JP2005341220A - Image display device - Google Patents

Image display device Download PDF

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JP2005341220A
JP2005341220A JP2004157387A JP2004157387A JP2005341220A JP 2005341220 A JP2005341220 A JP 2005341220A JP 2004157387 A JP2004157387 A JP 2004157387A JP 2004157387 A JP2004157387 A JP 2004157387A JP 2005341220 A JP2005341220 A JP 2005341220A
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signal
color
luminance
color saturation
value
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JP4470587B2 (en
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Yoshihiro Dokou
純弘 土光
Hideyuki Nakanishi
英行 中西
Yuji Odawara
裕司 小田原
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Panasonic Holdings Corp
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Matsushita Electric Industrial Co Ltd
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Abstract

<P>PROBLEM TO BE SOLVED: To make luminance contrast control and color level control where hue variation or color saturation are not generated compatible, when enhancing color expression force using signal processing. <P>SOLUTION: The picture display device is provided with a luminance-adjusting means for adjusting the luminance signal of input; a color space transformation means 3 for transforming a luminance signal and an expression difference signal into 3 signals of hue signal, color saturation signal and lightness signal; a color saturation adjusting means 5 for adjusting the color saturation signal outputted from the expression difference signal into 3; a color space inverse transformation means 7 for transforming the color saturation signal, the color hue signal and the lightness signal to the video signal of RGB; a luminance information detection means 1 for detecting a feature value about the luminance from the luminance signal of the input; a color saturation detection means 4 for detecting the feature value about color saturation from the color saturation signal; and a control parameter arithmetic means 6 for calculating the control value of the luminance signal and that of the color saturation signal with the feature information of an image obtained from the luminance information detecting means 1 and the color saturation detecting means 4 and outputting them to the luminance adjusting means 2 and the color saturation adjusting means 5. <P>COPYRIGHT: (C)2006,JPO&NCIPI

Description

本発明は、画像表示装置に関するものである。   The present invention relates to an image display device.

従来のテレビジョン受像機等のディスプレイ装置において、画像の表現力を高めるために入力信号や、周囲の明るさに応じて、映像信号のコントラストやブライトを適応的に制御してシーン毎に最適な画像を創出する試みがなされている。特許文献1にはその具体例が示され、周囲の明るさレベルを検出する手段と、映像信号の輝度レベルを検出する手段を備えて、検出された明るさレベル及び映像信号の輝度レベルに応じて、表示画像のコントラストを制御するものである。   In conventional display devices such as television receivers, the contrast and brightness of video signals are adaptively controlled according to the input signal and ambient brightness in order to enhance the expressive power of the image. Attempts have been made to create images. A specific example is shown in Patent Document 1, which includes means for detecting the surrounding brightness level and means for detecting the luminance level of the video signal, and according to the detected brightness level and the luminance level of the video signal. Thus, the contrast of the display image is controlled.

一方で、ディジタルビデオカメラやディジタルカメラの液晶ディスプレイのように屋外の視認性を上げるためカラーフィルタの色純度を薄めに設定されたディスプレイでは、一般的に色再現範囲がテレビに比べて乏しく、輝度に加えて色の表現力を高める手法が望まれている。
特開平6−303551号公報
On the other hand, a display with a low color purity of the color filter to improve outdoor visibility, such as a digital video camera or a liquid crystal display of a digital camera, generally has a poor color reproduction range compared to a TV, and brightness In addition to the above, there is a demand for a method for enhancing the expressiveness of color.
JP-A-6-303551

信号処理で色表現力を高める場合、従来から色差信号のレベルを上げて色を調整するのが一般的であるが、色差信号のレベル調整による色調整ではディスプレイの駆動信号であるRGB信号に変換した際に、オーバーフローが発生し、正しく変換されない色が発生する。これにより色相が変化したり、薄い青空の色が白飛びするなどの課題が発生する。   When increasing the color expressive power through signal processing, it is common to adjust the color by increasing the level of the color difference signal, but in color adjustment by adjusting the level of the color difference signal, it is converted to an RGB signal that is the display drive signal. When this happens, overflow occurs and colors are not converted correctly. As a result, problems such as a change in hue and a pale blue sky color appearing white.

またRGBでコントラストを上げることにより色のレベルも上がるが、コントラストの基準レベルにより一画面中で色レベルが所定よりも低い部分が発生したり、逆に高い部分が発生したりする場合がある。   In addition, although the color level is increased by increasing the contrast in RGB, there may be a portion where the color level is lower than a predetermined value in one screen or a portion where the color level is high depending on the reference level of contrast.

図10にグレイレベルを基準にコントラスト伸長した場合の色の変化の様子を示す。図において、図10(A)は基準レベルよりも暗い画素データの場合を、図10(B)は基準レベル付近の画素データの場合を、図10(C)は基準レベルよりも明るい画素データの場合を示す。   FIG. 10 shows how the color changes when the contrast is expanded based on the gray level. 10A shows the case of pixel data darker than the reference level, FIG. 10B shows the case of pixel data near the reference level, and FIG. 10C shows pixel data brighter than the reference level. Show the case.

