1. Field of the Invention
The present invention relates to an optical information reproducing device that reproduces information recorded on an optical information recording medium by utilizing interference of a signal beam with a reference beam, and also relates to a reference beam adjusting method for the reproducing device.
2. Description of the Related Art
Hologram recording technology is a technology for overlapping a signal beam having information of page data modulated two-dimensionally by a spatial light modulator to a reference beam in an optical recording medium, generating refractive index modulation in the recording medium by a fringe pattern generated at that time, and recording the information on the recording medium. In reproducing the information, when the optical information recording medium is irradiated with the reference beam used at the time of recording, a hologram recorded on the recording medium acts like a diffraction grating to generate diffracted light. The diffracted light is reproduced as the same light as the recorded signal beam, including phase information. The reproduced signal beam is detected at a high speed two-dimensionally using a light detector such as a CMOS or a CCD. As such, the hologram recording technology enables two-dimensional information to be recorded/reproduced on the optical recording medium by one hologram and further enables a plurality of page data to be overwritten to a certain place of the optical recording medium, so that large-capacity and high-speed information can be recorded/reproduced.
In the reproduction of the hologram, if the recording medium is contacted/expanded according to a temperature, the angle and interval of a grating recorded as the diffraction grating changes, so that a signal quality of the reproduction light is deteriorated. In order to compensate for the deterioration in the signal quality, it is necessary to adjust the incidence angle and wavelength of the reference beam radiated to the recording medium.
Japanese Patent Application Laid-Open No. 2015-56194 (hereafter as “Patent Literature 1”) is regarded as background art in the present technical field. In Patent Literature 1, there is disclosed a construction including a light source that emits light toward an optical information recording medium, a light source control unit that controls the wavelength of the light emitted from the light source, a reference beam angle control unit that controls the incidence angle of the reference beam to the optical information recording medium, a light detector that detects a reproduction image from the optical information recording medium or a brightness distribution of the reproduction image, a reproduction image processing unit that detects a bright line of the production image on the basis of a detection result of the light detector and outputs a detection result of the bright line, and a control unit that controls the wavelength of the light emitted from the light source through the light source control unit on the basis of an output of the reproduction image processing unit and controls the incidence angle of the reference beam through the reference beam angle control unit.
In Patent Literature 1, detection is made for an bright line-to-line angle that the bright line of the reproduction image where the incidence angle of the reference beam and the wavelength of the light source are optimum, makes with the bright line of the detected production image or for a bright line position error being the differences between the positions of the respective bright lines, and the incidence angle of the reference beam and the wavelength of the light source are controlled based on the bright line-to-line angle or the bright line position error. However, the bright line portion is uneven in density and also obscure in light and shade, wherein no consideration is taken into a possibility that a deviation from its appropriate adjusting target occurs where the brightness of the bright line portion is utilized as it is.
Accordingly, it is an object of the present invention to provide an adjusting index being difficult to be influenced by the unevenness in brightness and the like at a bright line portion for speedily adjusting the incident angle of a reference beam and the wavelength of a light source and thereby to provide an optical information reproducing device and a reference beam adjusting method capable of adjusting the angle of the reference beam and the wavelength of the reference beam in a short period of time.
In order to achieve the aforementioned object, a construction described in, for example, one aspect of the present invention is taken. The present application covers a plurality of means for addressing the aforementioned object and, as one example cited, is directed to a reference beam adjusting method for reproducing information recorded on an optical information recording medium by utilizing interference of a signal beam with a reference beam, wherein the method includes a step of changing the wavelength of the reference beam, a step of changing the angle of the reference beam to the optical information recording medium, a step of detecting a brightness distribution of a reproduction image from the optical information recording medium, a step of calculating a gravity center dispersion in the brightness distribution of the reproduction image, and a step of controlling the angle and wavelength of the reference beam based on the gravity center dispersion.
According to one aspect of the present invention, it is possible to provide an adjusting index which is used for speedily adjusting the incidence angle of the reference beam and the wavelength of the right source and which is difficult to be influenced by the unevenness in brightness and the like at a bright line portion, and thereby to provide an optical information reproducing device and a reference beam adjusting method capable of adjusting the angle of the reference beam and the wavelength of the reference beam in a short period of time.
