Three-dimensional hologram image display apparatus
4 claims: 4 independent, 0 dependent
- 1A three-dimensional hologram image display apparatus which displays a three-dimensional hologram image by use of pixelated computed interference fringe patterns, comprising:a light modulation device (25) which has an electro-optical effect in which a refractive index is varied in accordance with an applied electric field intensity;andan electric field controller (22) configured to record computed interference fringe patterns in the light modulation device by varying an electric field intensity applied to the light modulation device in accordance with the computed interference fringe patterns;whereinpixel electrodes (23a) are provided on a surface of the light modulation device;the electric field controller (22) is configured to vary the electric field intensity applied to the light modulation device by controlling voltages applied to the respective pixel electrodes in accordance with the respective pixels of the computed interference fringe patterns;characterized in thatthe electric field controller (22) is configured to control the voltages applied to the respective pixel electrodes (23a), in consideration of mutual functions of electric field intensities affecting adjacent pixels. Appareil d'affichage d'image holographique tridimensionnelle qui affiche une image holographique tridimensionnelle à l'aide de motifs de frange d'interférence calculés pixélisés, comprenant : un dispositif de modulation de lumière (25) qui a un effet électro-optique dans lequel un indice de réfraction est modifié conformément à une intensité de champ électrique appliquée;etun dispositif de commande de champ électrique (22) configuré pour enregistrer les motifs de franges d'interférence calculés dans le dispositif de modulation de lumière en modifiant une intensité de champ électrique appliquée au dispositif de modulation de lumière conformément aux motifs de franges d'interférence calculés ;dans lequeldes électrodes de pixels (23a) sont prévues sur une surface du dispositif de modulation de lumière ;le dispositif de commande de champ électrique (22) est configuré pour modifier l'intensité de champ électrique appliquée au dispositif de modulation de lumière en commandant des tensions appliquées aux électrodes de pixels respectives conformément aux pixels respectifs des motifs de frange d'interférence calculés ;caractérisé en ce quele dispositif de commande de champ électrique (22) est configuré pour commander les tensions appliquées aux électrodes de pixels respectives (23a), en tenant compte de fonctions mutuelles des intensités de champ électrique affectant des pixels adjacents. Dreidimensionale Hologrammbildanzeigevorrichtung, die ein dreidimensionales Hologrammbild unter Verwendung von pixelierten berechneten Interferenzstreifenmustern anzeigt, umfassend: eine Lichtmodulationsvorrichtung (25), die einen elektrooptischen Effekt aufweist, bei dem ein Brechungsindex gemäß einer angelegten elektrischen Feldstärke variiert wird;undeine elektrische Feldsteuerung (22), die zum Aufzeichnen eines berechneten Interferenzstreifenmusters in der Lichtmodulationsvorrichtung durch Variieren einer elektrischen Feldstärke konfiguriert ist, die an die Lichtmodulationsvorrichtung gemäß den berechneten Interferenzstreifenmustern angelegt wird;wobeiPixelelektroden (23a) auf einer Oberfläche der Lichtmodulationsvorrichtung bereitgestellt sind;die elektrische Feldsteuerung (22) zum Variieren der elektrischen Feldstärke konfiguriert ist, die an die Lichtmodulationsvorrichtung durch Steuern der Spannungen angelegt wird, die an die zugehörigen Pixelelektroden gemäß den jeweiligen Pixeln der berechneten Interferenzstreifenmuster angelegt werden;dadurch gekennzeichnet, dassdie elektrische Feldsteuerung (22) zum Steuern der Spannungen konfiguriert ist, die an die jeweiligen Pixelelektroden (23a) unter Berücksichtigung der gegenseitigen Funktionen der elektrischen Feldstärken, welche die benachbarten Pixel beeinflussen, angelegt werden.
- 2Appareil d'affichage d'image holographique tridimensionnelle selon la revendication 1, dans lequel le dispositif de commande de champ électrique (22) est configuré pour stocker des valeurs d'échelle de gris et des valeurs de tension des motifs de frange d'interférence en association les unes avec les autres, et pour appliquer des tensions des valeurs de tension associées aux valeurs d'échelle de gris des pixels respectifs dans les motifs de frange d'interférence aux électrodes de pixels (23a) correspondant aux pixels respectifs. Dreidimensionale Hologrammbildanzeigevorrichtung nach Anspruch 1, wobei die elektrische Feldsteuerung (22) zum Speichern von Graustufenwerten und Spannungswerten der Interferenzstreifenmuster in Verbindung miteinander und zum Anlegen von Spannungen der Spannungswerte, die den Graustufenwerten der jeweiligen Pixel in den Interferenzstreifenmustern zugeordnet sind, an die Pixelelektroden (23a), die den jeweiligen Pixeln entsprechen, konfiguriert ist. The three-dimensional hologram image display apparatus according to claim 1, wherein the electric field controller (22) is configured to store gray-scale values and voltage values of the interference fringe patterns in association with each other, and to apply voltages of the voltage values associated with the gray-scale values of the respective pixels in the interference fringe patterns to the pixel electrodes (23a) corresponding to the respective pixels.
