The present application claims priority from Japanese application JP 2011-213406 filed on Sep. 28, 2011, the content of which is hereby incorporated by reference into this application.
1. Field of the Invention
The present invention relates to a display device and a control method of the same, and more particularly to a gray level display using elements which change over the transmission/non-transmission of light.
2. Description of the Related Art
JP 2008-197668 A discloses a display device where a minute shutter referred to as MEMS (Micro Electro Mechanical System) shutter is provided to respective pixels. Such a display device adopts a field sequential color (color sequential driving) method where the pixels of plural kinds of colors are sequentially turned on.
Such a display device which adopts the color sequential driving method has a drawback that color separation occurs. Color separation is a phenomenon where when a line having a white and black tone is moved, front and rear sides of the line are tinted with colors.
To suppress such a phenomenon, there could be an example where a 1 frame display period is further finely divided into 6 pieces of divided frame display periods (R1, G1, B1, R2, G2, B2) and, in the same manner, a light source is sequentially turned on in the order of red (R), green (G) and blue (B) (for example, see
The present invention has been made in view of the above-mentioned circumstances and it is a main object of the present invention to provide a display device and a control method of the same which suppress the occurrence of color separation.
(1) To overcome the above-mentioned drawback, according to one aspect of the present invention, there is provided a display device including: a light source of plural kinds of colors; a plurality of elements which are provided to a plurality of pixels respectively, and change over transmission/non-transmission of light emitted from the light source; and a control part which expresses gray levels of the respective pixels by color sequential driving in which the presence/non-presence of lighting of the light source and the transmission/non-transmission of light by the elements are sequentially controlled. In the display device, the control part fetches image data amounting to 1 screen and performs a display based on the image data for every image data use period, and performs a display of an image amounting to 1 screen for every frame display period; and the frame display period differs from the image data use period in length.
(2) In the display device having the above-mentioned constitution (1), the control part may not use a part of the image data during the image data use period when the frame display period is longer than the image data use period, and the control part may use a part of the image data during the image data use period in a superposed manner when the frame display period is shorter than the image data use period.
(3) In the display device having the above-mentioned constitution (1) and (2), the frame display period may be constituted of n (n≧2) pieces of continuous divided frame display periods; a display in k (1≦k<n) pieces of continuous divided frame display periods may be performed during 1 image data use period; and during the 1 image data use period, the control part may not use a part of the image data to be used for a display in remaining (n−k) pieces of divided frame display periods.
(4) In the display device having the above-mentioned constitution (1) and (2), the frame display period may be constituted of n (n≧2) pieces of continuous divided frame display periods; a display in k (n<k<2n) pieces of continuous divided frame display periods may be performed during 1 image data use period; and during the 1 image data use period, the control part may use the image data amounting to 1 screen during 1 frame display period, and may further use a part of the image data which is used for a display in further succeeding (k−n) pieces of divided frame display periods.
(5) In the display device having the above-mentioned constitution (3), a display with only any one of the plural kinds of colors may be performed in the n pieces of continuous divided frame display periods respectively, and kinds of colors which are displayed during the n pieces of divided frame display periods may be sequentially repeated; and (n−k) may be smaller than the number of kinds of colors.
(6) In the display device having the above-mentioned constitution (4), a display with only any one of the plural kinds of colors may be performed in the n pieces of continuous divided frame display periods respectively, and kinds of colors which are displayed during the n pieces of divided frame display periods may be sequentially and repeatedly continued; and (k−n) may be smaller than the number of kinds of colors.
(7) In the display device having the above-mentioned constitution any one of (3) and (4), each of the n pieces of divided frame display periods may be constituted of 1 or plural sub frame periods, and a predetermined length of a light transmission period where transmission/non-transmission of light by the element is allowed may be determined with respect to the plurality of respective sub frame periods; the plurality of sub frame periods which constitute the frame display period may be classified into a first group to which the sub frame periods having light transmission periods of the same length belong and a second group to which the sub frame periods having light transmission periods which are shorter than the light transmission periods of the sub frame periods of the first group in length and differ from each other belong; and the plurality of sub frame periods belonging to the first group are arranged in the frame display period so that the number of sub frame periods having the light transmission periods may be increased toward a,start point and a finish point of the frame display period from a middle portion of the frame display period along with the elevation of the gray level; and each of the plurality of sub frame periods may include the plurality of light transmission periods in which lights of various kinds of colors transmit.
