GB2432074A - Improving picture quality using a cross-colour detection circuit - Google Patents

Improving picture quality using a cross-colour detection circuit Download PDF

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Publication number
GB2432074A
GB2432074A GB0621685A GB0621685A GB2432074A GB 2432074 A GB2432074 A GB 2432074A GB 0621685 A GB0621685 A GB 0621685A GB 0621685 A GB0621685 A GB 0621685A GB 2432074 A GB2432074 A GB 2432074A
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signal
picture
color
cross
inputted
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GB0621685A
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GB2432074B (en
GB0621685D0 (en
Inventor
Katsunobu Kimura
Mitsuo Nakajima
Yoshiaki Mizuhashi
Haruki Takata
Masaaki Matsukawa
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Hitachi Ltd
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Hitachi Ltd
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Priority claimed from JP2005160864A external-priority patent/JP4561482B2/en
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N9/00Details of colour television systems
    • H04N9/64Circuits for processing colour signals
    • H04N9/642Multi-standard receivers
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N9/00Details of colour television systems
    • H04N9/64Circuits for processing colour signals
    • H04N9/643Hue control means, e.g. flesh tone control
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N9/00Details of colour television systems
    • H04N9/64Circuits for processing colour signals
    • H04N9/646Circuits for processing colour signals for image enhancement, e.g. vertical detail restoration, cross-colour elimination, contour correction, chrominance trapping filters

Abstract

A picture display system where a cross-colour detection 105 circuit detects a cross-colour element in an inputted picture signal, a picture quality control circuit 108 adjusts the picture quality in accordance with the result of the detection by the cross-colour detection circuit 105 and the adjusted picture is displayed on a display device.

Description

<p>PICTURE DISPLAY SYSTEM FOR ADJUSTING IMAGE QUALITY OF A PICTURE</p>
<p>SIGNAL HAVING HIGHER NUMBER OF SCANNING LINES</p>
<p>[0001] The present invention relates to a picture display system such as a television set. More specifically, this invention relates to a picture display system capable of the adjustment of picture quality in accordance with the formats of an inputted picture signal, e.g. formats of a digital television signal.</p>
<p>[00021 Digital television signals of various formats are transmitted from broadcast stations (and may be available from playback devices). Typical digital television signal may be a HD (High Definition) signal having a HD format of 1,125 total number of scanning lines (1,080 effective number of scanning lines) or a SD (Standard Definition) signal having a SD format of 525 total number of scanning lines (effective 480 number of scanning lines) [0003] There are two types of the HD signal; i.e., a S-HD signal and an original HD signal. The S-HD signal has the HD format of 1,125 total number of scanning lines into which broadcast stations have up-converted the SD format of 525 total number of scanning lines. For example, the original ND signal may have the HD format produced from pictures taken by high-definition TV cameras. Japanese Unexamined Patent Publication No. 2004-289753 discloses a technique to distinguish between the S-HD signal and the original HD signal.</p>
<p>[0004] According to the above prior art, the picture quality of the S-HD signal and that of the original HD signal are corrected in accordance with their respective characteristics because the frequency bands of the S-HD signal and the original HD signal are different from each other. However, as described in the paragraph 0005 of Japanese Unexamined Patent Publication No. 2004-289753, only the sharpness (contour correction) is considered as an adjustment of picture quality in the prior art.</p>
<p>The color-reproduction range of the S-HD signal and that of the original HD signal are different from each other, and a colorreproduction range of the S-HD signal is close to that of NTSC signal. Therefore, different approaches need to be adopted to the color correction, as the adjustment of picture quality, of the S-HD signal and that of the original HIJ signal.</p>
<p>However, such different approaches are not considered in the</p>
<p>above prior art.</p>
<p>[0005) Mso, theabovepriorart discloses the following teachings for distinguishing between the S-HD signal and the original HD signal: (1) touse aspect ratio inforrriation added to the digital TV signal (ii) todetect sidepanelsaddedtorightandleftsidesof picture of the digital TV signal.</p>
<p>In many cases, however, such aspect ratio information is not added to the digital TV signal. In such cases, the prior art fails to distinguish between the S-HD signal and the original I-ID signal. Besides, the detection of side panels added to right and left sides of the picture of the digital TV signal is based on the assumption that the aspect ratio of the picture is 4 3 as shown in Fig. 2 of this application. In the case of some S-ND signals, however, the aspect ratio of the picture that is 16: 9 also exists as shown by the reference numeral 204 in Fig. 2. Eveniftheaspectratioofthepictureis4:3, itisdifficult to detect side panels if side panels are not black, but have certain brightness as shown by the reference numeral 203 in Fig. 2 or if side panels contain certain picture images. In this case, the picture may be regarded as having the aspect ratio of 16: 9. Thus, the above prior art fails to adequately distinguish between the S-ND signal and the original HD signal.</p>
<p>[0006J Hence a need exists for providing a technique to distinguish between the S-ND signal and the original ND signal and for providing a technique to carryout an adj ustment of picture quality of both the S-HD signal and the original HD signal respectively and appropriately.</p>
<p>[0007] The teachings herein alleviate one or more of the above noted problems with a picture display technique that carries out the adjustment of image qualityof the inputtedpicture signal in accordance with a type of the inputted picture signal, e.g., a converted type of a first picture signal into which a second picture signal, having fewer scanning lines than that of the first picture signal, is converted, and an original type of the first picture signal, and then displays a picture of an adjusted picture signal on a display device.</p>