- 3Appareil d'affichage d'image holographique tridimensionnelle selon la revendication 1, dans lequel le dispositif de commande de champ électrique (22) est configuré pour ne pas appliquer de tensions aux électrodes de pixels sélectionnées adjacentes à une électrode spécifique, dans lequel les électrodes de pixels sélectionnées sont déterminées de manière à ce qu'une tendance de modifications des valeurs d'échelle de gris dans les pixels adjacents soit la même qu'une tendance de modifications des valeurs d'échelle de gris des motifs de frange d'interférence calculés. Dreidimensionale Hologrammbildanzeigevorrichtung nach Anspruch 1, wobei die elektrische Feldsteuerung (22) nicht zum Anlegen von Spannungen an ausgewählte Pixelelektroden benachbart einer spezifischen Elektrode konfiguriert ist, wobei die ausgewählten Pixelelektroden derart bestimmt werden, dass ein Trend von Variationen der Graustufenwerte in den benachbarten Pixeln einem Trend von Variationen der Graustufenwerte der berechneten Interferenzstreifenmuster entspricht. The three-dimensional hologram image display apparatus according to claim 1, wherein the electric field controller (22) is configured not to apply voltages to selected pixel electrodes adjacent to a specific electrode, wherein the selected pixel electrodes are determined such that a trend of variations of the grey-scale values in the adjacent pixels is the same as a trend of variations of the grey-scale values of the computed interference fringe patterns.
- 4A three-dimensional hologram image display system, which includes a three-dimensional hologram image display apparatus (2) and a server (100), and displays a three-dimensional hologram image, wherein the server (100) comprises:an interference fringe pattern computer (1a) configured to compute pixelated interference fringe patterns created from an object wave and a reference wave;a storage (lb) configured to store gray-scale values and voltage values of the interference fringe patterns in association with each other;anda transmitter (1c) configured to transmit the voltage values associated with the gray-scale values of respective pixels of the computed interference fringe patterns to the three-dimensional hologram image display apparatus (2);wherein the three dimension-signal hologram image display apparatus comprises: a light modulation device (25) which has pixel electrodes provided on a surface thereof, and has an electro-optical effect in which a refractive index is varied in accordance with an applied electric field intensity;andan electric field controller (22) configured to vary the electric field intensity applied to the light modulation device by controlling voltages applied to the respective pixel electrodes;whereinthe electric field controller is configured to record the interference fringe patterns in the light modulation device by applying, to pixel electrodes corresponding to the respective fringe pixels, voltages of the voltage values associated with gray-scale values of the respective pixels in the interference fringe patterns received from the server (100);whereinthe electric field controller (22) is configured to control the voltages applied to the respective pixel electrodes (23a), in consideration of mutual functions of electric field intensities affecting adjacent pixels. Dreidimensionales Hologrammbildanzeigesystem, das eine dreidimensionale Hologrammbildanzeigevorrichtung (2) und einen Server (100) aufweist und ein dreidimensionales Hologrammbild anzeigt, wobei der Server (100) umfasst: einen Interferenzstreifenmuster-Computer (1a), der zum Berechnen von pixelierten Interferenzstreifenmustern konfiguriert ist, die aus einer Objektwelle und einer Referenzwelle erzeugt werden;einen Speicher (1b), der zum Speichern von Graustufenwerten und Spannungswerten der Interferenzstreifenmuster in Verbindung miteinander konfiguriert ist;undeinen Transmitter (1c), der zum Senden der Spannungswerte, die den Graustufenwerten jeweiliger Pixel der berechneten Interferenzstreifenmuster zugeordnet sind, an die dreidimensionale Hologrammbildanzeigevorrichtung (2) konfiguriert ist;wobei die dreidimensionale Hologrammbildanzeigevorrichtung umfasst: eine Lichtmodulationsvorrichtung (25), die Pixelelektroden aufweist, die auf einer Oberfläche davon bereitgestellt sind, und die einen elektrooptischen Effekt aufweist, in dem ein Brechungsindex gemäß einer angelegten elektrischen Feldstärke variiert wird;undeine elektrische Feldsteuerung (22), die zum Variieren der elektrischen Feldstärke konfiguriert ist, die an die Lichtmodulationsvorrichtung durch Steuern der Spannungen angelegt wird, die an die zugehörigen Pixelelektroden angelegt werden;wobeidie elektrische Feldsteuerung zum Aufzeichnen der Interferenzstreifenmuster in der Lichtmodulationsvorrichtung durch Anlegen, an die Pixelelektroden, die den jeweiligen Streifenpixeln entsprechen, von Spannungen der Spannungswerte konfiguriert ist, die den Graustufenwerten der jeweiligen Pixel in den Interferenzstreifenmustern zugeordnet sind, die von dem Server (100) empfangen werden;wobeidie elektrische Feldsteuerung (22) zum Steuern der Spannungen konfiguriert ist, die an die jeweiligen Pixelelektroden (23a) unter Berücksichtigung der gegenseitigen Funktionen der elektrischen Feldstärken, welche die benachbarten Pixel beeinflussen, angelegt werden. Système d'affichage d'image holographique tridimensionnelle, qui inclut un appareil d'affichage d'image holographique tridimensionnelle (2) et un serveur (100), et affiche une image holographique tridimensionnelle, dans lequel le serveur (100) comprend : un calculateur de motif de frange d'interférence (la) configuré pour calculer des motifs de frange d'interférence pixélisés créés à partir d'une onde d'objet et d'une onde de référence ;un support de stockage (1b) configuré pour stocker des valeurs d'échelle de gris et des valeurs de tension des motifs de frange d'interférence en association les unes avec les autres;etun transmetteur (1c) configuré pour transmettre les valeurs de tension associées aux valeurs d'échelle de gris de pixels respectifs des motifs de frange d'interférence calculés à l'appareil d'affichage d'image holographique tridimensionnelle (2) ;dans lequel l'appareil d'affichage d'image holographique à signal tridimensionnel comprend : un dispositif de modulation de lumière (25) qui comporte des électrodes de pixels prévues sur une surface de celui-ci, et a un effet électro-optique dans lequel un indice de réfraction est modifié conformément à une intensité de champ électrique appliquée;etun dispositif de commande de champ électrique (22) configuré pour modifier l'intensité de champ électrique appliquée au dispositif de modulation de lumière en commandant des tensions appliquées aux électrodes de pixels respectives ;dans lequelle dispositif de commande de champ électrique est configuré pour enregistrer les motifs de frange d'interférence dans le dispositif de modulation de lumière en appliquant, aux électrodes de pixels correspondant aux pixels de frange respectifs, des tensions des valeurs de tension associées aux valeurs d'échelle de gris des pixels respectifs dans les motifs de frange d'interférence reçus en provenance du serveur (100) ;dans lequelle dispositif de commande de champ électrique (22) est configuré pour commander les tensions appliquées aux électrodes de pixels respectives (23a), en tenant compte de fonctions mutuelles d'intensités de champ électrique affectant des pixels adjacents.
