The present invention relates to a video signal transmitting device, a video signal receiving device, a video signal transmitting method, a video signal receiving method, a program, and a recording medium for serial transmission of a video signal of a moving image such as in television, and relates in particular to a technique for transmitting a high-definition video signal.
The present application claims priority based on the patent application 2012-194576, filed in Japan on Sep. 4, 2012, and the patent application 2013-091689, filed in Japan on Apr. 24, 2013, and incorporates herein by reference the entire contents thereof.
Conventionally, SMPTE 292, ITU-R Recommendation BT. 1120, and ARIB standard BTA S-004 have been known as standards for an HDTV signal serial digital interface (HD-SDI).
The HD-SDI standard implementing a 1.5-Gbit/s speed has as a prerequisite an HDTV signal with effective number of pixels of 1920 (number of horizontal pixels)×1080 (number of vertical lines), with 60 fields (30 frames) per second, a 4:2:2 format (the number of pixel ratio between the luminance signal Y and the color difference signals CB and CR being 4:2:2, with the color difference signals CB and CR sub-sampled 2:1 in the horizontal direction with respect to the luminance signal Y), and 10 bits/pixel. Subsequently, standard SMPTE 372 has been created, which, by using two HD-SDIs, enables transmission of a progressively scanned signal of 60 frames per second, a signal having a 4:4:4 format or a 12 bit/pixel. Additionally, in order to achieve the same transmission capacity as when using two HD-SDI signals of 1.5 Gbit/s, the HD-SDI standard SMPTE 424 has been created, capable of transmitting at a speed of 3 Gbit/s with one signal.
Also, in addition to SMPTE 435-1, 435-2, and 435-3 as standards for transmitting video signals with one to eight HD-SDIs, within one 10-Gbit/s interface, SMPTE 2036-3 is known as a serial digital interface standard for a UHDTV (ultra high-definition television) signal that has double or quadruple the number of pixels of an HDTV signal in each of the horizontal and vertical directions. This standard sets forth a method of performing pixel mapping to divide a UHDTV signal into a plurality of sub-images corresponding to HDTV signals, these being represented by HD-SDI signals on a plurality of channels and transmitted by a plurality of 10-Gbit/s interfaces.
As a specific method, a technique has been disclosed whereby pixels of a frame in a UHDTV signal are sub-sampled every two pixels and mapped onto four sub-images, the mapped pixels being mapped to HD-SDI signals on eight channels, scrambled, and subjected to 8B/10B encoding processing or the like, a plurality of 10-Gbit/s interfaces being used for transmission (for example, refer to Patent Reference 1). This enables a UHDTV video signal with a number of pixels exceeding the number of pixels of an HD-SDI signal to be transmitted by existing 10-Gbit/s interfaces.
[Patent Reference 1] U.S. Pat. No. 4,645,638 Publication
The above-described standards for a UHDTV signal serial digital interface have as a prerequisite an HD-SDI standard whereby a 10-bit/pixel signal having a 4:2:2 format is transmitted. For this reason, when transmitting a 4:4:4 format signal or a 12-bit/pixel signal as in the method of the Patent Reference 1, it is necessary to reconstruct one pixel into a plurality of data words. That is, transmission of a video signal requires processing to perform mapping between the color signal components in accordance with the video signal format, this being specifically processing to multiplex between a plurality of color signal components constituting the video signal, and processing to rearrange the pixels of the color signal components at the bit level.
Also, in the above-described standards, because the HD-SDI signal only accommodates a video signal having a frame frequency up to 60 Hz, it cannot handle a video signal with a high frame frequency such as 120 HIz.
Also, although the SMPTE 2036-3 standard handles video signals with the 4:4:4, 4:2:2, and 4:2:0 formats, it requires the same transmission capacity as the 4:4:4 format for even a video signal having the 4:2:0 or 4:2:2 format, which has a small total number of pixels.
In the SMPTE 2036-3 standard, the restricted transmission capacity means that, because it utilizes both scrambling and 8B/10B encoding and performs processing of only one thereof, it cannot necessarily completely handle pathological conditions.
Given the above, the present invention has been made to solve the above-described problems, and has as an object to provide a video signal transmission device, a video signal receiving device, a video signal transmission method, a video signal receiving method, a program, and a recording medium, reducing the transmission capacity for a video signal having a format (for example, 4:2:2 or 4:2:0) that has a small total number of pixels without the need to reconstruct one pixel into a plurality of data words, and being capable of handling pathological conditions, without the need to reconstruct one pixel into a plurality of data words.
(1) A first aspect of the present invention is a video signal transmitting device that, from a video signal of a moving image constituted by a prescribed number of color signal components, generates a link signal having a prescribed speed and transmits a prescribed number of link signals, the video signal transmitting device including: a basic image generation unit that generates a color signal basic image corresponding to each of a prescribed number of color signal components constituting the video signal; a basic stream generation unit that generates a basic stream; and a link signal generation unit that generates a link signal, wherein the basic image generation unit extracts, for each of the color signal component, pixels constituting a frame of the color signal component at a uniform interval two-dimensionally and two-dimensionally arranges the extracted pixels in a prescribed arrangement to generate a prescribed number of color signal basic images, the basic stream generation unit extracts, for each of the color signal basic images, pixels of the color signal basic image generated by the basic image generation unit in a prescribed sequence to generate a basic stream, and the link signal generation unit synthesizes a prescribed number of basic streams in the same or different color signal components generated by the basic stream generation unit, encodes bit-length units of the synthesized basic streams to a different bit length, and generates a link signal having a prescribed speed.
(2) In the first aspect of the present invention, with respect to a frame of the color signal component, the basic image generation unit, in addition to mapping neighboring pixels on even-numbered lines alternately onto a first color signal sub-image and a second color signal sub-image, may map neighboring pixels on odd-numbered lines alternately onto a third color signal sub-image and a fourth color signal sub-image, and perform any one of (a) processing with respect to each of the mapped color signal sub-images, to map, in addition to the mapping of neighboring pixels on even-numbered lines alternately onto a first color signal basic image and a second color signal basic image, neighboring pixels on odd-numbered lines alternately onto a third color signal basic image and a fourth color signal basic image, (b) processing to divide each of the mapped color signal sub-images uniformly into two in the horizontal line direction and the vertical direction to map the divided color signal sub-images onto first, second, third, and fourth color signal basic images, (c) processing to divide each of the mapped color signal sub-images uniformly into four in the horizontal line direction to map the divided color signal sub-images onto first, second, third, and fourth color signal basic images, and (d) processing to handle the each of the mapped color signal sub-images as the first, second, third, and fourth color signal basic images.