(8) In the display device having the above-mentioned constitution (7), the sub frame periods belonging to the first group and the sub frame periods belonging to the second group may be alternately provided.
(9) In the display device having the above-mentioned constitution (7), the sub frame periods belonging to the second group may be provided before and after the sub frame period having the light transmission period at the lowest gray level out of the sub frame periods belonging to the first group.
(10) According to another aspect of the present invention, there is provided a control method of a display device which includes: a light source of plural kinds of colors; a plurality of elements which are provided to a plurality of pixels respectively, and change over transmission/non-transmission of light emitted from the light source; and a control part which expresses gray levels of the respective pixels by color sequential driving in which the presence/non-presence of lighting of the light source and the transmission/non-transmission of light by the elements are sequentially controlled. In the display device, the control part may fetch image data amounting to 1 screen and perform a display based on the image data for every image data use period, and perform a display of an image amounting to 1 screen for every frame display period; and the frame display period may differ from the image data use period in length.
(11) In the control method of a display device having the above-mentioned constitution (10), the control part may not use a part of the image data during the image data use period when the frame display period is longer than the image data use period, and the control part may use a part of the image data during the image data use period in a superposed manner when the frame display period is shorter than the image data use period.
(12) In the control method of a display device having the above-mentioned constitution any one of (10) and (11), the frame display period may be constituted of n (n≧2) pieces of continuous divided frame display periods; a display in k (1≦k<n) pieces of continuous divided frame display periods may be performed during 1 image data use period; and during the 1 image data use period, the control part may not use a part of the image data to be used for a display in remaining (n−k) pieces of divided frame display periods.
(13) In the control method of a display device having the above-mentioned constitution any one of (10) and (11), the frame display period may be constituted of n (n≧2) pieces of continuous divided frame display periods; a display in k (n<k<2n) pieces of continuous divided frame display periods may be performed during 1 image data use period; and during the 1 image data use period, the control part may use the image data amounting to 1 screen during 1 frame display period, and may further use a part of the image data which is used for a display in further succeeding (k−n) pieces of divided frame display periods.
(14) In the control method of a display device having the above-mentioned constitution (12), a display with only any one of the plural kinds of colors may be performed in the n pieces of continuous divided frame display periods respectively, and kinds of colors which are displayed during the n pieces of divided frame display periods may be sequentially repeated; and (n−k) may be smaller than the number of kinds of colors.
(15) In the control method of a display device having the above-mentioned constitution (13), a display with only any one of the plural kinds of colors may be performed in the n pieces of continuous divided frame display periods respectively, and kinds of colors which are displayed during the n pieces of divided frame display periods may be sequentially and repeatedly continued; and (k−n) may be smaller than the number of kinds of colors.
(16) In the control method of a display device having the above-mentioned constitution any one of (12) and (13), each of the n pieces of divided frame display periods may be constituted of 1 or plural sub frame periods, and a predetermined length of a light transmission period where transmission/non-transmission of light by the element is allowed may be determined with respect to the plurality of respective sub frame periods; the plurality of sub frame periods which constitute the frame display period may be classified into a first group to which the sub frame periods having light transmission periods of the same length belong and a second group to which the sub frame periods having light transmission periods which are shorter than the light transmission periods of the sub frame periods of the first group in length and differ from each other belong; and the plurality of sub frame periods belonging to the first group are arranged in the frame display period so that the number of sub frame periods having the light transmission periods may be increased toward a start point and a finish point of the frame display period from a middle portion of the frame display period along with the elevation of the gray level; and each of the plurality of sub frame periods may include the plurality of light transmission periods in which lights of various kinds of colors transmit.
(17) In the control method of a display device having the above-mentioned constitution (16), the sub frame periods belonging to the first group and the sub frame periods belonging to the second group may be alternately provided.
(18) In the control method of a display device having the above-mentioned constitution (16), the sub frame periods belonging to the second group may be provided before and after the sub frame period having the light transmission period at the lowest gray level out of the sub frame periods belonging to the first group.
The present invention provides a display device and a control method of the same which suppress the occurrence of color separation.
Embodiments of a display device and a control method of the display device according to the present invention are explained in conjunction with drawings.
Hereinafter, embodiments of a control method of a display device according to the present invention are explained.
