Field of the Invention
The present invention relates to an image processing apparatus and method which are useful in forming a multi-screen using a plurality of image display apparatuses.
Description of the Related Art
Conventionally, when forming a multi-screen by using a plurality of projection type image display apparatuses (to be referred to as image display apparatuses hereinafter), performing luminance correction for an image signal from a region where images from adjacent image display apparatuses overlap implements overall luminance evenness. It is also known that setting an image overlap region with an arbitrary width makes it difficult to visibly recognize even slight differences in display characteristics such as luminance and color tone between image display apparatuses.
In this case, an image display apparatus cannot completely cut off transmitted light when it is of a transmission type or cannot completely cut off reflected light when it is of a reflection type, and hence has a slight luminance even in the black display state. For this reason, in the black display or low gradation display state of a multi-screen arrangement, an image overlap region (to be referred to as an overlap region hereinafter) is higher in luminance than a non-image overlap region (to be referred to a non-overlap region hereinafter), resulting in an uneven luminance. This causes the problem of so-called black floating. Under the circumstances, there has been disclosed a technique which includes independent units for adjusting the luminance of an image overlap region and the luminance of a non-image overlap region and implements luminance evenness in a low gradation display state by independently correcting the luminance level of the non-image overlap region (for example, Japanese Patent Laid-Open No. 2002-268625).
The luminance correction method disclosed in Japanese Patent Laid-Open No. 2002-268625 will be described with reference to
However, the overlap accuracy of an image overlap region is not always high as indicated by (5B) in
Furthermore, in some case, no luminance edge appears at an end portion of an overlap image, as indicated by (5H) in
The present invention has been made in consideration of the above problem, and provides an image processing apparatus which can form a multi-screen display on which no luminance level difference is visibly recognized even in the black or low gradation display state.
According to a one aspect of the present invention, there is provided an image processing apparatus which generates low gradation luminance correction values with respect to an overlap region and a non-overlap region of a plurality of images constituting a multi-screen display, comprising a generation unit configured to generate the low gradation luminance correction values so as to make the values gradually change from the overlap region throughout the non-overlap region.
Further features of the present invention will become apparent from the following description of exemplary embodiments (with reference to the attached drawings).
The embodiments of the present invention will be described below with reference to the accompanying drawings.
[First Embodiment]
This arrangement includes a control unit 100, an overlap portion correction circuit 200, a low gradation display correction unit 300, a light valve driving unit 400, and a light valve 500. When forming a multi-screen display by using a plurality of image display apparatuses, there is provided an image overlap region where adjacent images overlap.
The control unit 100 includes a coordinate designation unit 110 and a correction value setting unit 120. The coordinate designation unit 110 is a unit for designating an image overlap region. In general, a region divided from an image end portion with the coordinates designated by the coordinate designation unit 110 is an overlap region, and the remaining region is a non-overlap region. In this embodiment, only the coordinate designation unit 110 is used to designate regions for the overlap portion correction circuit 200 and the low gradation display correction unit 300. However, the embodiment may include units for individually designating regions for the respective correction units. The correction value setting unit 120 sets a correction value.
The overlap portion correction circuit 200 includes a correction timing generation unit 210, a correction coefficient generation unit 220, and a multiplication unit 230. The correction timing generation unit 210 generates a pixel position in an overlap region based on the coordinates designated by the coordinate designation unit 110 and an externally input sync signal. The correction coefficient generation unit 220 generates correction coefficients in an overlap region based on the pixel position generated by the correction timing generation unit 210. The multiplication unit 230 performs luminance correction by multiplying an input image signal by the correction coefficients generated by the correction coefficient generation unit 220.
The correction coefficient generation unit 220 generates, for an image to overlap, correction coefficients to make an image signal on an overlap region end of an image end portion 0% and make an image signal on the overlap region end inside the image 100%. The image processing apparatus which displays an image to be overlapped performs similar overlap luminance correction, and generates correction coefficients to make an image signal on an overlap region end of an image end portion 100% and make an image signal on the overlap image region end inside the image 0%. Performing luminance correction based on the correction coefficients generated in this manner can implement overall luminance evenness.
The low gradation display correction unit 300 is a unit for correcting the luminance of a low gradation display for each of the regions (an overlap region and a non-overlap region) divided by the coordinates designated by the coordinate designation unit 110, and includes a correction value addition timing generation unit 310, a correction value generation unit 320, and an addition unit 330. The correction value addition timing generation unit 310 generates a timing to add a low gradation correction value based on the coordinates designated by the coordinate designation unit 110 and an externally input sync signal. The correction value generation unit 320 generates a low gradation correction value for implementing luminance evenness on a low gradation display at the timing generated by the correction value addition timing generation unit 310 based on the correction value set by the correction value setting unit 120. The addition unit 330 adds the low gradation correction value generated by the correction value generation unit 320 to the image signal having undergone luminance correction by the overlap portion correction circuit 200. The image having undergone luminance correction for overlap regions by the overlap portion correction circuit 200 and low gradation display correction by the low gradation display correction unit 300 is projected via the light valve driving unit 400 and the light valve 500.
