JP2006145944A - Image processing system - Google Patents

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JP2006145944A
JP2006145944A JP2004337161A JP2004337161A JP2006145944A JP 2006145944 A JP2006145944 A JP 2006145944A JP 2004337161 A JP2004337161 A JP 2004337161A JP 2004337161 A JP2004337161 A JP 2004337161A JP 2006145944 A JP2006145944 A JP 2006145944A
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image
divided
transmission
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resolution
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Kaoru Kitami
薫 北見
Koji Kuriyama
孝司 栗山
Tadao Shinya
忠雄 新屋
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Victor Company of Japan Ltd
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Victor Company of Japan Ltd
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<P>PROBLEM TO BE SOLVED: To provide an image processing system that can easily and clearly obtain a super-high resolution image in which no deterioration in image quality is generated at a central boundary portion. <P>SOLUTION: The image processing system has a transmitting section 2 which divides a super-high definition image having a transmission amount, that exceeds a transmission possible amount by a transmission path, into a plurality of portions within the range that does not exceed the transmission possible amount and transmits the plurality of divided images through a plurality of transmission paths; and a receiving section 3 which receives the plurality of the divided images transmitted from the transmitting section 2 and obtains the super-high definition image by combining the plurality of the divided images. The transmitting section 2 has a trimming means 4 which obtains a first divided image by trimming the central section of the super-high definition image with the amount of the image that does not exceed the transmission possible amount of a transmission path 1 and a making-low-resolution means 5 which makes an image lower resolution so that a second divided image, that is residue being obtained by deleting the first divided image from the super-high definition image, to have the same image amount of the first divided image. <P>COPYRIGHT: (C)2006,JPO&NCIPI

Description

本発明は、HDTV画像(ハイビジョン)における解像度を遥かに越える超高解像度画像を良好に伝送する画像処理システムに関する。   The present invention relates to an image processing system that satisfactorily transmits an ultra-high resolution image that far exceeds the resolution of an HDTV image (high vision).

従来の画像処理システムについて図4及び図5を用いて説明する。
図4は、従来の画像処理システムを示す図である。
図5は、超高解像度画像を4個のHDTV画像に分割して出力する受光素子の概要図を示す図である。
A conventional image processing system will be described with reference to FIGS.
FIG. 4 is a diagram showing a conventional image processing system.
FIG. 5 is a diagram showing a schematic diagram of a light receiving element that divides and outputs an ultra-high resolution image into four HDTV images.

図4に示すように、従来の画像処理システムは、超高解像度画像である光学的に連続した被写体光像(以下、被写体光像と略す)を撮像して電気信号に変換した後、例えば4個のHDTV画像信号に分割して出力する撮像装置33と、撮像装置33から出力された4個のHDTV画像信号を4本の伝送ケーブルで伝送する伝送路34と、伝送路34で伝送された4個のHDTV画像信号を受信し、この受信した4個のHDTV画像信号を、被写体光像と同じ配列の投射画像に変換してスクリーン上に投射表示する表示装置35と、からなる。   As shown in FIG. 4, the conventional image processing system captures an optically continuous subject light image (hereinafter abbreviated as a subject light image), which is an ultra-high resolution image, and converts it into an electrical signal. An image pickup device 33 that divides and outputs HDTV image signals, a transmission line 34 that transmits four HDTV image signals output from the image pickup device 33 using four transmission cables, and a transmission line 34 that transmits the HDTV image signals. The display device 35 receives four HDTV image signals, converts the received four HDTV image signals into projection images having the same arrangement as the subject light image, and projects and displays them on a screen.