In this embodiment, the 1 frame display period is divided into 3 pieces of divided frame display periods R, G, B, wherein the divided frame display period R is constituted of the sub frame periods of R (SF1 to SF8), the divided frame display period G is constituted of the sub frame periods of G (SF9 to SF16), and the divided frame display period B is constituted of the sub frame periods of B (SF17 to SF24) respectively.
In place of the image shown in
The display of the image data data1 is performed in the first frame display period TF1, the display of the image data data2 is performed in the second frame display period TF2, and the display of the image data data3 is performed in the third frame display period TF3. In this case, with respect to the image data use period TD (frame display period TF) during which each image data is used, the divided frame display period which is used first is R and the divided frame display period which is used last is B. Accordingly, as shown in
In the same manner as the comparison example 1, each frame display period TF is constituted of 3 (n=3) continuous divided frame display periods R, G, B. However, this embodiment is different from the comparison example 1 in that the display in 2 (k=2, 1≦k<n) continuous divided frame display periods is performed during each image data use period TD. For example, during the image data use period TD where image data data1 is used, the display in 2 divided frame display periods R, G is performed, and the display in remaining 1 (n−k=1) divided frame display period B is not performed. Here, image information (a part of image data) used for the display in each divided frame display period is gray level information on color to be displayed in the divided frame display period out of gray level information of each pixel in image data. Accordingly, for example, during the image data use period TD where image data data1 is used, gray level information on R and G of each pixel in image data is used, and gray level information on B in the image data is not used. That is, during each image data use period TD, a part of image data is not used. Here, a part of image data which is not used means gray level information on color which is not displayed out of gray level information on three colors.
During the image data use period TD where image data data1 is used, using gray level information on two colors of R and G (without using gray level information on B), the display in the respective divided frame display periods R, G is performed. During the image data use period TD where image data data2 is used, using gray level information on two colors of B and R is used (without using gray level information on G), the display in the respective divided frame display periods B, R is performed. During the image data use period TD where image data data3 is used, using gray level information on two colors of G and B is used (without using gray level information on R), the display in the respective divided frame display periods G, B is performed. Accordingly, as shown in
In the control method according to this embodiment, the image data use period TD and the frame display period TF differ from each other so that the first (last) divided frame display period where image data is displayed differs between two pieces of continuous images. Accordingly, the occurrence of color separation could be suppressed. Further, during the image data use period TD where image data on a certain image is used, a part of the image data is not used so that a 1 divided frame display period could be prolonged whereby the number of data writing per unit time which is performed during an address period of each sub frame period could be decreased, or the number of switching the light emission of the light source per unit time could be reduced whereby light emission efficiency is enhanced and power consumption is decreased.
In this embodiment, during each image data use period TD, the display in 4 (k=4, n<k<2n) continuous divided frame display periods is performed. For example, during the image data use period TD where image data data1 is used, in addition to the display in the 1 frame display period TF (divided frame display periods R, G, B) where image data amounting to 1 screen is displayed, the display in a succeeding 1 (k−n) divided frame display period R is performed. In the image data use period TD where the image data data1 is used, the display in 3 divided frame display periods R, G, B is performed using all image data data1 (data amounting to 1 screen) and, further, the display in the divided frame display period R is performed using a part of the image data data1 so that gray level information on R (a part of image data) is used in a superposed manner.
During the image data use period TD where the image data data1 is used, in addition to the image display amounting to 1 screen (divided frame display periods R, G, B), the display in the divided frame display period R is performed using gray level information on R. During the image data use period TD where the image data data2 is used, in addition to the image display amounting to 1 screen (divided frame display periods G, B, R), the display in the divided frame display period G is performed using gray level information on G. During the image data use period TD where the image data data3 is used, in addition to the image display amounting to 1 screen (divided frame display periods B, R, G), the display in the divided frame display period B is performed using gray level information on B. Accordingly, as shown in
In the control method according to this embodiment, in the same manner as the first embodiment, the image data use period TD and the frame display period TF differ from each other so that the first (last) divided frame display period where image data is displayed differs between two pieces of continuous images. Accordingly, the occurrence of color separation could be suppressed. Further, the frame display period could be shortened compared to the image data use period TD and hence, the number of screens of an image to be displayed per unit time could be enhanced so that an image having a smoother movement could be displayed.
