STEREOSCOPIC IMAGE APPRECIATION EYEGLASSES AND STEREOSCOPIC IMAGE DISPLAY DEVICE
20190052867 ยท 2019-02-14
Inventors
Cpc classification
H04N13/378
ELECTRICITY
H04N2213/008
ELECTRICITY
International classification
H04N13/378
ELECTRICITY
Abstract
An infrared polarizing filter is attached to an infrared synchronization signal radiator of a stereoscopic image display device which alternately displays right and left images by time-division with polarized light in one direction to radiate the polarized-light infrared synchronization signal. The problem with the occurrence of crosstalk is solved. Stereoscopic image appreciation eyeglasses have polarizing plates, visual field opening/closing liquid crystal cells and tilt correcting liquid crystal cells. The synchronization signal is received by a receiver mounted on an eyeglass frame. The tilt correcting liquid crystal cells are adjusted based on the eyeglass frame tilt angle detected.
Claims
1. Stereoscopic image appreciation eyeglasses for appreciating a stereoscopic image by a stereoscopic image display device of a type of alternately displaying right and left images composing the stereoscopic image by time division with linear polarized light, the amplitude direction of which is one direction, the stereoscopic image appreciation eyeglasses being configured so that polarizing plates in the same direction are respectively arranged side by side in right and left visual fields of the eyeglasses, and a visual field opening/closing liquid crystal cell and a tilt correcting liquid crystal cell for correcting the tilt of the eyeglasses are installed one over the other on a front surface of each of the polarizing plates, to receive a synchronization signal radiated from an infrared light synchronization signal radiator attached along the stereoscopic image display device by an infrared light synchronization signal receiver placed on an eyeglass frame to synchronously drive the visual field opening/closing liquid crystal cells, and to alternately open and close the right and left visual fields for the stereoscopic image to separately view the stereoscopic image while driving and adjusting the tilt correcting liquid crystal cells installed on the right and left visual fields of the eyeglasses using detection data of a tilt angle detector placed on the eyeglass frame so that a light-shielded state at the time of closing the visual fields always reaches its maximum even when the eyeglasses are tilted during appreciation, to prevent a crosstalk from occurring.
2. Stereoscopic image appreciation eyeglasses for appreciating a stereoscopic image by a stereoscopic image display device of a type of alternately displaying right and left images composing the stereoscopic image by time division with linear polarized light, the amplitude direction of which is one direction, the stereoscopic image appreciation eyeglasses being configured so that polarizing plates in the same direction are respectively arranged side by side in right and left visual fields of the eyeglasses, and a total of six liquid crystal cells, three liquid crystal cells overlaid on the right side and three liquid crystal cells overlaid on the left sides each including a visual field opening/closing liquid crystal cell, a left tilt correcting liquid crystal cell for correcting, when the eyeglasses are tilted leftward, the tilt, and a right tilt correcting liquid crystal cell for correcting, when the eyeglasses are tilted rightward, the tilt, respectively, on front surfaces of the polarizing plates, to receive a synchronization signal radiated from an infrared light synchronization signal radiator attached along the stereoscopic image display device by an infrared light synchronization signal receiver placed on an eyeglass frame to synchronously drive the visual field opening/closing liquid crystal cells, alternately open and close the right and left visual fields for the stereoscopic image to separately view the stereoscopic image while driving and adjusting the left tilt correcting liquid crystal cells or the right tilt correcting liquid crystal cells installed one over the other on each of the right and left visual fields of the eyeglasses, as needed, using detection data of a tilt angle detector placed on the eyeglass frame so that a light-shielded state at the time of closing the visual fields always reaches its maximum even when the eyeglasses are tilted during appreciation, to prevent a crosstalk from occurring.
3. The stereoscopic image appreciation eyeglasses according to claim 1 wherein a slot for a diopter correction lens holder and a lens pressing spring are provided on a surface of each of the right and left visual fields of the eyeglasses.
4. The stereoscopic image appreciation eyeglasses according to claim 1 being configured so that a diopter correction lens to be attached to a slot for a diopter correction lens holder in the stereoscopic image appreciation eyeglasses and having both its ends, as viewed from a front surface, formed in the shape of a circular arc and having its lower end formed in the shape of a curve having a larger curvature than that of the circular arc at both the ends is detachably attached.
5. The stereoscopic image appreciation eyeglasses according to claim 1 being configured so that a diopter correction lens to be attached to a slot for a diopter correction lens holder in the stereoscopic image appreciation eyeglasses and having both its ends, as viewed from a front surface, formed in the shape of a circular arc and having its lower end formed in the shape of a straight line is detachably attached.