図13(A)に示すように着目した画素データが基準レベルより暗いレベルにあるときは、輝度レベルは下がっているのに対し色レベルは上がる。次いで図10(B)のように着目した画素データが基準レベル付近にあるときは、視覚的な輝度レベルは変わらずに色レベルのみが上がる。従ってこの場合、色レベルの上昇のみが強調され視覚的に色が濃くなった印象を与える。次いで着目した画素データが図10(c)基準レベルより明るいレベルにあるときは色レベルに対して輝度レベルの上昇が大きく、視覚的に色が薄くなった印象を与える。   As shown in FIG. 13A, when the focused pixel data is at a darker level than the reference level, the luminance level is lowered while the color level is raised. Next, when the focused pixel data is near the reference level as shown in FIG. 10B, only the color level is increased without changing the visual luminance level. Therefore, in this case, only an increase in the color level is emphasized, giving an impression that the color is darkened visually. Next, when the focused pixel data is at a level brighter than the reference level in FIG. 10 (c), the luminance level is greatly increased with respect to the color level, giving the impression that the color is visually light.

さらに図10(D)に示す画素データの場合は色が飽和し、色相も変化する。さらにコントラストを上げた場合は色が無くなって白つぶれが発生するいわゆる白飛びという問題が発生する。   Further, in the case of the pixel data shown in FIG. 10D, the color is saturated and the hue also changes. Further, when the contrast is increased, there is a problem of so-called whiteout where the color disappears and whiteout occurs.

このようにコントラスト制御においては基準レベルにより色の変化の仕方が画素ごとに異なり、また色のみが強調されて濃くなったりし、自然な色の表現を損なったり、色相も変化するなどの不具合が発生する課題を有していた。   As described above, in contrast control, the method of color change differs depending on the reference level, and only the color is emphasized and darkened, natural color expression is impaired, and hue is also changed. Had problems to occur.

本発明は上記のような課題を改善するためになされたもので、輝度コントラスト制御と色相変化や色飽和の発生しない色レベル制御の両立を実現する画像表示装置を実現するものである。   The present invention has been made in order to improve the above-described problems, and realizes an image display apparatus that realizes both luminance contrast control and color level control in which hue change and color saturation do not occur.

上記課題を解決するための第1の手段は、入力信号に応じて最適な画像調整を行う画像表示装置において、入力の輝度信号の調整を行う輝度調整手段と、上記輝度調整手段から出力される輝度信号と入力の色差信号を、色相信号、色彩度信号、明度信号の3つの信号に変換する色空間変換手段と、上記色空間変換手段から出力される色彩度信号を調整する色彩度調整手段と、上記色彩度調整手段から出力される色彩度信号と上記色空間変換手段から出力される色相信号、明度信号を、R、G、Bの映像信号に変換する色空間逆変換手段と、入力の輝度信号から画像の輝度に関する特徴値を検出する輝度情報検出手段と、上記色彩度信号から画像の色彩度に関する特徴値を検出する色彩度検出手段と、上記輝度情報検出手段および上記色彩度検出手段から得られる画像の特徴情報により輝度信号の制御値および色彩度信号の制御値を演算し、上記輝度調整手段および上記色彩度調整手段に出力する制御パラメータ演算手段とから構成するものである。   A first means for solving the above problems is a brightness adjusting means for adjusting an input brightness signal and an output from the brightness adjusting means in an image display device that performs an optimal image adjustment according to an input signal. Color space conversion means for converting a luminance signal and an input color difference signal into three signals of a hue signal, a color saturation signal, and a brightness signal; and a color saturation adjustment means for adjusting a color saturation signal output from the color space conversion means A color space reverse conversion means for converting the color saturation signal output from the color saturation adjustment means and the hue signal and lightness signal output from the color space conversion means into R, G, and B video signals; Luminance information detecting means for detecting a characteristic value related to the luminance of the image from the luminance signal, color saturation detecting means for detecting a characteristic value related to the color saturation of the image from the color saturation signal, the luminance information detecting means and the color saturation detection. It calculates a control value of the control value and the color saturation signal of the luminance signal by the characteristic information of the image obtained from the means, and constitutes a control parameter calculating means for outputting to said luminance adjusting means and said color adjusting means.