(3) In the first aspect of the present invention, the basic image generation unit may further multiplex by frames and arrange in a prescribed arrangement pixels from two color signal basic images of the four color signal basic images so as to sequentially generate a first frame and a second frame in a first color signal double-speed basic image, may multiplex and arrange in a prescribed arrangement pixels, by frame, from another two color signal basic images of the four color signal images so as to sequentially generate a first frame and a second frame in a second color signal double-speed basic image, and may handle the first frame in the first and second color signal double-speed basic images as a signal having a frame frequency that is double that of the video signal and handle the second frame in the first and second color signal double-speed basic images as a signal having a frame frequency that is double that of the video signal, and wherein the basic stream generation unit may extract pixels of color signal double-speed basic images generated by the basic image generation unit in a prescribed sequence to generate a basic stream.
(4) In the first aspect of the present invention, the basic image generation unit may further multiplex and arrange in a prescribed arrangement pixels in the horizontal direction by line from two color signal basic images of the four color signal images so as to sequentially generate a first frame and a second frame in a first color signal double-speed basic image, multiplex and arrange in a prescribed arrangement pixels in the horizontal direction, by line, from another two color signal basic images of the four color signal basic images so as to generate a first frame and a second frame in a second color signal double-speed basic image, and may handle the first frame in the first and second color signal double-speed basic images as a signal having a frame frequency that is double that of the video signal and handle the second frame in the first and second color signal double-speed basic images as a signal having a frame frequency that is double that of the video signal, and wherein the basic stream generation unit may extract pixels of color signal double-speed basic images generated by the basic image generation unit in a prescribed sequence to generate a basic stream.
(5) In the first aspect of the present invention, the basic image generation unit may generate color signal sub-images, the number of which is in accordance with a format of a video signal of a moving image constituted by a prescribed number of color signal components.
(6) In the first aspect of the present invention, one of 24 Hz, 25 Hz, 30 Hz, 50 Hz, 60 Hz, 120 Hz, 24×(1000/1001) Hz, 30×(1000/1001) Hz, 60×(1000/1001) Hz, and 120×(1000/1001) Hz may be used as the frame frequency of the video signal of a moving image.
(7) A second aspect of the present invention is a video signal receiving device that receives a prescribed number of link signals from a video signal transmitting device and reproduces a video signal of a moving image constituted by a prescribed number of color signal components, the video signal receiving device including: a basic image reproduction unit that reproduces a color signal basic image in accordance with each of a prescribed number of color signal component constituting the video signal; a source image reproduction unit that reproduces a source image; and a basic stream reproduction unit that reproduces a basic stream, wherein the basic stream reproduction unit decodes bit-length units of the link signal into a prescribed bit length and, from one of the link signals, reproduces a prescribed number of basic streams in the same or different color signal components, the basic image reproduction unit, for each of the basic streams, extracts data of the video signal from basic streams reproduced by the basic stream reproduction unit and arranges the data of the video signal as pixels in a prescribed sequence to reproduce a color signal basic image, and the source image reproduction unit multiplexes in a prescribed sequence pixels of a prescribed number of color signal basic images in the same color signal component reproduced by the basic image reproduction unit and reproduces a source image of the color signal component, the video signal receiving device outputting as a video signal source images of a prescribed number of reproduced color signal components.
(8) A third aspect of the present invention is a video signal transmitting method that inputs a video signal of a moving image constituted by a prescribed number of color signal components, generates from the video signal a link signal having a prescribed speed, and transmits a prescribed number of the link signals, the method including: inputting a video signal of a moving image constituted by a prescribed number of color signal components; extracting, for each of the color signal components, pixels constituting a frame of the color signal components two-dimensionally at uniform intervals; arranging the extracted pixels two-dimensionally in a prescribed arrangement to generate a prescribed number of color signal basic images; extracting, for each of the color signal basic images, pixels of the color signal component basic image in a prescribed sequence to generate a basic stream; synthesizing a prescribed number of basic streams in the same or different color signal components and encoding bit-length units of the synthesized basic streams into a different bit length to generate a link signal having a prescribed speed; and transmitting the generated prescribed number of link signals.
(9) A fourth aspect of the present invention is a video signal receiving method of receiving a prescribed number of link signals and, from the link signals, reproducing a video signal of a moving image constituted by a prescribed number of color signal components, and outputting the reproduced video signal, the method including: receiving the prescribed number of link signals; decoding bit-length units of the link signals to a prescribed bit length and, from one link signal, reproducing a prescribed number of basic streams in the same or different color signal components; extracting from the basic streams, for each of the basic stream, data of the video signal, arranging the extracted data as pixels in a prescribed sequence, and reproducing color signal basic images; multiplexing pixels of a prescribed number of color signal sub-images in the same color signal component in a prescribed sequence and reproducing a color signal source image; and outputting a prescribed number of reproduced color signal source images as a video signal of a moving image constituted by a prescribed number of color signal components.
(10) A fifth aspect of the present invention is a program for causing a computer of a video signal transmitting device that, from a video signal of a moving image constituted by a prescribed number of color signal components, generates a link signal having a prescribed speed and transmits a prescribed number of link signals to function as: a basic image generation unit that generates a color signal basic image corresponding to each of a prescribed number of color signal components constituting the video signal; a basic stream generation unit that generates a basic stream; and a link signal generation unit that generates a link signal, so that the basic image generation unit extracts, for each of the color signal components, pixels constituting a frame of the color signal component at a uniform interval two-dimensionally and two-dimensionally arranges the extracted pixels in a prescribed arrangement to generate a prescribed number of color signal basic images, the basic stream generation unit, for each of the color signal basic images, extracts in a prescribed sequence pixels of the color signal basic image generated by the basic image generation unit in a prescribed sequence to generate a basic stream, and the link signal generation unit synthesizes a prescribed number of basic streams in the same or different color signal components generated by the basic stream generation unit, encodes bit-length units of the synthesized basic streams to a different bit length, and generates a link signal having a prescribed speed.
(11) A sixth aspect of the present invention is a program for causing a computer of video signal receiving device that receives a prescribed number of link signals from a video signal transmitting device and reproduces a video signal of a moving image constituted by a prescribed number of color signal components to function as: a basic image reproduction unit that reproduces a color signal basic image in accordance with each of a prescribed number of color signal component constituting the video signal; a source image reproduction unit that reproduces a source image; and a basic stream reproduction unit that reproduces a basic stream, so that the basic stream reproduction unit decodes bit-length units of the link signal into a prescribed bit length and, from one of the link signals, reproduces a prescribed number of basic streams in the same or different color signal components, the basic image reproduction unit, for each of the basic streams, extracts data of the video signal from basic streams reproduced by the basic stream reproduction unit and arranges the data of the video signal as pixels in a prescribed sequence to reproduce a color signal basic image, and the source image reproduction unit multiplexes in a prescribed sequence pixels of a prescribed number of color signal basic images in the same color signal component reproduced by the basic image reproduction unit and reproduces a source image of the color signal component, and outputs as a video signal the source images of a prescribed number of reproduced color signal components.