撮像装置33は、被写体光像を撮像部21に結像するレンズ20と、被写体光像が結像され、これを4個に分割して受光して電気信号に変換する受光素子から4個の電気信号を得て4個のHDTV画像信号に変換して出力する撮像部21と、1個のHDTV画像信号を入力しこれを表示するビューファ22と、からなる。
そして、図5に撮像部21で用いられる受光素子の概要図を示す。この受光素子はレンズ20により結像された被写体光像を、4個に分割した受光部200a,200b,200c,200dで受光し、それぞれの受光部から電気信号Va,Vb,Vc,Vdとして出力する。図中、垂直駆動部201と水平駆動部203は画像200aの走査信号を供給するものであり、同様に垂直駆動部201と水平駆動部24は画像200bの走査信号を供給するものであり、垂直駆動部202と水平駆動部204は画像200cの走査信号を供給するものであり、垂直駆動部202と水平駆動部203は画像200dの走査信号を供給するものである。また、205a,205b,205c,205dは画像信号の波形整形を行い外部に出力する画像信号Va,Vb,Vc,Vdを得るための信号処理部である。
The imaging device 33 includes a lens 20 that forms a subject light image on the imaging unit 21 and a light receiving element that forms a subject light image, divides the light into four pieces, and converts the light into electrical signals. An imaging unit 21 that obtains an electrical signal, converts it into four HDTV image signals, and outputs it, and a viewer 22 that receives and displays one HDTV image signal.
FIG. 5 shows a schematic diagram of a light receiving element used in the imaging unit 21. This light receiving element receives the subject light image formed by the lens 20 by the light receiving parts 200a, 200b, 200c, and 200d divided into four parts, and outputs them as electric signals Va, Vb, Vc, and Vd from the respective light receiving parts. To do. In the figure, a vertical driving unit 201 and a horizontal driving unit 203 supply scanning signals for an image 200a, and similarly, a vertical driving unit 201 and a horizontal driving unit 24 supply scanning signals for an image 200b. The driving unit 202 and the horizontal driving unit 204 supply scanning signals for the image 200c, and the vertical driving unit 202 and the horizontal driving unit 203 supply scanning signals for the image 200d. Reference numerals 205a, 205b, 205c and 205d denote signal processing units for shaping the waveform of the image signals and obtaining image signals Va, Vb, Vc and Vd to be output to the outside.

伝送路33は、撮像装置21から出力された4個のHDTV画像信号を伝送する4本の伝送ケーブル1−4と、1個のHDTV画像信号を撮像装置21のビューファ22に伝送する伝送ケーブル1−5と、からなる。   The transmission path 33 includes four transmission cables 1-4 that transmit four HDTV image signals output from the imaging device 21 and a transmission cable 1 that transmits one HDTV image signal to the viewer 22 of the imaging device 21. -5.

表示装置35は、伝送ケーブル1−5経由で伝送された4個のHDTV画像信号を受信し、この受信した4個のHDTV画像信号を、被写体光像と同じ配列の投射画像信号Vpに変換するとともに、撮像装置21のビューファ22で被写体光像の撮像位置、明るさ等を調整するために用いる1個のHDTV画像信号V2を、4個のHDTV画像信号から縮小変換して生成する画像処理部23と、投射画像信号Vpをスクリーン24上に投射する投射光に変換する投射部25と、投射光が投射されるスクリーン24と、からなる。   The display device 35 receives four HDTV image signals transmitted via the transmission cable 1-5, and converts the received four HDTV image signals into a projection image signal Vp having the same arrangement as the subject light image. In addition, an image processing unit that generates one HDTV image signal V2 used for adjusting the imaging position, brightness, and the like of the subject optical image by the viewer 22 of the imaging device 21 from the four HDTV image signals. 23, a projection unit 25 that converts the projection image signal Vp into projection light that is projected onto the screen 24, and a screen 24 on which the projection light is projected.

そして、従来の画像処理システムでは、撮像装置33により被写体光像を撮像して4個のHDTV画像信号に変換して伝送路34に供給し、伝送路34では4本の伝送ケーブル1−4によりそれぞれのHDTV画像を1個ずつ表示装置35に伝送し、表示装置35では伝送路34から伝送された4個のHDTV画像を合成してスクリーン24上に被写体光像と配列が同等の投射画像を投射する。   In the conventional image processing system, a subject light image is picked up by the image pickup device 33, converted into four HDTV image signals, and supplied to the transmission line 34. In the transmission line 34, the four transmission cables 1-4 are used. Each HDTV image is transmitted to the display device 35 one by one, and the display device 35 synthesizes the four HDTV images transmitted from the transmission path 34 to form a projection image having the same arrangement as the subject light image on the screen 24. Project.

特許文献1には、上述したような超高解像度画像である被写体光像を分割して4個のHDTV画像として伝送する際に、4本のHDTV用のBNC同軸ケーブルを用いると、実際の使用に際しては重くて装置類の操作が困難であり、しかも画像を150M以上伝送すると画質の劣化が大きく、4個のHDTV画像を均一に良好な状態に保つのは困難であり、このため、4個のHDTV画像を光変調して光伝送することにより、伝送路では画質を均一で良好な状態に保つことが記載されている。
特開2004−260706号公報
In Patent Document 1, when the subject optical image, which is an ultra-high resolution image as described above, is divided and transmitted as four HDTV images, if four HDTV BNC coaxial cables are used, the actual use will be described. At that time, it is heavy and it is difficult to operate the apparatus, and when an image is transmitted at 150 M or more, the image quality is greatly deteriorated, and it is difficult to keep four HDTV images in a uniform and good condition. It is described that the image quality is kept uniform and good in the transmission path by optically modulating and transmitting the HDTV image.
JP 2004-260706 A