上記課題を解決するための第2の手段は、入力信号に応じて最適な画像調整を行う画像表示装置において、入力の輝度信号の調整を行う輝度調整手段と、上記輝度調整手段から出力される輝度信号と入力の色差信号を、色相信号、色彩度信号、明度信号の3つの信号に変換する色空間変換手段と、上記色空間変換手段から出力される色彩度信号を調整する色彩度調整手段と、上記色彩度調整手段から出力される色彩度信号と上記色空間変換手段から出力される色相信号、明度信号を、R、G、Bの映像信号に変換する色空間逆変換手段と、入力の輝度信号から画像の輝度に関する特徴値を検出する輝度情報検出手段と、上記色彩度信号から画像の色彩度に関する特徴値を検出する色彩度検出手段と、上記輝度情報検出手段および上記色彩度検出手段から得られる画像の特徴情報により輝度信号の制御値および色彩度信号の制御値を演算し、上記輝度調整手段および上記色彩度調整手段に出力する制御パラメータ演算手段と上記制御パラメータ値演算手段から出力される制御値により上記色空間逆変換手段から出力された信号の輝度値を補正する輝度補正手段とから構成するようにしたものである。   According to a second means for solving the above problem, in an image display apparatus that performs an optimal image adjustment according to an input signal, a luminance adjusting means that adjusts an input luminance signal and an output from the luminance adjusting means. Color space conversion means for converting a luminance signal and an input color difference signal into three signals of a hue signal, a color saturation signal, and a brightness signal; and a color saturation adjustment means for adjusting a color saturation signal output from the color space conversion means A color space reverse conversion means for converting the color saturation signal output from the color saturation adjustment means and the hue signal and lightness signal output from the color space conversion means into R, G, and B video signals; Luminance information detecting means for detecting a characteristic value related to the luminance of the image from the luminance signal, color saturation detecting means for detecting a characteristic value related to the color saturation of the image from the color saturation signal, the luminance information detecting means and the color saturation detection. From the control parameter calculation means and the control parameter value calculation means for calculating the control value of the luminance signal and the control value of the color saturation signal based on the feature information of the image obtained from the means and outputting to the brightness adjustment means and the color saturation adjustment means It comprises brightness correction means for correcting the brightness value of the signal output from the color space inverse conversion means according to the output control value.

本発明の画像表示装置は、色相変化や色飽和がない色制御が可能なため、色の表現力を格段に高めることができるという効果を有する。さらには、色を上げた場合に視覚的な輝度が低下する場合があるが、本発明の色制御では輝度に与える影響が極めて小さいため、従来の輝度コントラスト制御に影響を与えることのない色制御が可能であり、極めて高い画像表現力が得られるという格別の効果を有するものである。   The image display apparatus of the present invention has an effect that the color expression can be remarkably enhanced because color control without hue change and color saturation is possible. Furthermore, when the color is raised, the visual brightness may decrease, but the color control of the present invention has a very small effect on the brightness, so that the color control does not affect the conventional brightness contrast control. It has a special effect that an extremely high image expression power can be obtained.

(実施の形態1)
以下に、本発明の一実施の形態について、図1を用いて説明する。
図1において、輝度信号と色差信号から構成される映像信号(以下、輝度信号と色差信号から構成される映像信号の色空間をYUV空間と記す)に対し、1はYUV空間における輝度信号の特徴を検出する輝度情報検出手段であり、輝度信号の1フレーム内における輝度平均値、輝度最大値、輝度最小値を検出する。
(Embodiment 1)
Hereinafter, an embodiment of the present invention will be described with reference to FIG.
In FIG. 1, for a video signal composed of a luminance signal and a color difference signal (hereinafter, a color space of a video signal composed of a luminance signal and a color difference signal is referred to as a YUV space), 1 is a feature of the luminance signal in the YUV space. Is a luminance information detecting means for detecting a luminance average value, a luminance maximum value, and a luminance minimum value within one frame of the luminance signal.

2は上記輝度信号のコントラストおよびブライトの調整を行う輝度調整手段、3は輝度調整手段2から出力される輝度信号と入力される色差信号から、明度信号V、色彩度信号S、色相信号H(以下、明度信号V、色彩度信号S、色相信号Hから構成される映像信号の色空間をHSV空間と記す)に変換する色空間変換手段である。具体的には、輝度信号と色差信号から一旦RGB信号に変換され、RGB信号を次の変換式で明度信号、色彩度信号、色相信号に変換する。   2 is a brightness adjusting means for adjusting the contrast and brightness of the brightness signal, 3 is a brightness signal V, a color saturation signal S, and a hue signal H (from the brightness signal output from the brightness adjusting means 2 and the input color difference signal. Hereinafter, color space conversion means for converting a color space of a video signal composed of a lightness signal V, a color saturation signal S, and a hue signal H into an HSV space). Specifically, the luminance signal and the color difference signal are once converted into RGB signals, and the RGB signals are converted into lightness signals, color saturation signals, and hue signals by the following conversion formulas.

明度信号V=MAX(R,G,B)・・・・数式1
ここでMAX(R,G,B)とは、各画素データにおけるRGB信号のうち最大レベルの信号を示す。
Lightness signal V = MAX (R, G, B)... Formula 1
Here, MAX (R, G, B) indicates a signal of the maximum level among RGB signals in each pixel data.

色彩度信号S={MAX(R,G,B)−MIN(R,G,B)}/MAX(R,G,B)
・・・・数式2
ここでMIN(R,G,B)とは、各画素データにおけるRGB信号のうち最小レベルの信号を示す。
Color saturation signal S = {MAX (R, G, B) −MIN (R, G, B)} / MAX (R, G, B)
.... Formula 2
Here, MIN (R, G, B) indicates a signal of the minimum level among the RGB signals in each pixel data.