(12) A seventh aspect of the present invention is a computer-readable recording medium in which a program for causing a computer of a video signal transmitting device is recorded, the program making the computer generate, from a video signal of a moving image constituted by a prescribed number of color signal components, a link signal having a prescribed speed and transmit a prescribed number of link signals to function as: a basic image generation unit that generates a color signal basic image corresponding to each of a prescribed number of color signal components constituting the video signal; a basic stream generation unit that generates a basic stream; and a link signal generation unit that generates a link signal, so that the basic image generation unit extracts, for each of the color signal components, pixels constituting a frame of the color signal component at a uniform interval two-dimensionally and two-dimensionally arranges the extracted pixels in a prescribed arrangement to generate a prescribed number of color signal basic images, the basic stream generation unit, for each of the color signal basic images, extracts pixels of the color signal basic image generated by the basic image generation unit in a prescribed sequence to generate a basic stream, and the link signal generation unit synthesizes a prescribed number of basic streams in the same or different color signal components generated by the basic stream generation unit, encodes bit-length units of the synthesized basic streams to a different bit length, and generates a link signal having a prescribed speed.
(13) An eighth aspect of the present invention is a computer-readable recording medium in which a program for causing computer of video signal receiving device is recorded, the program making the computer receive a prescribed number of link signals from a video signal transmitting device and reproduce a video signal of a moving image constituted by a prescribed number of color signal components to function as: a basic image reproduction unit that reproduces a color signal basic image in accordance with each of a prescribed number of color signal component constituting the video signal; a source image reproduction unit that reproduces a source image; and a basic stream reproduction unit that reproduces a basic stream, so that the basic stream reproduction unit decodes bit-length units of the link signal into a prescribed bit length and, from one of the link signals, reproduces a prescribed number of basic streams in the same or different color signal components, the basic image reproduction unit, for each of the basic streams, extracts data of the video signal from basic streams reproduced by the basic stream reproduction unit and arranges the data of the video signal as pixels in a prescribed sequence to reproduce a color signal basic image, and the source image reproduction unit multiplexes in a prescribed sequence pixels of a prescribed number of color signal basic images in the same color signal component reproduced by the basic image reproduction unit and reproduces a source image of the color signal component, and outputs as a video signal the source images of a prescribed number of reproduced color signal components.
As noted above, according to a number of aspects of the present invention, the transmission capacity for a video signal with a format having a small total number of pixels (for example, 4:2:2 or 4:2:0) is reduced, and pathological conditions can be handled, without the need to reconstruct one pixel into a plurality of data words.
FIG. 9 is a drawing showing the number and constitution of the 4×2 k sub-images with respect to an 8×4 k source image.
Embodiments of the present invention will be described in detail below using the drawings.
(Transmission System)
First, a transmission system 100 including a video signal transmitting device and a video signal receiving device according to the first embodiment of the present invention will be described.
The video signal transmitting device 1 inputs a video signal of a moving image having one or more color signal components and, for each of the one or more color signal components constituting the video signal, generates a prescribed number of sub-images (color signal sub-images), basic images (color signal basic images), and basic streams. The video signal transmitting device 1 generates link signals of a prescribed speed from the basic streams, and transmits the video signal to the video signal receiving device 2 as a prescribed number of link signals of a prescribed transmission speed. In this case, the color signal components are various signal components, such as the three primary colors RGB (red, green, blue), the luminance and color difference signals YCBCR, or the alfa channel signal A.
The video signal receiving device 2 receives the video signal from the video signal transmitting device 1 as a prescribed number of link signals of a prescribed transmission speed. The video signal receiving device 2 performs processing that is the reverse of the processing by the video signal transmitting device 1, and with regard to the plurality of color signal components constituting the video signal, reproduces the prescribed number of basic streams, basic images, sub-images, and the source images for each of the color signal components, so as to reproduce the video signal.
(Video Signal Transmitting Device)
Next, the video signal transmitting device 1 shown in
When the video signal transmitting device 1 inputs a video signal of a moving image constituted by one or more color signal components (step S301), the sub-image generation unit 11, for each color signal component constituting the video signal, divides one frame of the source image to generate a plurality of sub-images, and outputs the plurality of sub-images generated for each color signal component to the basic image generation unit 12 (step S302). Specifically, the sub-image generation unit 11 extracts pixels constituting the source image of the color signal components at uniform intervals in two dimensions and generates a plurality of sub-images arranged two-dimensionally so that the extracted pixels are in a prescribed arrangement. The generated plurality of sub-images correspond to the color signal components, and subsequently processing is performed on each of the sub-images of each color signal component.
For example, if the video signal has a 4:4:4 format and is constituted by the three RGB color signal components, the sub-image generation unit 11 extracts pixels constituting the source image of the R color signal component two-dimensionally four pixels at a time to generate four sub-images. In the same manner, the sub-image generation unit 11 extracts pixels constituting the source images of the G and B color signal components two-dimensionally four pixels at a time to generate four respective sub-images. This generates 12 sub-images from three source images. The details of this will be described later.
The basic image generation unit 12 inputs a plurality of sub-images for each color signal component generated by the sub-image generation unit 11, divides the sub-images to generate a plurality of basic images, and outputs the generated plurality of basic images to the basic stream generation unit 13 (step S303). Specifically, the basic image generation unit 12 extracts pixels constituting the sub-images from prescribed positions to generate a plurality of basic images arranged two-dimensionally so that the extracted pixels are in a prescribed arrangement. If speed-doubling processing of the frame frequency is to be done, the basic image generation unit 12 subjects the generated plurality of basic images to speed-doubling processing to generate a plurality of double-speed basic images, and outputs the generated plurality of double-speed basic images to the basic stream generation unit 13.
The basic stream generation unit 13 successively extracts line data of pixels from the basic images (or double-speed basic images) generated by the basic image generation unit 12, adds control data to the extracted pixel line data, and generates a basic stream of a prescribed word length per one line with a prescribed number of bits per word (step S304).
The link signal generation unit 14 subjects basic streams generated by the basic stream generation unit 13 (two different basic streams generated from two different basic images) to multiplexing processing (synthesis processing), subjects these to arrangement processing by byte conversion, 8B/10B encoding processing, and generates link signals having a prescribed transmission speed (step S305). Then, the video signal transmitting device 1 outputs the prescribed number of link signals of the prescribed transmission speed generated by the link signal generation unit 14 (step S306). In this manner, the video signal transmitting device 1 transmits a video signal of a moving image constituted by a plurality of color signal component as a prescribed number of link signals of a prescribed transmission speed.
