This application claims priority from Japanese Application No. 2014-241877, filed on Nov. 28, 2014, the contents of which are incorporated by reference herein in its entirety.
1. Technical Field
The present invention relates to a display device.
2. Description of the Related Art
Display devices using four colors, i.e., red (R), green (G), blue (B), and white (W) as colors of a plurality of sub-pixels constituting a pixel are publicly known. By including the W sub-pixel in addition to the R, G, and B sub-pixels, the display device can display a color including a white component more brightly.
However, the display device in which the pixel is constituted of sub-pixels of four colors includes the W sub-pixel, so that an area of a display region that can be allocated to the R, G, and B sub-pixels is reduced by an area of the W sub-pixel. Therefore, as compared with a display device in which the pixel is constituted only of the R, G, B sub-pixels, the display device described above has a problem that luminance of at least one or more colors among the three colors having large output values is lowered, such as luminance of a color (single color) represented by using any of the R, G, B sub-pixels.
Such a problem as described above is not limited to the display device using the four colors of R, G, B, and W as colors of sub-pixels, but is common to any display devices using four or more colors as colors of sub-pixels. In other words, in the display device including sub-pixels of four or more colors, an area of the sub-pixels that can be allocated to three colors, i.e., a first color, a second color, and a third color among the four or more colors is smaller as compared to the display device including the sub-pixels of only three colors.
For the foregoing reasons, there is a need for a display device that includes sub-pixels of four colors, i.e., a first color, a second color, a third color, and a fourth color, and can increase luminance of the first color, the second color, and the third color. Further, there is a need for a display device that can achieve an effect obtained by using the fourth color in addition to the first color, the second color, and the third color as the colors of the sub-pixels, while achieving higher luminance of the first color, the second color, and the third color at the same time.
A display device includes a display unit in which a plurality of pixels are arranged. One pixel includes four sub-pixels, and the display unit includes: a pixel including one each of four sub-pixels of four different colors that are a first color, a second color, a third color, and a fourth color; and a pixel including four sub-pixels, where two of the four sub-pixels are identical and are one of sub-pixels of the first color, the second color, and the third color, and remaining two of the four sub-pixels are different two of the sub-pixels of the first color, the second color, and the third color but are not one of the identical sub-pixels.
The following describes preferred embodiments for implementing the present invention in detail with reference to the accompanying drawings. The present invention is not limited to the embodiments described below. Components described below include a component that is easily conceivable by those skilled in the art, a component that is substantially identical thereto. Furthermore, the components described below may be appropriately combined. The disclosure is merely an example, and the present invention naturally encompasses an appropriate modification maintaining the gist of the invention that is easily conceivable by those skilled in the art. To further clarify the description, a width, a thickness, a shape, and the like of each component may be schematically illustrated in the drawings as compared with an actual aspect. However, this is merely an example and interpretation of the invention is not limited thereto. The same element as that described in the drawing that has already been discussed is denoted by the same reference numeral through the description and the drawings, and detailed description thereof will not be repeated in some cases.
The signal processing unit 20 controls operations of the image display panel 40 and the light source unit 50 in synchronization with each other. The signal processing unit 20 is coupled to the image display panel drive circuit 30 for driving the image display panel 40, and to the light source unit 50 that illuminates the image display panel 40. The signal processing unit 20 processes the input signal input from the outside to generate the output signal and a light source control signal. More specifically, the signal processing unit 20 converts, for example, an input value (input signal) of an input hue-saturation-value (HSV) color space indicated by the input signal into an extended value (output signal) of an extended HSV color space extended with components of a first color, a second color, a third color, and a fourth color to be generated, and outputs an output signal based on the extended value to the image display panel drive circuit 30. The signal processing unit 20 outputs the light source control signal corresponding to the output signal to the light source unit 50.
As illustrated in
The image display panel drive circuit 30 includes a signal output circuit 31 and a scanning circuit 32. The image display panel drive circuit 30 holds video signals using the signal output circuit 31, and sequentially outputs the video signals to the image display panel 40. The signal output circuit 31 is electrically coupled to the image display panel 40 via a wiring DTL. The image display panel drive circuit 30 performs control, by using the scanning circuit 32, to turn ON or OFF a switching element (for example, a thin film transistor (TFT)) for controlling an operation of a sub-pixel (for example, display luminance, and in this case, light transmittance) in the image display panel 40. The scanning circuit 32 is electrically coupled to the image display panel 40 via a wiring SCL.