しかしながら、光学的に連続した画像を4個のHDTV画像に分割する際には、画像を中央において前後左右に分割しており、このため、中央の境界部分にわずかな画質の不均一性が生じても、この4個のHDTV画像を再び合成して光学的に連続した画像として表示する場合、中央部分に縦線と横線の不均一部分が発生すると言う問題点があった。
特に4個のHDTV画像を伝送する際に、送信部と伝送路及び受信部における4個の画質の均一性を保つことは、特許文献1に記載されている光変調して光伝送する手段を用いても伝送路の画質のみが均一であり、伝送路の前後において画像の変換手段が多くなるため、画質劣化が更に増加すると言う問題点があった。
However, when an optically continuous image is divided into four HDTV images, the image is divided into the front, back, left, and right in the center, which causes slight image quality non-uniformity at the center boundary. However, when these four HDTV images are synthesized again and displayed as an optically continuous image, there is a problem that a non-uniform portion of vertical and horizontal lines occurs in the central portion.
In particular, when transmitting four HDTV images, maintaining the uniformity of the four image quality in the transmission unit, the transmission path, and the reception unit is a means for optical modulation and optical transmission described in Patent Document 1. Even if it is used, only the image quality of the transmission path is uniform, and image conversion means increases before and after the transmission path, so that there is a problem that image quality degradation further increases.

そこで、本発明は、上記のような問題点を解消するためになされたもので、中央の境界部分の画質劣化が生じない超高解像度画像を容易に鮮明に得ることが出来る画像処理システムを提供することを目的とする。   Accordingly, the present invention has been made to solve the above-described problems, and provides an image processing system that can easily and clearly obtain an ultra-high resolution image that does not cause image quality deterioration at a central boundary portion. The purpose is to do.

本発明は、伝送路が伝送可能な伝送量を超える超高精細画像を前記伝送可能な伝送量を超えない範囲で複数個に分割し、前記分割した複数の分割画像を複数の前記伝送路に分けて送信する送信部と、前記送信部から送信された複数の分割画像を受信した後、前記複数の分割画像を合成して前記超高精細画像を得る受信部とを有する画像処理システムにおいて、前記送信部は、前記伝送路の伝送可能な伝送量を超えない範囲の画像量で前記超高精細画像の中央部をトリミングして第1の分割画像を得るトリミング手段と、前記超高精細画像から前記第1の分割画像を除いた残りの第2分割画像から前記第1の分割画像と同じ画像量になるように低解像度にする低解像度化手段と、
を有することを特徴とする画像処理システムを提供する。
The present invention divides an ultra-high-definition image exceeding a transmission amount that can be transmitted by a transmission line into a plurality of ranges within a range that does not exceed the transmission amount that can be transmitted, and the divided divided images are divided into a plurality of transmission lines. In an image processing system comprising: a transmission unit that transmits separately; and a reception unit that receives the plurality of divided images transmitted from the transmission unit and then combines the plurality of divided images to obtain the ultra-high definition image. The transmitter includes trimming means for trimming a central portion of the ultra-high-definition image with an image amount in a range not exceeding the transmittable transmission amount of the transmission path to obtain a first divided image, and the ultra-high-definition image A resolution reducing means for reducing the resolution from the remaining second divided image obtained by removing the first divided image from the second divided image so as to have the same image amount as the first divided image;
An image processing system is provided.

本発明によれば、伝送路が伝送可能な伝送量を超える超高精細画像を伝送可能な伝送量を超えない範囲で複数個に分割し、分割した複数の分割画像を複数の伝送路に分けて送信する送信部と、送信部から送信された複数の分割画像を受信した後、複数の分割画像を合成して超高精細画像を得る受信部とを有する画像処理システムにおいて、送信部は、伝送路の伝送可能な伝送量を超えない範囲の画像量で超高精細画像の中央部をトリミングして第1の分割画像を得るトリミング手段と、超高精細画像から第1の分割画像を除いた残りの第2分割画像から第1の分割画像と同じ画像量になるように低解像度にする低解像度化手段と、を有するので、中央の境界部分の画質劣化が生じない超高解像画像を容易に得られる効果がある。   According to the present invention, an ultra-high-definition image that exceeds the transmission amount that can be transmitted through the transmission line is divided into a plurality of pieces within a range that does not exceed the transmission amount that can be transmitted, and the divided divided images are divided into a plurality of transmission lines. In the image processing system including a transmitting unit that transmits and a receiving unit that receives a plurality of divided images transmitted from the transmitting unit and then combines the plurality of divided images to obtain an ultra-high definition image, the transmitting unit includes: Trimming means for trimming the center portion of the ultra-high definition image with an image amount not exceeding the transmittable transmission amount of the transmission path to obtain the first divided image, and removing the first divided image from the ultra-high definition image And a resolution reducing means for reducing the resolution so that the remaining second divided image has the same image amount as that of the first divided image. Can be easily obtained.

