Embodiments of the present invention relate to imaging. In particular, they relate to imaging using a color separation diffraction grating.
Many image sensors have light sensitive pixels for sensing red, green and blue light arranged in a Bayer pattern array. Each pixel has a filter which allows one of red, green or blue light to pass. The Bayer pattern array is advantageous in that it enables small image sensors for sensing red, green and blue to be manufactured. However, the Bayer pattern array has several disadvantages, including the following:
According to various, but not necessarily all, embodiments of the invention there is provided an apparatus, comprising: at least one color separation diffraction grating configured to direct different spectral components of incident light in different directions; one or more further diffraction gratings configured to at least partially compensate for dispersion in one or more of the different spectral components of light; and one or more image sensors configured to detect the one or more dispersion compensated spectral components of light.
According to various, but not necessarily all, embodiments of the invention there is provided a method, comprising: diffracting different spectral components of incident light in different directions; at least partially compensating for dispersion in one or more of the different spectral components of light; and detecting the one or more dispersion compensated spectral components of light.
According to various, but not necessarily all, embodiments of the invention there is provided an apparatus, comprising: means for diffracting different spectral components of incident light in different directions; means for at least partially compensating for dispersion in one or more of the different spectral components of light; and means for detecting the one or more dispersion compensated spectral components of light.
For a better understanding of various examples of embodiments of the present invention, reference will now be made by way of example only to the accompanying drawings in which:
Embodiments of the invention relate to using at least one color separation diffraction grating to separately image different parts of the color spectrum and compensate for dispersion.
In this regard, the figures illustrate an apparatus 100/101/102, comprising: at least one color separation diffraction grating 10 configured to direct different spectral components 51-53 of incident light 40 in different directions; one or more further diffraction gratings 20-23 configured to at least partially compensate for dispersion in one or more of the different spectral components 51-53 of light; and one or more image sensors 30-33 configured to detect the one or more dispersion compensated spectral components 61-63 of light.
The apparatus 100 illustrated in
The at least one color separation diffraction grating 10 is configured to direct different spectral components of incident light 51-53 in different directions. The at least one color separation diffraction grating 10 may, for example, be provided on a face/surface of a body such as a plate.
The one or more further diffraction gratings 20 are configured to at least partially compensate for dispersion in one or more of the different spectral components of light 51-53. In some implementations, the one or more further diffraction gratings 20 may consist of a further color separation diffraction grating. In other implementations, the one or more further diffraction gratings 20 may be or comprise one or more blazed gratings and/or one or more slanted gratings.
The one or more further diffraction gratings 20 may, for example, be provided on a different face/surface of the body/plate mentioned above. The body may have a length, width and thickness, where the length is the same as or greater than the width, and where the thickness is smaller than the length and the width. The face/surface on which the one or more further diffraction gratings 20 are provided may be separated from the face/surface on which the at least one color separation diffraction grating 10 is provided by the thickness of the body. The at least one color separation diffraction grating 10 may be at least one in-coupling grating of the body and the one or more further diffraction gratings 20 may be one or more out-coupling gratings of the body.
The one or more image sensors 30 may be any type of image sensors. They are configured to detect the one or more dispersion compensated spectral components 61-63 of light. Each image sensor may or may not comprise a different color filter.
A method according to embodiments of the invention will now be described in relation to
At block 201 in
A first spectral component 52 of the incident light 40 (for example, a green component of the light 40) is directed to a zeroth order and, as such, its propagation direction is substantially unaffected by the color separation diffraction grating 10.
A second spectral component 51 of the incident light 40 (for example, a red component of the light 40) is directed by the color separation diffraction grating 10 to a negative first order, and, in doing so, the propagation direction of the second spectral component 51 is changed in at least one dimension. A set of Cartesian co-ordinate axes 80 is illustrated in
A third spectral component 53 of the incident light 40 (for example, a blue component of the light 40) is directed by the color separation diffraction grating 10 to a positive first order, and, in doing so, the propagation direction of the third spectral component 53 is changed in at least one dimension. In the illustrated example, the propagation direction of the third spectral component 53 in the x-dimension is changed by the color separation diffraction grating 10.
The color separation diffraction grating 10 is configured to spatially divide the incident light 40 into multiple different spectral components of light at particular, defined wavelengths. Light which has a wavelength that is (slightly) different from one of these “defined wavelengths” will be diffracted in a (slightly) different manner by the color separation diffraction grating 10, causing dispersion in one or more of the diffracted spectral components 51-53 (and potentially resulting in poor image quality).