The light source unit 50 includes a light source such as a light emitting diode (LED), and illuminates the image display panel 40 in response to supply of electric power and the light source control signal output from the signal processing unit 20. The light source unit 50 is arranged, for example, on the back surface of the image display panel 40, and emits light toward the image display panel 40 to illuminate the image display panel 40. The light source unit 50 adjusts electric current and a voltage to be supplied to the light source unit 50, and a duty ratio of a signal based on the light source control signal, and controls a quantity of light (light intensity) emitted to the image display panel 40. The light source unit 50 may be arranged on the front surface of the image display panel 40 as a front light. When a self-luminous display device such as an organic light emitting diode (OLED) display device is used as the image display panel 40, the light source unit 50 is not required.
The first sub-pixel 49R displays a first color component (for example, red as a first primary color). The second sub-pixel 49G displays a second color component (for example, green as a second primary color). The third sub-pixel 49B displays a third color component (for example, blue as a third primary color). The fourth sub-pixel 49W displays a fourth color component (i.e., white). When it is not necessary to distinguish the first sub-pixel 49R, the second sub-pixel 49G, the third sub-pixel 49B, and the fourth sub-pixel 49W from one another, they are collectively referred to as the sub-pixels 49. As described above, in the first embodiment, the first color, the second color, and the third color correspond to red, green and blue, respectively. The fourth color corresponds to white in the first embodiment.
In the first embodiment, the components of the first color, the second color, the third color, and the fourth color of the extended HSV color space indicated by the output signal are assumed to correspond to the respective color components of the first sub-pixel 49R, the second sub-pixel 49G, the third sub-pixel 49B, and the fourth sub-pixel 49W. However, the color components of the output signal do not necessarily directly correspond to the color components of the sub-pixels 49. For example, maximum luminance of a single color that can be achieved by at least one of the color components of the sub-pixels 49 may be higher than maximum luminance of the single color that is defined in the extended HSV color space indicated by the output signal.
More specifically, the display device 10 is a transmissive color liquid crystal display device, for example. The image display panel 40 is a color liquid crystal display panel in which a first color filter that transmits the first primary color is arranged between the first sub-pixel 49R and an image observer, a second color filter that transmits the second primary color is arranged between the second sub-pixel 49G and the image observer, and a third color filter that transmits the third primary color is arranged between the third sub-pixel 49B and the image observer. In the image display panel 40, no color filter is arranged between the fourth sub-pixel 49W and the image observer. A transparent resin layer may be provided to the fourth sub-pixel 49W in place of the color filter.
In the example illustrated in
Typically, an array similar to the stripe array is suitable for displaying data and/or character strings in a personal computer and the like. On the other hand, an array similar to the mosaic array is suitable for displaying a natural image in a video camera recorder, a digital still camera, or the like. These relations between arrays and products are merely examples, and the embodiment is not limited thereto. The relations are optional.
The pixels 48 include the pixel 48W including one each of the first sub-pixel 49R, the second sub-pixel 49G, the third sub-pixel 49B, and the fourth sub-pixel 49W, and pixels 48R, 48G, and 48B each including four sub-pixels, where two of the sub-pixels are identical and are one of the first sub-pixel 49R, the second sub-pixel 49G, and the third sub-pixel 49B and the remaining two sub-pixels are different two of the first sub-pixel 49R, the second sub-pixel 49G, and the third sub-pixel 49B but are not one of the identical sub-pixels. A pixel including two first sub-pixels 49R, one second sub-pixel 49G, and one third sub-pixel 49B is assumed to be the pixel 48R. A pixel including two second sub-pixels 49G, one first sub-pixel 49R, and one third sub-pixel 49B is assumed to be the pixel 48G. A pixel including two third sub-pixels 49B, one first sub-pixel 49R, and one second sub-pixel 49G is assumed to be the pixel 48B. When it is not necessary to distinguish the pixels 48R, 48G, 48B, and 48W from one another, they are collectively referred to as the pixels 48. Unless specifically described, reference numerals of the pixels 48R, 48G, 48B, and 48W are used only for distinguishing the numbers of the first sub-pixels 49R, the second sub-pixels 49G, the third sub-pixels 49B, and the fourth sub-pixels 49W included in each of the pixels, and are not used for distinguishing arrangement orders of these sub-pixels 49.