As indicated by (2A-0) in
Letting 0 be a low gradation luminance correction value in an overlap region and Db be a low gradation luminance correction value in a non-overlap region, an example of a correction value Hd indicated by (2A-0) in
Correcting the low gradation luminances with the correction values expressed by equation (1) will obtain black correction luminances like those indicated by (2A-1) in
This embodiment can make it easy to visibly recognize a luminance level difference occurring at the boundary between an overlap region and a non-overlap region even if the overlap accuracy of an image overlap region is low. This can provide a multi-screen display having no noticeable joint line even on a black display without degrading a sense of oneness.
[Second Embodiment]
In the first embodiment, the correction value setting unit 120 sets a low gradation luminance correction value (for example, Db given by equation (1)) in the correction value generation unit 320 for low gradation correction. In consideration of a case in which low gradation luminance correction values are not uniform within a plane, there is conceivable an arrangement configured to divide a display into units of processing and set a low gradation luminance correction value to be used for each unit of processing by using LUT (Look-Up Table). In this case, as a display is divided into smaller units of processing, the number of correction values set in a LUT becomes larger. In contrast to this, as a display is divided into larger units of processing, the accuracy of low gradation luminance correction deteriorates. In this embodiment, as indicated in
This embodiment implements the correction value characteristics indicated by (2A-0) in
As shown in
Hd(Ph)=a0×Hn−2+a1×Hn−1+a2×Hn+a3×Hn+1 (2)
where one set of weighting coefficients a0 to a3 are prepared in accordance with positions on the actual boundary in units of processing, and characteristics like those indicated in
It is possible to obtain a low gradation luminance correction value for a pixel located between grid points from low gradation luminance correction values at two grid points located on the two sides of the pixel by linear interpolation, as indicated in
This embodiment can make it easy to visibly recognize a luminance level difference occurring at the boundary between an overlap region and a non-overlap region even when setting low gradation luminance correction values with a LUT. This can provide a multi-screen display having no noticeable joint line even on a black display without degrading a sense of oneness.
[Third Embodiment]
When implementing a multi-screen using a plurality of image display apparatuses, the overlap region between adjacent images changes in accordance with the arrangement of the plurality of image display apparatuses. For this reason, in general, the control unit (for example, menu operation using OSD (On-Screen Display)) of a projection type image display apparatus sets an overlap region. This embodiment can perform low luminance correction in accordance with overlap region setting by the control unit by executing the low luminance correction value generation method according to the second embodiment in accordance with the procedure described with reference to
First of all, in step S101, the apparatus determines whether a coordinate designation unit 110 has set any overlap region. If the coordinate designation unit 110 has set no overlap region, the process advances to step S103. If the coordinate designation unit 110 has set an overlap region, the apparatus sets unit-of-processing areas in accordance with the overlap region boundary with an adjacent image in step S102, and the process advances to step S104. In this case, the apparatus sets units of processing so as to set small units only near the boundary between an overlap region and a non-overlap region which is divided with the coordinates designated by the coordinate designation unit 110 and set large units in the remaining region, as shown in
This embodiment can perform luminance correction by calculating low gradation luminance correction values in accordance with the image overlap region set by the control unit of the image display apparatus and luminance correction values. This allows the user to form a multi-screen display having no noticeable joint line even on a black display without degrading a sense of oneness by using a simple method.
[Other Embodiments]
Aspects of the present invention can also be realized by a computer of a system or apparatus (or devices such as a CPU or MPU) that reads out and executes a program recorded on a memory device to perform the functions of the above-described embodiment(s), and by a method, the steps of which are performed by a computer of a system or apparatus by, for example, reading out and executing a program recorded on a memory device to perform the functions of the above-described embodiment(s). For this purpose, the program is provided to the computer for example via a network or from a recording medium of various types serving as the memory device (for example, computer-readable medium).
While the present invention has been described with reference to exemplary embodiments, it is to be understood that the invention is not limited to the disclosed exemplary embodiments. The scope of the following claims is to be accorded the broadest interpretation so as to encompass all such modifications and equivalent structures and functions.
This application claims the benefit of Japanese Patent Application No. 2012-275099, filed on Dec. 17, 2012 which is hereby incorporated by reference herein in its entirety.
Number | Date | Country | Kind |
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2012-275099 | Dec 2012 | JP | national |
Number | Name | Date | Kind |
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5668569 | Greene et al. | Sep 1997 | A |
7292207 | Naegle et al. | Nov 2007 | B1 |
7898501 | Jang | Mar 2011 | B2 |
20020057361 | Mayer, III | May 2002 | A1 |
Number | Date | Country |
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2002-268625 | Sep 2002 | JP |
2012-234072 | Nov 2012 | JP |
Entry |
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2002268625JPA.tran (PDF file); Inventor: Kokubo, Atsushi English translation of JP 2002-268625, published Sep. 20, 2002; made of record in the IDS submitted on Nov. 13, 2013. |
Number | Date | Country | |
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20140168283 A1 | Jun 2014 | US |