A third embodiment of the present invention is different from the first embodiment in that a 1 frame display period TF is constituted of 6 pieces of divided frame display periods. That is, the display of each color is performed in 2 pieces of divided frame display periods. Each one of 2 pieces of divided frame display periods in which the display of each color is performed is constituted of 1 or a plurality of sub frame periods. The sub frame periods (SF1 to SF8) of R which perform the R display shown in
Comparing the comparison example 2 with the comparison example 1 shown in
In the same manner as the comparison example 2, each frame display period TF is constituted of 6 (n=6) continuous divided frame display periods. However, this embodiment is different from the comparison example 2 in that the display in 5 (k=5, 1≦k<n) continuous divided frame display periods is performed during each image data use period TD. For example, during the image data use period TD where image data data1 is used, the display of 5 divided frame display periods R1, G1, B1, R2, G2 is performed, and the display in remaining 1 (n−k=1) divided frame display period B2 is not performed. Here, image information (a part of image data) used for the display in each divided frame display period is a part of gray level information on color corresponding to each pixel in image data. To be more specific, the gray level information is constituted of gray level values (0 to 255), and the gray level values can be expressed by 8 bits. That is, the gray level information is the combination of values (0, 1) of some orders out of 8 bits (orders). Such combination is determined based on the combination of sub frame periods which constitutes the divided frame display period. For example, during the image data use period TD where image data data1 is used, image information for displaying the divided frame display period B2 is not used. During the image data use period TD where image data data2 is used, image information for displaying the divided frame display period G2 is not used. During the image data use period TD where image data data3 is used, image information for displaying the divided frame display period R2 is not used. That is, in the respective image data use periods TD, a part of image data is not used.
In the same manner as the first embodiment shown in
According to the control method of this embodiment, advantageous effects substantially equal to the advantageous effects acquired by the control method according to the first embodiment could be acquired. Further, a part of image data which is not used could be decreased and hence, compared to the first embodiment, the color separation could be suppressed while realizing a display which is closer to an image display which uses all image data amounting to 1 screen.
In a fourth embodiment of the present invention, in the same manner as the third embodiment, a 1 frame display period is constituted of 6 (n=6) divided frame display periods. In the same manner as the second embodiment, a 1 image data use period TD is longer than a 1 frame display period TF, and a part of image data is used in a superposing manner during the 1 image data use period TD.
In this embodiment, during each 1 image data use period TD, the display in 7 (k=7, n<k<2n) continuous divided frame display periods is performed. For example, during the image data use period TD where image data data1 is used, in addition to the display in the 1 frame display period TF (divided frame display periods R1, G1, B1, R2, G2, B2) where image data amounting to 1 screen is displayed, the display in a succeeding 1 (k−n) divided frame display period R1 is performed. In the image data use period TD where the image data data1 is used, the display in 6 divided frame display periods R1, G1, B1, R2, G2, B2 is performed using all image data data1 (data amounting to 1 screen) and, further, the display in the divided frame display period R1 is performed using a part of the image data data1 so that a part of gray level information on R which is apart of image data data1 is used in a superposed manner.
During the image data use period TD where the image data data1 is used, in addition to the image display amounting to 1 screen (divided frame display periods R1, G1, B1, R2, G2, B2), the display in the divided frame display period R1 is performed using a part of gray level information on R. During the image data use period TD where the image data data2 is used, in addition to the image display amounting to 1 screen (divided frame display periods G1, B1, R2, G2, B2, R1), the display in the divided frame display period G1 is performed using apart of gray level information on G. During the image data use period TD where the image data data3 is used, in addition to the image display amounting to 1 screen (divided frame display periods B1, R2, G2, B2, R1, G1), the display in the divided frame display period B1 is performed using gray level information on B. Accordingly, in the same manner as the second embodiment shown in
According to the control method of this embodiment, advantageous effects substantially equal to the advantageous effects acquired by the control method according to the second embodiment could be acquired. Further, a part of image data to be used in a superposed manner could be decreased and hence, compared to the second embodiment, the color separation could be suppressed while realizing a display which is closer to an image display which uses all image data amounting to 1 screen.