<p>Inthefollowingdescriptions, theNDsignal isoneexample of the first picture signal and the SD signal is one example of the second picture signal. Therefore, the S-HD signal is one example of the converted type of the first picture signal into which the second picture signal is converted and the original ED signal is one example of the original type of the first picture signal originally.</p>
<p>[0008] The adjustment of image quality may be carried out by using a first color set value for the SD signal if the inputted picture signal hasis the S-RD signal and by using a second color set value for the RD signal if inputted picture signal is the original RD signal.</p>
<p>[0009] The determination may be made by detecting cross-color element of the inputtedHDsignal orusing EPG (Electronic Program Guide) information.</p>
<p>[0010] The adjustment of the picture quality may include at least one of hue correction of the inputted picture signal in a certain hue range and chroma correction of the inputted picture signal in a certain chroma range. The adjustment of the picture quality may also include a contour correction of the inputted picture signal.</p>
<p>[00111 The above teachings provide a picture display system capable of better reproducing colors in accordance with the formats of inputted ND signal, reproducing in high quality the pictures of inputted RD signal, better determining whether the inputted ND signal is of the S -HD format or the original HD format, and carrying out the adjustment of picture qual ity appropriately in accordance with the formats of the inputted HD signal.</p>
<p>[0012] Additional advantages and novel features will be set forth in part in the descriptionwhich follows, and in part will become apparent to those skilled in the art upon examination of the following and the accompanying drawings or may be learned by production or operation of the examples. The advantages of the present teachings may be realized and attained by practice or use of the methodologies, instrumentalities and combinations particularly pointed out in the appended claims.</p>
<p>[0013] The drawing figures depict one or more implementations in accord with the present teachings, by way of example only, not bywayof limitation. In the figures, like reference numerals refer to the same or similar element.</p>
<p>[0014] In the drawings: Fig. 1 shows a block diagram of an example of a picture display system.</p>
<p>[0015] Fig. 2 shows examples of S-HD pictures.</p>
<p>[0016] Fig. 3 shows a table of the kinds and logic of flag signal used by the picture display system of Fig. 1.</p>
<p>[00171 Fig. 4 shows a flowchart of an example of the processing by the picture-quality correction controller of the picture display system of Fig. 1.</p>
<p>[0018] Fig. 5 shows a flowchart of another example of the processing by the picture-quality correction controller of the picture display system of Fig. 1.</p>
<p>[00191 Fig. 6 shows tables of degrees of color correction in accordance with examples.</p>
<p>[0020] In the following detailed description, numerous specific details are set forth by way of examples in order to provide a through understanding of the relevant teachings. However, it should be apparent to those skilled in the art that the present teachings may be practiced without such details. In other instances, well known methods, procedures, components, and circuitryhavebeendescrjbedatarelatjvelyhjgh-level, without detail, in order to avoid unnecessarily obscuring aspects of the present teachings.</p>
<p>[00211 Fig. 1 shows a block diagram of the picture display system.</p>
<p>The picture display system may be implemented in a television set to receive digital television (DTV) signal such as ground-wave digital signal, ES/CS digital signal, and so On, and reproduce the pictures of the received DTV signal. The picture display system may be also implemented in a combination of a set-top box with a television and so on. In this example, the inputted picture signal is the DTV signal, but of course, an analog TV signal may be available.</p>
<p>[0022] The DTV signal is composed, for example, of MPEG (Moving Picture Expert Group) streams each including one or more digital picture signals. Each digital picture signal is compressed and encoded in the format of MPEG. There are four formats for DTV signal; i.e., (a) interlace format of 1,125 total number of scanning lines (1,080 effective number of scanning lines), (b) progressive-scanning format (progressive format) of 750 total nuntherof scanning lines (720 effectivenuntherot scanning lines), (c) progressive format of 525 total number of scanning lines (480 effective number of scanning lines), and (d) interlace forrnatof525totalnumberof scanninglines (48oeffectivenumber of scanning lines) . Thepicturedisplaysysternwillbedescribed below, with the formats (a) and (d) taken, as examples. The DTV signal of the format (a) is called "HD signal" or "1125i signal", andtheDTV signal of the format (d) is called "SD signal" or "525i signal" in the following description. Besides, the above-mentioned MPEG streams include various additional information. Included in the additional information is EPG (Electronic Program Guide) information and information about the formats of the received DTV signal, for example information for determining whether the received DTV signal is the 1125i signal or the 525 signal.</p>
<p>[00231 The 1-ID signal is made in two formats as mentioned earlier; i.e., the S-HD signal having the HD format of 1,125 total number of scanning lines but into which the SD signal of 525 total number of scanning lines is up-converted by TV stations. For example, the original 1-ID signal is an HD signal produced from pictures taken by high-definition TV cameras or originally generated in the HD format by other sources.</p>
<p>The three forms of S-HD pictures are shown in Fig. 2. In the example, the SD source image has a standard 4: 3 aspect ratio. Up-conversion produces an image 202, 203 or 204 having a 16 9 aspect ratio. The picture 202 is a picture of the aspect ratio of 4 3 to which right-side and left-side picture-less zones are added to change the whole aspect ratio to 16: 9 as part of the up-conversion to the HD format. The picture 203 is a picture of the aspect ratio of 4 3 to which right-side and left-side zones showing pictures and/or data of a certain brightness level are added to change the whole aspect ratio to 16: 9. The picture 204 is a picture of the aspect ratio of 4: 3 which is enlarged in the horizontal and vertical directions to assume the aspect ratio of 16: 9.</p>
