1. Field of the Invention
The present invention relates to an image signal processing apparatus, an imaging apparatus, an image signal processing method and a computer program, and more particularly to an image signal processing apparatus, an imaging apparatus, an image signal processing method and a computer program for performing signal processing of imaged data by a solid state imaging device of a single plate color system.
2. Description of Related Art
A general solid state imaging device of the single plate color system has a color filter stuck thereto to transmit a specific wavelength component in each pixel to a surface of an imaging device, and restores necessary color components by a set of a plurality of pixels. At this time, for example, a color array expressing red (R), green (G) and blue (B) by a set of four pixels as shown in
The configuration of an imaging apparatus equipped with a solid state imaging device of the single plate color system is shown in
With reference to
A demosaic processing unit 21 executes the processing of restoring all pieces of information of each color component data, i.e., R, G and B, by performing color interpolation processing to each pixel.
First, the restoration of a G signal which restoration is executed by the demosaic processing unit 21 is described. In the Bayer color array shown in
G11=(¼)(G01, +G21 +G10 +G12)
Next, the restorations of an R signal and a B signal are described. In the Bayer color array as shown in
In a pixel line in which either data R or data B exists, the data R or the data B is obtained every other pixel. In the case where an R signal (B signal) exists in the same line as that of a pixel at which a certain R signal (B signal) does not exist in the output image 20 of the solid state imaging device, for example, cases of R01 and B12, interpolated pixel values in the pixels in which the R and B signals do not exist on the pixel line can be calculated by the following expressions, and the R signal (B signal) of each pixel can be restored.
R01 =(½)(R00+R02)
B12 =(½)(B11 +B13)
In the case where R signals (B signals) exist in the same column, for example, cases of R10and B21, the interpolated pixel values at the pixels where certain R and B signals do not exist can be similarly calculated in accordance with the following expressions, and the R signal (B signal) in each pixel is restored.
R10 =(½)(R00 +R20)
B21 =(½)(B11,+B31)
Moreover, in a case where no R signals (B signals) exist in both of the same line and the same column, for example, cases of R11 and B22, the interpolated pixel values in the pixels in which certain R and B signals exist can be calculated by the following expressions, and the R signal (B signal) at each pixel is restored.
R11 =(¼)(R00 +R02 +R20 +R22)
B22 =(¼)(B11 +B13 +B31 +B33)
The demosaic processing unit 21 performs the color interpolation processing as mentioned above, and outputs R signals 22r, G signals 22g and B signals 22b to all pixels. It is noted that the above interpolation processing is only one example, and any color interpolation processing using the correlations with the other color signals may be performed.
An improvement of image quality of images captured with a digital still camera or a movie camera in a low illumination condition has become an important issue. In a case of capturing images in a low illumination condition, it is generally practiced to decrease a shutter speed, utilize a lens having a brighter value of aperture, and/or apply an external visible light source such as flash.
In this case, decreased shutter speed results in a camera shake and image blurring. Also, as to the aperture value of lens, there is normally a limit; therefore it is difficult to make it brighter than a certain limit. Further, when an external visible light source is used, there is a problem that an illumination environment of scene or feel of ambient illumination is degraded by flash.
Most of the low illumination conditions are brought by a light source having a low color temperature and plentiful radiant quantities of infrareds is used in most cases. In addition, if an invisible light such as infrared light is used as an auxiliary lighting, the environment of scene is less degraded. In consideration of the above, a technique to be able to improve effective imaging sensitivity under a light source which contains a plenty of invisible light such as an infrared light is greatly desired.
For example, in Japanese Patent Application Publication No. Hei 4-88784 (Patent Document 1), a signal processing method is disclosed for obtaining a high resolution image by use of an imaging device (imager) which applies the color arrays, i.e., the Bayer array combining white color (Y) as the luminance signal together with red (R), green (G) and blue (B) colors as described above by referring to
That is, according to the arrays shown in
Such color arrays as shown in
The present invention is contemplated to provide an image signal processing apparatus, an imaging apparatus, an image signal processing method and a computer program thereof, capable of producing a high-quality image data with reduced noise even for such images to be captured with a single-plate color solid-state imager under an insufficient illumination such as in the darkness, in a low illumination condition with its light source containing much of an infrared light, or in a low illumination using an auxiliary light of infrared.