(Procedure to Map from a Source Image to Link Signals)
Next, the mapping procedure for the video signal transmitting device 1 shown in
As shown in
The processing of step S304 by the basic stream generation unit 13 generates basic streams from the basic images. That is, 4N corresponding basic streams are generated from the 4N basic images. The processing of step S305 by the link signal generation unit 14 generates one link signal from the two basic streams, these being transmitted at a speed of 10.692 Gbit/s. That is, 2N link signals are generated from 4N basic streams.
As shown in
The processing of step S304 by the basic stream generation unit 13 generates basic streams from the basic images. That is, 2N corresponding basic streams are generated from 2N double-speed basic images. From the two basic streams, the processing of step S305 by the link signal generation unit 14 generates one link signal, which is transmitted at a speed of 10.692 Gbit/s. That is, N link signals are generated from 2N basic streams.
(Sub-Image Generation Unit)
Next, the sub-image generation unit 11 shown in
The source image in the luminance information color signal component Y has data in all the pixel positions of No. 1 to No. 4 shown in
In this manner, in the case of a 4:2:2 formatted video signal, the sub-image generation unit 11 generates four sub-images from the source image of one frame in the luminance information color signal component Y of the video signal, generates two sub-images from the source image in the B color difference information color signal component CB, and generates two sub-images from the source image in the R color difference information color signal component CR. That is, a total of eight sub-images are generated from the source image of the three types of color signal components Y, CB, and CR of the 4:2:2 formatted video signal.
(Basic Image Generation Unit)
Next, the basic image generation unit 12 shown in
That is, if the frame frequency of the source image is 60 Hz, the basic image generation unit 12, after generating the basic images 1, 2, 3, and 4 having a frame frequency of 60 Hz by the first processing shown in
In the basic image 1 having a frame frequency of 60 Hz generated by the first processing and the second processing or third processing by the basic image generation unit 12, the numeral 1 is applied to pixels of even-numbered lines (0, 2, . . . , 1078) and the numeral 2 is applied to pixels of odd-numbered lines (1, 3, . . . , 1079), and in the basic image 2, the numeral 3 is applied to pixels of even-numbered lines, and the numeral 4 is applied to pixels of odd-numbered lines. As the second speed-doubling processing, the basic image generation unit 12 divides the two basic images 1 and 2 having a frame frequency of 60 Hz uniformly in the vertical direction into two regions (into upper-half and lower-half regions), multiplexes (synthesizes) the upper-half regions of the two basic images 1 and 2 by lines to generate the first frame of the double-speed basic image 1, and multiplexes the lower-half regions of the two basic images 1 and 2 by lines to generate the second frame of the double-speed basic image 1. In the same manner, the basic image generation unit 12 divides the two basic images 3 and 4 uniformly in the vertical direction into two regions (into upper-half and lower-half regions), multiplexes the upper-half regions of the two basic images 3 and 4 by lines to generate the first frame of the double-speed basic image 2, and multiplexes the lower-half regions of the two basic images 3 and 4 by lines to generate the second frame of the double-speed basic image 2.
That is, if the frame frequency of the source image is 60 Hz, after generating the basic images having a frame frequency of 60 Hz by the first processing shown in
Although the basic image generation unit 12 generates the double-speed basic image 1 from the basic images 1 and 2 and generates the double-speed basic image 2 from the basic images 3 and 4, the combinations of the original two basic images are not limited to this. For example, the basic image generation unit 12 may generate the double-speed basic image 1 from the basic images 1 and 4 and generate the double-speed basic image 2 from the basic images 2 and 3.
In this manner, if the frame frequency of a video signal input by the video signal transmitting device 1 is 120 Hz, the basic image generation unit 12 can perform the first processing shown in
(Basic Stream Generation Unit)
Next, the basic stream generation unit 13 shown in
(Link Signal Generation Unit)
Next, the link signal generation unit 14 shown in
The link signal generation unit 14 subjects two words of multiplexed data to arrangement processing by byte conversion, and generates a total of three words of data, with eight bits per word (step S1902). Specifically, as shown in
The link signal generation unit 14 subjects each data of the total of three words having eight bits per word to 8B/10B encoding processing and generates a data of the total of three words having 10 bits per word (step S1903). The link signal generation unit 14 performs the processing of step S1901 to step S1903 from the leading part to the trailing part of the CH-1 basic stream and the CH-2 basic stream, generating 6600 words of data having 10 bits per word, adds thereto 1320 words of stuffing data and, as shown in
Although the link signal generation unit 14 inputs the two basic streams of CH-1 and CH-2 corresponding to two different basic images, the CH-1 basic stream and the CH-2 basic stream may correspond to two images among the basic images, and the two basic images may be generated from different sub-images that have different color signal components. Which basic streams are combined to generate the link signal may be determined according to manufacturing or operational requirements of the video signal transmitting device 1 having an interface, and the attributes of the basic streams constituting the link signals (such as the color signal components, source image, sub-image, basic image, and method of division) can be identified by using the above-noted PID.
(The Case of a DG format Video Signal)
Next, as a specific example of the processing by the video signal transmitting device 1 shown in
If a pixel is 10 bits, because this is treated as a 12-bit pixel, 10 bits of data of pixels in the video signal are mapped onto the MSB end and zero is mapped into the remaining LSB end. This enables the video signal transmitting device 1 to handle the pixels the same as 12-bit pixels.
(The Case of a 4 k×2 k Video Signal)
Next, the case of an input video signal constituted by 4×2 k pixels will be described.
In this case, the 4×2 k source images are divided into M 2×1 k sub-images by the sub-image generation unit 11 performing the processing of step S302. Because the 2×1 k sub-images correspond to basic images, this processing corresponds to the first processing (S303) by the basic image generation unit 12 shown in
The processing of step S304 by the basic stream generation unit 13 generates basic streams from the basic images. That is, M corresponding basic streams are generated from M basic images. Then, the processing of step S305 by the link signal generation unit 14 generates one link signal from two basic streams, the link signal being transmitted at the speed of 10.692 Gbit/s. That is, M/2 link signals are generated from M basic streams.
The processing of step S304 by the basic stream generation unit 13 generates basic streams from double-speed basic images. That is, M/2 double-speed basic images are generated from M basic images, thereby generating M/2 corresponding basic streams. The processing of step S305 by the link signal generation unit 14 generates one link signal from two basic streams, the link signal being transmitted at the speed of 10.692 Gbit/s. That is, L=M/4 link signals are generated from M/2 basic streams. In the case of the 4:2:0 signal format (M=6), however, three basic streams are generated and, similar to the case of the 4:2:2 format (M=8) generating four basic streams, the total number of link signals is two.