The following describes a more specific arrangement of the pixels 48R, 48G, 48B, and 48W with reference to
The pixel 48W of the G column is arranged adjacently right of the pixel 48R. The pixel 48B is arranged adjacently right of the pixel 48W of the G column. The pixel 48W of the R column is arranged adjacently right of the pixel 48B. The pixel 48G is arranged adjacently right of the pixel 48W of the R column. The pixel 48W of the B column is arranged adjacently right of the pixel 48G. The pixel 48R is arranged adjacently right of the pixel 48W of the B column. Subsequently, until reaching the right end of a pixel row included in the image display panel 40, the pixels are arranged in this order along the row direction. In the example illustrated in
The pixel 48W of the R column is arranged adjacently below the pixel 48R. The pixel 48R is arranged adjacently below the pixel 48W of the R column. The pixel 48W of the G column is arranged adjacently below the pixel 48G. The pixel 48G is arranged adjacently below the pixel 48W of the G column. The pixel 48W of the B column is arranged adjacently below the pixel 48B. The pixel 48B is arranged adjacently below the pixel 48W of the B column. In each of the R column, the G column, and the B column, the pixels are arranged in this order along the column direction. In this way, in the image display panel 40, the pixels 48W are arranged in a hound's-tooth check pattern (like a checkered pattern). In other words, the pixel (pixel 48W) including the sub-pixel of the fourth color (fourth sub-pixel 49W) and the pixels (the pixels 48R, 48G, and 48B) not including the sub-pixel of the fourth color are alternately arranged along at least one of two directions (in the first embodiment, the row direction and the column direction).
The first sub-pixel 49R, the second sub-pixel 49G, and the third sub-pixel 49B in the pixel 48R are arranged in the order of, from the left to the right of the stripe array, the first sub-pixel 49R, the first sub-pixel 49R, the second sub-pixel 49G, and the third sub-pixel 49B. Similarly, the first sub-pixel 49R, the second sub-pixel 49G, and the third sub-pixel 49B in the pixel 48G are arranged in the order of the first sub-pixel 49R, the second sub-pixel 49G, the second sub-pixel 49G, and the third sub-pixel 49B. The first sub-pixel 49R, the second sub-pixel 49G, and the third sub-pixel 49B in the pixel 48B are arranged in the order of the first sub-pixel 49R, the second sub-pixel 49G, the third sub-pixel 49B, and the third sub-pixel 49B. In this way, two sub-pixels 49 of the same color included in one pixel 48 are adjacent to each other.
The first sub-pixels 49R are arranged on the vertically adjacent sides of the fourth sub-pixel 49W included in the pixel 48W of the R column. Therefore, as illustrated in
An arrangement interval of the fourth sub-pixels 49W in the row direction has a predetermined periodicity. More specifically, as illustrated in
Since the fourth sub-pixels 49W are arranged in the manner described above, the arrangement order of the first sub-pixel 49R, the second sub-pixel 49G, the third sub-pixel 49B, and the fourth sub-pixel 49W may be different depending on which column among the R column, the G column, and the B column the pixel 48W belongs to. In the pixel 48W of the R column and the pixel 48W of the G column, the first sub-pixel 49R, the fourth sub-pixel 49W, the second sub-pixel 49G, and the third sub-pixel 49B are arranged in this order from the left to the right of the stripe array. In the pixel 48W of the B column, the first sub-pixel 49R, the second sub-pixel 49G, the fourth sub-pixel 49W, and the third sub-pixel 49B are arranged in this order. These arrangement orders are merely an example, and the embodiment is not limited thereto. For example, the arrangement order of the first sub-pixel 49R, the second sub-pixel 49G, the third sub-pixel 49B, and the fourth sub-pixel 49W in the pixel 48W of the G column may be an arrangement order of the first sub-pixel 49R, the second sub-pixel 49G, the fourth sub-pixel 49W, and the third sub-pixel 49B.
The number of the sub-pixels of the first color (first sub-pixels 49R), the number of the sub-pixels of the second color (second sub-pixels 49G), and the number of the sub-pixels of the third color (third sub-pixels 49B) are the same. More specifically, a ratio among the number of the first sub-pixels 49R, the number of the second sub-pixels 49G, the number of the third sub-pixels 49B, and the number of the fourth sub-pixels 49W is 7:7:7:3.