Independent claims4
132 paragraphs in 5 sections, as filed
CROSS REFERENCE TO RELATED APPLICATION
This application is based upon and claims the benefit of priority from the prior Japanese Patent Applications Nos. <patcit id="pcit0001" dnum="JPP2003208712B"><text>P2003-208712, filed on August 25, 2003</text></patcit>; and <patcit id="pcit0002" dnum="JPP2004216472B"><text>P2004-216472, filed on July 23, 2004</text></patcit>.
BACKGROUND OF THE INVENTION
1. Field of the Invention
The present invention relates to a three-dimensional hologram image display apparatus and a three-dimensional hologram image display system, each of which displays a three-dimensional hologram image by use of computed interference fringe patterns (computer generated hologram).
2. Description of the Related Art
In Sato, K.: "Characteristics of Kinoform by LCD and Application to Display the Animated Color 3D Image", there is described a computer-generated hologram using an image processing system with a large frame memory, wherein kinoform is used for on-axis computer-generated hologram and display is achieved using a liquid-crystal device LCD for reconstruction of a three-dimensional animated image.
In <nplcit id="ncit0001" npl-type="s"><text>Jun Amako et al.: "Wave-Front Control Using Liquid-Crystal Devices</text></nplcit>", there is described a complete wave-front control with amplitude- and phase-modulation liquid-crystal devices LCD. A twisted neumatic device is used for amplitude modulation, and an electrically controlled berefringent device is used for phase modulations. Because the LCD's are optically coupled with afocal optics and are driven by individual LCD driver circuits, the amplitude and the phase can be controlled two-dimensionally and independently.
In <patcit id="pcit0003" dnum="US3890035A"><text>US-A-3,890,035</text></patcit> there is described a light spatial modulator used with computer holography for modulating incident laser light with respect to two factors of three characteristic factors of a light wave, that is, the amplitude, the phase and the direction of polarization, the modulator consisting of two component modulator means tandemly disposed with respect to the incident light, each for one factor of the light wave to be modulated and each component modulator means including a plate of ferroelectric crystal such as gadolinium molybdate, the polarization of which is changed by application of a voltage.
In <patcit id="pcit0004" dnum="US5221989A"><text>US5,221,989</text></patcit> there is described a spatial light modulator comprising an electro-optic material having grooves formed thereon to prevent crosstalk.
Further, conventionally, a three-dimensional hologram image display apparatus has been known, which irradiates a reference wave onto a computer generated hologram displayed (played back) on a liquid crystal display (LCD) so as to reproduce an object wave, thus displaying a three-dimensional hologram image. Note that the computer generated hologram consists of interference fringe patterns obtained by a computation.
Specifically, as shown in <figref idref="f0001">FIG. 1</figref>, such interference fringe patterns are created from the object wave and the reference wave. The object wave is created in a manner that a laser beam irradiated onto an object of a three-dimensional shape is reflected thereon.
However, in such a conventional three-dimensional hologram image display apparatus, resolution of the LCD has limitations, and there has been a problem in that sufficient resolution for displaying a three-dimensional hologram image of the object of the three-dimensional shape cannot be obtained.
Specifically, resolution of 1µm or less is required for displaying the three-dimensional hologram image of the object of the three-dimensional shape. However, even the highest-definition LCD at present only has resolution of approximately 10µm.
Therefore, only a field of view (a range where the three-dimensional hologram image can be actually observed) with a width of several centimeters can be ensured, when an observer observes the three-dimensional hologram image from a point apart therefrom by 50cm.
Accordingly, there has been a problem in that the conventional three-dimensional hologram image display apparatus does not have the sufficient resolution for displaying the three-dimensional hologram image of the object of the three-dimensional shape.
As a result, the conventional three-dimensional hologram image display apparatus has had a problem in that the three-dimensional hologram image of the object of the three-dimensional shape can be observed only by use of a peephole system having a narrow field of view.
In order to solve the problem described above, a three-dimensional hologram image display system using photorefractive crystal has been known as a system which supplement limitations of the resolution of the LCD (restrictions of the field of view).
A principle of such a three-dimensional hologram image display system will be briefly described below with reference to <figref idref="f0002">FIG. 2</figref>.
As shown in <figref idref="f0002">FIG. 2</figref>, the three-dimensional hologram image display system is configured with an interference fringe pattern computing apparatus 1, an interference fringe pattern recording apparatus 2a, reference wave irradiation apparatuses 3a and 3b, and an interference fringe pattern display apparatus 4.
The interference fringe pattern computing apparatus 1 is configured with a computer 11. As shown in <figref idref="f0002">FIG. 2</figref>, the interference fringe pattern computing apparatus 1 is configured to compute the interference fringe patterns (computer generated hologram) created from the object wave and the reference wave.
The interference fringe pattern display apparatus 4 is configured with an electronic display device (LCD 12 in an example of <figref idref="f0002">FIG. 2</figref>). The interference fringe pattern display apparatus 4 is configured to display an image of the interference fringe patterns computed by the interference fringe pattern computing apparatus 1.
Information for displaying such an image of the interference fringe patterns is transmitted from the interference fringe pattern computing apparatus 1 to the interference fringe pattern display apparatus 4 by an image signal.