以下に本発明の実施形態に係る画像処理システムについて図1〜図3を用いて説明する。
(従来と同一構成については同一符号を付し、その説明を省略する。)
図1は、本発明の実施形態における画像処理システムを示す図である。
図2は、伝送する画像の表示配列を示す図である。
図3は、本発明の実施の形態の変形例における撮像装置を用いた画像処理システムの具体的実施例を示す図であり、(A)は撮像装置を用いた画像処理システムの概要を示す図であり、(B)は撮像装置における画像分割を示す図であり、(C)は表示装置における画像合成を示す図である。
An image processing system according to an embodiment of the present invention will be described below with reference to FIGS.
(Constituent elements that are the same as those in the prior art will be given the same reference numerals and explanation thereof will be omitted.)
FIG. 1 is a diagram illustrating an image processing system according to an embodiment of the present invention.
FIG. 2 is a diagram showing a display arrangement of images to be transmitted.
FIG. 3 is a diagram showing a specific example of an image processing system using an imaging device in a modification of the embodiment of the present invention, and FIG. 3A is a diagram showing an outline of the image processing system using the imaging device. (B) is a diagram showing image division in the imaging device, and (C) is a diagram showing image composition in the display device.

図1に示すように本発明の実施形態における画像処理システムは、HDTV画像を複数伝送する伝送路1と、伝送路1が伝送可能な伝送量を超える超高精細画像を伝送可能な伝送量を超えない範囲で複数個に分割し、分割した複数の分割画像を複数の伝送路1に分けて送信する送信部2と、送信部2から伝送路1経由で送信された複数の分割画像を受信した後、複数の分割画像を合成して超高精細画像を得る受信部3と、からなる。
送信部2は、伝送路1の伝送可能な伝送量を超えない範囲の画像量で超高精細画像の中央部をトリミングして第1の分割画像を得るトリミング手段4と、超高精細画像から第1の分割画像を除いた残りの第2分割画像から第1の分割画像と同じ画像量になるように低解像度にする低解像度化手段5と、トリミングする範囲を設定する高解像度抽出範囲設定部6と、低解像度化手段5に用いる解像度変換率を算出する解像度変換率算出部7と、第1の分割画像と第2の分割画像を伝送路2に出力する送信手段8と、からなる。
受信部3は、第1の分割画像と第2の分割画像を伝送路2から受信する受信手段9と、受信手段9から第1の分割画像と第2の分割画像を受け取り1枚の超高精細画像に合成する画像合成部10と、画像合成部10から合成された1枚の超高精細画像をスクリーン等に表示する画像表示部11と、スクリーン等に表示された画像を見ながら高解像度となる画像範囲を指示する高解像度画像抽出範囲指示部12と、からなる。
As shown in FIG. 1, an image processing system according to an embodiment of the present invention has a transmission path 1 for transmitting a plurality of HDTV images and a transmission amount capable of transmitting an ultra-high-definition image exceeding the transmission amount that can be transmitted by the transmission path 1. A transmission unit 2 that divides a plurality of divided images within a range that does not exceed, and transmits the divided divided images to a plurality of transmission paths 1, and receives a plurality of divided images transmitted from the transmission unit 2 via the transmission path 1. After that, the receiving unit 3 is configured to synthesize a plurality of divided images to obtain an ultra high definition image.
The transmission unit 2 includes trimming means 4 for trimming the central portion of the ultrahigh-definition image with an image amount that does not exceed the transmission amount that can be transmitted through the transmission line 1 to obtain a first divided image; The lower resolution means 5 for reducing the resolution so that the image amount of the remaining second divided image excluding the first divided image is the same as that of the first divided image, and the high resolution extraction range setting for setting the trimming range Unit 6, resolution conversion rate calculation unit 7 that calculates the resolution conversion rate used for resolution reduction unit 5, and transmission unit 8 that outputs the first divided image and the second divided image to transmission path 2. .
The receiving unit 3 receives a first divided image and a second divided image from the transmission path 2, and receives a first divided image and a second divided image from the receiving unit 9. An image composition unit 10 that composes a fine image, an image display unit 11 that displays a single ultra-high-definition image synthesized from the image composition unit 10 on a screen or the like, and a high resolution while viewing the image displayed on the screen or the like A high-resolution image extraction range instructing unit 12 for instructing an image range.