<p>[00241 The picture display system is capable of better distinguishing the S-HD signal even in the forms of reference numerals 203 and 204 from original the HD signal and correcting the quality, especially colors, of pictures appropriately. By referring toFig. 1, thepicturedisplaysystemwillbedescribed in detail below.</p>
<p>A digital tuner 102 receives the DTV signal of a chosen TV station through an antenna 101. The received DTV signal is sent to an MPEG decoder 103, which demodulates and decodes the received DTV signal, and separates picture signal and additional information including EPG and format information. The digital picture signal decoded by the MPEG decoder 103 is sent, as a digital component signal including brightness signal Y[O], color-difference (B-Y) signal [=Cb[o]J, andcolor-difference (R Y) signal [=Cr[0}], to a cross color-elimination circuit 104. The workings of the cross color-elimination circuit 104 will be described in detail below.</p>
<p>[0025] The picture signal may be converted into a composite video signal (mixture of brightness signal Y and color-difference signal C) such as analog TV signal (NTSC signal, PAL signal, etc.) in the process of program contents production at the broadcast station. If a component signal for the DTV signal is produced from such composite video signal by, for example, two-dimensional Y-C separation at the broadcast station, cross-colordisturbancemayoccurdependingonpjcturepatterns.</p>
<p>The reason of occurrence of the cross-color disturbance is that it is difficult to completely separate the brightness signal Y and color-difference signal C and therefore a part of the brightness signal is still mixed in the separated color-difference signal. If a white caption, for example, is superimposed on a picture, cross-color disturbance along the edge of the caption is liable to occur. Besides, the HD signal is often produced from an analog TV signal having the SD format, namely composite video signal. In this case, cross-color disturbance may also occur because of the above reason. The cross-color elimination circuit 104 eliminates such cross-color disturbance by eliminating elements causing cross-color disturbance from the above digital component signal.</p>
<p>[0026) To be specific, the cross-color elimination circuit 104 determines whether each pixel is of a static or dynamic image by using the brightness signal Y[0]. Then, the cross-color elimination circuit 104 applies filtering process in the direction of time (the direction of frames) to each pixel of static images included in each of the color difference signals Cb[0J and Cr [0] independently. This filteringprocess includes adding together pixels at a certain place in the signal of two successive frames and dividing the sum by 2. By the filtering process, the cross-color is eliminated because cross-color elements occurring in two opposite directions between two successive frames (namely, antipolarity cross color elements) are offset by each other.</p>
<p>[0027] The color-difference signals Cb[l] and Cr[1] after the elimination of the cross-color elements are sent to a color correction circuit 110 from the cross-color elimination circuit 104. On the other hand, the brightness signal Y[0] is delayed by the same time as necessary for the elimination of the cross color and sent as brightness signal YEll to a brightness correction circuit 109. When the received DTV signal is of a static image, thecross-coloreliminationcjrcujt 104 calculates the difference between two successive fields and sends a differential signal as information about cross-color element to a cross-color detection circuit 105.</p>
<p>[0028] The cross-color detection circuit 105 integrates the differential signal over time and compares the integrated differential signal and a prescribed threshold value. When the integrated differential signal is smaller than the prescribed threshold value, the cross-color detection circuit 105 determines that the received DTV signal does not include cross color element and produces a C flag signal of "0." When the integrated differential signal is larger than the prescribed threshold value, the cross-color detection circuit 105 determines that the received DTV signal includes cross-color element and produces a C flag signal of "1." The C flag signal is sent toapicturequalitycontroller 108. Insteadof receiving thedifferential signal fromthecross-coloreljmjnatjoncircujt 104, the cross-color detection circuit 105 may receive at least oneofthecolor-differencesignalcb[o] andthecolor-difference signal Cr[0] from the cross-color elimination circuit 104. In this case, the cross-color detection circuit 105 calculates the difference between two successive fields by using at least one of the color-difference signal Cb[o] and the color-difference signal Cr[0] and compares the difference and the threshoidvalue.</p>
<p>[0029] On the other hand, the additional information separated from the inputted picture signal by the MPEG decoder 103 is sent to a program information detection circuit 107. The program information detection circuit 107 has a format determination function for determining whether the received DTV signal is of the RD or SD format by using the additional information and search function for searching for prescribed keyword in the character-form information included in the EPG information.</p>
<p>The format determination function is easily implemented by using format information included in the additional information.</p>
<p>When the format information indicates 1125i, the program information detection circuit 107 determines that the received DTV signal is the I-ID signal and produces a V flag signal of "0." When the format information indicates 525i, the program information detection circuit 107 determines that the received DTV signal is the SD signal and produces a V flag signal of "1." The V flag signal is sent to the picture quality controller 108.</p>
<p>[0030] The search function of the program information detection circuit 107 is implemented by using the character-form information included in the EPG information as mentioned above.</p>