6. The stereoscopic image appreciation eyeglasses according to claim 2, wherein a slot for a diopter correction lens holder and a lens pressing spring are provided on a surface of each of the right and left visual fields of the eyeglasses.
7. The stereoscopic image appreciation eyeglasses according to claim 2, being configured so that a diopter correction lens to be attached to a slot for a diopter correction lens holder in the stereoscopic image appreciation eyeglasses and having both its ends, as viewed from a front surface, formed in the shape of a circular arc and having its lower end formed in the shape of a curve having a larger curvature than that of the circular arc at both the ends is detachably attached.
8. The stereoscopic image appreciation eyeglasses according to claim 2, being configured so that a diopter correction lens to be attached to a slot for a diopter correction lens holder in the stereoscopic image appreciation eyeglasses and having both its ends, as viewed from a front surface, formed in the shape of a circular arc and having its lower end formed in the shape of a straight line is detachably attached.
9. Stereoscopic image appreciation eyeglasses for appreciating a stereoscopic image by a stereoscopic image display device alternately displaying right and left images forming the stereoscopic image by time division using linear polarized synchronization radiation having an amplitude in one direction, the stereoscopic image appreciation eyeglasses comprising: polarizing plates placed side by side in right and left visual fields of the eyeglasses; a visual field opening and closing liquid crystal cell placed in each of the right and left visual fields; a tilt correcting liquid crystal cell placed in each of the right and left visual fields; a synchronization signal receiver coupled to said visual field opening and closing liquid crystal cells; a tilt angle detector receiving the linear polarized synchronization radiation; and a visual field opening and closing and tilt angle controller coupled to said tilt angle detector, said synchronization signal receiver, and each of said tilt correcting liquid crystal cells, wherein synchronization signal data from said synchronization signal receiver and tilt data from said tilt angle detector are used to drive said visual field opening and closing liquid crystal cells and said tilt correcting liquid crystal cell, whereby a light-shielded state at the time of closing the right and left visual fields is capable of always reaches a maximum even when the eyeglasses are tilted thereby preventing crosstalk from occurring during appreciation the stereoscopic image.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0043]
[0044]
[0045]
[0046]
[0047]
[0048]
[0049]
[0050]
[0051]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0052] The concept of the present invention will be described with reference to the drawings.
[0053]
[0054] Further, two types of liquid crystal cells, i.e., visual field opening/closing liquid crystal cells 21.sub.R and 21.sub.L and tilt correcting liquid crystal cells 22.sub.R and 22.sub.L are respectively installed one over the other, respectively, on front surfaces of the polarizing plates 23.sub.R and 23.sub.L. An infrared light synchronization signal receiver 27 and a tilt angle detector (a tilt angle detecting liquid crystal cell 24, an infrared polarizing filter 25, and an infrared sensor 26) are provided on an eyeglass frame.
[0055]
[0056] If a viewer tilts his/her head, an orthogonal state between the amplitude direction of the display image, optical rotation of which has been adjusted to open and close the visual fields, and polarizing plates 33.sub.R and 33.sub.L is destroyed, to enter a state where a crosstalk occurs. However, a configuration, using tilt correcting liquid crystal cells 32.sub.R and 32.sub.L, of a tilt angle detector (including a tilt angle detecting liquid crystal cell 34, an infrared polarizing filter 35, and an infrared sensor 36) according to the present invention, illustrated in
[0057] Data representing the above-mentioned detected tilt angle for tilt correction is converted into a control voltage by the controller C2, and the control voltage is applied to the tilt correcting liquid crystal cells 32.sub.R and 32.sub.L. If the viewer tilts his/her head, the orthogonal state at the time of closing the visual fields is destroyed, and a light beam to be blocked slightly slips through the polarizing plates 33.sub.R and 33.sub.L so that a crosstalk occurs. However, according to the present invention, the crosstalk, i.e., leaked light is corrected by the tilt correcting liquid crystal cells 32.sub.R and 32.sub.L, to enter a state completely orthogonal to the polarizing plates 33.sub.R and 33.sub.L. Thus, a light-shielded state at the time of closing the visual fields is always maintained at a maximum.