そして、第1の分割画像は、受信部3の高解像度画像抽出範囲指示部12により図示していないスクリーンに表示された画像を見ながら設定した範囲設定データPdataを送信部2の高解像度抽出範囲設定部6へ送り高解像度抽出範囲としての水平方向アドレスHadと垂直方向アドレスVadを生成してトリミング手段4へ送り、トリミング手段4では入力画像V0から水平方向アドレスHadと垂直方向アドレスVadの範囲の画像領域をトリミングして第1の分割画像VH0とし、送信手段4へ送る。
第1の分割画像は、図2(A)の(1)に示すように表示範囲をトリミングして図2(A)の(2)に示すような水平方向画素数Hn、垂直方向画素数Vnの画像に設定する。この画素数はHDTV画像の場合、Hn=1920、Vn=1080である。
The first divided image is obtained by setting the range setting data Pdata set while viewing the image displayed on the screen (not shown) by the high resolution image extraction range instruction unit 12 of the reception unit 3 to the high resolution extraction range of the transmission unit 2. A horizontal direction address Had and a vertical direction address Vad as a high resolution extraction range are generated and sent to the trimming means 4 and sent to the trimming means 4. The image area is trimmed to obtain the first divided image VH0, which is sent to the transmission means 4.
In the first divided image, the display range is trimmed as shown in (1) of FIG. 2A, and the number of horizontal pixels Hn and the number of vertical pixels Vn as shown in (2) of FIG. Set to the image. In the case of an HDTV image, the number of pixels is Hn = 1920 and Vn = 1080.

次に、第2の分割画像は、入力画像V0から第1の分割画像VH0を削減した画像を、高解像度抽出範囲設定部6で入力画像V0の全画素と範囲設定データPdataとの比率Phwを解像度変換率算出部7へ入力し第1の分割画像と略同じ画素数を得るように水平方向アドレスHcutと垂直方向アドレスVcutを算出して低解像度化手段5へ加え、入力画像V0から第1の分割画像VH0を削減した画像を間引いた後整列して第1の分割画像VH0と同等の画素配列状態である第2の分割画像VL0を生成して送信手段4へ送る。
この第2の分割画像VL0は、低解像度化手段5において、図2(B)に示すように、まず、水平方向アドレスHcutと垂直方向アドレスVcutにより、図2(B)の(1)に示すようなアドレスで入力画像V0から第1の分割画像VH0を削減した画像を読み出し図2(B)の(2)に示すように間を詰めて配列することにより図2(B)の(3)に示すような第1の分割画像VH0とほぼ同等の画素数である第2の分割画像VL0を得る。
Next, the second divided image is obtained by reducing the first divided image VH0 from the input image V0, and the high resolution extraction range setting unit 6 sets the ratio Phw between all the pixels of the input image V0 and the range setting data Pdata. The horizontal direction address Hcut and the vertical direction address Vcut are calculated so as to be input to the resolution conversion rate calculation unit 7 and obtain approximately the same number of pixels as the first divided image. The second divided image VL0 having a pixel arrangement state equivalent to that of the first divided image VH0 is generated by thinning out the images obtained by reducing the divided images VH0, and then sent to the transmission unit 4.
As shown in FIG. 2B, the second divided image VL0 is first shown in (1) of FIG. 2B by the horizontal address Hcut and the vertical address Vcut. An image obtained by reducing the first divided image VH0 from the input image V0 at such an address is read out and arranged with intervals as shown in (2) of FIG. 2B, so that (3) in FIG. As a result, a second divided image VL0 having substantially the same number of pixels as the first divided image VH0 is obtained.

このようにして得た第1の分割画像VH0と第2の分割画像VL0はほぼ同等の画素数を有するHDTVの画像として扱うことが出来るから、送信手段8で送信用の信号VH1とVL1に変換して2個のHDTV画像を伝送する伝送路1へ送信する。伝送路1ではHDTV画像伝送用の伝送ケーブル2本を用いて、送信手段8から送信されてきた信号VH1とVL1をさらに受信部3へ送信する。   Since the first divided image VH0 and the second divided image VL0 obtained in this way can be handled as HDTV images having substantially the same number of pixels, the transmission means 8 converts them into transmission signals VH1 and VL1. Then, the two HDTV images are transmitted to the transmission line 1 for transmission. In the transmission path 1, the signals VH 1 and VL 1 transmitted from the transmission unit 8 are further transmitted to the receiver 3 using two transmission cables for HDTV image transmission.