In the above-mentioned first to fourth embodiments, in the respective n pieces of divided frame display periods which constitute the 1 frame display period TF, a display of any one of three colors of RGB is performed and, further, colors to be displayed in the n pieces of continuous divided frame display periods are regularly (cyclically) repeated in the order of RGB. When the 1 frame display period TF is longer than the image data use period TD, in the image data use period TD, a display of the 1 remaining divided frame display period is not performed so that the color to be displayed in the first (last) divided frame display period during each image data use period TD could be shifted in the order of RBG. When the 1 frame display period TF is shorter than the image data use period TD, in the image data use period TD, the display of another divided frame display period is performed in addition to the display of the 1 frame display period TF (n pieces of divided frame display periods) and hence, the color to be displayed in the first (last) divided frame display period in each image data use period TD could be shifted in the order of RGB. In this manner, by not performing the display of 1 piece of divided frame display period (by performing another display) when the 1 frame display period TF is longer (shorter) than the image data use period TD, the color to be displayed in the first divided frame display period during each image data use period TD could be shifted in order. The number of divided frame display periods where the display is not performed (the display is further performed) is not limited to 1 and may be 2. That is, it is sufficient that the number of such divided frame display periods may be a numeral smaller than the number of kinds of colors (3). It is desirable that the number of divided frame display periods where the display is not performed (the display is further performed) is 1 to realize a display closer to an image display where all image data amounting to 1 screen is used.
In a fifth embodiment of the present invention, a 1 frame display period TF is constituted of 12 pieces of divided frame display periods. In the third and fourth embodiments, the 1 frame display period TF is constituted of 6 pieces of divided frame display periods R1, G1, B1, R2, G2, B2. The fifth embodiment is characterized by further dividing each divided frame display period into a front half and a latter half. For example, a front half portion of the divided frame display period R1 is set as a divided frame display period R1A, and a latter half portion of the divided frame display period R1 is set as a divided frame display period R1B.
Also in this embodiment, when the 1 frame display period TF is longer than the image data use period TD, in the image data use period TD, a display of the 1 remaining divided frame display period is not performed so that the first (last) divided frame display period in each image data use period TD could be shifted one by one. In the same manner, when the 1 frame display period TF is shorter than the image data use period TD, in the image data use period TD, the display of another 1 divided frame display period is performed in addition to the display of the 1 frame display period TF (n pieces of divided frame display periods) so that the first (last) divided frame display period in each image data use period TD could be shifted one by one. Here, the latter case is explained.
As described above, the 1 frame display period TF is constituted of 12 pieces of divided frame display periods R1A, R1B, G1A, G1B, . . . B2A, B2B. In the image data use period TD where the image data data1 is used, in addition to an image display amounting to 1 screen, a display of the divided frame display period R1A is further performed. In the image data use period TD where the image data data2 is used, in addition to an image display amounting to 1 screen, a display of the divided frame display period R1B is further performed. In the image data use period TD where the image data data3 is used, in addition to an image display amounting to 1 screen, a display of the divided frame display period G1A is further performed. In
By performing such an image display, the first (last) divided frame display period in each image data use period TD could be shifted one by one in the order of R1A, R1B, G1A, . . . . In the first to fourth embodiments, the color to be displayed in the first (last) divided frame display period in each image data use period TD is repeated in the order of RGB, and when the image data use period TD is 16.67 ms (frequency: 60 Hz), a color exchange cycle is three times as long as the image data use period TD, that is, 50 ms (frequency: 20 Hz). To the contrary, in this embodiment, the color to be displayed in the first (last) divided frame display period in each image data use period TD is repeated in the order of RRGGBB so that a color exchange cycle is twice as long as the color exchange cycle of the first to fourth embodiments with respect to the same image data use period TD whereby it is not desirable from a view point of the suppression of color separation. However, this embodiment could acquire the following advantageous effects. In the case of the image display shown in
A sixth embodiment of the present invention provides a drive sequence which suppresses the appearance of contouring. This embodiment is characterized by applying the present invention to such a drive sequence.
For example, in performing a display using a drive sequence shown in
The sub frame periods are classified into the sub frame periods 3-1 to 3-7 belonging to a first group and the sub frame periods 0 to 2 belonging to a second group. In the sub frame periods 3-1 to 3-7 belonging to the first group, lengths of the light transmission periods are equal. The length of the light transmission period is 3 bits in this embodiment. Numeral “3” on a front side of 3-1 to 3-7 expresses that the light transmission period has the length of 3 bits, and numerals “1, 2, 3, 4, 5, 6 and 7” on a rear side respectively indicate the order at which the light transmission period appears in accordance with the increase of the gray level. In the first group, the number of sub frame periods where the light transmission period appears is increased every time the gray level reaches multiples of 8. In the sub frame periods 0 to 2 belonging to the second group, the lengths of the light transmission periods are shorter than the lengths of light transmission periods of the first group, and weighting is applied to the light transmission periods so as to make the lengths of the light transmission periods in the second group and the lengths of the light transmission periods in the first group differ from each other. The lengths of the light transmission periods are 0 to 2 bits in this embodiment. Numeral “0 to 2” expresses that the light transmission period has the length of 0 to 2 bits. In the sub frame periods 0 to 2 belonging to the second group, until the gray level reaches 8, a pattern of the combination of light transmission periods having lengths corresponding to the respective gray levels appears, and this pattern is repeated each time the gray level reaches a multiple of 8. The sub frame periods 3-1 to 3-7 belonging to the first group are also referred to as lighting control parts, and sub frame periods 0 to 2 belonging to the second group are also referred to as bit control part.