色相信号H={MID(R,G,B)−MIN(R,G,B)}/
{MAX(R,G,B)−MIN(R,G,B)} ・・・・・・・・数式3
ここでMID(R,G,B)とは、各画素データにおけるRGB信号のうち中間レベルの信号を示す。さらに色相情報は上記色相信号とともにRGBの大小関係で区別される色相補助信号Tを伴う。この色相補助信号Tは、R>G≧B(赤〜黄のデータ)のときは「0」、G≧R>B(黄色〜緑のデータ)のときは「1」、G>B≧R(緑〜シアンのデータ)のときは「2」、B≧G>R(シアン〜青のデータ)のときは「3」、B>R≧G(青〜マゼンタのデータ)のときは「4」、R≧B>G(マゼンタ〜赤のデータ)のときは「5」となるように構成される。
Hue signal H = {MID (R, G, B) −MIN (R, G, B)} /
{MAX (R, G, B) -MIN (R, G, B)}... Equation 3
Here, MID (R, G, B) indicates an intermediate level signal among RGB signals in each pixel data. Furthermore, the hue information is accompanied by a hue auxiliary signal T that is distinguished by the magnitude relationship of RGB together with the hue signal. The hue auxiliary signal T is “0” when R> G ≧ B (red to yellow data), “1” when G ≧ R> B (yellow to green data), and G> B ≧ R. “2” for (green to cyan data), “3” for B ≧ G> R (cyan to blue data), and “4” for B> R ≧ G (blue to magenta data). ”, R ≧ B> G (magenta to red data), it is configured to be“ 5 ”.

4は上記色彩度信号Sの特徴を検出する色彩度検出手段であり、1フレーム内における色彩度最大値を検出する。5は色彩度信号Sのレベル(色レベルと等価)を調整する色彩度調整手段、6は輝度情報検出手段1と色彩度検出手段4から得られた画像の特徴をもとに入力画像に最適な輝度コントラスト値、輝度ブライト値、色彩度値を算出し、輝度調整手段2および色彩度調整手段5の各調整値に反映させる制御パラメータ演算手段、7は明度信号V、色彩度信号S、色相信号HからRGB信号に変換する色空間逆変換手段である。   Reference numeral 4 denotes color saturation detection means for detecting the feature of the color saturation signal S, and detects the maximum value of color saturation within one frame. 5 is a color / saturation adjusting means for adjusting the level (equivalent to the color level) of the color / saturation signal S, and 6 is optimal for an input image based on the image characteristics obtained from the luminance information detecting means 1 and the color / saturation detecting means 4. Control parameter calculation means for calculating a brightness contrast value, brightness brightness value, and color saturation value and reflecting them in the respective adjustment values of the brightness adjustment means 2 and the color saturation adjustment means 5; brightness signal V, color saturation signal S, hue Color space inverse conversion means for converting the signal H to the RGB signal.

ここでHSVカラーモデルは近年映像系においても注目されている色空間であり周知の通りであるが、以下の説明を判りやすくするため、HSV空間での色表現を、図を用いて説明する。   Here, the HSV color model is a color space that has been attracting attention in the video system in recent years and is well known, but in order to make the following explanation easy to understand, the color expression in the HSV space will be described with reference to the drawings.

図2は明度信号Vを変化させたときの画素データの変化を示す。図2に示すように明度信号のゲインを変えることはRGB空間において黒レベル基準でコントラストを変えることと等価となる。   FIG. 2 shows changes in pixel data when the brightness signal V is changed. As shown in FIG. 2, changing the gain of the brightness signal is equivalent to changing the contrast on the basis of the black level in the RGB space.

図3は色相信号Hを変化させたときの画素データの変化を示す。図3は画素データが赤〜黄色までの変化を示しているが、RGBのうちの最大レベルの信号と最小レベルの信号を変えずに、つまり色の彩度を変えずに色相を変える動作をする。   FIG. 3 shows changes in pixel data when the hue signal H is changed. FIG. 3 shows the change of pixel data from red to yellow, but the operation of changing the hue without changing the maximum level signal and the minimum level signal of RGB, that is, without changing the color saturation. To do.

図4は色彩度信号Sを変化させたときの画素データの変化を示す。図4に示すように色彩度信号Sのレベルを大きくした場合、(数式3)で表される比率を変えずにRGBのうちの最小レベルの信号を小さくする動作をする。逆に小さくした場合は最小レベルの信号を大きくする動作を行い、「0」にした場合はR=G=Bとなり色のない画素データとなる。   FIG. 4 shows changes in pixel data when the color saturation signal S is changed. As shown in FIG. 4, when the level of the color saturation signal S is increased, an operation is performed to reduce the signal of the minimum level of RGB without changing the ratio represented by (Equation 3). Conversely, when the value is reduced, an operation for increasing the signal of the minimum level is performed. When the value is set to “0”, R = G = B and pixel data without color is obtained.

上記のように構成された本発明のポイントは、輝度制御をHSV空間の明度信号ではなくYUV空間で行い、色の制御をYUV空間の色差信号ではなくHSV空間の色彩度信号で行っていることである。   The point of the present invention configured as described above is that brightness control is performed in the YUV space instead of the brightness signal in the HSV space, and color control is performed in the color saturation signal in the HSV space instead of the color difference signal in the YUV space. It is.