Hereinafter, embodiments of the present invention will be described with reference to the accompanying drawings.
In
The light beam having passed through the PBS prism 305 functions as a signal beam 306, and a light beam diameter thereof is increased by a beam expander 308. Then, the light beam passes through a phase mask 309, a relay lens 310 and a PBS prism 311 and is incident on a spatial light modulator 312.
The signal beam to which information has been added by the spatial light modulator 312 is reflected on the PBS prism 311 and is propagated through a relay lens 313 and a spatial filter 314. Then, the signal beam is condensed on an optical information recording medium 1 by an objective lens 315.
Meanwhile, the light beam having reflected on the PBS prism 305 functions as a reference beam 307, and a polarization direction thereof is set by a polarization direction converting element 316 to a Predetermined polarization direction according to a recording mode or a reproduction mode. Then, the light beam is reflected on mirrors 317 and 318 and is incident on a galvano-mirror 319. The galvano-mirror 319 is adjustable in angle by an actuator 320 and thus, is able to set to a desired angle the incidence angle at which the reference beam after passing through a lens 321 and a lens 322 is incident on the optical information recording medium 1.
Like this, the signal beam and the reference beam are made to be incident to overlap each other in the optical information recording medium 1 to form a fringe pattern in the recording medium, and information is recorded by writing the pattern to the recording medium.
In addition, since the angle at which the reference beam is incident on the optical information recording medium 1 can be changed by the galvano-mirror 319, angle multiple recording is enabled. Here, an angle of an angle multiple direction is set as a bragg direction angle, and an angle in a direction approximately normal to the bragg direction angle is set as a pitch direction angle. The bragg direction angle will hereafter be simplified to be referred to as a reference beam angle. Further, holograms corresponding to individual reference beam angles in holograms recorded by changing the reference beam angle in the same region will be called pages, and a set of pages subjected to angle multiple recording in the same region will be called a book.
Next, a reproduction principle will be described with reference to
A reproduction light reproduced by the reproduction reference beam is propagated through the objective lens 315, the relay lens 313 and the spatial filter 314. Then, the reproduction light passes through the PBS prism 311 and is incident on a light detector 325. The signal detected by the light detector 325 can be reproduced as a recorded signal by a signal processing unit, not shown. In addition, an output of the light detector is also inputted to a reproduction image processing unit, not shown, wherein a processing result corresponding to the reproduction image on the light detector or a brightness distribution of the reproduction image is outputted to a controller unit, not shown. The controller unit controls the whole of the optical information recording/reproducing device. As the light detector 325, there can be used an image pickup element such as a CMOS image sensor or a CCD image sensor. However, any element can be used if the same is of the property capable of reproducing page data.
As mentioned earlier, in reproduction of the hologram, if the optical information recording medium 1 is contracted/expanded according to the temperature, a quality of the reproduced signal beam is deteriorated. In addition, in recording technology using an angle multiple principle of holography, an allowance error with respect to a deviation of a reference beam angle is extremely small, and therefore, a deviation in angle of the reference beam irradiated to the optical information recording medium 1 due to errors in mounting a mechanism such as a disk rotation motor or a pickup greatly affects the quality of the signal beam. For this reason, at the time of reproduction, it is necessary to adjust the angle and wavelength of the reference beam irradiated to the recording medium in correspondence to a deviation of the temperature from the temperature at the time of recording of the optical information recording medium as well as to errors in mounting a mechanism for each device. Incidentally, although not shown, there is taken a construction that adjusts the wavelength of the light source through a light source control unit.
Next, description will be made regarding the characteristic of the reproduction image of hologram which the present embodiment takes as the premise.