As noted above, the video signal transmitting device1 according to the first embodiment of the present invention, for each of one or more color signal components constituting a video signal, generates a number of sub-images, basic images, and basic streams in accordance with the format of the video signal and transmits a prescribed number of link signals. That is, the sub-image generation unit 11, the basic image generation unit 12, and the basic stream generation unit 13 perform processing of each color signal component. This enables the handling of each of a plurality of color signal components as an independent video stream, thereby enabling flexible handling of various formats of video signals. It is not necessary to perform mapping on the pixel and bit level between color signal components in accordance with the format of the video signal. Specifically, the basic stream generation unit 13 generates a prescribed number of basic images for each color signal component as a basic stream having 12 bits per word. Because it is therefore unnecessary to perform processing to multiplex in units of pixels and bits between color signal components and processing to rearrange pixels of color signal components on the bit level, processing in accordance with the video signal format being unnecessary, it is possible to transmit a video signal in which one pixel is constituted by 12 bits as a plurality of 10.692-Gbit/s link signals using common simple processing without depending on the video signal format.
Also, in the video signal transmitting device 1 according to the first embodiment of the present invention, the basic image generation unit 12 generates basic images operating at a frame frequency of 120 Hz, not only for a video signal frame frequency of 120 Hz, but also for a video signal frame frequency of 60 Hz. For example, the basic image generation unit 12 operates a basic image at a 120-Hz frame frequency with respect to a sub-image operating at a frame frequency of 60 Hz. This, in addition to enabling handling of not only a 60-Hz, but also a high 120-Hz frame frequency video signal, enables the processing by the basic stream generation unit 13 and the link signal generation unit 14 after generation basic images to be used in common for both 60-Hz and 120-Hz frame frequency video signals. Therefore, even if 60-Hz and 120-Hz frame frequency video signal are mixed, it is possible to use an interface having a common transmitting clock.
In the video signal transmitting device 1 according to the first embodiment of the present invention, the sub-image generation unit 11, the basic image generation unit 12, the basic stream generation unit 13, and the link signal generation unit 14 generate sub-images, basic images, basic streams, and link signals, the respective numbers of which are in accordance with the video signal format. In the SMPTE 2036-3 standard, even in the case of a video signal of the 4:2:0 or 4:2:2 format, in which the total number of pixels is small, a 10.692-Gbit/s link signal that is the same as in the 4:4:4 format is generated, thereby requiring the same transmission capacity as for the 4:4:4 format. In contrast, in the first embodiment of the present invention, in the case of a video signal of the 4:2:0 or 4:2:2 format, in which the total number of pixels is small, a smaller number of 10.692-Gbit/s link signals than the 4:4:4 format are generated, enabling a reduction in the transmission capacity and achieving efficiency.
In the video signal transmitting device 1 according to the first embodiment of the present invention, the link signal generation unit 14 subjects the basic streams to multiplexing processing and rearrangement by byte conversion, followed by 8B/10B encoding processing. In the SMPTE 2036-2 standard, because of the restricted transmission capacity although both scrambling processing and 8B/10B encoding processing are used, the processing of only one thereof is done. If only scrambling processing is done, it is not possible to completely handle pathological conditions, so that it cannot be said that the SMPTE 2036-2 standard is capable of completely handling pathological conditions. In contrast, in the first embodiment of the present invention, because 8B/10B encoding processing is always done, it is possible to completely handle pathological conditions.
(Video Signal Receiving Device)
Next, the video signal receiving device 2 shown in
When the video signal receiving device 2 receives from the video signal transmitting device 1 a video signal of a moving image constituted by one or more color signal components as a prescribed number of 10.692-Gbit/s link signals, the basic stream reproduction unit 21 inputs the link signals (step 2601). The basic stream reproduction unit 21 performs processing that is the reverse of the processing by the link signal generation unit 14 shown in
The basic image reproduction unit 22 performs processing that is the reverse of the processing by the basic stream generation unit 13 shown in
The sub-image reproduction unit 23 performs processing that is the reverse of processing performed by the basic image generation unit 12 shown in
The source image reproduction unit 24 performs processing that is the reverse of the processing performed by the sub-image generation unit 11 shown in
As described above, in the video signal receiving device 2 according to the first embodiment of the present invention, the basic stream reproduction unit 21 performs processing that is the reverse of the processing by the link signal generation unit 14, the basic image reproduction unit 22 performs processing that is the reverse of the processing by the basic stream generation unit 13, the sub-image reproduction unit 23 performs processing that is the reverse of the processing by the basic image generation unit 12, and the source image reproduction unit 24 performs processing that is the reverse of the processing by the sub-image generation unit 11. This reproduces the original video signal input by the video signal transmitting device 1 shown in
The video signal receiving device 2 according to the first embodiment of the present invention, similar to the video signal transmitting device 1, can handle video signal of not only a frame frequency of 60 Hz, but also of a high frame frequency of 120 Hz. This enables the use of an interface having a common transmitting clock, even for a mixture of a video signal having a frame frequency of 60 Hz and a video signal having a frame frequency of 120 Hz.
The video signal receiving device 2 according to the first embodiment of the present invention, similar to the video signal transmitting device 1, in the case of a 4:2:0 or 4:2:2 format video signal having a small total number of pixels, does not require processing having the same load as with the 4:4:4 format, which has a large total number of pixels, thereby lowering the processing load and achieving efficient processing.
The video signal receiving device 2 according to the first embodiment of the present invention, similar to the video signal transmitting device 1, can completely handle pathological conditions.
In the above-described video signal transmitting device 1, if the basic image generation unit 12 performs basic image speed-doubling processing to generate a double-speed basic image, the link signal generation unit 14 performs multiplexing and the like of two basic streams to generate one link signal, such as shown in
The video signal transmitting device 1 according to the second embodiment, similar to the constitution shown in
At step S2705, the link signal generation unit 14 subjects the basic streams generated by the basic stream generation unit 13 (four different basic streams each generated from different basic images) to multiplexing processing (synthesis processing), arrangement processing by byte conversion, and 8B/10B encoding processing, so as to generate link signals of a prescribed transmission speed.
As shown in
The processing of step S2704 by the basic stream generation unit 13 generates basic streams from basic images. That is, 4N corresponding basic streams are generated from 4N basic images. Then, the processing of step S2705 by the link signal generation unit 14 generates one link signal from four basic streams, the link signal being transmitted at a speed of 10.692 Gbit/s. That is, N link signals are generated from 4N basic streams.