[0058]
[0059] The right and left display lights, which have been transmitted by the visual field opening/closing liquid crystal cells 41, as described above, are respectively incident on tilt correcting liquid crystal cells 42 with the amplitude directions being orthogonal to each other. As illustrated in
[0060] At this time, the display light is incident in the state of vibrating in a horizontal (right-and-left) direction in the right visual field. If the tilt correcting liquid crystal cell 42 is a TN mode liquid crystal, for example, and its operation range (angle) is 90, a bias voltage is always applied to the tilt correcting liquid crystal cell 42 so that the display light enters the state of being optically rotated by 45 that is one-half of 90. The controller C2 converts data representing the above-mentioned detected tilt angle data into a control voltage, and adds and subtracts the control voltage to and from the bias voltage, to drive the tilt correcting liquid crystal cell 42. Since the tilt correcting liquid crystal cells 42.sub.R and 42.sub.L are driven in parallel (in the same direction and simultaneously on the right and left sides), the display lights in the right and left visual fields are maintained in a state orthogonal to each other even after being transmitted by the tilt correcting liquid crystal cells 42. For example, the display light, which has been transmitted by the visual field opening/closing liquid crystal cell 41.sub.L in the left visual field, vibrates in the vertical direction, and is directed toward the polarizing plate 43.sub.L in the state of being optically rotated by 45 by the tilt correcting liquid crystal cell 42.sub.L (being maintained at 45 by the bias voltage). The polarization direction of the polarizing plate 43.sub.L is fixed to 45 parallel to the amplitude direction of the display light, which has been transmitted by the tilt correcting liquid crystal cell 42.sub.L. Therefore, the display light is transmitted by the polarizing plate 43.sub.L, to enter a visual field opened state. On the other hand, the amplitude direction of the display light, which has been transmitted by the tilt correcting liquid crystal cell 42.sub.R in the right visual field, is in a state orthogonal to that in the left visual field. Thus, the amplitude direction of the display light enters a state orthogonal to the right polarizing plate 43.sub.R disposed with its polarization direction being parallel to the left polarizing plate 43.sub.L. Therefore, the display light cannot be transmitted by the polarizing plate 43.sub.R, to enter a visual field closed state.
[0061] As described above, the stereoscopic image appreciation eyeglasses 30 illustrated in
[0062] If the stereoscopic image display light, the amplitude direction of which is a horizontal direction, is transmitted by the visual field opening/closing liquid crystal cells 31.sub.R and 31.sub.L, the amplitude direction of the transmitted light is either a horizontal direction or a vertical direction in the right and left visual fields. More specifically, the visual field takes two values, i.e., opened or closed. An intermediate value other than the two values is not preferable because a visual field becomes dark or a crosstalk occurs. Accordingly, the visual field opening/closing liquid crystal needs to be high in response speed. A II-type (OCB (Optically Compensated Birefringence)) liquid crystal, or a ferroelectric liquid crystal (SSFLCD (Surface Stabilized Ferroelectric Liquid Crystal Device), PSS-LCD (Polarization Shielded Smectic Liquid Crystal Device)) is suitable for such an application.
[0063] A case where the eyeglasses are put horizontally has been described above. The polarizing plates 33.sub.R and 33.sub.L, together with the eyeglasses, are tilted with the eyeglasses tilted so that their respective tilt angles are different from the above-mentioned angle of 45. Therefore, the orthogonal state at the time of closing the visual fields is destroyed. If this remains so, a crosstalk occurs. If the eyeglasses are tilted, therefore, the light-shielded state at the time of closing the visual fields is always maintained at a maximum by detecting the tilt angle of the eyeglasses using a tilt angle sensor placed on the eyeglasses, and adding or subtracting a tilt correcting control voltage to or from a bias voltage, to correct the amplitude direction of the display light directed toward the polarizing plates 33.sub.R and 33.sub.L to always enter a state orthogonal to the polarization direction of the polarizing plates 33.sub.R and 33.sub.L when the visual fields are closed.
[0064] While the tilt of the eyeglasses has been corrected by detecting the tilt angle to adjust an optically rotatable state by the tilt correcting liquid crystal cells 32.sub.R and 32.sub.L, a checking voltage may be applied to the tilt angle detecting liquid crystal cell 34 (by the controller C2) at a frequency of approximately several times per second. This is because a person does not shake his/her head at a so high speed when the person tilts his/her head. Even in a period during which the checking voltage is not applied to the tilt angle detecting liquid crystal cell 34 because the tilt angle is intermediately detected, however, corrected states of the tilt correcting liquid crystal cells 32.sub.R and 32.sub.L need to be held in a certain state. The corrected state, which has been updated when the tilt angle is detected, is held until the next tilt angle is detected, and such an operating condition is always repeatedly continued so that a visually tilted state is always maintained in a horizontal state even if the stereoscopic image appreciation eyeglasses are tilted in any direction. Therefore, a crosstalk is prevented from occurring.