<p>The EPG information includes character-form information to present the performers of the program an/or the summary of the program as well as information such as the channels, start and finish times, and the title of the program. The character-form information is composed of the ASCII code or the like. If a TVprogramisofhighdefjnition, the character-form information to present the summary of the program may include words such as "high-definition broadcast," "HD broadcast," and "high-definition picture." The program information detection circuit 107 stores keyword such as "high definition" and "HD" relating to high-definition broadcasting in a memory in advance and searches for such keyword in the character-form information included in the EPG information. When one or more keywords is hit, the program information detection circuit 107 determines that the receivedryrv signal is the original HDsignal andproduces an E flag signal of "0." When no keyword is hit, the program information detection circuit 107 determines that the received DTV signal is the SD or S-HD signal and produces an S flag signal of "1." The E flag signal is sent to the picture quality controller 108.</p>
<p>[0031] Thebrightness signal Y[0) outputtedfromtheMpEGdecoder 103 are sent to an input band detection circuit 106 in addition to the cross-color elimination circuit 104. The input band detection circuit 106 produces high frequency band signal from the inputted brightness signal Y[0] and detects the picture frequency band. For example, the input band detection circuit 106 makes a frequency histogram over a period of one field or frameof pictures, thex-axis representingfrequency, they-axis representing the frequency of occurrence (the number of pixels).</p>
<p>Thus, the number of pixels corresponding to each frequency component over a period of one field or frame of pictures is detected. The picture frequency band of the TV signal having the SD format is about 4.2 MHz and that of TV signal having the HD format is about 8MHz. Accordingly, When the frequency of occurrence (the number of pixels) in the frequency range of 0 -4.3 MHz is higher than a reference value and the frequency of occurrence (the number of pixels) in the frequency range over 4.3MHzislowerthanthereferencevalue, theinputbanddetection circuit 106 determines that the received DTV signal is the S-HD signal and produces an F flag signal of "1." When the frequency of occurrence (thenumberof pixels) inacertainfrequencyrange centering on 8 MHz is higher than a reference value, the input band detection circuit 106 determines that the received DTV signal is the original HD signal and produces an F flag signal of "0." The F flag signal is sent to the picture quality controller 108.</p>
<p>[0032] The table of Fig. 3 shows the conditions for the production of the above C flag signal by the cross-color detection circuit 105, the above F flag signal by the input band detection circuit 106, and the above E and V flag signal by the program information detection circuit 107. As shown in the table, the logic of flag signal of each circuit is determined based on the states of signal inputted into each circuit.</p>
<p>[0033] The picture quality controller 108 has a microcomputer and controls the brightness correction circuit 109 and the color correction circuit 110 in accordance with the above flag signal.</p>
<p>By referring to the flowchart of Fig. 4, an example of the processing by the picture quality controller 108 will be described below. The color correction circuit 110 has the color management function including hue correction and/or chroma correction (deepness or lightness of color) in certain hue ranges (for example, hue ranges of red, blue, and green) by using the inputted color-difference signals. The brightness correction circuit 109 has the functionof doing enhancer treatment (contour correction) to the inputted brightness signal.</p>
<p>[0034] In Step 10 of the flowchart of Fig. 4, the picture quality controller 108 judges the logic of the V flag signal. When the logic of the V flag signal is "1," the picture quality controller 108 determines that the received DTV signal is the SD signal of 525i and goes to Step 15. In Step 15, the picture quality controller 108 sends the first control signal to the brightness correction circuit 109 and the color correction circuit 110, instructing each to carry out an adjustment of picture quality suitable for the SD signal. When the logic of the V flag signal is "0," the picture quality controller 108 determines that the received DTV signal is the HID signal of 1125i and goes to Step 11.</p>
<p>(0035) In Steps 11, 12, and 13, the picture quality controller 108 determines whether the received DTV signal is an original HD signal or an S-HD signal. In Step 11, the picture quality controller 108 judges the logic of the C flag signal. When the logic of the C flag signal is "0," the picture quality controller 108 determines that the received DTV signal is the original HD signal and goes to Step 14. In Step 14, the picture quality controller 108 sends the second control signal to the brightness correction circuit 109 and the color correction circuit 110, instructing each to carry out an adjustment of picture quality suitable for the HD signal. On the other hand, When the logic of the C flag signal is "1", the received DTV signal contains a cross-color element. Therefore, the picture quality controller 108 goes to Step 12 and to Step 16.</p>
<p>[0036] In Step 16, the picture quality controller 108 controls the system 100 so as to activate the cross-color elimination circuit 104 to eliminate cross color. In Step 12, the picture quality controller 108 judges the logic of the F flag signal.</p>
<p>When the logic of the F flag signal is "0," the picture quality controller 108 determines that the received HID signal is the original HD signal and goes to Step 14. In Step 14, the picture quality controller 108 controls the above described adjustment of picture quality. When the logic of the F flag signal is "1", the picture quality controller 108 goes to Step 13. In Step 13, the picture quality controller 108 judges the logic of the E flag signal. When the logic of the S flag is "0," the picture quality controller 108 determines the received HD signal is the original HD signal and goes to Step 14. On the other hand, when the logic of the E flag signal is "1," the picture quality controller 108 determines that the received HD signal is the S-HIJ signal that the SD signal has been up-converted into and goes to Step 15. In Step 15, the picture quality controller 108 controls the above described adjustment of picture quality.</p>