At block 202 in
Dispersion compensation is achieved by using the one or more further diffraction gratings 20 to reverse any changes in propagation direction that were introduced by the at least one color separation diffraction grating 10. For instance, in this example, the one or more further diffraction gratings 20 change the propagation direction of the second and third spectral components 51, 53 in the x-dimension such that, after the change has occurred, they propagate in the same direction as the light 40 incident upon the color separation diffraction grating 10.
In order to achieve this effect, the one or more further diffraction gratings 20 have the same grating period (that is, the same grating density) as the at least one color separation diffraction grating 10.
In the example illustrated in
At block 203 in
The information detected by each image sensor/image sensor portion may then be combined to form an image. Advantageously, since each of the dispersion compensated spectral components 61-63 of light consists of light which originates from the same scene/image capture region, there is no need to perform complex processing to align the images captured by each image sensor/image sensor region when combining the images.
Use of at least one color separation diffraction grating 10 to spatially separate different spectral components of light from one another is also advantageous, because it enables each different spectral component of light to be detected by a separate image sensor/sensor region that consists of pixels specifically for detecting light of that spectral band. This, in turn, results in less “color leakage” due to better separation of pixels used for detecting different colors and also makes fabrication of the image sensors/image sensor regions easier (because there is no need for the alternating color filters used in a Bayer pattern array).
Furthermore, use of separate image sensors/sensor regions for different spectral components advantageously enables an image sensor for a spectral band to be selected which is particularly sensitive in that spectral band.
The “object side” optics 8 and each of the “image side” optics 71, 72, 73 may be or comprise one or more optical devices, such as one or more lenses.
The color separation diffraction grating 10 diffracts each parallel light beam, causing the different spectral components of light to be directed in different directions, as illustrated by the arrows 51-53 in
In this example, a first spectral component 52 of light directed to the zeroth order (which may, for example, be green light), is not diffracted further before being focused onto a first image sensor 32 by first image side optics 72.
First and second blazed or slanted diffraction gratings 21, 22 diffract the second and third spectral components 51, 53 of light respectively (which may, for example, be red and blue light respectively), at least partially compensating for dispersion in the second and third spectral components 51, 53.
The diffraction gratings 21, 22 reverse any changes in propagation direction that were introduced by the color separation diffraction grating 10, as described above in relation to
Each image sensor 31, 32, 33 detects an image having the color of the dispersion compensated spectral component of light directed towards it. Each image sensor 31, 32, 33 may have a differently colored filter. However, since the color separation diffraction grating 10 separates light into different spectral components, there is no need for the image sensors 31, 32, 33 to have such color filters.
The images formed by the image sensors 31, 32, 33 may be combined to form a full color image.
In this implementation, the second color separation grating 23 may be the same as the first color separation grating 10 but orientated differently, such that it causes the opposite change in the propagation direction of the second and third spectral components 51, 53 of light to that caused by the first color separation grating 10.
The illustration of a particular order to the blocks in
Although embodiments of the present invention have been described in the preceding paragraphs with reference to various examples, it should be appreciated that modifications to the examples given can be made without departing from the scope of the invention as claimed.
For example, in some embodiments, the body 6 may be used as a light guide, inside which light is internally reflected. Each of the image sensors 31-33 may have the same resolution or different resolutions. Different settings may be applied to images captured by each of the image sensors 31-33. The “image side” optics 71, 72, 73 may be controlled synchronously or separately.
In the examples described above, the second and third spectral components 51, 53 of light are directed by the color separation diffraction grating 10 to negative and positive first orders. In other examples, however, one or both of the second and third spectral components 51, 53 of light may be directed to higher orders. In such examples, the one or more further diffraction gratings 20 direct the second and third spectral components 51, 53 of light to the opposite higher diffraction orders to the color separation diffraction grating 10.
Features described in the preceding description may be used in combinations other than the combinations explicitly described.
Although functions have been described with reference to certain features, those functions may be performable by other features whether described or not.
Although features have been described with reference to certain embodiments, those features may also be present in other embodiments whether described or not.
Whilst endeavoring in the foregoing specification to draw attention to those features of the invention believed to be of particular importance it should be understood that the Applicant claims protection in respect of any patentable feature or combination of features hereinbefore referred to and/or shown in the drawings whether or not particular emphasis has been placed thereon.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/FI2012/050265 | 3/20/2012 | WO | 00 | 9/19/2014 |