This application is based upon and claims the benefit of priority from the prior Japanese Patent Application No. 2010-051111, filed on Mar. 8, 2010; the entire contents of which are incorporated herein by reference.
Embodiments described herein relate generally to a display device.
Head-up displays (HUDs) allow the visual confirmation of operation information such as vehicle speed and travel direction and include HUDs that control the luminance of an image presented to a human viewer (for example, refer to JP-A 2008-1182 (Kokai)).
In such a HUD, the luminance of external light is measured. The luminance of the image presented to the human viewer is controlled based on the luminance of the measured external light.
However, at present, a specific method for controlling the luminance of the image has not been determined such that the human viewer can view the image comfortably.
In general, according to one embodiment, a display device includes a presentation unit, a setting unit and a control unit. The presentation unit is configured to produce a light flux including image information and to presenting the light flux to an eye of a human viewer. The setting unit is configured to receive luminance information to set a luminance of the light flux to be a first luminance, the first luminance being set by the human viewer. The control unit is configured to control the presentation unit to change the luminance of the light flux, the control unit controlling the presentation unit to make the luminance of the light flux to be a second luminance lower than the first luminance based on the luminance information received by the setting unit.
Exemplary embodiments of the invention will now be described in detail with reference to the drawings.
In the specification and drawings of the application, components similar to those described in regard to a drawing thereinabove are marked with like reference numerals, and a detailed description is omitted as appropriate.
A display device 1 according to a first embodiment is an automotive head-up display that presents a light flux 5 having a controlled luminance to an eye 101 of a human viewer 100.
The display device 1 changes the luminance of the light flux 5 presented to the eye 101 of the human viewer 100 to a second luminance lower than a first luminance set beforehand by the human viewer 100. The display device 1 includes a setting unit 11, a control unit 12, and a presentation unit 13.
The presentation unit 13 produces the light flux 5 including the image information of the operation information. The presentation unit 13 irradiates the light flux 5 toward the windshield 21. A combiner may be provided on the windshield 21. The windshield 21 reflects the light flux 5 toward the eye 101 of the human viewer 100.
The presentation unit 13 includes a light source 131, a limiting unit 132, a diffuser unit 133, an image generating device 134, a first lens 135, an aperture 136, a second lens 137, and a reflecting plate 138.
The aperture 136 is positioned a distance of f1 from the first lens 135 and a distance of f2 from the second lens 137, where f1 is the focal distance of the first lens 135 and f2 is the focal distance of the second lens 137.
The propagation direction of the light flux 5 emitted from the light source 131 is limited by the limiting unit 132; and in such a state, the light flux 5 is incident on the image generating device 134 including the diffuser unit 133. The light flux 5 is diffused by the diffuser unit 133 and can be uniformly incident on the image generating device 134.
The light flux 5 passing through the image generating device 134 includes the image information and then passes through the first lens 135, the aperture 136, and the second lens 137. The light flux 5 is incident on the reflecting plate 138 in a state in which the divergence angle of the light flux 5 (the angle at which the light flux 5 diverges) is controlled.
Because the image generating device 134 is on the light source 131 side of the aperture 136, the transmittance of the light flux 5 passing through the image generating device 134 can be higher than that of the case where the aperture 136 is on the light source 131 side of the image generating device 134. Therefore, the power consumption of the light source 131 can be reduced.
The light source 131 may include a light emitting diode, a high pressure mercury lamp, a halogen lamp, a laser, etc. The limiting unit 132 may include a tapered light guide. The diffuser unit 133 may include a diffusion filter and a diffuser plate. The image generating device 134 may include a liquid crystal display, a digital mirror device, etc.
The setting unit 11 is operated by the human viewer 100. According to the operation, the light source 131, the image generating device 134, or both is controlled to change the luminance of the light flux 5. Namely, the human viewer 100 operates the setting unit 11 to set the luminance of the light flux 5 to a first luminance felt to be most comfortable.
After the human viewer 100 sets the first luminance, the control unit 12 controls the light source 131, the image generating device 134, or both to change the luminance of the light flux 5 to a second luminance which has a value lower than the first luminance.
The setting unit 11 and the control unit 12 are realized by a central processing unit (CPU) and memory used by the CPU. The memory may be capable of being manipulated by the human viewer 100.