<p>[00371 In the examples described above, all of theV flag signal, C flag signal, F flag signal, and E flag signal are used to determine whether to apply the adjustment of picture quality suitable for the SD signal or the adjustment of picture quality suitable for the HD signal. However, it is not necessary to use all of them. For example, as shown in Fig. 5, the control of the adjustment of picture quality may be performed by using any one of the combinations of the V flag signal and C flag signal, V flag signal and F flag signal, or V flag signal and S flag signal.</p>
<p>E0038} Namely, inStep 2lof Fig. 5, thepicturequalitycontroller 108 judges the logic of the V flag signal. When the logic of the V flag signal is "1," the picture quality controller 108 determines that the received DTV signal is the SD signal of 5251 and goes to Step 24. In Step 24, the similar processing as in Step 15 of Fig. 4 is performed. On the other hand, when the logic of the V flag signal is "0," the picture quality controller 108 goes toStep22 and judges the logicof C, F, orE flag signal.</p>
<p>When the logic of C, F, or E flag signal is "0," the picture quality controller 108 determines that the received HD signal is the original HD signal and goes to Step 23. In Step 23, the similar processing as in Step 14 of Fig. 4 is performed. On the other hand, When the logic of C, F, or E flag signal is "1," the picture quality controller 108 determines that the received HD signal is the S-HD signal and goes to Step 24. In Step 24, the similar processing as in Step 15 is performed. Further, in the flowchart of Fig. 5, the explanation of the cross-color elimination is omitted because of repetition of the explanation.</p>
<p>[00391 In this example, a picture quality adjustment circuit includes the brightness correction circuit 109 and the color correction circuit 110. Both are controlled by a first control signal and a second control signal from the picture quality controller 108 and adjust picture quality. In this example, mainly two kinds of the adjustment of picture quality, i.e., color correction and contour correction, are performed by the picture quality adjustment Circuit. First, the color correction will be described.</p>
<p>[00401 The SD signal and the HD signal have different color reproduction range due to use o1 different television cameras in broadcast stations or due to use of different signal formats.</p>
<p>For example, the color reproduction range of the SD signal is close to that of the NTSC signal, and is different from that of the HD signal. Therefore, in this example, different color (hue/chroma) corrections are applied to the SD signal and the HID signal, respectively.</p>
<p>[0041] Fig. 6 shows examples of degrees of color corrections.</p>
<p>As shown in Fig. 6, with respect to the SD signal and the S-HID signal, for example, three hue ranges are set. Further, with respect to each hue range, degrees of hue and chrorna corrections are set. Also, with respect to the original HD signal, for example, four hue ranges are set. Further, with respect to each hue range, degrees of hue and chroma corrections are set.</p>
<p>Whencorrectingcolor, first, the colorcorrectioncircuit performs an arithmetic operation according to expression (1) by using two color-difference signal and works out a hue signal "H". The color correction circuit 110 also performs an operation according to expression (2) and produces a chroma signal "S".</p>
<p>(1) H = (Cb2+Cr2)1"2 (2) S = tan'(Cr/Cb) [00421 The picture quality controller 108 has two tables of color correction set values as shown in Fig. 6 for the SD/S-HD signals and for the original I-ID signal. When the picture quality controller 108 determines that the received DTV signal is the SD signal or S-HD signal, the picture quality controller 108 chooses table (1) of Fig. 6. Then, thepicturequalitycontroller 108 outputs, as the above first control signal, a hue range, a degree of hue correction, and a degree of chroma correction corresponding to the table (1) to the color correction circuit 110.</p>
<p>[00431 When the hue signal "H" worked out by the expression (1) is inthe hue ranges of H-rangel, H-range2, or H-range3 inputted from the picture quality controller 108, the color correction circuit 110 adds degrees of hue corrections aSi, aS2, and aS3 to corresponding hue signal "H", respectively. For example, the degree of hue correction aSi is added to the hue signal H in the hue range of the H-rangel. The similar processing is appliedwithrespect totheH-range2 andH-range3. Inthisrnanner, color in a designated hue range is adjusted.</p>
<p>[0044] Further, when the chrorna signal "S' worked out by using the expression (1) is in the hue ranges of H-rangel, H-range2, or H-range 3 inputted from the picture quality controller 108, the color correction circuit 110 multiples chroma signal "S" with corresponding degrees of hue corrections I3Sl, fS2, and 3S3, respectively. For example, the color correction circuit 110 multiples a chroma signal "S" in the H-rangel with the degree of chroma correction 3Sl. The similar processing is applied with respect to the H-range2 and H-range3. In this manner, deepness or lightness of color in the designated hue range is 21 -adlusted.</p>
<p>[0045] Further, in this example, the color correction circuit is provided at a subsequent stage downstream of the cross-color elimination circuit 104. With this construction, the color correction is prevented from being performed before cross-color elimination and hence an error of elimination cross-color by the color correction is prevented.</p>
<p>[0046] Further, when the picture quality controller 108 determinesthat thereceivedDTVsignal istheoriginal HDsignal, the picture quality controller 108 chooses the table (2) of Fig. 6. Then, as the above second control signal, the picture quality controller 108 outputs the hue range, degree of hue correction, and degree of chroma correction corresponding to the table (2) to the color correction circuit 110. When the hue signal H worked outbyusingtheexpression (1) isinthehuerangesoftheH-rangel, H-range2, H-range3, or H-range4 inputted by the picture quality controller 108, the color correction circuit 110 adds the corresponding degrees of hue correction aHi, aH2, aH3, and aH4 to corresponding hue signal "H , respectively. For example, the colorcorrectioncircuit. llOadds thedegree of hue correction aHi to the hue signal "H" in the hue range of the H-rangel. The similar processing is applied with respect to the H-ranges2, H-range3 and H-range4. In this manner, color in the designated hue range is adjusted.</p>