An image signal processing apparatus according to an embodiment of the present invention includes a luminance signal producing unit and a color difference signal producing unit. The luminance signal producing unit receives input of a first mosaic image from signals acquired by a single-plate color imager and produces, as a luminance signal, a wide wavelength range signal demosaic image corresponding to a wide wavelength range signal. The single-plate color imager has element arrays configured with a specific wavelength range signal acquisition element for acquiring a visible light signal corresponding to a specific light wavelength range and a wide wavelength range signal acquisition element for acquiring a light signal including a visible light component and an invisible light component. The first mosaic image is a signal acquired by the wide wavelength range signal acquisition element. The color difference signal producing unit receives input of a second mosaic image which is a signal acquired by the specific wavelength range signal acquisition element, produces a visible light range signal demosaic image corresponding to a visible light range signal, and produces a color difference signal based on the visible light range signal demosaic image.
Further, in the image signal processing apparatus, according to another embodiment of the present invention, the specific wavelength range signal acquisition element is an RGB-element for separately acquiring a color component signal RGB, and the wide wavelength range signal acquisition element is an A-element for acquiring an A-signal containing an RGB-color signal component and an infrared light component. The luminance signal producing unit is configured to receive input of an A-mosaic image which is a signal acquired by the A-element for acquiring the A-signal and execute a processing to produce as a luminance signal an A-signal demosaic image containing the RGB-color signal component and the infrared light component. The color difference signal producing unit is configured to receive input of an RGB-mosaic image which is a signal acquired by the RGB-element, produces an RGB-demosaic image, and produces a color difference signal based on the RGB-demosaic image.
Further, in the image signal processing apparatus, according to one embodiment of the invention, the color difference signal producing unit is configured to execute a process to produce color difference signals R-Y and B-Y based on the RGB-demosaic image.
Still further, an image signal processing apparatus according to an embodiment of the present invention includes a first color component-signal extraction unit, a second color component signal extraction unit, and a synthesizing process unit. The first color component signal extraction unit receives input of a first mosaic image from signals acquired by a single-plate imager and extracts a first color component signal from a wide wavelength range signal demosaic image. The single-plate imager has element arrays including a specific wavelength range signal acquisition element for acquiring a visible light signal corresponding to a specific light wavelength range and a wide wavelength range signal acquisition element for acquiring a light signal containing a visible light component and an invisible light component. The first mosaic image is a signal acquired by the wide wavelength range signal acquisition element. The first color component signal is a visible light color component signal. The second color component signal extraction unit receives input of a second mosaic image, produces a visible light range signal demosaic image and extracts a second color component signal based on the visible light range signal demosaic image. The second demosaic image is a signal acquired by the specific wavelength range signal acquisition element. The visible light range signal demosaic image corresponds to a visible light range signal. The synthesizing process unit synthesizes the first color component signal and the second color component signal.
Furthermore, in the image signal processing apparatus, according to one embodiment of the present invention, the first color component signal extraction unit is configured to have a wide wavelength range signal demosaic image producing unit, a wide wavelength range signal high frequency component image producing unit, and a visible light color component signal extraction unit. The wide wavelength range signal demosaic image producing unit receives input of a mosaic image of a signal acquired by the wide wavelength range signal acquisition element, and produces a wide wavelength range signal demosaic image corresponding to a wide wavelength range signal. The wide wavelength range signal high frequency component image producing unit extracts a high frequency component from the wide wavelength range signal demosaic image, and produces a wide wavelength range signal-high frequency component image. The visible light color component signal extraction unit extracts a visible light color component signal based on the wide wavelength range signal high frequency component image.
Still furthermore, in the image signal processing apparatus, according to one embodiment of the present invention, the specific wavelength range signal acquisition element is an RGB-element for separately acquiring a color component signal RGB, and the wide wavelength range signal acquisition element is an A-element for acquiring an A signal which contains an RGB-color signal component and an infrared light component. The first color component signal extraction unit is configured to receive input of a mosaic image which is a signal acquired by the A-element and extract a visible light color component signal RGB from an A-signal demosaic image. The second color component signal extraction unit is configured to receive input of an RGB-mosaic image which is a signal acquired by the RGB-element, produce an RGB-demosaic image, and extract a color component signal RGB based on the RGB-demosaic image. The synthesizing process unit is configured to synthesize the visible light color component signal RGB extracted in the first color component extraction unit and the color component signal RGB extracted in the second color component extraction unit.