The reference wave irradiation apparatus 3a is configured to irradiate a reference wave B1 toward the interference fringe pattern display apparatus 4 (LCD 12), and the reference wave irradiation apparatus 3b is configured to irradiate a reference wave B2 toward the interference fringe pattern recording apparatus 2a (hologram recording device 21).
Here, the reference wave B1 has the same wavelength and incidence angle as those of the reference wave for use in the computation of the interference fringe patterns by the interference fringe pattern computing apparatus 1.
When the reference wave B1 is irradiated toward the interference fringe pattern display apparatus 4, a direct beam and an object wave A1 are generated from the interference fringe pattern display apparatus 4. Here, the object wave A1 has a beam wavefront equivalent to that of the object wave for use in the computation of the interference fringe patterns by the interference fringe pattern computing apparatus 1. The object wave A1 propagates to the interference fringe pattern recording apparatus 2a.
The interference fringe pattern recording apparatus 2a is configured with the hologram recording device (light modulation device) 21. The interference fringe pattern recording apparatus 2a is configured to record an interference fringe patterns created from the object wave A1 and the reference wave B2 irradiated from the reference wave irradiation apparatus 3a, in the hologram recording device 21. Here, as the hologram recording device 21, the photorefractive crystal is used.
In a state where the interference fringe patterns are recorded in the hologram recording device 21 (photorefractive crystal) as described above, when the object wave A1 from the interference fringe pattern display apparatus 4 is blocked by a shutter or the like, and only the reference wave B2 is irradiated toward the interference fringe pattern recording apparatus 2a, an object wave A2 is generated by the interference fringe patterns recorded in the hologram recording device 21.
As a result, the observer can three-dimensionally observe the above-mentioned image of the three-dimensional shape by means of the object wave A2.
Such a three-dimensional hologram image display system using the photorefractive crystal as the hologram recording device 21 rerecords the interference fringe patterns created from the object wave A1 played back by the LCD and from the reference wave B2, thus making it possible to achieve an enlargement of the field of view.
However, the conventional three-dimensional hologram image display system using the photorefractive crystal is configured to record the interference fringe patterns in the interference fringe pattern recording apparatus 2a by use of an optical technique.
Accordingly, the conventional three-dimensional hologram image display system has had a problem in that the conventional three-dimensional hologram image display system is difficult to downsize.
BRIEF SUMMARY OF THE INVENTION
In viewing of the foregoing, it is an object of the present invention to provide a three-dimensional hologram image display system which realizes downsizing of apparatuses while realizing a wide field of view.
A first aspect of the present invention is summarized as a three-dimensional hologram image display apparatus which displays a three-dimensional hologram image by use of computed interference fringe patterns and has the features of claim 1.
In the first aspect, the electric field controller can be configured to store gray-scale values and voltage values of the interference fringe patterns in association with each other. And the electric field controller can be configured to apply voltages of the voltage values associated with the gray-scale values of the respective pixels in the interference fringe patterns, to the pixel electrodes corresponding to the respective pixels.
In the first aspect, the electric field controller can be configured not to apply voltages to pixel electrodes adjacent to a specific pixel electrode, when voltage applied to the specific pixel electrode is greater than or equal to a predetermined voltage.
A second aspect of the present invention is summarized as a three-dimensional hologram image display system, which includes a three -dimensional hologram image display apparatus and a server, displays a three-dimensional hologram image, and has the features of claim 4.
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
<ul id="ul0001" list-style="none" compact="compact"><li><figref idref="f0001">FIG. 1</figref> is a view for explaining a state of obtaining a computer generated hologram in a three-dimensional hologram image display apparatus according to a prior art.</li><li><figref idref="f0002">FIG. 2</figref> is an entire configuration view of a three-dimensional hologram image display system according to the prior art.</li><li><figref idref="f0003">FIG. 3</figref> is an entire configuration view of a three-dimensional hologram image display system supporting the present invention.</li><li><figref idref="f0004">FIGS. 4A and 4B</figref> are exterior views of a hologram recording device of a three-dimensional hologram image display apparatus supporting the present invention.</li><li><figref idref="f0005">FIGS. 5A and 5B</figref> are exterior views of a hologram recording device of the three-dimensional hologram image display apparatus supporting the present invention.</li><li><figref idref="f0006">FIGS. 6A and 6B</figref> are views for explaining control for an electric field intensity by a electric field control unit of a three-dimensional hologram image display apparatus.</li><li><figref idref="f0007">FIGS. 7A and 7B</figref> are views for explaining control for an electric field intensity by a electric field control unit of a three-dimensional hologram image display apparatus.</li><li><figref idref="f0008">FIG. 8</figref> is a flowchart showing an operation of the three-dimensional hologram image display system supporting the present invention.</li><li><figref idref="f0009">FIG. 9</figref> is a view showing image information of interference fringe patterns computed by an interference fringe pattern computing apparatus of the three-dimensional hologram image display system supporting the present invention, and showing image information of an enlarged local region of the interference fringe patterns.</li><li><figref idref="f0010">FIG. 10</figref> is a cross-sectional view of the hologram recording device of the three-dimensional hologram image display apparatus supporting the present invention.</li><li><figref idref="f0010">FIG. 11</figref> is a view showing pixels constituting the local region of the interference fringe patterns recorded in a light modulation device of the three-dimensional hologram image display apparatus supporting the present invention.</li><li><figref idref="f0011">FIGS. 12A and 12B</figref> are views for explaining control for an electric field intensity by a electric field control unit of the three-dimensional hologram image display apparatus according to the present invention.</li><li><figref idref="f0012">FIG. 13</figref> is an entire configuration view of a three-dimensional hologram image display system according to another embodiment of the present invention.</li><li><figref idref="f0013">FIG. 14</figref> is a functional block diagram of a server of the three-dimensional hologram image display system according to the other embodiment of the present invention.</li><li><figref idref="f0014">FIG. 15</figref> is a functional block diagram of a three-dimensional hologram image display apparatus of the three-dimensional hologram image display system according to the other embodiment of the present invention.</li></ul>
DETAILED DESCRIPTION OF THE INVENTION
<A configuration of a three-dimensional hologram image display system supporting the present invention>
<figref idref="f0003">FIG. 3</figref> is a view showing an entire configuration of a three-dimensional hologram image display system.