まず輝度制御について言えば、HSV空間の明度信号VはRGBの最大レベルの信号を示すため、例えば視覚的に輝度レベルが小さい青の信号でも明度信号Vは大きな値を示す。このように明度信号Vは、RGBの色が人間の目に与える輝度感と必ずしも一致した信号ではないため、明るい画像と暗い画像のメリハリをダイナミックに表現することに適していない。   First, regarding brightness control, the brightness signal V in the HSV space indicates a signal of the maximum RGB level, and thus the brightness signal V shows a large value even for a blue signal having a visually low brightness level. As described above, the lightness signal V is not necessarily a signal in which the RGB color is consistent with the luminance feeling given to the human eye, and thus is not suitable for dynamically expressing the sharpness of a bright image and a dark image.

一方で、YUV空間の輝度信号は人間の目に与える視覚的な輝度レベルと概ね等価な信号であるため輝度制御によって明るい画像と暗い画像のメリハリをダイナミックに表現することが可能である。しかしながら、前述したようにYUV空間での色制御は正しくRGB空間に変換されないことから色相が変化したり、色つぶれが発生するなどの課題がある。これに対しHSV空間の色彩度信号Sの値を変えても色相が変化することはない。さらに色彩度調整手段5の入出力特性を図5に示すようにすれば、色彩度を上げたときの色飽和を簡単に抑制することができる。   On the other hand, since the luminance signal in the YUV space is a signal that is substantially equivalent to the visual luminance level given to the human eye, it is possible to dynamically express the sharpness of a bright image and a dark image by luminance control. However, as described above, since color control in the YUV space is not correctly converted into the RGB space, there are problems such as a hue change and color collapse. On the other hand, even if the value of the color saturation signal S in the HSV space is changed, the hue does not change. Furthermore, if the input / output characteristics of the color saturation adjusting means 5 are as shown in FIG. 5, color saturation when the color saturation is increased can be easily suppressed.

以下、具体的な例を挙げて動作を説明する。   The operation will be described below with a specific example.

図6は輝度の制御例としてコントラスト伸長とブライト調整を行う例を示している。輝度情報検出手段1から得られた情報が輝度最大値、輝度平均値、輝度最小値である入力信号に対し、ダイナミックレンジを表す図6のDと(輝度最大値―輝度最小値)の値を用いて、D/(輝度最大値―輝度最小値)倍のコントラスト伸長を行う。図6で示すD/(輝度最大値―輝度最小値)倍した信号は、輝度平均値を基準にコントラスト伸長したものである。   FIG. 6 shows an example of performing contrast expansion and brightness adjustment as an example of luminance control. For the input signal whose information obtained from the luminance information detecting means 1 is the maximum luminance value, the average luminance value, and the minimum luminance value, the value of D and (maximum luminance value−minimum luminance value) in FIG. The contrast is expanded by D / (maximum luminance value−minimum luminance value) times. The signal multiplied by D / (maximum luminance value−minimum luminance value) shown in FIG. 6 is obtained by expanding the contrast based on the average luminance value.

次に、コントラスト伸長によりダイナミックレンジに収まらなくなったレベル(図6のB)をブライト調整によりダイナミックレンジに収まるように調整を行う。ここで用いているYUV空間の輝度信号は前述のように人間の目に与える視覚的な輝度レベルと概ね等価な信号であるため、入力された輝度信号をダイナミックレンジまで伸長することでコントラスト感を高めることが可能である。   Next, an adjustment is made so that the level (B in FIG. 6) that does not fit in the dynamic range due to contrast expansion falls within the dynamic range by brightness adjustment. Since the luminance signal in the YUV space used here is a signal that is substantially equivalent to the visual luminance level given to the human eye as described above, a sense of contrast is obtained by extending the input luminance signal to the dynamic range. It is possible to increase.

次に、色の制御について図4と図5を用いて説明を行う。色彩度検出手段4から得られた色彩度最大値が図5で示されるYの値を取る場合には、図5の入出力特性に示されているA,Bの値の比率により、色彩度信号Sのレベルが求まり、図4に示している画素データの調整が行われる。   Next, color control will be described with reference to FIGS. When the maximum value of color saturation obtained from the color saturation detection means 4 takes the value Y shown in FIG. 5, the color saturation is determined by the ratio of the values A and B shown in the input / output characteristics of FIG. The level of the signal S is obtained, and the pixel data shown in FIG. 4 is adjusted.