In the present embodiment, the degree at which the bright line inclines relative to the horizontal is converted into a numeral, which is taken as an adjusting index for adjusting the reference beam angle and the wavelength. A specific method therefor will be described with reference to
Adjusting Index=Σn=18(Value Placing Image Center at Gravity center−Gravity Center n)2 [Expression 1]
That is, in the present embodiment, since eight divisions are made in the Y-direction, 4 and 5 being the middle points in the Y-direction are set as a target value, and thus, the adjusting index is taken as a value that enables the center of the image to come to the gravity center. Further, the gravity center of the brightness distribution in each line region in the Y-direction is set as a value which is calculated by weighting the brightness value in each of the small regions on each line in the Y-direction in correspondence to its position in the Y-direction and by dividing a total value of the weighted brightness, which results from the addition of the respective weighted brightness values, by a total value of brightness in the respective small regions on each line in the Y-direction. Incidentally, the foregoing calculation is one example, instead of which various kinds of modifications may be conceived of. For example, as the value that enables the image center to come to the gravity center, the gravity center may be calculated by not taking “4 and 5” mentioned above but taking the middle point in the Y-direction as “0”, by using absolute values instead of squared values, or by taking the average of one n-th. That is, as shown in
th=(Max−Min)×k+Min (2)
Here, Max represents the maximum value in brightness, Min represents the minimum value in brightness, and k represents a coefficient.
It is to be noted that each time an optical information recording medium is mounted on the optical information reproducing device, the foregoing adjustment is made before the reproduction. Further, the adjustment may be made when a large change occurs in temperature or when the reproduction data becomes illegible. In the case of the temperature change, a compensation may be made using a coefficient corresponding to the temperature.
Further, the division into the small regions is not limited to the 8×8 division described in the present embodiment.
As described hereinbefore, the present embodiment is directed to a reference beam adjusting method for reproducing information recorded on an optical information recording medium by utilizing interference of a signal beam with a reference beam, wherein the method includes a step of changing the wavelength of the reference beam, a step of changing the angle of the reference beam to the optical information recording medium, a step of detecting a brightness distribution of a reproduction image from the optical information recording medium, a step of calculating a gravity center dispersion in the brightness distribution of the reproduction image, and a step of controlling the angle and wavelength of the reference beam based on the gravity center dispersion.
Further, the present embodiment is directed to a reference beam reproducing device for reproducing information recorded on an optical information recording medium by utilizing interference of a signal beam with a reference beam, wherein the device includes a light source that emits a beam toward the optical information recording medium, a light source control unit that controls the wavelength of the beam emitted from the light source, a reference beam angle control unit that controls the incidence angle of the reference beam on the optical information recording medium, a light detector that detects a brightness distribution of a reproduction image from the optical information recording medium, a reproduction image processing unit that calculates a gravity center dispersion in the brightness distribution of the reproduction image, and a control unit that controls the angle and wavelength of the reference beam based on the gravity center dispersion.
Therefore, according to the present embodiment, it is possible to provide an adjusting index which is used for speedily adjusting the incidence angle of the reference beam and the wavelength of the right source and which is difficult to be influenced by the unevenness in brightness and the like at the bright line portion, and thereby to provide an optical information reproducing device and a reference beam adjusting method capable of adjusting the angle and wavelength of the reference beam.
In the first embodiment, in order to obtain adjusting index values on the line 2 as shown in
In this method, first of all, there is sought a straight line passing through two points (501, 505) shown in
Therefore, according to the present embodiment, it is possible to anticipate the reference beam angle range within which the adjusting index values to be sought can be obtained, and hence, to decreases the number of times for the measurements.
There are some case where a surface reflection from an optical information recording medium adversely affects a brightness distribution of a production image on the light detector. A solution in such cases will be described hereinafter.
To this end, as shown in
The present invention is not limited to the foregoing embodiments and can cover various modifications as well. Further, the foregoing embodiments have been described in detail for the purpose of describing the present invention in an easy-to-understand manner and therefore, the present invention is not necessarily limited to what is provided with all of the components described earlier. Further, it is possible to replace a part of constructions in one of the embodiments by a part of constructions in another embodiment, and it is also possible to add the construction in another embodiment to the construction in one of the embodiments. Moreover, it is possible to make an addition of another construction, a deletion or a replacement with respect to a part of the construction in each embodiment.
Obviously, numerous other modifications and variations of the Present invention are possible in light of the above teachings. It is therefore to be understood that within the scope of the appended claims, the present invention may be practiced otherwise than as specifically described herein.
Number | Date | Country | Kind |
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2015-097686 | May 2015 | JP | national |