従って、伝送路1ではHDTV画像伝送用の伝送ケーブル等の画像伝送手段が、従来は4系統必要であったものが2系統と削減することが出来る。   Therefore, in the transmission path 1, the number of image transmission means such as a transmission cable for HDTV image transmission, which conventionally required four systems, can be reduced to two.

受信部3では送信手段8から送信されてきた信号VH1とVL1とを受信手段9で受信し第1の分割画像VH2と第2の分割画像VL2として再生し、画像合成部10に入力する。
画像合成部10では、第2の分割画像VL2を高解像度画像抽出範囲指示部12の画像抽出範囲から算出した拡大率CTLに基づいて、被写体光像と同等の範囲の画像に拡大すると共に平滑化を行う。そして、第1の分割画像VH2と拡大し平滑化した第2の分割画像VL2とを合成して超高精細画像Vpを得る。次に、この超高精細画像Vpを画像表示部11に加え、図示していないスクリーンに投射表示する。
In the reception unit 3, the signals VH 1 and VL 1 transmitted from the transmission unit 8 are received by the reception unit 9, reproduced as the first divided image VH 2 and the second divided image VL 2, and input to the image composition unit 10.
The image composition unit 10 enlarges and smoothes the second divided image VL2 to an image in the same range as the subject optical image based on the enlargement ratio CTL calculated from the image extraction range of the high-resolution image extraction range instruction unit 12. I do. Then, the first divided image VH2 and the enlarged and smoothed second divided image VL2 are combined to obtain an ultra-high definition image Vp. Next, this super high definition image Vp is added to the image display unit 11 and projected and displayed on a screen (not shown).

このようにして、超高精細画像を高解像度画像と低解像度画像とに分割してHDTV画像伝送用の伝送ケーブル2本を用いて伝送し、これを受信して合成処理することにより、画像の中央部は、画像の分割、伝送、合成のいずれの画像処理によっても画質の劣化を生じない鮮明な画像を保持することが出来る。   In this way, an ultra-high-definition image is divided into a high-resolution image and a low-resolution image and transmitted using two transmission cables for HDTV image transmission. The central portion can hold a clear image that does not deteriorate image quality by any of image processing of image division, transmission, and synthesis.

以上のように本発明の実施形態により、画像表示部のスクリーン上に高解像度画像と低解像度画像とを合成処理して表示された画像は、この画像を観察する観客が注目する中央部分の画像範囲の高解像度画像は画質劣化がないため高画質な鮮明さを感じ、観客が注目していない低解像度画像の画像範囲からは大画面であると感じることにより、全体としては大画面の超高精細画像と認識することが出来る。
特に従来の4分割の画像処理により、中央部に縦線と横線が入り画質を著しく低下させていたのを、本発明の実施形態における2分割の画像処理により、観客が注目する中央部の画像範囲の画質を高画質とすることが出来る。
As described above, according to the embodiment of the present invention, the image displayed by synthesizing the high-resolution image and the low-resolution image on the screen of the image display unit is the image of the central portion that the audience who observes this image pays attention to. The high-resolution image in the range has no image quality deterioration, so it feels clear with high image quality, and from the image range of the low-resolution image that the audience is not paying attention to, it feels a large screen as a whole. It can be recognized as a fine image.
In particular, the conventional image processing by four divisions has vertical lines and horizontal lines in the center portion, and the image quality is significantly reduced. However, the image processing in the center portion to which the audience pays attention by the two-division image processing in the embodiment of the present invention. The image quality of the range can be made high.

次に本発明の実施の形態における変形例について図3を用いて説明する。
図3(A)に示すように、本発明の実施の形態における変形例は撮像装置を用いた画像処理システムであり、超高精細画像である被写体光像(以下被写体光像と略す)を撮像しこれを電気信号に変換した後、高解像度画像である第1の分割画像と低解像度画像である第2の分割画像とを生成して出力する撮像装置19と、第1の分割画像と第2の分割画像を伝送する伝送路1と、伝送路1経由で送信された第1の分割画像と第2の分割画像を受信した後、複数の分割画像を合成して超高精細画像を得る受信部3と、からなる。
Next, a modification of the embodiment of the present invention will be described with reference to FIG.
As shown in FIG. 3A, a modification in the embodiment of the present invention is an image processing system using an imaging device, and captures a subject light image (hereinafter abbreviated as a subject light image) that is an ultra-high-definition image. Then, after converting this into an electrical signal, the imaging device 19 that generates and outputs a first divided image that is a high-resolution image and a second divided image that is a low-resolution image, and the first divided image and the first divided image After receiving the transmission line 1 for transmitting the two divided images and the first divided image and the second divided image transmitted via the transmission line 1, a plurality of divided images are combined to obtain an ultra-high definition image. The receiving unit 3.