Out of the sub frame periods 3-1 to 3-7 belonging to the first group, the number of sub frame periods where the light transmission period appears is increased toward a start point and a finish point from a middle portion of the 1 frame display period along with the elevation of the gray level so that the sub frame periods are arranged so as to form an approximately mountain shape as a whole. Here, the number of sub frame periods where the light transmission period appears is alternately increased toward a start point side and a finish point side. For example, the sub frame period 3-1 where the light transmission period appears at the lowest gray level is provided at a center portion of the 1 frame display period. The sub frame period 3-2 where the light transmission period appears at the second lowest gray level is provided on either a start point side or a finish point side of the 1 frame display period with respect to the sub frame period 3-1. In this example, as shown in
The sub frame periods 0 to 2 belonging to the second group are respectively provided between the sub frame periods 3-1 to 3-7 belonging to the first group. That is, the sub frame periods 3-1 to 3-7 belonging to the first group and the sub frame periods 0 to 2 belonging to the second group are alternately provided. In this example, the sub frame periods 0 to 2 belonging to the second group are provided close to the center of the 1 frame display period, and out of these sub frame periods 0 to 2, two sub frame periods are provided before and after the sub frame period 3-1 which is arranged at the center portion of the 1 frame display period in a sandwiching manner.
As shown in
By adopting the drive sequence shown in
Next, the color separation which occurs due to the drive sequence shown in
In the display of colors expressed by the gray level values (63, 7, 7) of RGB, only light of R transmits in 7 pieces of sub frame periods 3-1 to 3-7 belonging to the first group, and lights of all three colors of RGB transmit in 3 pieces of sub frame periods 0 to 2 belonging to the second group. As shown in
Next, an image display according to this embodiment is explained using the drive sequence shown in
As shown in the drawing, a 1 frame display period is constituted of 10 pieces of sub frame periods. By arranging these sub frame periods time-sequentially such that two sub frame periods are put together, divided frame display periods are provided. That is, the 1 frame display period is constituted of 5 pieces of divided frame display periods. That is, the 1 frame display period is constituted of the first divided frame display period which is formed of the sub frame periods 3-6, 3-4, the second divided frame display period which is formed of the sub frame periods 0, 3-2, the third divided frame display period which is formed of the sub frame periods 2, 3-1, the fourth divided frame display period which is formed of the sub frame periods 1, 3-3, and the fifth divided frame display period which is formed of the sub frame periods 3-5, 3-7 in this order. Here, a length of the divided frame display period differs depending on a kind of a divided frame display period.
As shown in
In the image display according to this embodiment shown in
For example, the sub frame period 2 is the first sub frame period in the third divided frame display period. In the case of the image display according to the comparison example 3 shown in
The present invention has been explained in conjunction with the plurality of embodiments heretofore. In the sixth embodiment, the lengths of n pieces of divided frame display periods differ depending on the combination of the sub frame periods which constitutes the divided frame display period. Also in this case, the control part cyclically fetches image data and performs a display based on the fetched image data. The same goes for other embodiments, and the present invention is applicable to other embodiment without problems irrespective of whether lengths of n pieces of divided frame display periods are equal to or different from each other.
Although the display device according to the present invention has been explained as the display device which makes use of lighting control elements such as MEMS shutters, it is needless to say that the present invention is not limited to such a display device, and is broadly applicable to a display device which performs a display using a color sequential driving method.
While there have been described what are at present considered to be certain embodiments of the invention, it will be understood that various modifications may be made thereto, and it is intended that the appended claims cover all such modifications as fall within the true spirit and scope of the invention.
Number | Date | Country | Kind |
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2011-213406 | Sep 2011 | JP | national |