An imager according to an embodiment of the present invention is an imager having element arrays including a specific wavelength range signal acquisition element for acquiring a visible light signal corresponding to a specific light wavelength range, and a wide wavelength range signal acquisition element for acquiring a light signal containing a visible light component and an invisible light component.
Furthermore, in the imager according to an embodiment of the present invention, the specific wavelength range signal acquisition element is an RGB-element for separately acquiring a color component signal RGB, and the wide wavelength range signal acquisition element is an A-element for acquiring an A-signal which contains an RGB-color signal component and an infrared light component.
Still further, in the imager, according to one embodiment of the invention, the wide wavelength range signal acquisition element A is configured to be disposed in a checkered pattern.
An imaging apparatus according to an embodiment of the present invention includes a single-plate imager, a luminance signal producing unit, and a color difference signal producing unit. The single-plate imager has element arrays including a specific wavelength range signal acquisition element for acquiring a visible light signal corresponding to a specific light wavelength range and a wide wavelength range signal acquisition element for acquiring a light signal containing a visible light component and an invisible light component. The luminance signal producing unit receives input of a mosaic image which is a signal acquired by the wide wavelength range signal acquisition element from a plurality of signals acquired by the single-plate imager, and produces, as a luminance signal, a wide wavelength range signal demosaic image corresponding to the wide wavelength range signal. The color difference signal producing unit receives input of a mosaic image of a signal acquired by the specific wavelength range signal acquisition element, produces a visible light range signal demosaic image corresponding to a visible light range signal, and produces a color difference signal based on the visible light range signal demosaic image.
In the imaging apparatus, according to one embodiment of the present invention, the specific wavelength range signal acquisition element is an RGB-element for separately acquiring a color component signal RGB, and the wide wavelength range signal acquisition element is an A-element for acquiring an A-signal containing RGB color signal components and an infrared light component. The luminance signal producing unit is configured to receive input of an-A mosaic image which is a signal acquired by the A-element for acquiring A-signals, and generates an A-demosaic image containing RGB color signal components and an infrared light component, as a luminance signal. The color difference signal producing unit is configured to receive input of an RGB-mosaic image which is a signal acquired by the RGB element, produce an RGB-demosaic image, and generate a color difference signal based on the RGB demosaic image.
Further, in the imaging apparatus according to one embodiment of the invention, the color difference signal producing unit is configured to perform processing to produce color difference signals R-Y and B-Y on the basis of the RGB demosaic image.
An imaging apparatus according to an embodiment of the present invention includes a single-plate imager, a first color component signal extraction unit, a second color component signal extraction unit, and a synthesizing unit. The single-plate imager has element arrays including a specific wavelength range signal acquisition element for acquiring a visible light signal corresponding to a specific light wavelength range and a wide wavelength range signal acquisition element for acquiring a light signal containing a visible light component and an invisible light component. The first color component signal extraction unit receives input of a mosaic image which is a signal acquired by the wide wavelength range signal acquisition element from a plurality of signals acquired by the single-plate imager, and extracts a visible light color component signal from a wide wavelength range signal demosaic image corresponding to a wide wavelength range signal. The second color component signal extraction unit receives input of a mosaic image which is a signal acquired by the specific wavelength range signal acquisition element, produces a visible light range signal demosaic image corresponding to a visible light range signal, and extracts a color component signal based on the visible light range signal demosaic image. The synthesizing unit synthesizes a color component signal extracted in the first color component extraction unit and a color component signal extracted in the second color component extraction unit.
Further, in the imaging apparatus according to one embodiment of the present invention, the first color component signal extraction unit is configured to include a wide wavelength range signal demosaic image producing unit, a wide wavelength range signal high frequency component image generating unit, and a visible light color component signal extraction unit. The wide wavelength range signal demosaic image producing unit receives input of a mosaic image which is a signal acquired by the wide wavelength range signal acquisition element, and produces a wide wavelength range signal demosaic image corresponding to a wide wavelength range signal. The wide wavelength range signal high frequency component image generating unit extracts a high frequency component from the wide wavelength range signal demosaic image, and produces a wide wavelength range signal high frequency component image. The visible light color component signal extraction unit extracts a visible light color component signal from the wide wavelength range signal high frequency component image.