As described above, the signal processing unit 20 converts, for example, the input value (input signal) of the input HSV color space indicated by the input signal into the extended value (output signal) of the extended HSV color space extended with components of the first color, the second color, the third color, and the fourth color to be generated, and outputs the output signal based on the extended value to the image display panel drive circuit. In this case, since the pixel 48R, the pixel 48G, and the pixel 48B do not include the fourth sub-pixel 49W, the image display panel 40 cannot output the fourth color component. Thus, in the first embodiment, exception processing is performed on the pixel not including the fourth sub-pixel 49W. More specifically, as for the pixel 48R, the pixel 48G, and the pixel 48B, the image display panel 40 may output the first color component, the second color component, and the third color component disregarding the fourth color component, for example. The signal processing unit 20 may output the output signal corresponding to the pixel 48R, the pixel 48G, and the pixel 48B as the output signal corresponding to a color that can be extended only with the first color, the second color, and the third color in the extended HSV color space. The signal processing unit 20 may adjust the luminance using the fourth sub-pixel 49W in a pixel group unit of a predetermined combination. More specifically, in a case of the pixel arrangement illustrated in
As described above, according to the first embodiment, the image display panel 40 functioning as a display unit includes the pixel (for example, the pixel 48W) including one each of four sub-pixels of four colors, i.e., the first color, the second color, the third color, and the fourth color that are different from one another (for example, the first sub-pixel 49R, the second sub-pixel 49G, the third sub-pixel 49B, and the fourth sub-pixel 49W), and the pixels (for example, the pixel 48R, the pixel 48G, and the pixel 48B) each including four sub-pixels, where two of the sub-pixels are identical and are one of the sub-pixels of the first color, the second color, and the third color, and the remaining two sub-pixels are different two of the sub-pixels of the first color, the second color, and the third color but are not one of the identical sub-pixels. Accordingly, under the condition that the sub-pixels of four colors, i.e., the first color, the second color, the third color, and the fourth color are included, the luminance of the first color, the second color, and the third color can be further increased. According to the first embodiment, the effect obtained by using the fourth color in addition to the first color, the second color, and the third color as the color of the sub-pixel, and higher luminance of the first color, the second color, and the third color, can be achieved at the same time.
The sub-pixels of the fourth color (for example, the fourth sub-pixels 49W) are arranged at a predetermined cycle along at least one of the two directions, so that the sub-pixels of the fourth color can be distributively arranged without being concentrated on a part of the display unit.
The pixel (pixel 48W) including the sub-pixel of the fourth color (fourth sub-pixel 49W) and the pixels not including the sub-pixel of the fourth color (the pixel 48R, the pixel 48G, and the pixel 48B) are alternately arranged along at least one of the two directions, so that the pixels including the sub-pixel of the fourth color can be distributively arranged without being concentrated on a part of the display unit.
The number of the sub-pixels of the first color (first sub-pixels 49R), the number of the sub-pixels of the second color (second sub-pixels 49G), and the number of the sub-pixels of the third color (third sub-pixels 49B) are the same, so that the luminance of these colors can be further increased while preventing biased increase in the luminance of a specific color among the first color, the second color, and the third color.
The two sub-pixels 49 of the same color included in one pixel 48 are adjacent to each other, so that the luminance of the color of the two sub-pixels 49 in a region of the adjacent two sub-pixels 49 can be further increased.
In
In two adjacent columns of the pixels 48, three columns of the sub-pixels 49 are interposed between the column of the sub-pixels 49 where the fourth sub-pixels 49W are arranged in one of the adjacent two columns and the column of the sub-pixels 49 where the fourth sub-pixels 49W are arranged in the other one of the adjacent two columns. In this way, according to the modification of the first embodiment, the fourth sub-pixels 49W are arranged at regular intervals.
According to the modification of the first embodiment, the same effect as that of the first embodiment can be obtained. More specifically, under the condition that the sub-pixels of four colors, i.e., the first color, the second color, the third color, and the fourth color are included, the luminance of the first color, the second color, and the third color can be further increased. According to the modification of the first embodiment, the effect obtained by using the fourth color in addition to the first color, the second color, and the third color as the color of the sub-pixel, and higher luminance of the first color, the second color, and the third color, can be achieved at the same time. The sub-pixels of the fourth color can be distributively arranged without being concentrated on a part of the display unit. The luminance of the first color, the second color, and the third color can be further increased while preventing biased increase in the luminance of a specific color among these colors. The luminance of the color of the two adjacent sub-pixels 49 in a region of the two sub-pixels 49 can be further increased. The fourth sub-pixels 49W are arranged at regular intervals, so that the sub-pixels of the fourth color can be distributively arranged more uniformly.
