the dynamic range of the optical luminance of the display unit 210, and the level conversion unit 190 is based on the display information. The signal level of the image brightness of the second image is converted.
  • the receiving apparatus 10 can adjust the signal level of the image brightness of the graphic, subtitle, and the broadcast program based on the dynamic range of the display. Therefore, the receiving apparatus 10 can display various contents, menus, subtitles, and the like with appropriate brightness.
  • the first image signal data format includes an SI processing unit 162 (an example of a fourth acquisition unit) that acquires format information (for example, HDR determination), and the level conversion unit 190 is acquired by the SI processing unit 162. Based on the format information, the signal level of the image brightness of the second image is converted.
  • SI processing unit 162 an example of a fourth acquisition unit
  • format information for example, HDR determination
  • level conversion unit 190 is acquired by the SI processing unit 162. Based on the format information, the signal level of the image brightness of the second image is converted.
  • the receiving device 10 can accurately grasp the brightness assumed at the time of production of the broadcast program, it is possible to display various contents, menus, subtitles, and the like with appropriate brightness.
  • an SI processing unit 162 (an example of a fifth acquisition unit) that acquires reference conversion rate information (e.g., HDR determination) that represents a reference conversion rate is provided, and the level conversion unit 190 is acquired by the SI processing unit 162. Based on the reference conversion rate information, the signal level of the image brightness of the second image is converted.
  • reference conversion rate information e.g., HDR determination
  • the level conversion unit 190 also obtains the reference conversion rate acquired by the SI processing unit 162 when the luminance dynamic range of the display unit 210 is the high dynamic range and the data format of the first image signal indicates the high dynamic range format. Based on the information, the luminance signal level of the second image is converted.
  • the receiving apparatus 10 can display various contents, menus, subtitles, and the like with appropriate brightness.
  • FIG. 21 shows a signal level conversion pattern of image luminance when the reference conversion rate is 70 [%].
  • the pattern shown in FIG. 21 corresponds to the pattern shown in FIG. 6, and the contents indicated by various information are the same.
  • the values of the video signal level conversion information and the graphic level conversion information are different.
  • the broadcast system 1 may use, for example, a media transport system such as the MPEG-2 TS system or the RTP (Real-time Transport Protocol) system.
  • a media transport system such as the MPEG-2 TS system or the RTP (Real-time Transport Protocol) system.
  • a program for realizing the functions of the above-described receiving device 10, broadcast-side transmitting device 30, and communication-side transmitting device 50 is recorded on a computer-readable recording medium, and the program recorded on the recording medium is stored in a computer system.
  • the processing as the receiving device 10, the broadcast-side transmitting device 30, and the communication-side transmitting device 50 may be performed by being read and executed.
  • “loading and executing a program recorded on a recording medium into a computer system” includes installing the program in the computer system.
  • the “computer system” here includes an OS and hardware such as peripheral devices. Further, the “computer system” may include a plurality of computer devices connected via a network including a communication line such as the Internet, WAN, LAN, and dedicated line.
  • the “computer-readable recording medium” refers to a storage device such as a flexible medium, a magneto-optical disk, a portable medium such as a ROM or a CD-ROM, and a hard disk incorporated in a computer system.
  • the recording medium storing the program may be a non-transitory recording medium such as a CD-ROM.
  • the recording medium also includes a recording medium provided inside or outside that is accessible from the distribution server in order to distribute the program.
  • the code of the program stored in the recording medium of the distribution server may be different from the code of the program that can be executed by the terminal device. That is, the format stored in the distribution server is not limited as long as it can be downloaded from the distribution server and installed in a form that can be executed by the terminal device.
  • the program may be divided into a plurality of parts, downloaded at different timings, and combined in the terminal device, or the distribution server that distributes each of the divided programs may be different.
  • the “computer-readable recording medium” holds a program for a certain period of time, such as a volatile memory (RAM) inside a computer system that becomes a server or a client when the program is transmitted via a network.
  • the program may be for realizing a part of the functions described above.
  • achieve the function mentioned above in combination with the program already recorded on the computer system, and what is called a difference file (difference program) may be sufficient.

Abstract

Un dispositif de réception selon l'invention comprend : une première unité d'acquisition pour acquérir un premier signal d'image indiquant une première image d'un programme de diffusion; une seconde unité d'acquisition pour acquérir un second signal d'image indiquant une seconde image qui est différente de la première image; une unité d'affichage pour afficher à la fois la première image et la seconde image; et une unité de conversion pour convertir un niveau de signal de luminance de la seconde image de sorte qu'une plage de luminance soit conforme à une plage prédéterminée lorsque l'unité d'affichage affiche la seconde image. L'unité d'affichage affiche la seconde image qui a été convertie par l'unité de conversion.
PCT/JP2016/071501 2015-07-24 2016-07-22 Dispositif de réception, procédé de commande d'affichage, et programme WO2017018333A1 (fr)

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Citations (3)

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WO2014130213A1 (fr) * 2013-02-21 2014-08-28 Dolby Laboratories Licensing Corporation Systèmes et procédés permettant un mappage de l'apparence pour composer des graphiques de recouvrement
JP2014528182A (ja) * 2011-06-14 2014-10-23 コーニンクレッカ フィリップス エヌ ヴェ 高ダイナミックレンジ・ビデオのためのグラフィック処理
WO2015025726A1 (fr) * 2013-08-20 2015-02-26 ソニー株式会社 Dispositif de reproduction, procédé de reproduction et support d'enregistrement

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WO2014130213A1 (fr) * 2013-02-21 2014-08-28 Dolby Laboratories Licensing Corporation Systèmes et procédés permettant un mappage de l'apparence pour composer des graphiques de recouvrement
WO2015025726A1 (fr) * 2013-08-20 2015-02-26 ソニー株式会社 Dispositif de reproduction, procédé de reproduction et support d'enregistrement

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