[0065] While the tilt correcting liquid crystal cell 32.sub.R, 32.sub.L is disposed behind the visual field opening/closing liquid crystal cell 31.sub.R, 31.sub.L in the embodiment descried in
[0066] A high response speed is not required for the tilt correcting liquid crystal cells 32.sub.R and 32.sub.L. This is because the speed at which the person tilts his/her head is significantly lower than a response speed of the liquid crystal, as described above. Therefore, a conventional TN mode liquid crystal is sufficient. Since an operation range (for optical rotation) of the TN mode liquid crystal is 90, an intermediate position between a position where the head is tilted rightward and a position where the head is tilted leftward is a horizontal position, a voltage may be applied (a bias voltage) so that the tilt correcting liquid crystal cell 32 enters a state of being optically rotated by 45, which is an intermediate value, with the eyeglasses horizontally put.
[0067] There is a case where respective applied voltages and characteristics of optically rotated states of the tilt angle detecting liquid crystal cell 34 and the tilt correcting liquid crystal cells 32.sub.R and 32.sub.L may be unproportional to each other. However, in the case, an optical rotation angle can be accurately controlled by a program in which a corrected value is adjusted depending on a parameter in the controller C2.
[0068]
[0069] While high-speed responsiveness is required as a material for the visual field opening/closing and tilt correcting liquid crystal cells 51.sub.R and 51.sub.L in the stereoscopic image appreciation eyeglasses having the above-mentioned configuration, an SSFLCD cannot be used. This is because the SSFLCD has a sharp function and cannot display an intermediate value (cannot perform tilt correction). The stereoscopic image appreciation eyeglasses in the configuration according to an embodiment can be made smaller in the number of parts while being slightly narrower in a tilt correction range than in the above-mentioned configuration according to another embodiment.
[0070] As a tilt angle detector required to apply a correcting voltage to the tilt correcting liquid crystal cells 32.sub.R and 32.sub.L illustrated in
[0071]
[0072] In the above-mentioned state, if the eyeglasses are tilted, an orthogonal state between the amplitude direction of the display lights at the time of closing the visual fields and the polarization direction of the polarizing plates 63.sub.R and 63.sub.L is destroyed so that a crosstalk may occur. In such a case, a TN (Twisted Nematic) mode liquid crystal is used for the left tilt correcting liquid crystal cells 62.sub.R and 62.sub.L and right tilt correcting liquid crystal cells 68.sub.R and 68.sub.L, for example. The left tilt correcting liquid crystal cells 62.sub.R and 62.sub.L perform correction when the eyeglasses are tilted leftward, and the right tilt correcting liquid crystal cells 68.sub.R and 68.sub.L perform correction when the eyeglasses are tilted rightward so that the tilt of the eyeglasses can be corrected by a total of 180, 90 rightward and 90 leftward. In this case, a bias need not be applied to the left tilt correcting liquid crystal cells 62.sub.R and 62.sub.L and the right tilt correcting liquid crystal cells 68.sub.R and 68.sub.L. If an STN (Super Twisted Nematic) mode liquid crystal is used instead of a case where two TN mode liquid crystals are used one over the other, the number of light crystal cells may be one. Two TN mode liquid crystals are to be used one over the other in consideration of the need to apply a bias thereto when the posture of the eyeglasses is in a horizontal state, and a problem of color displacement and a difficulty of fine adjustment because of a steep tilt, which are characteristic of the STN mode liquid crystal.
[0073] To correct the tilt by a total of 180, 90 rightward and 90 leftward, described above, a tilt angle of 180 needs to be detected. A first tilt angle detecting liquid crystal cell 64 and a second tilt angle detecting liquid crystal cell 69, which are illustrated as a tilt angle detector in
[0074] When the left tilt correcting liquid crystal cells 62.sub.R and 62.sub.L and the right tilt correcting liquid crystal cells 68.sub.R and 68.sub.L, which are respectively installed in visual fields of the eyeglasses, are tilted leftward or rightward from a horizontal state, they are set to separately operate for leftward tilt or rightward tilt so that a bias need not be applied thereto.
[0075]
[0076] The infrared polarizing filter 13 on the radiation surface of the infrared light synchronization signal radiator 12 attached along the stereoscopic image display device 10 illustrated in
[0077]
[0078] The best method for solving the above-mentioned problem is to provide a slot for a lens holder on a front surface or a rear surface of the stereoscopic image appreciation eyeglasses and insert the diopter correction lens, as needed.