撮像装置19は、被写体光像を受光素子17に結像させるレンズ14と、図2の送信部2と同様に伝送路1が伝送可能な伝送量を超える超高精細画像を伝送可能な伝送量を超えない範囲で複数個に分割し、分割した複数の分割画像を複数の伝送路1に分けて送信する撮像部15と、撮像した画像を表示するビューファ16と、からなる。
撮像部15は、被写体光像を受光し高解像度画像である第1の分割画像と低解像度画像である第2の分割画像とに変換して出力する受光素子17と、図1の高解像度画像抽出範囲設定部6と解像度変換率算出部7の機能を併せ持ち、第1の分割画像用のアドレスHadとVad、第2の分割画像用のアドレスHcutとVcutを生成し受光素子17へ送るアドレス生成部18と、第1の分割画像と第2の分割画像を伝送路2に出力する送信手段8と、からなる。
尚、伝送路1と受信部3は図1に示されているのと同様なので説明は省略する。
The imaging device 19 includes a lens 14 that forms a subject light image on the light receiving element 17 and a transmission amount that can transmit an ultra-high-definition image that exceeds the transmission amount that the transmission path 1 can transmit, similar to the transmission unit 2 of FIG. The image capturing unit 15 is divided into a plurality of divided images within a range that does not exceed, and the divided divided images are transmitted to the plurality of transmission paths 1 and the viewer 16 that displays the captured images.
The imaging unit 15 receives a subject light image, converts it into a first divided image that is a high-resolution image and a second divided image that is a low-resolution image, and outputs the light-receiving element 17, and the high-resolution image shown in FIG. Address generation that combines the functions of the extraction range setting unit 6 and the resolution conversion rate calculation unit 7 to generate addresses Had and Vad for the first divided image and addresses Hcut and Vcut for the second divided image and send them to the light receiving element 17 And a transmission unit 8 that outputs the first divided image and the second divided image to the transmission path 2.
The transmission path 1 and the receiving unit 3 are the same as those shown in FIG.

そして、被写体光像がレンズ14により受光素子17に超高解像度画像V0として結像され、
受光素子17からはこの超高解像度画像V0の光像が、図3(B)に示すように中央部はそのままアドレスHadとVadによりトリミングされて第1の分割画像VHとして変換される。そして第1の分割画像VHが削除された被写体光像の全体画像はアドレスHcutとVcutにより
図2(B)の(1)に示すように受光素子17の画素を間引いて読み出し、その結果、図3(B)に示すように第1の分割画像VHとほぼ同じ画素数の第2の分割画像VLとなる。
Then, a subject light image is formed on the light receiving element 17 by the lens 14 as an ultra-high resolution image V0,
From the light receiving element 17, the optical image of the ultra-high resolution image V0 is converted as a first divided image VH by trimming the central portion as it is with addresses Had and Vad as shown in FIG. Then, the entire image of the subject optical image from which the first divided image VH has been deleted is read out by thinning out the pixels of the light receiving element 17 as shown in (1) of FIG. 2B by the addresses Hcut and Vcut. As shown in 3 (B), the second divided image VL has substantially the same number of pixels as the first divided image VH.

このように、中央部に画素の抜けの無い高解像度画像と周辺部の画素を間引いた低解像度画像とをほぼ同じ画素数の画像に変換出来る受光素子を用いることにより、超高精細画像のトリミングを簡単に行うことが出来る。
本発明の実施形態の変形例によっても実施の形態と同様な効果が得られる。
In this way, by using a light receiving element that can convert a high-resolution image with no missing pixels at the center and a low-resolution image obtained by thinning out the peripheral pixels into an image with almost the same number of pixels, trimming an ultra-high-definition image Can be done easily.
Effects similar to those of the embodiment can be obtained by the modification of the embodiment of the present invention.

本発明の実施形態における画像処理システムを示す図である。It is a figure which shows the image processing system in embodiment of this invention. 伝送する画像の表示配列を示す図である。It is a figure which shows the display arrangement | sequence of the image transmitted. 本発明の実施の形態の変形例における撮像装置を用いた画像処理システムの具体的実施例を示す図であり、(A)は撮像装置を用いた画像処理システムの概要を示す図であり、(B)は撮像装置における画像分割を示す図であり、(C)は表示装置における画像合成を示す図である。It is a figure which shows the specific Example of the image processing system using the imaging device in the modification of embodiment of this invention, (A) is a figure which shows the outline | summary of the image processing system using an imaging device, B is a diagram illustrating image division in the imaging device, and (C) is a diagram illustrating image composition in the display device. 従来の撮像装置を用いた画像処理システムを示す図である。It is a figure which shows the image processing system using the conventional imaging device. 従来の画像処理システムに用いる受光素子の構成を示す図である。It is a figure which shows the structure of the light receiving element used for the conventional image processing system.