The link signal generation unit 14 subjects four words of multiplexed data to arrangement processing by byte conversion, generating a total of six words of data having eight bits per word (step S3002). The link signal generation unit 14, for each data of a total of six words having eight bits per word, performs 8B/10B encoding processing to generate data for a total of six words having 10 bits per word (step S3003). The link signal generation unit 14 then performs the processing of step S3001 to step S3003 from the leading part to the trailing part of the basic streams of CH-1 to CH-4, generates 13,200 words of data having 10 bits per word, adds thereto 2640 words of stuffing data, and, as shown in
As described above, in the video signal transmitting device 1 according to the second embodiment of the present invention, similar to the case of the above-described first embodiment, there is no need to reconstruct one pixel into a plurality of data words, the transmission capacity for the case of a video signal with a format having a small total number of pixels (for example, the 4:2:2 format and the 4:2:0 format) can be reduced, and it is possible to handle pathological conditions.
In the video signal transmitting device 1 according to the second embodiment of the present invention, the link signal generation unit 14 subjects four basic streams to multiplexing processing, instead of the basic image generation unit 12 performing speed-doubling processing, so as to generate one link signal. This enables a reduction of the processing load on the basic image generation unit 12 and enables the handling as well of a video signal with a 60-Hz frame frequency.
Next, the video signal receiving device 2 corresponding to the above-described video signal transmitting device 1 according to the second embodiment will be described. The video signal receiving device 2 according to the second embodiment of the present invention, similar to the constitution shown in
The video signal receiving device 2 receives from the video signal transmitting device 1 a video signal of a moving image constituted by one or more color signal component as a prescribed number of 10.692-Gbit/s link signals. The basic stream reproduction unit 21 of the video signal receiving device 2 inputs the link signals and, by performing processing that is the reverse of the processing by the link signal generation unit 14 on the transmitting side shown in
The basic image reproduction unit 22 performs processing that is the reverse of the processing by the basic stream generation unit 13 on the transmitting side, so as to extract line data of pixels, which is video signal data, from the basic streams reproduced by the basic stream reproduction unit 21, and arranges the extracted pixel line data in a prescribed arrangement to reproduce the basic images. In this case, because the transmitting-side basic image generation unit 12 does not perform speed-doubling processing, the basic image reproduction unit 22 does not perform the processing noted in parenthesis in step S2603 (speed-reduction processing (speed-halving processing)) of the flowchart shown in
By performing processing that is the reverse of the processing by the basic image generation unit 12 on the transmitting side, the sub-image reproduction unit 23 performs multiplexing (synthesizing) of a plurality of basic images reproduced by the basic image reproduction unit 22 in a prescribed sequence to reproduce the sub-images. The source image reproduction unit 24 performs processing that is the reverse of the processing by the sub-image generation unit 11 on the transmitting side in a prescribed sequence to multiplex (synthesize) the plurality of sub-images reproduced by the sub-image reproduction unit 23 in the prescribed sequence and reproduce the source images.
This reproduces the source images of each color signal component. The source image reproduction unit 24 outputs the source images of each of the reproduced color signal components as the original video signal. In this manner, the video signal receiving device 2 according to the second embodiment receives a prescribed number of 10.692-Gbit/s link signals and reproduces the video signal of a moving image constituted by a plurality of color signal components.
As described above, in the video signal receiving device 2 according to the second embodiment of the present invention, similar to the case of the above-described first embodiment, it is not necessary to reconstruct one pixel into a plurality of data words, the transmission capacity for the case of a video signal with a format having a small total number of pixels (for example, the 4:2:2 format and the 4:2:0 format) can be reduced, and it is possible to handle pathological conditions.
In the video signal receiving device 2 according to the second embodiment of the present invention, the source image reproduction unit 24 subjects one link signal to decoding processing and the like, instead of the basic image reproduction unit 22 performing speed-reduction processing, so as to reproduce four basic streams. This enables a reduction of the processing load on the basic image reproduction unit 22 and enables the handling as well of a video signal with a 60-Hz frame frequency.
Next, the third embodiment of the present invention will be described. In the third embodiment, the descriptions of the constituent elements and parts used in processing that are the same as in the above-described embodiments will be omitted.
In the video signal transmitting device 1 according to the third embodiment of the present invention, the basic stream generation unit 13 generates one basic stream from one basic image, without the basic image generation unit 12 generating a double-speed basic image. The link signal generation unit 14 subjects four basic streams to multiplexing processing and the like to generate one link signal.
The video signal transmitting device 1 according to the third embodiment, similar to the constitution shown in
Because the processing by the video signal transmitting device 1 according to the third embodiment is the same as the processing in the flowchart (
As shown in
The processing of step S3704 by the basic stream generation unit 13 (corresponding to step S2704 of
In a basic stream shown in
In a basic stream shown in
In the basic stream shown in
In all of the four basic streams of CH-1 to CH-4 of
The link signal generation unit 14 subjects the four words of multiplexed data to arrangement processing by byte conversion to generate a total of six words of data having eight bits per word (corresponding to step S3002 of
In
As described above, in the video signal transmitting device 1 according to the third embodiment of the present invention, similar to the case of the above-described first embodiment, there is no need to reconstruct one pixel into a plurality of data words, the transmission capacity for the case of a video signal with a format having a small total number of pixels (for example, the 4:2:2 format and the 4:2:0 format) can be reduced, and it is possible to handle pathological conditions.
In the video signal transmitting device 1 according to the third embodiment of the present invention, the link signal generation unit 14 subjects four basic streams to multiplexing processing, instead of the basic image generation unit 12 performing speed-doubling processing, so as to generate one link signal. This enables a reduction of the processing load on the basic image generation unit 12 and enables the handling as well of a video signal with a 50-Hz frame frequency.
Next, the video signal receiving device 2 corresponding to the above-described video signal transmitting device 1 according to the third embodiment will be described. The video signal receiving device 2 according to the third embodiment of the present invention, similar to the constitution shown in
The video signal receiving device 2 according to the third embodiment receives a video signal of a moving image constituted by one or more color signal component as a prescribed number of 10.692-Gbit/s link signals from the video signal transmitting device 1 according to the third embodiment. The basic stream reproduction unit 21 of the video signal receiving device 2 according to the third embodiment inputs the link signals and, by performing processing that is the reverse of the processing by the link signal generation unit 14 on the transmitting side shown in
The basic image reproduction unit 22 performs processing that is the reverse of the processing by the basic stream generation unit 13 on the transmitting side, so as to extract line data of pixels, which is video signal data, from the basic streams reproduced by the basic stream reproduction unit 21, and arranges the extracted pixel line data in a prescribed arrangement to reproduce the basic images. In this case, because the transmitting-side basic image generation unit 12 does not perform speed-doubling processing, the basic image reproduction unit 22 does not perform the processing noted in parenthesis in step S2603 (speed-reduction processing (speed-halving processing)) of the flowchart shown in
By performing processing that is the reverse of the processing by the basic image generation unit 12 on the transmitting side, the sub-image reproduction unit 23 performs multiplexing (synthesizing) of a plurality of basic images reproduced by the basic image reproduction unit 22 in a prescribed sequence to reproduce the sub-images. The source image reproduction unit 24 performs processing that is the reverse of the processing by the sub-image generation unit 11 on the transmitting side in a prescribed sequence to multiplex (synthesize) the plurality of sub-images reproduced by the sub-image reproduction unit 23 in the prescribed sequence and reproduce the source images.