入力信号が図4の色彩度信号Sのレベル1.0で表される大小関係であり、B/Aの値が例えば1.5である場合には、画素データは図4で示される色彩度信号Sのレベル1.0で表される大小関係から色彩度信号Sのレベル1.5で表される大小関係へ変化する。この時、前述のように色彩度信号のレベルを大きくしても(数式3)で表される比率、即ち、
{MID(R,G,B)−MIN(R,G,B)}/{MAX(R,G,B)−MIN(R,G,B)}
は変化しないので色相が変化することはない。前述の図10(D)で生じた色飽和も同様の理由から発生することはない。
When the input signal has a magnitude relationship represented by the level 1.0 of the color saturation signal S in FIG. 4 and the value of B / A is 1.5, for example, the pixel data has the color saturation shown in FIG. The magnitude relationship represented by level 1.0 of the signal S changes from the magnitude relationship represented by the level 1.5 of the color saturation signal S. At this time, even if the level of the color saturation signal is increased as described above, the ratio represented by (Equation 3), that is,
{MID (R, G, B) -MIN (R, G, B)} / {MAX (R, G, B) -MIN (R, G, B)}
Does not change, so the hue does not change. The color saturation generated in FIG. 10D does not occur for the same reason.

このように、本実施例では輝度コントラスト制御と色相変化や色飽和の発生しない色レベル制御の両立が実現できるため、極めて高い画像表現力が得られる。   As described above, in this embodiment, since both brightness contrast control and color level control in which hue change and color saturation do not occur can be realized, extremely high image expression power can be obtained.

(実施の形態2)
つぎに、本発明の他の一実施の形態について図を用いて説明する。
(Embodiment 2)
Next, another embodiment of the present invention will be described with reference to the drawings.

図7において、9は制御パラメータ演算手段6により算出された色彩度の制御量に応じて、RGB信号を補正し、色制御による輝度変化を最小限に抑制する輝度補正手段である。その他の構成および動作は図1の実施例で説明した構成、動作と同一である。   In FIG. 7, reference numeral 9 denotes a luminance correction unit that corrects the RGB signal according to the control amount of the color saturation calculated by the control parameter calculation unit 6 and suppresses the luminance change due to the color control to a minimum. Other configurations and operations are the same as those described in the embodiment of FIG.

つぎに、本発明の他の一実施の形態について図を用いて説明する。図7において、9は制御パラメータ演算手段6により算出された色彩度の制御量に応じて、RGB信号を補正し、色制御による輝度変化を最小限に抑制する輝度補正手段である。その他の構成および動作は図1の実施例で説明した構成、動作と概略同一であるが、異なる点は、色空間変換手段3からは明度信号V、色彩度信号S、色相信号Hを生成する過程で生じる第1のMIN(R,G,B)の信号を出力するように構成されておりさらに、色空間逆変換手段7からはRGBの信号に変換する過程で生じる第2のMIN(R,G,B)の信号を出力するように構成されているものである。   Next, another embodiment of the present invention will be described with reference to the drawings. In FIG. 7, reference numeral 9 denotes a luminance correction unit that corrects the RGB signal according to the control amount of the color saturation calculated by the control parameter calculation unit 6 and suppresses the luminance change due to the color control to a minimum. Other configurations and operations are substantially the same as the configurations and operations described in the embodiment of FIG. 1 except that a lightness signal V, a color saturation signal S, and a hue signal H are generated from the color space conversion unit 3. The first MIN (R, G, B) signal generated in the process is output, and the color space inverse conversion means 7 outputs the second MIN (R) generated in the process of converting to the RGB signal. , G, B) are configured to output signals.

次いで本実施例の特徴である輝度補正手段9について説明する。図8に輝度補正手段9によるRGB信号の補正をした場合の動作を示す。色彩度信号Sのゲインを大きくしたときの色空間逆変換手段7のRGBの出力信号は図8(A)に示すようになる。図8(A)に示すように色彩度信号Sのゲインを大きくすれば、RGBのトータルでの輝度レベルは低下する。すなわち、輝度制御で最適な輝度レベルに制御しても色制御により画面の明るさが変化する不具合が発生する。輝度補正手段9は図8(B)に示すように色制御で低下した輝度レベルに相当する輝度補正値をRGB信号に一様に加えるものである。   Next, the luminance correction means 9 that is a feature of this embodiment will be described. FIG. 8 shows an operation when the RGB correction is performed by the luminance correction means 9. The RGB output signal of the color space inverse conversion means 7 when the gain of the color saturation signal S is increased is as shown in FIG. If the gain of the color saturation signal S is increased as shown in FIG. 8A, the total luminance level of RGB decreases. That is, there is a problem that the brightness of the screen changes due to the color control even if the brightness level is controlled to the optimum brightness level. As shown in FIG. 8B, the luminance correction means 9 uniformly adds a luminance correction value corresponding to the luminance level reduced by the color control to the RGB signal.

これを実現する簡易的な手法の一例を図8(B)に示している。図9に輝度補正手段9の具体的な構成例を示すように、色空間変換手段3から出力される第1のMINレベルの信号と、色空間逆変換手段7から出力される第2のMINレベルの信号の差(この差は図8(A)の差dになる)の1/2のレベルをRGBの各信号に加えるものである。
これにより色制御によって発生した輝度低下を大きく改善することができる。
An example of a simple technique for realizing this is shown in FIG. As shown in a specific configuration example of the luminance correction unit 9 in FIG. 9, the first MIN level signal output from the color space conversion unit 3 and the second MIN output from the color space inverse conversion unit 7. A level half of the level signal difference (this difference becomes the difference d in FIG. 8A) is added to each RGB signal.
As a result, it is possible to greatly improve the luminance reduction caused by the color control.