Next, the following describes a second embodiment for implementing the present invention. The same component as that of the first embodiment may be denoted by the same reference numeral, and the description thereof may be omitted.
More specifically, the first sub-pixel 49R, the second sub-pixel 49G, and the third sub-pixel 49B in the pixel 48B of the B column are arranged in the order of, from the left to the right of the stripe array, the first sub-pixel 49R, the third sub-pixel 49B, the second sub-pixel 49G, and the third sub-pixel 49B. Similarly, the first sub-pixel 49R, the second sub-pixel 49G, the third sub-pixel 49B, and the fourth sub-pixel 49W in the pixel 48W of the B column are arranged in the order of the first sub-pixel 49R, the fourth sub-pixel 49W, the second sub-pixel 49G, and the third sub-pixel 49B.
According to the arrangement of the sub-pixels 49 of the B column as described above, in the second embodiment, the fourth sub-pixel 49W included in the pixel 48W of the B column is arranged on the right side of the fourth sub-pixel 49W included in the pixel 48W of the R column at an interval of every seven other sub-pixels 49 (the first sub-pixel 49R, the second sub-pixel 49G, or the third sub-pixel 49B). The fourth sub-pixel 49W included in the pixel 48W of the G column is arranged on the right side of the fourth sub-pixel 49W included in the pixel 48W of the B column at an interval of every seven other sub-pixels 49. The fourth sub-pixel 49W included in the pixel 48W of the R column is arranged on the right side of the fourth sub-pixel 49W included in the pixel 48W of the G column at an interval of every seven other sub-pixels 49. In two adjacent columns of the pixels 48, three columns of the sub-pixels 49 are interposed between the column of the sub-pixels 49 where the fourth sub-pixels 49W are arranged in one of the adjacent two columns and the column of the sub-pixels 49 where the fourth sub-pixels 49W are arranged in the other one of the adjacent two columns. In this way, according to the second embodiment, the fourth sub-pixels 49W are arranged at regular intervals.
According to the second embodiment, in addition to obtaining the same effect as that of the first embodiment, the fourth sub-pixels 49W are arranged at regular intervals, so that the sub-pixels of the fourth color can be distributively arranged more uniformly.
According to the arrangement of the pixels 48W as described above, in the modification of the second embodiment, the fourth sub-pixel 49W included in the pixel 48W of the B column is arranged on the right side of the fourth sub-pixel 49W included in the pixel 48W of the R column at an interval of every seven other sub-pixels 49 (the first sub-pixel 49R, the second sub-pixel 49G, or the third sub-pixel 49B). The fourth sub-pixel 49W included in the pixel 48W of the G column is arranged on the right side of the fourth sub-pixel 49W included in the pixel 48W of the B column at an interval of every seven other sub-pixels 49. The fourth sub-pixel 49W included in the pixel 48W of the R column is arranged on the right side of the fourth sub-pixel 49W included in the pixel 48W of the G column at an interval of every seven other sub-pixels 49. In two adjacent columns of the pixels 48, three columns of the sub-pixels 49 are interposed between the column of the sub-pixels 49 where the fourth sub-pixels 49W are arranged in one of the adjacent two columns and the column of the sub-pixels 49 where the fourth sub-pixels 49W are arranged in the other one of the adjacent two columns. In this way, according to the modification of the second embodiment, the fourth sub-pixels 49W are arranged at regular intervals.
According to the modification of the second embodiment, in addition to obtaining the same effect as that of the first embodiment, the fourth sub-pixels 49W are arranged at regular intervals, so that the sub-pixels of the fourth color can be distributively arranged more uniformly.
Next, the following describes a third embodiment for implementing the present invention. The same component as that of the first embodiment may be denoted by the same reference numeral, and the description thereof may be omitted.
In the third embodiment, the pixels 48W are not arranged at every other pixel in the row direction. More specifically, for example, in the uppermost pixel row in
According to the third embodiment, the same effect as that of the first embodiment can be exhibited.
Next, the following describes a fourth embodiment for implementing the present invention. The same component as that of the first embodiment may be denoted by the same reference numeral, and the description thereof may be omitted.