[0079] The diopter correction lens 81 has its right and left ends formed in a circular arc shape. The circular arc shape makes insertion into the slot 84 easy. Further, upper and lower ends of the diopter correction lens 81 are formed in a linear shape, to prevent the diopter correction lenses 81.sub.R and 81.sub.L from rotating (functionally, only the lower end may have a linear shape). Such a rotation preventing function is significantly effective when an astigmatic lens is required as the diopter correction lens. This is because astigmatism correction is performed in a specific direction (angle) so that the diopter correction lens needs to be fixed at a specific position in a rotational direction. A knob 83, as illustrated, has a structure in which aluminum is folded and held therein or is bonded thereto, and can identify the lens by increasing a frictional force against fingers when it is detachably attached to the slot 84 and not only preventing the lens from being contaminated but also being marked.
[0080] The stereoscopic image appreciation eyeglasses according to the present invention do not react with ambient light. Therefore, a work environment visual field looks bright in work performed while observing a stereoscopic image. Therefore, the eyeglasses need not be removed even during work other than viewing of a monitor. The function and effect of the stereoscopic image appreciation eyeglasses having this configuration are great.
[0081] Various modifications can be made as long as they do not depart from the spirit of the present invention, and the present invention naturally covers the modifications.
INDUSTRIAL APPLICABILITY
[0082] Stereoscopic image appreciation eyeglasses according to the present invention are particularly visual field separating eyeglasses for separating right and left visual fields of a stereoscopic image, which is displayed by time division on a television set made of an LCD or a personal computer, to perform stereoscopic viewing, and will be hereafter essential in applications from general appreciation of a stereoscopic image to appreciation of a stereoscopic image such as various types of simulation, education and training, inspection, medical care, and advertisement.
REFERENCE SIGNS LIST
[0083] 10 stereoscopic image display device [0084] 11 stereoscopic image display device main body [0085] 12 polarized infrared light synchronization signal radiator [0086] 13 infrared polarizing filter [0087] 14 display [0088] 20 stereoscopic image appreciation eyeglasses [0089] 21.sub.R, 21.sub.L visual field opening/closing liquid crystal cell [0090] 22.sub.R, 22.sub.L tilt correcting liquid crystal cell [0091] 23.sub.R, 23.sub.L polarizing plate [0092] 24 tilt angle detecting liquid crystal cell [0093] 25 infrared polarizing filter [0094] 26 infrared sensor [0095] 27 synchronization signal receiver [0096] C1 visual field opening/closing controller [0097] C2 tilt correcting controller [0098] 30 stereoscopic image appreciation eyeglasses [0099] 31.sub.R, 31.sub.L visual field opening/closing liquid crystal cell [0100] 32.sub.R, 32.sub.L tilt correcting liquid crystal cell [0101] 33.sub.R, 33.sub.L polarizing plate [0102] 34 tilt angle detecting liquid crystal cell [0103] 35 infrared polarizing filter [0104] 36 infrared sensor [0105] 37 synchronization signal receiver [0106] 41.sub.R, 41.sub.L visual field opening/closing liquid crystal cell [0107] 42.sub.R, 42.sub.L tilt correcting liquid crystal cell [0108] 43.sub.R, 43.sub.L polarizing plate [0109] 50 stereoscopic image appreciation eyeglasses [0110] C visual field opening/closing and tilt correcting controller [0111] 51.sub.R, 51.sub.L visual field opening/closing and tilt correcting liquid crystal cell [0112] 53.sub.R, 53.sub.L polarizing plate [0113] 54 tilt angle detecting liquid crystal cell [0114] 55 infrared polarizing plate [0115] 56 infrared sensor [0116] 57 synchronization signal receiver [0117] 60 stereoscopic image appreciation eyeglasses [0118] 61.sub.R, 61.sub.L visual field opening/closing liquid crystal cell [0119] 62.sub.R, 62.sub.L left tilt correcting liquid crystal cell [0120] 63.sub.R, 63.sub.L polarizing plate [0121] 64 first tilt angle detecting liquid crystal cell [0122] 65 infrared polarizing filter [0123] 66 infrared sensor [0124] 67 synchronization signal receiver [0125] 68.sub.R, 68.sub.L right tilt correcting liquid crystal cell [0126] 69 second tilt angle detecting liquid crystal cell [0127] 71.sub.R, 71.sub.L visual field opening/closing and tilt correcting liquid crystal cell [0128] 72.sub.R, 72.sub.L polarizing plate [0129] 73 infrared light synchronization signal receiver [0130] 74.sub.R, 74.sub.L infrared polarizing plate [0131] 75.sub.R, 75.sub.L infrared sensor [0132] 80 lens holder [0133] 81.sub.R, 81.sub.L diopter correction lens [0134] 82 leaf spring [0135] 83 knob [0136] 84 slot portion