Still further, in the imaging apparatus according to one embodiment of the present invention, the specific wavelength range signal acquisition element is an RGB-element for separately acquiring a color component signal RGB, and the wide wavelength range signal acquisition element is an A-element for acquiring an A-signal containing RGB color signal components and an infrared light component. The first color component signal extraction unit is configured to receive input of a mosaic image which is a signal acquired by the A-element, and extract a visible light color component signal RGB from an A-signal demosaic image. The second color component signal extraction unit is configured to receive input of an RGB-mosaic image which is a signal acquired by the RGB-element, produce RGB-demosaic images, and extract a color component signal RGB based on the RGB-demosaic image. The synthesizing process unit is configured to perform a processing to synthesize a color component signal RGB extracted in the first color component extraction unit and a color component signal RGB extracted in the second color component extraction unit.
Further, an image signal processing method according to an embodiment of the present invention includes a luminance signal producing step, and color difference signal producing step. The luminance signal producing step is a step of inputting a mosaic image which is a signal acquired by a wide wavelength range signal acquisition element from signals acquired by a single-plate imager having element arrays including a specific wavelength range signal acquisition element which acquires a visible light signal corresponding to a specific light wavelength range and the wide wavelength range signal acquisition element which acquires a light signal containing a visible light component and an invisible light component, and producing a wide wavelength range signal demosaic image corresponding to a wide wavelength range signal as a luminance signal. The color difference signal producing step is a step of inputting a mosaic image which is a signal acquired by the specific wavelength range signal acquisition element, producing a visible light range signal demosaic image corresponding to a visible light range signal, and generating a color difference signal based on the visible light range signal demosaic image.
Further in the image signal processing method according to one embodiment of the present invention, the specific wavelength range signal acquisition element is an RGB-element for separately acquiring a color component signal RGB, the wide wavelength range signal acquisition element is an A-element for acquiring an A-signal containing RGB-color signal components and an infrared light component. The luminance signal generating step is a step of performing a processing to input an A-mosaic image which is a signal acquired by the A-element, and produce an A-signal demosaic image containing RGB-color components and an infrared light component as a luminance signal. The color difference signal forming step is a step of performing a processing to input an RGB-mosaic image signal acquired by the RGB element, produce an RGB-demosaic image, and generate a color difference signal based on the RGB demosaic images.
Still further, in the image signal processing method according to one embodiment of the present invention, the color difference signal generating step is a step of performing a processing to generate color difference signals R-Y and B-Y on the basis of the RGB demosaic image.
Furthermore, an image signal processing method according to an embodiment of the present invention includes a first color component signal extraction step, a second color component signal extraction-step, and a synthesizing step. The first color component signal extraction step is a step of inputting a mosaic image which is a signal acquired by a wide wavelength range signal acquisition element from a plurality of signals acquired by a single-plate imager having element arrays including a specific wavelength range signal acquisition element for acquiring a visible light signal corresponding to a specific light wavelength range and a wide wavelength range signal acquisition element for acquiring a light signal containing a visible light component and an invisible light component, and extracting a visible light color component signal from a wide wavelength range signal demosaic image corresponding to a wide wavelength range signal. The second color component signal extraction step is a step of inputting a mosaic image which is a signal acquired by the specific wavelength range signal acquisition element, generating a visible light range signal demosaic image corresponding to a visible light range signal, and extracting a color component signal on the basis of the visible light range signal demosaic image. The synthesizing step is a step of performing processing to synthesize a color component signal extracted in the first color component extraction step and a color component signal extracted in the second color component extraction step.
Furthermore, in the image signal processing method according to one embodiment of the present invention, the first color component signal extraction step includes a wide wavelength range signal demosaic image producing step, a wide wavelength range signal high frequency component image producing step, and a visible light color component signal extraction step. The wide wavelength range signal demosaic image producing step is a step of inputting a mosaic image which is a signal acquired by the wide wavelength range signal acquisition element, and producing a wide wavelength range signal demosaic image corresponding to a wide wavelength range signal. The wide wavelength range signal high frequency component image producing step is a step of extracting a high frequency component from the wide wavelength range signal demosaic image, and producing a wide wavelength range signal high frequency component image. The visible light color component signal extraction step is a step of extracting a visible light color component signal from the wide wavelength range signal high frequency component image.