The three-dimensional hologram image display system is a three-dimensional hologram image display system which displays a three-dimensional hologram image by use of a computer generated hologram.
As shown in <figref idref="f0003">FIG. 3</figref>, the three-dimensional hologram image display system is configured with an interference fringe pattern computing apparatus 1, a three-dimensional hologram image display apparatus 2, and a reference wave irradiation apparatus 3.
Here, in this specification, a concept of an "image" includes a still-frame picture, a moving picture (video).
Similarly to the interference fringe pattern computing apparatus 1 according to the prior art, the interference fringe pattern computing apparatus 1 is configured with a computer.
The interference fringe pattern computing apparatus 1 is configured to compute interference fringe patterns created from an object wave and a reference wave. The object wave is created in a manner that a laser beam irradiated onto an object of a three-dimensional shape (for example, 3D data of a cube) is reflected thereon.
Note that the interference fringe patterns are gray-scale images in which variations of brightness correspond to amplitude information of light and a fringe pattern corresponds to phase information of the light.
The three-dimensional hologram image display apparatus 2 includes a light modulation device 25 in which a refractive index is varied in accordance with an electric field intensity.
The three-dimensional hologram image display apparatus 2 is configured to record the interference fringe patterns in the light modulation device 25, by varying the electric field intensity applied to the light modulation device 25 in accordance with the interference fringe patterns.
As shown in <figref idref="f0003">FIG. 3</figref>, the three-dimensional hologram image display apparatus 2 is configured with a hologram recording device 21 and an electric field control unit 22.
The hologram recording device 21 adopts a configuration in which electrodes 23 corresponding to the respective pixels of the interference fringe patterns are provided on a surface of the light modulation device 25 having the refractive index varied in accordance with an applied electric field intensity.
That is to say, the hologram recording device 21 adopts a configuration in which the light modulation device 25 is sandwiched between microelectrodes 23 and 24.
For example, as shown in <figref idref="f0004">FIGS. 4A and 4B</figref>, the hologram recording device 21 may have an electrode structure of a simple matrix system.
In such a case, the hologram recording device 21 adopts a configuration in which the electrodes 23 in an X-axis direction are pasted on an upper surface of the light modulation device 25 formed as a thin film, and the electrodes 24 in a Y-axis direction are pasted on a lower surface of the light modulation device 25 formed as the thin film.
Here, intersection portions of the electrodes 23 in the X-axis direction and the electrodes 24 in the Y-axis direction apply to pixel electrodes 23a correspond to the respective pixels.
Moreover, as shown in <figref idref="f0005">FIGS. 5A and 5B</figref>, the hologram recording device 21 may have an electrode structure of an active matrix system.
In such a case, the hologram recording device 21 adopts a configuration in which transistors capable of independently controlling ON/OFF of each of the pixel electrodes 23a corresponding to the respective pixels are prepared.
Here, as the light modulation device 25, used is a material such as PLZT, SBT and SBN which are ferroelectric materials capable of easily realizing refractive-index modulation by electric-field control by use of polarization inversion.
The electric field control unit 22 is configured to vary the refractive index inside of the light modulation device 25, by varying the electric field intensity applied to the light modulation device 25, based on information for displaying the interference fringe patterns (gray-scale values of the respective pixels of the interference fringe patterns). The information is transmitted from the interference fringe pattern computing apparatus 1 by an image signal.
Here, a state where the electric field control unit 22 controls the electric field intensity applied to the light modulation device 25 will be specifically described with reference to <figref idref="f0006">FIGS. 6A and 6B</figref>.
<figref idref="f0006">FIG. 6A</figref> shows a part of the pixels (A, B, C...) constituting the interference fringe patterns computed by the interference fringe pattern computing apparatus 1.
When the gray-scale values at positions corresponding to the respective pixels (A, B, C...) of the interference fringe patterns are varied as in "a gray-scale variation curve of the interference fringe patterns" shown in <figref idref="f0006">FIG. 6B</figref>, the electric filed control unit 22 applies voltages (A, B, C...) shown in a bar graph of <figref idref="f0006">FIG. 6B</figref> to the respective pixel electrodes 23a corresponding to the respective pixels (A, B, C...) of the interference fringe patterns.
Here, it is assumed that the electric field control unit 22 can control the voltages applied to the respective pixel electrodes 23a completely independently.
Specifically, as in the pattern of the Interference fringe patterns computed by the interference fringe pattern computing apparatus 1, the electric field control unit 22 is configured to locally vary the refractive index inside of the light modulation device 25, by locally varying the electric field intensity applied to the light modulation device 25, so as to record the interference fringe patterns concerned in the light modulation device 25.
Note that the refractive index is constant in a state where an electric field intensity is not varied inside of the light modulation device 25.
Moreover, as shown in <figref idref="f0007">FIG. 7A</figref>, the electric field control unit 22 is configured to store the gray-scale values and voltage values of the interference fringe patterns in association with each other.
And the electric field control unit 22 may be configured to apply voltages of the voltage values associated with the gray-scale values of the respective pixels in the interference fringe patterns, to the pixel electrodes 23a corresponding to the respective pixels.