この例では、簡易的な手法で輝度補正を行っているが、回路規模やマイコンの負荷の制約がなければ次のように変換後の輝度値と変換前の輝度値から補正係数を演算すればなお正確な輝度補正が可能である。   In this example, brightness correction is performed using a simple method, but if there is no restriction on the circuit scale or microcomputer load, the correction coefficient can be calculated from the brightness value after conversion and the brightness value before conversion as follows: In addition, accurate brightness correction is possible.

変換前の輝度値L1= MAX(R,G,B)×α+MID(R,G,B)×β
+MIN(R,G,B)×γ ・・・数式4
ここでαはMAX(R,G,B)の輝度係数、βはMID(R,G,B)の輝度係数、
γはMIN(R,G,B)の輝度係数である。例えば
MAX(R,G,B)=R、MID(R,G,B)=G、MIN(R,G,B)=B
であれば、例えばα:β:γはRGBの輝度比率から概ね1:2:1とすればよい。
Luminance value L1 before conversion = MAX (R, G, B) × α + MID (R, G, B) × β
+ MIN (R, G, B) × γ Equation 4
Where α is the luminance coefficient of MAX (R, G, B), β is the luminance coefficient of MID (R, G, B),
γ is a luminance coefficient of MIN (R, G, B). For example, MAX (R, G, B) = R, MID (R, G, B) = G, MIN (R, G, B) = B
Then, for example, α: β: γ may be approximately 1: 2: 1 from the luminance ratio of RGB.

変換後の輝度値L2= MAX‘(R,G,B)×α+MID‘(R,G,B)×β+MIN‘(R,G,B)×γ ・・・数式5
RGBの輝度補正係数は、L2/L1となり、輝度補正手段9では、入力のRGBのそれぞれに上記輝度補正係数(L2/L1)を乗じて出力すればよい。
Luminance value L2 after conversion = MAX ′ (R, G, B) × α + MID ′ (R, G, B) × β + MIN ′ (R, G, B) × γ Expression 5
The RGB brightness correction coefficient is L2 / L1, and the brightness correction means 9 may multiply the input RGB by the brightness correction coefficient (L2 / L1) and output the result.

以上説明したように、本実施例では、色制御に伴う輝度低下を補正することで輝度に影響することなく色の制御が可能となり、色再現範囲の狭いディスプレイの色表現力を大幅に高めることができる。   As described above, in this embodiment, by correcting the luminance decrease due to color control, it is possible to control the color without affecting the luminance, and greatly improve the color expression of a display with a narrow color reproduction range. Can do.

本発明は、屋内あるいは屋外で使用する機器の画像表示装置に適用できる。   The present invention can be applied to an image display device for equipment used indoors or outdoors.

本発明の第1の手段による画像表示装置を示すブロック図The block diagram which shows the image display apparatus by the 1st means of this invention HSV空間において明度信号Vを変化させた時の画素データの変化を説明する図The figure explaining the change of pixel data when the brightness signal V is changed in the HSV space. HSV空間において色相信号Hを変化させた時の画素データの変化を説明する図The figure explaining the change of the pixel data when changing the hue signal H in HSV space. HSV空間において色彩度信号Sを変化させた時の画素データの変化を説明する図The figure explaining the change of pixel data when changing the color saturation signal S in HSV space. 本発明の第1の手段による色彩度調整手段の入出力特性を説明する図The figure explaining the input-output characteristic of the color saturation adjustment means by the 1st means of this invention 本発明の第1の手段による輝度調整手段の動作を説明する図The figure explaining operation | movement of the brightness adjustment means by the 1st means of this invention 本発明の第2の手段による画像表示装置を示すブロック図The block diagram which shows the image display apparatus by the 2nd means of this invention 本発明の第2の手段による輝度補正手段の動作を説明するブロック図The block diagram explaining the operation | movement of the brightness correction means by the 2nd means of this invention 本発明の第2の手段による輝度補正手段の具体例を示すブロック図The block diagram which shows the specific example of the brightness correction means by the 2nd means of this invention RGB信号でコントラストを変化させた時の画素データの変化を説明する図The figure explaining the change of pixel data when changing contrast with RGB signal

符号の説明Explanation of symbols

1 輝度情報検出手段
2 輝度調整手段
3 色空間変換手段
4 色彩度検出手段
5 色彩度調整手段
6 制御パラメータ演算手段
7 色空間逆変換手段
8 パネル
9 輝度補正手段
DESCRIPTION OF SYMBOLS 1 Luminance information detection means 2 Brightness adjustment means 3 Color space conversion means 4 Color saturation detection means 5 Color saturation adjustment means 6 Control parameter calculation means 7 Color space reverse conversion means 8 Panel 9 Brightness correction means

Claims (3)