In the image signal processing method according to one embodiment of the present invention, the specific wavelength range signal acquisition element is an RGB-element for separately acquiring a color component signal RGB, and the wide wavelength range signal acquisition element is an A-element for acquiring an A-signal which contains RGB color signal components and an infrared light component. The first color component signal extraction step is a step of performing processing to input a mosaic image which is a signal acquired by the A-element, and extract a visible light color component signal RGB from an A-signal demosaic image. The second color component signal extraction step is a step of performing processing to input an RGB-mosaic image acquired by the RGB-element, produce an RGB-demosaic image, and extract a color component signal RGB based on the RGB-demosaic image. The synthesizing process step is a step of performing processing to synthesize the color component signal RGB extracted in the first color component extraction step and the color component signal RGB extracted-in the second color component extraction step.
Furthermore, a computer program for enabling to execute an image signal processing in an image signal processing apparatus according to an embodiment of the present invention includes a luminance signal generating step, and a color difference signal generating step. The luminance signal generating step is a step of inputting a mosaic image of a signal acquired by a wide wavelength range signal-acquisition element from a plurality of signals acquired by a single-plate imager having element arrays including a specific wavelength range signal acquisition element corresponding to a specific light wavelength range and a wide wavelength range signal acquisition element for acquiring a light signal containing a visible light component and an invisible light component, and generating, as a luminance signal, a wide wavelength range signal demosaic image corresponding to a wide wavelength range signal. The color-difference signal generating step is a step of inputting a mosaic image of a signal acquired by the specific wavelength range signal acquisition element, producing a visible light range signal demosaic image corresponding to a visible light range signal, and generating a color difference signal based on the visible light range signal demosaic image.
A computer program enabling to execute an image signal processing in the image signal processing apparatus according to an embodiment of the present invention includes a first color component signal extracting step, a second color component signal extracting step, and a synthesizing step. The first color component signal extracting step is a step of inputting a mosaic image of a signal acquired by a wide wavelength range signal acquisition element from a plurality of signals acquired by a single-plate imager having element arrays including a specific wavelength range signal acquisition element for acquiring a visible light signal corresponding to a specific wavelength range and a wide wavelength range signal acquisition element for acquiring a light signal which contains a visible light component and an invisible light component, and extracting a visible light color component signal from a wide wavelength range signal demosaic image corresponding to a wide wavelength range signal. The second color component signal extracting step is a step of inputting a mosaic image signal acquired by the specific wavelength range signal acquisition element, producing a visible light range signal demosaic image corresponding to a visible light range signal, and extracting a color component signal based on the visible light range signal demosaic image. The synthesizing step is a step of performing a processing to synthesize a color component signal extracted in the first color component extracting step and a-color component signal extracted in the second color component extracting step.
By way of example, the computer program according to the embodiment of the present invention is a computer program to be supplied, for example, to a general purpose computer system capable of executing versatile programming codes, and in a computer readable format such as in a recording medium or communication medium, for example, in such recording media as a CD, FD, MO, or via communication media such as a network or the like. By providing the above program in a computer readable format as described above, an appropriate processing in accordance with the program can be realized in a computer system.
It is to be noted in the description of the present invention that the term of system refers to a logical combination or assembled configuration of several pieces of equipment to perform a specific function, and it is not limited for these pieces of equipment to be mounted in the same package.
By referring to the accompanying drawings, an image signal processing apparatus, an imaging apparatus, an image signal processing method and a computer program thereof according to the present invention will be described more in detail in the sequential order as follows.
First, a description will be given to the configuration of an imaging device (hereinafter, referred to as imager) applied to an imaging apparatus of the present invention. The imaging apparatus of the present invention has a configuration that is basically similar to the one described above with reference to
The imager applied to the imaging apparatus of the present invention includes a color array shown in
By way of example, A is a signal which contains both of a luminance signal (Y) of a visible light portion and an infrared light signal (IR), and which can be expressed as follows,
A=Y +IR.