In such a case, the electric field control unit 22 computes and stores a relationship between the gray-scale values and voltage values of the interference fringe patterns for each material of the light modulation device 25 based on a relationship shown in <figref idref="f0007">FIG. 7B</figref>, which is between an applied electric field intensity and the refractive index inside of the light modulation device, a relationship between the gray-scale values of the interference fringe patterns and the refractive index inside of the light modulation device, and the like.
In general, the relationship between an applied electric field intensity and the refractive index can be represented as follows.
In general, a displacement Δn of the refractive index is represented as: <maths id="math0001" num=""><math display="block"><mi>Δn</mi><mo>∝</mo><mi mathvariant="normal">r</mi><mo>⋅</mo><msub><mi mathvariant="normal">n</mi><mn>0</mn></msub><msup><mrow /><mn>3</mn></msup><mo>⋅</mo><mi mathvariant="normal">V</mi><mo>/</mo><mi mathvariant="normal">d</mi></math><img file="EP1510889B1_D0001.tif" /></maths> where "n<sub>0</sub>" is the refractive index when no electric field is applied (when "V = 0"), "V" is the voltage value, "d" is a distance between the electrodes, and "r" is an electro-optical coefficient.
The reference wave irradiation apparatus 3 is configured to irradiate a reference wave B toward the light modulation device 25.
Here, the reference wave B has the same wavelength and incidence angle as those of the reference wave for use in the computation of the interference fringe patterns by the interference fringe pattern computing apparatus 1.
When the reference wave B is irradiated toward the light modulation device 25 in a state where the interference fringe patterns are recorded in the light modulation device 25 as described above, an object wave A is generated by the interference fringe patterns recorded in the light modulation device 25.
As a result, the same object wave A as light coming from the object of the three-dimensional shape for use in the computation of the interference fringe patterns by the interference fringe pattern computing apparatus 1 is made incident onto eyes of an observer, and thus the observer can three-dimensionally observe the above-described object of the three-dimensional shape.
Specifically, the three-dimensional hologram image display apparatus 2 is different from the three-dimensional hologram image display apparatus according to the prior art in that the variations of the refractive index of the hologram recording device 21 are controlled by the variations of the electric field intensity, that the recording of the interference fringe patterns in the hologram recording device 21 is realized not optically but electrically, and that the variations of the electric field intensity are realized by use of the polarization inversion. As described above, the interference fringe pattern computing apparatus 1 and the three-dimensional hologram image display apparatus 2 are provided as apparatuses separate from each other.
However, the present invention is not limited to this configuration, and is also applicable to a configuration in which the three-dimensional hologram image display apparatus 2 includes a function of the interference fringe pattern computing apparatus 1.
<Operation of the three-dimensional hologram image display system supporting the present invention)
An operation of the three-dimensional hologram image display system supporting the present invention will be described with reference to <figref idref="f0008">FIG. 8</figref>.
In Step 401, the interference fringe pattern computing apparatus 1 computes the interference fringe patterns created from the object wave and the reference wave. The object wave is created in the manner that the laser beam irradiated onto the object of the three-dimensional shape is reflected thereon.
<figref idref="f0009">FIG. 9</figref> shows a state where the interference fringe patterns are displayed and a state where a local region of the displayed interference fringe patterns is enlarged. Each of squares "A" to "D" indicates one pixel constituting the interference fringe patterns.
In Step 402, the interference fringe pattern computing apparatus 1 transmits the information for displaying the above-described interference fringe patterns, to the three-dimensional hologram image display apparatus 2 by the image signal.
In Step 403, as in a conventional liquid crystal display device and the like, the electric field control unit 22 of the three-dimensional hologram image display apparatus 2 controls the electric fields intensities applied to the respective pixel electrodes 23a corresponding to the respective pixels constituting the interference fringe patterns based on the gray-scale values of the respective pixels.
<figref idref="f0010">FIG. 10</figref> shows a cross-sectional view of the hologram recording device 21 of the three-dimensional hologram image display apparatus 2.
Here, it is assumed that pixel electrodes 23a (A) to 23a (D) correspond to the pixels "A" to "D", respectively. Moreover, it is assumed that a relationship between the refractive index and the electric field intensity inside of the light modulation device 25 is the relationship shown in <figref idref="f0007">FIG. 7B</figref>.
For example, when gray-scale values of the pixels "A' to "D" are "255", "200", "255" and "100", respectively, the electric field control unit 22 varies voltages applied to the pixel electrodes 23a (A) to 23a (D) to "+5V", "+4V", "+5V" and "+2V".
As described above, the electric field control unit 22 applies the different voltages to the respective pixel electrodes 23a (A) to 23a (D) of the hologram recording device 21.
Thus, in Step S404, in the light modulation device 25, refractive-index modulations corresponding to the interference fringe patterns computed by the interference fringe pattern computing apparatus 1 are realized, and the interference fringe patterns concerned are recorded.
<figref idref="f0010">FIG. 11</figref> shows pixels "A" to "D" constituting the local region of the interference fringe patterns recorded in the light modulation device 25.
In <figref idref="f0010">FIG. 11</figref>, for facilitating the understanding, refractive indices corresponding to the respective pixels "A" to "D" are shown by variations of shades of gray.
In Step 405, onto the light modulation device 25, the reference wave irradiation apparatus 3 irradiates the reference wave B having the same wavelength and incidence angle as those of the reference wave for use in the computation of the interference fringe patterns by the interference fringe pattern computing apparatus 1.
In Step 406, when the reference wave B is irradiated toward the light modulation device 25 in the state where the interference fringe patterns are recorded in the light modulation device 25, the object wave A is generated by the interference fringe patterns recorded in the light modulation device 25.
As a result, the same object wave A as the light coming from the object of the three-dimensional shape for use in the computation of the interference fringe patterns by the interference fringe pattern computing apparatus 1 is made incident onto the eyes of the observer, and thus the observer can three-dimensionally observe the above-described object of the three-dimensional shape.