<p>[0047] Further, when the chroma signal "S" worked out by using the expression (1) is in the hue rangesoftheH-rangel, H-range2, and I-J-range3 inputted from the picture quality controller 108, the color correction circuit 110 multiples chroma signal "S" with the corresponding degrees of chroma correction H1, H2, 13H3, and 3H4, respectively. Forexarnple, the color correction circuit 110 multiplies the chroma signal "S" in the hue range of the H-rangel with the degree of chroma correction H1. The similar processing is applied with respect to the H-range2, H-range3, and H-range4. In this manner, deepness or lightness in the designated hue range is adjusted.</p>
<p>[0048] In the above examples, as the hue ranges to adopt the hue and chrorna correction, three ranges are provided for the SD/S-HD signals and four ranges are provided for the original HD signal.</p>
<p>However, the number of ranges is not limited to the above.</p>
<p>Needless to say, the number of ranges may be more than examples or less than those shown in Fig. 6. In the above example, the number of hue ranges for the SD/S-I-ID signals and the number of hue ranges for the original HD signal are different. However, the above numbers may be the same.</p>
<p>[0049] Now, the contour correction (enhancer treatment) will be described below. Generally, in a television system, for the reason that the picture frequency band of the SD signal and that of the HD signal are different and the other reasons, the peak frequency value of the contour to be enhanced is varied and the appropriate adlustment of picture quality is performed accordingly.</p>
<p>[00501 A horizontal enhancer treatment for correcting a contour (edge) in the horizontal direction of the picture will be described as an example. For example, a central frequency of the edge to be enhanced of the SD signal is made to be lower than that of the HD signal. Accordingly, effective edge enhancement corresponding to the signal type can be performed, producing a sharp, well-defined picture. Depending on whether the received DTV signal is the SD signal/S-HD signal or the originalHDsignal, thebrightnesscorrectioncircuit lo9changes a center frequency (peak frequency of the picture) of the edge to be enhanced and applies the enhancer treatment.</p>
<p>[0051] For example, When the received DTV signal is the SD signal/S-HD signal, a signal around a peak frequency of 2.5 MHz is enhanced. When the received DTV signal is the original HD signal, a signal around a peak frequency of 8 MHz is enhanced.</p>
<p>Namely, when the picture quality controller 108 determines that received DTV signal is the SD signal/S-HD signal, the picture quality controller 108 sends, as the above first control signal, a control signal for setting a peak frequency signal to about 2.5MHz to the brightness correction circuit 109. Further, when the picture quality controller 108 determines that the received DTV signal is the original HD signal, the picture quality controller 108 sends, as the above second control signal, a control signal for setting the peak frequency to about 8 MHz to the brightness correction circuit 109.</p>
<p>[0052] The brightness signal Y[2] outputted from the brightness correction circuit 109 and two color-difference signals Cb[2] and Cr121 outputted from the correcting circuit 110 are inputted to the picture display processor 111. Furthermore, the color correction circuit 110 performs an arithmetic operation according to expressions (3) and (4) by using the adjusted hue signal "Ha" and the adjusted chroma signal ItSalt based on the table shown in the Fig. 6.</p>
<p>(3) Cr = Sa*cos Ha (4) Cb = Sa*sin Ha By the arithmetic operation, the color correction circuit 110 produces two color-difference signals Cb[2] and Cr12].</p>
<p>[00531 The picture display processor 111 carries out matrix-transform. The picture display processor 111 produces a digital RGB signal by the matrix transform and supplies it to a display device 112. This display device 112 is comprised of a PDP, an LCD, an FED or the like, and displays pictures based on the digital RGB signal.</p>
<p>[0054] According to this example, there is provided a picture displaysystemcapableofbetterdeterminingwhethertheinputted HDsignal isof theS-HDformatortheoriginalHDformat. Further, in accordance with this example, the picture display system is able to carry out the color correction and the contour correction appropriately based on the above determination. Further, for determining whether the inputted HD signal is of the S-ND format or the original ND format, when the cross-color element, the frequency band information of the inputted picture signal, and program information are combined and used for the finding, an ND picture and an SD picture can be distinguished with higher precision.</p>
<p>[00551 Alternatively, it is also possible that the determination whethertheinputtedHDsignalisofthes-HDformatortheoriginal ND format is implemented by using time and channel information included in the EPG information. Also, whenaparticularprogram is broadcast by using the S-ND signal, it is possible to make a user choose either SD picture quality or ND picture quality as picture quality of the program. This choice is made, for example, by operating a user-registered circuit including a plurality of switches or keys.</p>
<p>[0056] Though not described in this example, the determination whethertheinputtedHDsignal isoftheS-HDformatortheoriginal ND format may be implemented by detecting dot disturbance instead of cross-color disturbance. The cross-colore1imination circuit 104 and the cross-color detecting circuit 105 may implement the followingprocedure. The dot disturbance is detected, for example, by using the brightness signal Y [0]. The reason of occurrence of the dot disturbance is that it is difficult to completely separate the brightness signal Y and color-difference signal C and therefore a part of the color-difference signal is still mixed in the separated brightness signal. For example, as in the detection of the cross-color element, when an inputted picture is a still picture, brightness signals of two successive frames are added to each other. The dot disturbance may occur in two successive frames in the opposite directions to each other.</p>