符号の説明Explanation of symbols

1・・・伝送路、2・・・送信部、3・・・受信部、4・・・トリミング手段、5・・・低解像度化手段、6・・・高解像度画像抽出範囲設定部、7・・・解像度変換率算出部、8・・・送信手段、9・・・受信手段、10・・・画像合成部、11・・・画像表示部、12・・・高解像度画像抽出範囲指示部、13・・・スクリーン、14・・・レンズ、15・・・撮像部、16・・・ビューファ、17・・・受光素子、18・・・アドレス生成部、19・・・撮像装置
DESCRIPTION OF SYMBOLS 1 ... Transmission path, 2 ... Transmission part, 3 ... Reception part, 4 ... Trimming means, 5 ... Low resolution means, 6 ... High resolution image extraction range setting part, 7 ... Resolution conversion rate calculation unit, 8 ... Transmission means, 9 ... Reception means, 10 ... Image composition unit, 11 ... Image display unit, 12 ... High-resolution image extraction range instruction unit , 13 ... screen, 14 ... lens, 15 ... imaging unit, 16 ... viewer, 17 ... light receiving element, 18 ... address generation unit, 19 ... imaging device

Claims (1)

伝送路が伝送可能な伝送量を超える超高精細画像を前記伝送可能な伝送量を超えない範囲で複数個に分割し、前記分割した複数の分割画像を複数の前記伝送路に分けて送信する送信部と、前記送信部から送信された複数の分割画像を受信した後、前記複数の分割画像を合成して前記超高精細画像を得る受信部とを有する画像処理システムにおいて、
前記送信部は、前記伝送路の伝送可能な伝送量を超えない範囲の画像量で前記超高精細画像の中央部をトリミングして第1の分割画像を得るトリミング手段と、
前記超高精細画像から前記第1の分割画像を除いた残りの第2分割画像から前記第1の分割画像と同じ画像量になるように低解像度にする低解像度化手段と、
を有することを特徴とする画像処理システム。

An ultra-high-definition image that exceeds a transmission amount that can be transmitted by a transmission path is divided into a plurality of pieces within a range that does not exceed the transmission amount that can be transmitted, and the divided divided images are divided into a plurality of transmission paths and transmitted. In an image processing system comprising: a transmission unit; and a reception unit that receives the plurality of divided images transmitted from the transmission unit and then combines the plurality of divided images to obtain the ultra-high definition image.
The transmitter is a trimming unit that trims the central portion of the ultra-high-definition image with an image amount in a range not exceeding the transmittable transmission amount of the transmission path to obtain a first divided image;
A resolution reducing means for reducing the resolution from the remaining second divided image obtained by removing the first divided image from the ultra-high-definition image so as to have the same image amount as the first divided image;
An image processing system comprising:

JP2004337161A 2004-11-22 2004-11-22 Image processing system Pending JP2006145944A (en)

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JP2009122599A (en) * 2007-11-19 2009-06-04 Fujifilm Corp Image display device
JP2012142898A (en) * 2011-01-06 2012-07-26 Nippon Hoso Kyokai <Nhk> Image size conversion apparatus, method and program
JP2012175466A (en) * 2011-02-22 2012-09-10 Nippon Hoso Kyokai <Nhk> Image reduction device, image enlargement device, image reduction program, and image enlargement program
US8315481B2 (en) 2008-02-07 2012-11-20 Sony Corporation Image transmitting apparatus, image receiving apparatus, image transmitting and receiving system, recording medium recording image transmitting program, and recording medium recording image receiving program
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JP2009122599A (en) * 2007-11-19 2009-06-04 Fujifilm Corp Image display device
US8315481B2 (en) 2008-02-07 2012-11-20 Sony Corporation Image transmitting apparatus, image receiving apparatus, image transmitting and receiving system, recording medium recording image transmitting program, and recording medium recording image receiving program
JP2012142898A (en) * 2011-01-06 2012-07-26 Nippon Hoso Kyokai <Nhk> Image size conversion apparatus, method and program
JP2012175466A (en) * 2011-02-22 2012-09-10 Nippon Hoso Kyokai <Nhk> Image reduction device, image enlargement device, image reduction program, and image enlargement program
KR20190014771A (en) * 2017-08-03 2019-02-13 (주)아이피티브이코리아 Method and system for stiching ultra high resolution image
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