入力信号に応じて最適な画像調整を行う画像表示装置において、入力の輝度信号の調整を行う輝度調整手段と、上記輝度調整手段から出力される輝度信号と入力の色差信号を、色相信号、色彩度信号、明度信号の3つの信号に変換する色空間変換手段と、上記色空間変換手段から出力される色彩度信号を調整する色彩度調整手段と、上記色彩度調整手段から出力される色彩度信号と上記色空間変換手段から出力される色相信号、明度信号を、R、G、Bの映像信号に変換する色空間逆変換手段と、入力の輝度信号から画像の輝度に関する特徴値を検出する輝度情報検出手段と、上記色彩度信号から画像の色彩度に関する特徴値を検出する色彩度検出手段と、上記輝度情報検出手段および上記色彩度検出手段から得られる画像の特徴情報により輝度信号の制御値および色彩度信号の制御値を演算し、上記輝度調整手段および上記色彩度調整手段に出力する制御パラメータ演算手段とから構成されたことを特徴とする画像表示装置。 In an image display device that performs an optimal image adjustment according to an input signal, a luminance adjustment unit that adjusts an input luminance signal, a luminance signal output from the luminance adjustment unit, and an input color difference signal are converted into a hue signal, a color Color space conversion means for converting the signal into three signals, a color signal and a brightness signal, color saturation adjustment means for adjusting the color saturation signal output from the color space conversion means, and color saturation output from the color saturation adjustment means Color space inverse conversion means for converting the signal and the hue signal and lightness signal output from the color space conversion means into R, G, and B video signals, and a characteristic value relating to the luminance of the image is detected from the input luminance signal. Luminance information detection means, color saturation detection means for detecting a feature value related to the color saturation of the image from the color saturation signal, and image feature information obtained from the brightness information detection means and the color saturation detection means. Calculates a control value of the control value and the color saturation signal of the degree signal, the image display apparatus being characterized in that is composed of a control parameter calculating means for outputting to said luminance adjusting means and said color adjusting means. 入力信号に応じて最適な画像調整を行う画像表示装置において、入力の輝度信号の調整を行う輝度調整手段と、上記輝度調整手段から出力される輝度信号と入力の色差信号を、色相信号、色彩度信号、明度信号の3つの信号に変換する色空間変換手段と、上記色空間変換手段から出力される色彩度信号を調整する色彩度調整手段と、上記色彩度調整手段から出力される色彩度信号と上記色空間変換手段から出力される色相信号、明度信号を、R、G、Bの映像信号に変換する色空間逆変換手段と、入力の輝度信号から画像の輝度に関する特徴値を検出する輝度情報検出手段と、上記色彩度信号から画像の色彩度に関する特徴値を検出する色彩度検出手段と、上記輝度情報検出手段および上記色彩度検出手段から得られる画像の特徴情報により輝度信号の制御値および色彩度信号の制御値を演算し、上記輝度調整手段および上記色彩度調整手段に出力する制御パラメータ演算手段と、上記制御パラメータ値演算手段から出力される制御値により上記色空間逆変換手段から出力された信号の輝度値を補正する輝度補正手段とから構成されたことを特徴とする画像表示装置。 In an image display device that performs an optimal image adjustment according to an input signal, a luminance adjustment unit that adjusts an input luminance signal, a luminance signal output from the luminance adjustment unit, and an input color difference signal are converted into a hue signal, a color Color space conversion means for converting the signal into three signals, a color signal and a brightness signal, color saturation adjustment means for adjusting the color saturation signal output from the color space conversion means, and color saturation output from the color saturation adjustment means Color space inverse conversion means for converting the signal and the hue signal and lightness signal output from the color space conversion means into R, G, and B video signals, and a characteristic value relating to the luminance of the image is detected from the input luminance signal. Luminance information detection means, color saturation detection means for detecting a feature value related to the color saturation of the image from the color saturation signal, and image feature information obtained from the brightness information detection means and the color saturation detection means. A control parameter calculation unit that calculates a control value of the degree signal and a control value of the color saturation signal and outputs the calculated value to the luminance adjustment unit and the color saturation adjustment unit, and the control value output from the control parameter value calculation unit An image display apparatus comprising: a luminance correction unit that corrects a luminance value of a signal output from the spatial inverse conversion unit. 上記輝度補正手段は、上記色空間変換手段で明度信号、色彩度信号、色相信号に変換する過程で生じるR、G、B信号の最小値である第1のMINレベルの信号と、上記色空間逆変換手段でRGBの信号に変換する過程で生じるRGB信号の最小値である第2のMINレベルの信号との差の1/2のレベルを、上記色空間逆変換手段で出力されるRGBの信号に加算することを特徴とする請求項2記載の画像表示装置。 The luminance correction means includes a first MIN level signal that is a minimum value of R, G, and B signals generated in the process of conversion to a lightness signal, a color saturation signal, and a hue signal by the color space conversion means, and the color space. The half level of the difference from the second MIN level signal, which is the minimum value of the RGB signal generated in the process of converting into the RGB signal by the inverse conversion means, is the RGB output from the color space inverse conversion means. The image display device according to claim 2, wherein the image display device adds to the signal.
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