<p>Therefore, as a result of the above addition, when a component of the dot disturbance is equal to or less than a prescribed threshold, the dot disturbance is not included. Otherwise, the dot disturbance is included.</p>
<p>[0057] Further, for example, when the dot disturbance is included in the brightness signal Y[0], the received DTV signal having an HD format is recognized as having the S-I-iD format. When the dot disturbance is not included, the received DTV signal is recognized as having the original HD format. With respect to an adjustment of picture quality based on the determination, description of the above example should be referred to. Also, in the construction of Fig. 1, a circuit which eliminates dot disturbance may further be incorporated between the MPEG encoder 103 and the picture quality adjustment circuit that includes the brightness correction circuit 109 and the color correction circuit 110, like the cross color elimination circuit 104.</p>
<p>[0058] While the foregoing has described what are considered to be the best mode and/or other examples, it is understood that various modifications may be made therein and that the subject matter disclosed herein may be implemented in various forms and examples, and that the teachings may be applied in numerous applications, only some of which have been described herein.</p>
<p>It is intended by the following claims to claim any and all applications, modifications and variations that fall within the true scope of the present teachings.</p>
<p>Additional features of the present invention are discussed in the following clauses: 1. A picture display system, comprising: a display device which displays a picture in response to an adjusted picture signal; a picture quality adjustment circuit which carries out an adjustment of picture quality of an inputted picture signal to produce the adjusted picture signal for the display device; and a controller which controls the adjustment of picture quality by the picture quality adjustment circuit, in response to determining: (a) when the inputted picture signal is a converted typeofafirstpicturesignal intowhichasecondpicturesignal, having fewer scanning lines than that of the first picture signal, is converted, and (b) when the inputted picture signal is an original type of the first picture signal.</p>
<p>2. ApicturedisplaysysternaccordingtOclause 1, wherein the controller determines the type of the inputted picture signal bydetectingcross-colorelementof the inputtedpicture signal.</p>
<p>3. ApicturedisplaysystemaccOrdifly toclausel, wherein the controllerdetermines the type of the inputtedpicture signal by using electronic program guide information inputted together with the inputted picture signal.</p>
<p>4. ApicturedisplaysystemacCOrdiflgtOclaUse3i wherein the controller searches certain keyword among character-form information included in the electric program guide information to determine the type of the inputted picture signal.</p>
<p>5. Apicturedisplaysystemaccordingtociause 1, wherein the first picture signal is a high definition signal of 1,125 total number of scanning lines.</p>
<p>6. Apicturedisplaysystemaccordingtociause 1, wherein the second picture signal is a standard definition signal of 525 total number of scanning lines.</p>
<p>7. Apicturedisplaysystemaccordingtociause 1, wherein the picture quality adjustment circuit carries out color correction byusinga first color set value for the secondpicture signal when the inputted picture signal is the converted type of the first picture signal, and by using a second color set value for the first picture signal when the inputted picture signal is the original type of the first picture signal.</p>
<p>8. A picture display system comprising: a display device which displays a picture in response to an adjusted picture signal; a picture quality adjustment circuit which carries out an adjustment of picture quality of an inputted picture signal to produce the adjusted picture signal for the display device; a cross-color detection circuit which detects a cross-color element from the inputted picture signal; and a controller which controls the adjustment of picture quality by the picture quality adjustment circuit in accordance with the result of the detection by the cross-color detection circuit.</p>
<p>9. ApicturedisplaysyStemaCCOrdiflgtOC1USe 8, further comprising a cross-color elimination circuit which eliminates the cross-color element from said inputted picture signal.</p>
<p>10. A picture display system according to clause 8, wherein the cross-color detection circuit detects the cross-color element from color signal components included in the inputted picture signal.</p>
<p>11. A picture display system according to clause 8, wherein the controller determines whether the inputted picture signal is a first high definition signal into which a standard definition signal is up-converted or a second high definition signal originally having a high definition format by detecting the cross-color element from the inputted picture signal.</p>
<p>12. A picture display system according to clause 8, wherein the picture quality adjustment circuit includes a color correction circuit which carries out at least one of hue correction of the inputted picture signal in a certain hue range and chroma correction of the inputted picture signal ma certain chroma range.</p>
<p>13. A picture display system according to clause. B, wherein the picture quality adjustment circuit includes a contour correction circuit which carries out contour correction of the inputted picture signal.</p>
<p>14. A picture display system according to clause 9, wherein the picture quality adjustment circuit includes a color correction circuit which carries out at least one of hue correction of the inputted picture signal in a certain hue range and chrorna correction of the mnputtedpicture signal ma certain 3].</p>
<p>chroma range; and -the color correction circuit. is at a stage downstream from the cross-color elimination circuit.</p>