(Function/Effect of three-dimensional hologram image display system supporting the present invention)
According to the three-dimensional hologram image display system supporting the present invention, the recording of the interference fringe patterns in the hologram recording device 25 can be controlled electrically. Accordingly, downsizing of the three-dimensional hologram image display system can be realized while realizing a three-dimensional hologram image display enabling a wide angle of view.
Specifically, according to the three-dimensional hologram image display system supporting the present invention, it is not necessary, as the conventional three-dimensional hologram image display system, to adopt a two-stage configuration in which the interference fringe patterns are displayed by the interference fringe pattern display apparatus 4 such as the LCD 12 and the interference fringe patterns created from the object wave A1 generated from the displayed interference fringe patterns and from the reference wave B2 is written into the hologram recording device.
Accordingly, the downsizing of the three-dimensional hologram image display system can be realized.
(Configuration of three-dimensional hologram image display system according to an embodiment of the present invention)
A three-dimensional hologram image display system according to an embodiment of the present invention will be described with reference to <figref idref="f0011">FIGS. 12A and 12B</figref>. Points of the three-dimensional hologram image display system according to the embodiment different from the above-described supporting three-dimensional hologram image display system will be mainly described below.
For example, in such usual image information as an image of a checker flag, there is a possibility that gray-scale values of adjacent pixels are radically varied. For this reason, an image display device which displays such pixel information must control all of the pixels completely independently.
However, because the interference fringe patterns are formed by synthesizing light waves, in the interference fringe patterns, the gray-scale values of the adjacent pixels are not radically varied as in the above-described image of the checker flag from a micro-level viewpoint.
For this reason, in the case of the information for displaying the interference fringe patterns, even if all of the pixels are not controlled completely independently, the interference fringe patterns to be played back are affected little in terms of deterioration.
Therefore, the electric field control unit 22 which plays back the interference fringe patterns can be configured to control the voltages applied to the respective pixel electrodes 23a (A) to 23a (D), in consideration of mutual functions of the electric field intensities applied to the adjacent pixel electrodes 23a (A) to 23a (D).
Specifically, it is not necessary for the electric field control unit 22 to control the pixel electrodes 23a corresponding to all of the pixels for each pair of the adjacent pixels completely independently.
And it is satisfactory if a trend of the variations of the gray-scale values in the neighboring pixels is controlled so as to be the same as a trend of the variations of the gray-scale values of the original interference fringe patterns.
A state where the electric field intensity applied to the light modulation device 25 is controlled when the electric field control unit 22 cannot control the pixel electrodes corresponding to all of the pixels completely independently, that is, when electric fields applied to the adjacent pixel electrodes affect one another will be specifically described with reference to <figref idref="f0011">FIGS. 12A and 12B</figref>.
Here, <figref idref="f0011">FIG. 12A</figref> shows a part of the pixels (A, B, C...) constituting the interference fringe patterns computed by the interference fringe pattern computing apparatus 1.
Note that, in <figref idref="f0011">FIG. 12A</figref>, pixel electrodes adjacent to the pixel electrode 23a (C) corresponding to the pixel "C" may be only the pixel electrodes 23a (B) and 23a (D) corresponding to the pixels "B" and "D", or may include the pixel electrodes 23a (A) and 23a (E) corresponding to the pixels "A" and "E".
For example, as shown in <figref idref="f0011">FIG. 12B</figref>, in consideration of the mutual functions of the electric field intensities in the adjacent pixel electrodes, the electric field control unit 22 lessens the voltages applied to the pixel electrodes 23a (A) and 23a (B) corresponding to the pixels "A" and "B" than true values, and increases the voltage applied to the pixel electrode 23a (C) corresponding to the pixel "C" more than a true value.
Note that the true values refer to the voltages applied to the respective pixel electrodes, when the electric field control unit 22 can control the pixel electrodes corresponding to all of the pixels completely independently (refer to <figref idref="f0006">FIG. 6B</figref>).
As a result, though the gray-scale values of the respective pixels "A" to "C" are different from those in the case of <figref idref="f0006">FIG. 6B</figref>, "a gray-scale variation curve of the interference fringe patterns" formed of the gray-scale values of the three pixels "A" to "C" becomes substantially the same as "the gray-scale variation curve of the interference fringe patterns" shown in <figref idref="f0006">FIG. 6B</figref>.
Moreover, the electric field control unit 22 can also thin out the pixel electrodes to which the voltages are applied in such a manner that the voltage applied to the pixel electrode corresponding to the pixel "C" is increased more than the true value and the voltages are not applied to the pixels "A" , "B", "D", "E" and the like, which are adjacent to the pixel "C".
Specifically, the electric field control unit 22 does not have to control the voltages applied to the pixel electrodes corresponding to all of the pixels.
And the electric field control unit 22 can be configured to control only voltages applied to pixel electrodes corresponding to specific pixels.
Here, determination methods of the pixel electrodes for which it is necessary to control the voltages differ depending on characteristics of the light modulation device 25.
By performing the processing as described above, from a global viewpoint, the electric field control unit 22 can obtain a similar result to that of "the gray-scale variation curve of the interference fringe patterns" shown in <figref idref="f0006">FIG. 6B</figref>, even if the electric field control unit 22 cannot control the pixel electrodes corresponding to all of the pixels completely independently, that is, even if the electric fields in the adjacent pixel electrodes affect one another.
Moreover, the electric field control unit 22 may also be configured not to apply the voltages to the pixel electrodes (for example, the pixels "A". "B", "D" and "E") adjacent to the specific pixel electrode (for example, the pixel electrode corresponding to the pixel "C") when the voltage applied to the specific electrode is a predetermined voltage or more.
According to the three-dimensional hologram image display system in accordance with the embodiment, a restriction condition that the adjacent electrodes must be controlled completely independently is relaxed, and accordingly, manufacture of the system becomes facilitated.