Spectral characteristics of the four kinds of filters will be described by referring to
On the other hand, a filter corresponding to the A-channel has such a property, as shown in
As described hereinabove, the imager according to the embodiment of the present invention is a single-plate imager having element arrays configured to include a specific wavelength range signal acquisition element (RGB-element) for acquiring a visible light signal corresponding to a specific light wavelength range such as RGB, and a wide wavelength range signal acquisition element (A-element) for acquiring a light signal which contains a visible light component such as RGB and an invisible light component such as an infrared light.
The imager to be applied to the imaging apparatus according to the embodiment of the present invention is an imager having the above-mentioned four kinds of transmitting filters corresponding to RGBA, and is provided as shown in
By way of example, the layout of RGBA color filter arrays is not limited to that shown in
Both in
[2. First Image Signal Processing Example]
Subsequently, a first specific example of signal processing based on the image data captured with an imager as shown in
The configuration shown in
A signal processing employing the configuration of
For example, in a case where the imager having the color arrays explained by referring to
The demosaic processing is performed, as described with reference to
This demosaic processing determines a pixel value for a portion of pixels having no pixel value on the basis of pixel values of its surrounding pixels. This process is performed with a so-called two-dimensional FIR filter. Namely, a filter having a coefficient corresponding to a pixel position is employed. It is noted that, a two-stage low-pass filter is employed for R and B, and after processing in low-pass filters 113, 114 as an interpolating filter corresponding to offset sub-sampling, setting of pixel values in every pixel is performed via a low-pass filter 115, 116 similar to the low-pass filter 112.
Through this interpolation processing, demosaic images, for example, as shown in
“R”, “G”, “B”, “A” in the four demosaic images in
In a demosaic image 154 in
A =Y +IR.
As described with reference to
On the other hand, respective demosaic images corresponding to each of RGB produced in the low-pass filters 112 through 116, namely, the demosaic images 151 to 153 shown in
In a case where a luminance signal and a color difference signal are obtained using a conventional imager having a Bayer array (YGBR) described with reference to
AS described hereinabove, by allowing to include an infrared light component into-its luminance component, even in an image data captured in a low-illumination environment where at least a level difference of an infrared light component is detectable, each pixel value at each pixel in a demosaic image corresponding to A-channel is ensured to be a data that reflects the level difference of the infrared light component, thereby enabling to improve an S/N ratio of the image data captured in a low-illumination environment. This configuration is suitable for application, for example, to a monitor camera and the like where, although high reproducibility of colors is not required, an improved sensitivity and a high S/N ratio are demanded.
[3. Second Image Signal Processing Example]
A second specific example of image signal processing according to an embodiment of the present invention will be described by referring to
A configuration of the second image signal processing example will be described by referring to
The configuration shown in
In the configuration shown in
The low-pass filter 211 in the first color component signal extraction unit functions as a wide wavelength range signal demosaic image producing unit which receives input of an A-mosaic image of a signal acquired by a wide wavelength range signal acquisition element (A-element), and outputs a wide wavelength range signal demosaic image corresponding to a wide wavelength range signal. The high-pass filter 221 functions as a wide wavelength range signal high frequency component image producing unit which extracts a high frequency component from an A-demosaic image, and produces a wide wavelength range signal high frequency component image. The matrix operation unit 222 functions as a visible light color component signal extraction unit for extracting color component signals of visible light from the wide wavelength range signal high frequency image.
Signal processing employing the configuration shown in
For example, in a case of an imager having color arrays shown in
Through the interpolation processing in the low-pass filters 211 to 216, demosaic images, for example, as shown in
Data produced by interpolation processing in the low-pass filter 211 shown in
According to the second processing example of the present invention, this demosaic image of A-channel is inputted to a high-pass filter 221 so as to extract a high frequency component from the demosaic image of A-channel. This high-pass filter 221 is a filter having coefficients, for example, as shown in the equation 1 below, or coefficients shown in
The high-pass filter 221 is, for example, an FIT filter for extracting high frequency components. The high-pass filter 221 extracts a high frequency component from the demosaic image of A-channel, and produces an A-channel high frequency component extraction resultant image.
Further, this A-channel high frequency component extraction resultant image produced from the demosaic image of A-channel is inputted to a matrix operation unit 222. In the matrix operation unit 222, respective wavelength component data of RGB contained in the A-channel are extracted. As described hereinabove, because the A-channel contains wavelength range information of both of the visible light component and the infrared light component, respective wavelength component signals corresponding to RGB are also included therein. The matrix operation unit 222 extracts RGB components from the A-channel high frequency component extraction resultant image.