<p>15. A picture display system comprising: a display device which displays a picture in response to an adjusted picture signal; a picture quality adjustment circuit which carries out an adjustment of picture quality of an inputted picture signal to produce the adjusted picture signal for the display device; and a controller which controls the adjustment of picture quality by the picture quality adjustment circuit, in response todeterminingbyusinganelectronicprogramguide information: (a) when the inputted picture signal is a converted typeofafirstpicture signal intowhichasecondpicture signal, having fewer scanning lines than that of the first picture signal, is converted, and (b) when the inputted picture signal is an original type of the first picture signal.</p>
<p>16. A picture display system according to clause 15, wherein the controller searches certain keyword among character-form information included in the electronic program guide information to determine the type of the inputted picture signal.</p>
<p>17. A picture display system according to clause 1, wherein the picture quality adjustment circuit includes a color correction circuit which carries out at least one of hue correction of the inputted picture signal inacertain hue range and chrorna correction of the inputtedpicture signal ma certain chroma range.</p>
<p>18. A picture display system according to clause 1, wherein the picture quality adjustment circuit includes a contour correcting circuit which carries out contour correction of the inputted picture signal.</p>
<p>19. A picture display system according to clauset 15, wherein the picture quality adjustment circuit includes a color correction circuit which carries out at least one of hue correction of the inputted picture signal in a certain hue range and chroma correction of the inputtedpicture signal in a certain chrorna range.</p>
<p>20. A picture display system according to clause 15, wherein the picture quality adjustment circuit includes a contour correcting circuit which carries out contour correction of the inputted picture signal.</p>

Claims (1)

  1. <p>CLAIMS: 1. A picture display system comprising: a display device which
    displays a picture in response to an adjusted picture signal; a picture quality adjustment circuit which carries out an adjustment of picture quality of an inputted picture signal to produce the adjusted picture signal for the display device; a cross-color detection circuit which detects a cross-color element from the inputted picture signal; and a controller which controls the adjustment of picture quality by the picture quality adjustment circuit in accordance with the result of the detection by the cross-color detection circuit.</p>
    <p>2. Apicture display systemaccording toclaim l,further comprising a cross-color elimination circuit which eliminates the cross-color element from said inputted picture signal.</p>
    <p>3. A picture display system according to claim 1, wherein the cross-color detection circuit detects the cross-color element from color signal components included in the inputted picture signal.</p>
    <p>4. A picture display system according to claim 1, wherein the controller determines whether the inputted picture signal is a first high definition signal into which a standard definition signal is up-converted or a second high definition signal originally having a high definition format by detecting the cross-color element from the inputted picture signal.</p>
    <p>5. A picture display system according to claim 1, wherein the picture quality adjustment circuit includes a color correction circuit which carries out at least one of hue correction of the inputted picture signal in a certain hue range and chrorna correction of the inputted picture signal in a certain chroma range.</p>
    <p>6. A picture display system according to claim 1, wherein the picture quality adjustment circuit includes a contour correction circuit which carries out contour correction of the inputted picture signal.</p>
    <p>7. A picture display system according to claim 2, wherein the picture quality adjustment circuit includes a color correction circuit which carries out at least one of hue correction of the inputted picture signal in a certain hue range and chroma cOrrectloflbt the inputtedpictUre signal ma certain chrorna range; and the color correction circuit is at a stage downstream from the cross-color elimination circuit.</p>
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Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2241407A (en) * 1989-12-22 1991-08-28 Samsung Electronics Co Ltd Reducing mixing of luminance and chrominance signals
JPH05244607A (en) * 1991-08-12 1993-09-21 Olympus Optical Co Ltd Color smear reduction device
US5355176A (en) * 1992-10-13 1994-10-11 Matsushita Electric Industrial Co., Ltd. Luminance/chrominance signal separating apparatus which attenuates chrominance signal based on phase change of chrominance signal
JPH06339151A (en) * 1993-05-31 1994-12-06 Matsushita Electric Ind Co Ltd Cross color reducing device for brightness signal chrominance signal separator
JPH09182096A (en) * 1995-12-25 1997-07-11 Matsushita Electric Ind Co Ltd Auto convergence circuit
US5673336A (en) * 1993-12-23 1997-09-30 International Business Machines Corporation Automatic cross color elimination
US6043853A (en) * 1996-04-12 2000-03-28 Sony Corporation Apparatus and method for emphasizing an outline of a video signal

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2241407A (en) * 1989-12-22 1991-08-28 Samsung Electronics Co Ltd Reducing mixing of luminance and chrominance signals
JPH05244607A (en) * 1991-08-12 1993-09-21 Olympus Optical Co Ltd Color smear reduction device
US5355176A (en) * 1992-10-13 1994-10-11 Matsushita Electric Industrial Co., Ltd. Luminance/chrominance signal separating apparatus which attenuates chrominance signal based on phase change of chrominance signal
JPH06339151A (en) * 1993-05-31 1994-12-06 Matsushita Electric Ind Co Ltd Cross color reducing device for brightness signal chrominance signal separator
US5673336A (en) * 1993-12-23 1997-09-30 International Business Machines Corporation Automatic cross color elimination
JPH09182096A (en) * 1995-12-25 1997-07-11 Matsushita Electric Ind Co Ltd Auto convergence circuit
US6043853A (en) * 1996-04-12 2000-03-28 Sony Corporation Apparatus and method for emphasizing an outline of a video signal

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