Thus, the setting unit 11 receives luminance information to set the luminance of the light flux 5 to be a first luminance, which is set by the human viewer 100. The control unit 12 controls the presentation unit 13 to change the luminance of the light flux 5. The control unit 12 controls the presentation unit 13 to make the luminance of the light flux 5 to be a second luminance lower than the first luminance based on the luminance information received by the setting unit 11.
A ratio α of the luminance X to the first luminance X0 is plotted on the horizontal axis of
As a result of the experiment, taking the evaluation value for α=1.0 to be a reference value of 2.25, the evaluation value was 1.25 for α=0.1, the evaluation value was 1.5 for α=0.2, the evaluation value was 3.5 for α=0.4, the evaluation value was 3.5 for α=0.5, the evaluation value was 2.5 for α=0.6, and the evaluation value was 2.5 for α=1.5.
In
The control unit 12 determines the second luminance from the first luminance set using the setting unit 11 (S302). For example, in the case where the first luminance is set by the setting unit 11 to 600 nit, the control unit 12 determines the second luminance to be 300 nit which is 0.5 times 600 nit. The factor from 0.4 times to 0.8 times with which to multiply the first luminance to determine the second luminance may be determined beforehand in the design stage and may be determined arbitrarily by the human viewer 100. The control unit 12 may control the light source 131, the image generating device 134, or both to present the light flux 5 changed to the second luminance (S303). For example, the control unit 12 may change the luminance of the light flux 5 to the second luminance by controlling the amount of current supplied by a power source (not illustrated) to the light source 131.
According to this embodiment, the luminance of the image can be controlled such that the human viewer can view the image comfortably.
In the case where, for example, the human viewer 100 resets the first luminance while driving the vehicle 20, the control unit 12 may newly determine the second luminance and control the presentation unit 13. Further, the control unit 12 may pre-store multiple first luminances set by multiple human viewers 100. Thereby, it is unnecessary for the human viewer 100 to set the first luminance each time the display device 1 is used; and step S301 of
A display device 2 according to a second embodiment is different from the display device 1 according to the first embodiment in that the luminance of external light incident on the vehicle 20 (an external light luminance) is measured. Prior to the driving of the vehicle 20, the display device 2 solves for a first coefficient γ, which is the ratio of the first luminance set by the human viewer 100 to the external light luminance at that time, and determines a second coefficient γ′ from the first coefficient γ. The second coefficient γ′ satisfies Formula 1.
0.4γ<γ′<1.0γ (Formula 1)
During the driving of the vehicle 20, the display device 2 presents the light flux 5 having a third luminance to the human viewer 100, where the third luminance is the measured external light luminance multiplied by the second coefficient γ′.
γ=(first luminance)/initial external light luminance (Formula 2)
For example, in the case where the first luminance is set to 600 nit and the external light luminance at that time (the initial external light luminance) is 400 nit, the control unit 12 determines the value of the first coefficient γ to be γ=600/400=1.5.
The control unit 12 determines the second coefficient γ′ from the first coefficient γ to satisfy Formula 1 (S503). For example, the control unit 12 determines the second coefficient γ′ to have a value of 0.75 which is 0.5 multiplied by the value of 1.5 of the first coefficient γ.
The control unit 12 determines the third luminance by multiplying the second coefficient γ′ by the current external light luminance measured by the sensor 15 (S504). For example, in the case where the second coefficient γ′ is 0.75 and the current external light luminance measured by the sensor 15 is 300 nit, the control unit 12 determines the third luminance to be 300×0.75=225 nit.
The control unit 12 controls the light source 131, the image generating device 134, or both to change the light flux 5 to the third luminance and present the light flux 5.
According to this embodiment, the luminance of the image can be controlled according to the luminance of the external light.
The embodiments can provide a display device capable of controlling the luminance of an image such that the human viewer can view the image comfortably.
While certain embodiments have been described, these embodiments have been presented by way of example only, and are not intended to limit the scope of the inventions. Indeed, the novel embodiments described herein may be embodied in a variety of other forms; furthermore, various omissions, substitutions and changes in the form of the embodiments described herein may be made without departing from the spirit of the inventions. The accompanying claims and their equivalents are intended to cover such forms or modifications as would fall within the scope and spirit of the invention.
Number | Date | Country | Kind |
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2010-051111 | Mar 2010 | JP | national |