In the fourth embodiment, among the number of the sub-pixels of the first color (first sub-pixels 49R), the number of the sub-pixels of the second color (second sub-pixels 49G), and the number of the sub-pixels of the third color (third sub-pixels 49B), the number of the sub-pixels 49 of at least one of the colors is different from the number of the sub-pixels of the other colors. More specifically, in the example illustrated in
According to the fourth embodiment, the color balance of the display unit (for example, the image display panel 40) can be adjusted by varying the ratio of the respective color components of the sub-pixels 49.
Next, the following describes application examples of the display device 10 described in each embodiment with reference to
The electronic apparatus illustrated in
The electronic apparatus illustrated in
Even though the embodiments and the modifications of the present invention have been described above, the embodiments and the modifications are not limited thereto. The components described above include a component that is easily conceivable by those skilled in the art, a component that is substantially identical thereto, and a component within a range of equivalents. The components described above can also be appropriately combined with one another. In addition, the components can be omitted, replaced, and modified in various manners without departing from the gist of the embodiments and the modifications described above. For example, the display device 10 may include a self-luminous image display panel 40 that lights a self-luminous body such as an organic light-emitting diode (OLED). The color for each sub-pixel (the first color, the second color, the third color, or the fourth color) can be determined using a luminescent material, instead of the color filter.
In the above embodiments, the HSV color space is employed as a color space of the color indicated by the input signal and the output signal. However, the HSV color space is merely an example of a color space that can be employed according to the present invention, and the embodiments are not limited thereto. Another color space may also be employed. The colors of the sub-pixels are not limited to red, green, blue, and white. At least one of these colors may be replaced with another color. As a specific example, a color such as yellow (Y) may be employed in place of white. In place of three primary colors including red, green, and blue, colors such as cyan (C), magenta (M), and yellow (Y) may be employed.
The present invention naturally encompasses other working effects caused by the aspects described in the above embodiments that are clear from the description herein or that are appropriately conceivable by those skilled in the art.
The present invention includes the following aspects:
(1) A display device comprising a display unit in which a plurality of pixels are arranged,
wherein one pixel includes four sub-pixels, and
wherein the display unit includes:
wherein the plurality of pixels are arranged in a matrix along two directions intersecting with each other, and
wherein sub-pixels of the fourth color are arranged at a predetermined cycle along at least one of the two directions.
(3) The display device according to either (1) or (2),
wherein the plurality of pixels are arranged in a matrix along two directions intersecting with each other, and
wherein a pixel including a sub-pixel of the fourth color and a pixel not including the sub-pixel of the fourth color are alternately arranged along at least one of the two directions.
(4) The display device according to either (1) or (2), wherein a number of sub-pixels of the first color, a number of sub-pixels of the second color, and a number of sub-pixels of the third color are equal.
(5) The display device according to either (1) or (2), wherein, among a number of sub-pixels of the first color, a number of sub-pixels of the second color, and a number of sub-pixels of the third color, a number of sub-pixels of at least one of the colors is different from a number of sub-pixels of the other colors.
(6) The display device according to either (1) or (2), wherein two sub-pixels of identical color included in one pixel are adjacent to each other.
(7) The display device according to either (1) or (2), wherein the first color, the second color, and the third color are red, green, and blue, respectively.
(8) The display device according to either (1) or (2), wherein the fourth color is white.
(9) The display device according to either (1) or (2), wherein the four sub-pixels included in the one pixel are continuously arranged along a certain direction.
Number | Date | Country | Kind |
---|---|---|---|
2014-241877 | Nov 2014 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
20040051724 | Elliott | Mar 2004 | A1 |
20040095521 | Song et al. | May 2004 | A1 |
20040169807 | Rho et al. | Sep 2004 | A1 |
20080030660 | Roth | Feb 2008 | A1 |
20090115952 | Nakamura | May 2009 | A1 |
20090315921 | Sakaigawa et al. | Dec 2009 | A1 |
20100141693 | Lee et al. | Jun 2010 | A1 |
20130021328 | Yang | Jan 2013 | A1 |
Number | Date | Country |
---|---|---|
2010-33009 | Feb 2010 | JP |
2010-526332 | Jul 2010 | JP |
2012-083794 | Apr 2012 | JP |
WO 2008130203 | Oct 2008 | WO |
Entry |
---|
Office Action dated Mar. 20, 2018, in Japanese Patent Application No. 2014-241877, filed Nov. 28, 2014, w/English-language Translation, 26 pages. |
Number | Date | Country | |
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20160155371 A1 | Jun 2016 | US |