The above reproduces the source images of each color signal component. The source image reproduction unit 24 outputs the source images of each of the reproduced color signal components as the original video signal. In this manner, the video signal receiving device 2 according to the third embodiment receives a prescribed number of 10.692-Gbit/s link signals and reproduces the video signal of a moving image constituted by a plurality of color signal components.
As described above, in the video signal receiving device 2 according to the third embodiment of the present invention, similar to the case of the above-described first embodiment, it is not necessary to reconstruct one pixel into a plurality of data words, the transmission capacity for the case of a video signal with a format having a small total number of pixels (for example, the 4:2:2 format and the 4:2:0 format) can be reduced, and it is possible to handle pathological conditions.
In the video signal receiving device 2 according to the third embodiment of the present invention, the source image reproduction unit 24 subjects one link signal to decoding processing and the like, instead of the basic image reproduction unit 22 performing speed-reduction processing, so as to reproduce four basic streams. This enables a reduction of the processing load on the basic image reproduction unit 22 and enables the handling as well of a video signal with a 50-Hz frame frequency.
Next, the fourth embodiment of the present invention will be described. In the fourth embodiment, the descriptions of the constituent elements and parts used in processing that are the same as in the above-described embodiments will be omitted.
In the video signal transmitting device 1 according to the fourth embodiment of the present invention, the basic stream generation unit 13 generates one basic stream from one basic image, without the basic image generation unit 12 generating a double-speed basic image. The link signal generation unit 14 subjects eight basic streams to multiplexing processing and the like to generate one link signal.
The video signal transmitting device 1 according to the fourth embodiment, similar to the constitution shown in
Because the processing by the video signal transmitting device 1 according to the fourth embodiment is the same as the processing in the flowchart (
As shown in
The processing of step S4704 by the basic stream generation unit 13 (corresponding to step S2704 of
In a basic stream shown in
In a basic stream shown in
In the basic stream shown in
In all of the eight basic streams of CH-1 to CH-8 of
The link signal generation unit 14 subjects the eight words of multiplexed data to arrangement processing by byte conversion to generate a total of 12 words of data having eight bits per word (corresponding to step S3002 of
In
As described above, in the video signal transmitting device 1 according to the fourth embodiment of the present invention, similar to the case of the above-described first embodiment, there is no need to reconstruct one pixel into a plurality of data words, the transmission capacity for the case of a video signal with a format having a small total number of pixels (for example, the 4:2:2 format and the 4:2:0 format) can be reduced, and it is possible to handle pathological conditions.
In the video signal transmitting device 1 according to the fourth embodiment of the present invention, the link signal generation unit 14 subjects eight basic streams to multiplexing processing, instead of the basic image generation unit 12 performing speed-doubling processing, so as to generate one link signal. This enables a reduction of the processing load on the basic image generation unit 12 and enables the handling as well of a video signal with a 30-Hz frame frequency.
Next, the video signal receiving device 2 corresponding to the above-described video signal transmitting device 1 according to the fourth embodiment will be described. The video signal receiving device 2 according to the fourth embodiment of the present invention, similar to the constitution shown in
The video signal receiving device 2 according to the fourth embodiment receives a video signal of a moving image constituted by one or more color signal component as a prescribed number of 10.692-Gbit/s link signals from the video signal transmitting device 1 according to the fourth embodiment. The basic stream reproduction unit 21 of the video signal receiving device 2 according to the fourth embodiment inputs the link signals and, by performing processing that is the reverse of the processing by the link signal generation unit 14 on the transmitting side shown in
The basic image reproduction unit 22 performs processing that is the reverse of the processing by the basic stream generation unit 13 on the transmitting side, so as to extract line data of pixels, which is video signal data, from the basic streams reproduced by the basic stream reproduction unit 21, and arranges the extracted pixel line data in a prescribed arrangement to reproduce the basic images. In this case, because the transmitting-side basic image generation unit 12 does not perform speed-doubling processing, the basic image reproduction unit 22 does not perform the processing noted in parenthesis in step S2603 (speed-reduction processing (speed-halving processing)) of the flowchart shown in
By performing processing that is the reverse of the processing by the basic image generation unit 12 on the transmitting side, the sub-image reproduction unit 23 performs multiplexing (synthesizing) of a plurality of basic images reproduced by the basic image reproduction unit 22 in a prescribed sequence to reproduce the sub-images. The source image reproduction unit 24 performs processing that is the reverse of the processing by the sub-image generation unit 11 on the transmitting side to multiplex (synthesize) the plurality of sub-images reproduced by the sub-image reproduction unit 23 in the prescribed sequence and reproduce the source images.
The above reproduces the source images of each color signal component. The source image reproduction unit 24 then outputs the source images of each of the reproduced color signal components as the original video signal. In this manner, the video signal receiving device 2 according to the fourth embodiment receives a prescribed number of 10.692-Gbit/s link signals and reproduces the video signal of a moving image constituted by a plurality of color signal components.
As described above, in the video signal receiving device 2 according to the fourth embodiment of the present invention, similar to the case of the above-described first embodiment, it is not necessary to reconstruct one pixel into a plurality of data words, the transmission capacity for the case of a video signal with a format having a small total number of pixels (for example, the 4:2:2 format and the 4:2:0 format) can be reduced, and it is possible to handle pathological conditions.
In the video signal receiving device 2 according to the fourth embodiment of the present invention, the source image reproduction unit 24 subjects one link signal to decoding processing and the like, instead of the basic image reproduction unit 22 performing speed-reduction processing, so as to reproduce eight basic streams. This enables a reduction of the processing load on the basic image reproduction unit 22 and enables the handling as well of a video signal with a 30-Hz frame frequency.
Although the fourth embodiment of the present invention has been described for the case in which the source image of a video signal has 8 k×4 k pixels and operates at a frame frequency of 30 Hz, this is not a restriction.