<Configuration of three-dimensional hologram image display system according to an other embodiment of the present invention>
A three-dimensional hologram image display system according to an other embodiment of the present invention will be described with reference to <figref idref="f0012 f0013 f0014">FIGS. 13 to 15</figref>. Points of the three-dimensional hologram image display system according to the other embodiment different from the above-mentioned supporting three-dimensional hologram image display system will be mainly described below.
As shown in <figref idref="f0012">FIG. 13</figref>, the three-dimensional hologram image display system according to the other embodiment includes a server 100, and a three-dimensional hologram image display apparatus 2.
In this embodiment, an example where the three-dimensional hologram image display apparatus 2 is configured with a mobile communication terminal communicable with the server 100 through a packet communication network 5 will be described.
As shown in <figref idref="f0013">FIG. 14</figref>, the server 100 includes an interference fringe pattern computing unit 1a, a storage unit 1b, and a transmitter unit 1c.
The interference fringe pattern computing unit 1a is configured to compute interference fringe patterns (computer generated hologram) created from an object wave and a reference wave.
The storage unit lb is configured to store gray-scale values and voltage values of the interference fringe patterns in association with each other.
The transmitter unit 1c is configured to transmit voltage values associated with the gray-scale values of the respective pixels of the computed interference fringe patterns, to the three-dimensional hologram image display apparatus 2.
As shown in <figref idref="f0014">FIG. 15</figref>, the three-dimensional hologram image display apparatus 2 includes a communication unit 31, a hologram recording device 21, an electric field control unit 22, a light source 32, and a light reflecting plate 33.
The communication unit 31 is configured to require the server 100 to transmit the voltage values corresponding to the gray-scale values of the respective pixels of the interference fringe patterns for displaying a three-dimensional hologram image, and to transmit the received voltage values to the electric field control unit 22.
The electric field control unit 22 is configured to record the interference fringe patterns in the light modulation device 25 as the hologram recording device 21, by applying, to the pixel electrodes corresponding to the respective pixels, the voltages of the voltage values associated with the gray-scale values of the respective pixels of the interference fringe patterns. Here, the gray-scale values of the respective pixels of the interference fringe patterns are received from the server 100 through the communication unit 31.
Note that a configuration of the hologram recording device 21 is similar to the configuration of the hologram recording device 21 according to the above-mentioned supporting embodiment.
The light reflecting plate 33 is configured to create a reference wave B, by reflecting light from the light source 32.
Here, the reference wave B has the same wavelength and incidence angle as those of the reference wave for use in the computation of the interference fringe patterns by the interference fringe pattern computing unit 1a of the server 100.
Note that the light source 32 may be a backlight for use in a liquid crystal display of the mobile communication terminal, or may be a light source provided separately from such a backlight.
Note that, though a configuration in which the server 100 transmits the voltage values associated with the gray-scale values of the interference fringe patterns to the three-dimensional hologram image display apparatus 2 through the packet communication network 5 has been described in the above-described other embodiment, the present invention is also applicable to a configuration in which the server 100 transmits the gray-scale values of the interference fringe patterns to the three-dimensional hologram image display apparatus 2 through the packet communication network 5.
As described above, according to the present invention, the three-dimensional hologram image display apparatus and the three-dimensional hologram image display system, which realize the downsizing thereof while realizing the three-dimensional hologram image display enabling the wide angle of view, can be provided.
Additional advantages and modifications will readily occur to those skilled in the art. Therefore, the invention in its broader aspects is not limited to the specific details and the representative embodiment shown and described herein. Accordingly, various modifications may be made without departing from the scope of the general inventive concept as defined by the appended claims.
Contents5
15 sheets
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Every citation, both ways
| Document | Relation | Office | Cited during |
|---|---|---|---|
| US2004008397A1 | Cites | United States of America | Examiner |
| US3890035A | Cites | United States of America | Examiner |
| US5221989A | Cites | United States of America | Examiner |
| US6246796B1 | Cites | United States of America | Examiner |
| US2004008397A1 | Cites | United States of America | – |
| US3890035A | Cites | United States of America | – |
| US5221989A | Cites | United States of America | – |
| US6246796B1 | Cites | United States of America | – |
10 priority claims, no other members on record
Priority claims10
| Document | Office | Kind | Date |
|---|---|---|---|
| 2003208712 | Japan | A | |
| 2003208712 | Japan | A | |
| 2003208712 | Japan | – | |
| 2004216472 | Japan | A | |
| 2004216472 | Japan | A | |
| 2004216472 | Japan | – | |
| 2003208712 | – | – | – |
| 2004216472 | – | – | – |
| JP20030208712 | – | – | – |
| JP20040216472 | – | – | – |
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Numbers
- Publication
- 1510889
- Publication, DOCDB
- 1510889
- Publication, EPODOC
- EP1510889
- Application
- 4020
- Application, DOCDB
- 04020200
- Application, EPODOC
- EP20040020200
Titles3
- German
- Bildanzeigegerät für dreidimensionale Hologramme
- English
- Three-dimensional hologram image display apparatus
- French
- Appareil d'affichage d'images holographiques tridimensionnelles
Classification
- CPC, 14
- G03H1/02
- G02F1/13
- G03H1/2294
- G03H2001/0224
- G03H2001/0268
- G03H2001/2239
- G03H2225/22
- G03H2225/32
- G03H2225/52
- G03H2226/04
- G03H2227/02
- G03H2240/42
- G03H2240/61
- G03H1/04
- IPC, 9
- G03H1 08
- G03H1 22
- G03B35 08
- G02B27 22
- G02F1 13
- G03H1 04
- G09G3 20
- G09G3 34
- H04N13 04
Designated states2
- Contracting states, 2
- Germany
- United Kingdom