The matrix operation unit 222 has coefficients, for example, as indicated in the following equation 2.
In the above equation,
On the other hand, RGB-demosaic images produced by interpolation processing in the low-pass filters 212 to 216 are inputted to a matrix operation unit 217 where matrix operation is carried out to selectively extract R, G and B signals contained in the RGB-demosaic images, and these RGB signals selectively extracted are outputted therefrom.
Then, in adders 231 to 233, respective RGB signals produced on the basis of the RGB demosaic images and outputted from the matrix operation unit 217, and respective RGB signals extracted from the high frequency component image of the A-demosaic image are added together, thereby generating respective RGB signals to be outputted as a final output signal.
In this image signal processing example, it is configured so that a high frequency component extract image is generated on the basis of the A-channel image which is acquired as a signal component image based on the wide wavelength range signals containing a visible light component as well as an infrared component, these respective RGB-signals are extracted from this high frequency component extract image, then these respective RGB-signals are added to RGB-signals which are extracted from RGB-demosaic images. By applying the high frequency component extract image based on the A-channel image containing wider wavelength range signal components, it becomes possible to obtain a high resolution image. Further, by acquiring RGB-signals from the A-channel image, and adding them to respective RGB signals extracted from RGB-demosaic images, it becomes possible to generate and output more precise RGB-signals, and improve color reproducibility.
While the invention has been particularly shown and described with reference to preferred embodiments thereof, it will be understood by those skilled in the art that various changes and modifications may be made without departing from the spirit and scope of the invention. Therefore, the scope of the present invention is to be determined by the appended claims.
Further, a series of processing and procedures described in the specification of the invention is able to be implemented or executed by means of hardware, software or a combination thereof. When executing the processing with software, a program recording the process sequences is installed in a memory in a computer incorporated in a dedicated hardware, or it may be installed in a general purpose computer capable of executing versatile processing.
For example, the program can be recorded in advance into a hard disk or a read only memory (ROM) as a recording medium. Alternatively, the program can be temporarily or eternally stored (recorded) into a removable recording medium such as a flexible disk, a compact disc read only memory (CD-ROM), a magneto optical (MO) disk, a digital versatile disc (DVD), a magnetic disc, a semiconductor memory or the like. Such a removable recording medium can be provided as the so-called package software.
Further, besides installing the program in a computer from the above-mentioned removable recording medium, it may be transmitted also by downloading from a download site to a computer via wireless transmission or wired transmission via a network such as LAN (Local Area Network), internet or the like, and the computer having received a transmitted program installs it in a built-in recording medium such as a hard disk.
By way of example, various process sequences and procedures described in the specification of the present invention may be executed not only in the time sequences as described therein but also in parallel or separately depending on a processing capability of a system to be used or as required. Further, the term of system used in this specification refers to a logically assembled configuration of a plurality of equipment to perform a specific function, and it is not limited to that the plurality of equipment be encased in the same housing.
As described heretofore, according to the configuration of the embodiment of the present invention, because it is configured that, on the basis of the mosaic image data of respective signals acquired by the single-plate imager having element arrays including a specific wavelength range signal acquisition element for acquiring a visible light signal such as an RGB signal and a wide wavelength range signal acquisition element for acquiring a light signal containing a visible light component as well as an invisible light component such as an infrared light, there are generated the luminance signal containing the infrared component, color difference signals and respective color signals of RGB, it is possible to obtain a high resolution and high quality image even for an image captured in a low-illumination environment, and further by applying color adjustments based on the A-channel image which has both RGB components and infrared components, it is possible to produce an improved image having a high color reproducibility.
It should be understood by those skilled in the art that various modifications, combinations, sub-combinations and alterations may occur depending on design requirements and other factors insofar as they are within the scope of the appended-claims or the equivalents thereof.
The present document contains subject matter related to Japanese Patent Application JP 2005-369379 filed in the Japanese Patent Office on Dec. 22, 2005, the entire contents of which being incorporated herein by reference.
Number | Date | Country | Kind |
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2005-369379 | Dec 2005 | JP | national |