For example, the source image of the video signal may have 8 k×4 k pixels and operate at a frame frequency of 25 Hz or have 8 k×4 k pixels and operate at a frame frequency of 24 Hz.
The case of the source image of a video signal having 8 k×4 k pixels and operating at a frame frequency of 25 Hz will be described as the first variation example of the fourth embodiment. In the first variation example of the fourth embodiment, the processing described in
In a basic stream shown in
In a basic stream shown in
In the basic stream shown in
In all of the eight basic streams of CH-1 to CH-8 of
The link signal generation unit 14 subjects the eight words of multiplexed data to arrangement processing by byte conversion to generate a total of 12 words of data having eight bits per word (corresponding to step S3002 of
In
The case of the source image of a video signal having 8 k×4 k pixels and operating at a frame frequency of 24 Hz will be described as the second variation example of the fourth embodiment. In the second variation example of the fourth embodiment, the processing described in
In a basic stream shown in
In a basic stream shown in
In the basic stream shown in
In all of the eight basic streams of CH-1 to CH-8 of
The link signal generation unit 14 subjects the eight words of multiplexed data to arrangement processing by byte conversion to generate a total of 12 words of data having eight bits per word (corresponding to step S3002 of
In
Both the first and the second variation examples of the fourth embodiment achieve the same effect as the fourth embodiment.
Next, the fifth embodiment of the present invention will be described. The descriptions of the constituent elements and parts used in processing in the fifth embodiment that are the same as in the above-described embodiments will be omitted.
In the fifth embodiment, because the mapping procedure is the same as in
The description of the fifth embodiment will be for the case in which the source image of the video signal has 4 k×2 k pixels and operates at a frame frequency of 50 Hz. The processing of step S2702 by the sub-image generation unit 11 divides the 4 k×2 k source image into M 2 k×1 k sub-images, these 2 k×1 k sub-images corresponding to basic images. The processing of step S2704 by the basic stream generation unit 13 generates basic streams from the basic images. That is, M corresponding basic streams are generated from M basic images. The processing of step S2705 by the link signal generation unit 14 generates one link signal from the four basic streams, the link signal being transmitted at a speed of 10.692 Gbit/s. That is, L=M/4 link signals are generated from M basic streams.
The fifth embodiment also achieves the same effect as the second embodiment.
Next, the sixth embodiment of the present invention will be described. The descriptions of the constituent elements and parts used in processing in the six embodiment that are the same as in the above-described embodiments will be omitted.
In the sixth embodiment, the mapping procedure shown in
As shown in
The sixth embodiment also achieves the same effect as the fourth and other embodiments.
Although the sixth embodiment has been described for the case in which the source image of the video signal has 4 k×2 k pixels and operates at a frame frequency of 30 Hz, this is not a restriction.
For example, the source image of the video signal may have 4 k×2 k pixels and operate at a frame frequency of 25 Hz or may have 4 k×2 k pixels and operate at a frame frequency of 24 Hz. In such modified cases as well, the same effect as the sixth embodiment can be achieved.
Although the first to sixth embodiments have been described for the cases in which the frame frequency of the video signal of a moving image is any one of 24 Hz, 25 Hz, 30 Hz, 50 Hz, 60 Hz, and 120 Hz, this is not a restriction. For example, the frame frequency of the video signal of a moving image may be 24×(1000/1001) Hz instead of 24 Hz, 30×(1000/1001) Hz instead of 30 Hz, 60×(1000/1001) Hz instead of 60 Hz, or 120×(1000/1001) Hz instead of 120 Hz.
Also, a normal computer can be used as the hardware constitution of the video signal transmitting device 1 and the video signal receiving device 2 according to the first to sixth embodiments of the present invention. The video signal transmitting device 1 and the video signal receiving device 2 are constituted by a computer having a CPU, a volatile storage medium such as RAM, a non-volatile storage medium such as ROM, and an interface or the like. The functions of the sub-image generation unit 11, the basic image generation unit 12, the basic stream generation unit 13, and the link signal generation unit 14 of the video signal transmitting device 1 are each implemented by having a CPU execute programs into which these functions are coded. The functions of the basic stream reproduction unit 21, the basic image reproduction unit 22, the sub-image reproduction unit 23, and the source image reproduction unit 24 of the video signal receiving device 2 are each implemented by having a CPU execute programs into which these functions are coded. These programs can be stored into and distributed by a storage medium such as a magnetic disk (Floppy (registered trademark) or hard disk or the like), an optical disk (CD-ROM, DVD, or the like), or a semiconductor memory or the like, and may be transmitted and received via a network.
Although the present invention has been described by citing the first to sixth embodiments, the present invention is not restricted to the first to sixth embodiments, and can be variously modified within the scope of the technical concept thereof. For example, in the above-described embodiments, the sub-image generation unit 11 and the basic image generation unit 12 of the video signal transmitting device 1 are made separate constituent elements, the sub-image generation unit 11 generating sub-images from a source image, and the basic image generation unit 12 generating basic images from sub-images. However, the sub-image generation unit 11 and the basic image generation unit 12 may be made one constituent element (basic image generation unit), this constituent element generating basic images directly from sub-images.
Also, although in the first embodiment the description has been for the case in which the number of pixels in the source image has been expressed as 8 k×4 k, the number of pixels in the sub-image has been expressed as 4 k×2 k, and the number of pixels in the basic image has been expressed as 2 k×1 k, the number of horizontal pixels in the respective images being 8192, 4096, and 2048, which are powers of 2, the present invention is not restricted to these values. For example, if the number of horizontal pixels of the respective images is 7680, 3840, and 1920, the length of the horizontal blacking period can be adjusted accordingly.
In the first embodiment, each of the pixels of the plurality of color signal components constituting the video signal was made 12 bits, and the basic stream generation unit 13 was made to generate basic streams having 12 bits per word from basic images having 12-bit pixels. However, each of the pixels of the plurality of color signal components constituting the video signal may be made 16 bits, and the basic stream generation unit 13 may be made to generate basic streams having 16 bits per word from basic images having 16-bit pixels. In this case, the link signal generation unit 14 performs 64B/66B encoding processing instead of 8B/10B encoding processing, so that the speed of the 10.692-Gbit/s link signal shown in
The present invention can be applied, in a transmission processing of the video signal, to a video signal transmitting device, a video signal receiving device, a video signal transmitting method, a video signal receiving method, a program, and a recording medium required to reduce the transmission capacity for a video signal having a format with a small number of pixels and to handle pathological conditions, without the need to reconstruct one pixel into a plurality of data words.
Number | Date | Country | Kind |
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2012-194576 | Sep 2012 | JP | national |
2013-091689 | Apr 2013 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2013/073819 | 9/4/2013 | WO | 00 |