1. Field of Invention
The present disclosure relates to a pen-shaped input apparatus. More particularly, the present disclosure relates to an optical structure on a pen-shaped input apparatus.
2. Description of Related Art
“Mouse” and “keyboard” are common input devices in present personal computer applications. However, those input devices are quite different from a pen, the most common tool used for writing or drawing. A beginner in using personal computer must spend a long time practicing how to control the cursor on the screen by the mouse or memorizing the distribution of characters on the keyboard. Therefore, a mouse-pen is developed and widespread in various applications.
Please refer to
However, the traditional mouse-pen 100 has a directional axis 108. Because the holding gestures of users can be different, and it may change the angle between the tip portion 102 and the object surface 200, such that the angle of the directional axis 108 is not stable. If the angle of the directional axis 108 of the mouse-pen 100 is varied, the distance between the object surface 200 and the capturing module 106 will be changed. In this case, the distance between the object surface 200 and the capturing module 106 may be out of the valid depth of field range of the capturing module 106, such that the capability of image identification of the capturing module 106 will be reduced.
Besides, as shown in
Besides, the mouse-pen usually has a narrow internal space limited by its long shape. Therefore, most mouse-pen locates its capturing component away from the object surface and locates its light source component adjacent to the object surface, due to the space limitation. However, because the capturing component is disposed away from the object surface, an optical pattern is prolonged and an inlet light intensity to the capturing component is reduced. In addition, implementing the light source (e.g. light emitting diode, LED) close to the object surface may cause dark spots because of the Near-Field effect of the LED.
On the mouse-pen with the LED light source, the dark spots will be more severe when the LED is closer to the object surface. The detection radiation from the light source (i.e. LED) will be not even on the object surface. Besides, the dark spots are usually located near the target position on the object surface during the image capturing, such that the inlet light intensity to the capturing component is reduced.
In summary, the optical structure in a traditional mouse-pen has an unstable radiance of the detection radiation. Therefore, a new design of a pen-shaped input apparatus is needed for corresponding to various angles between the pen-shaped input apparatus and the object surface and improving the stability of the radiance of the detection radiation.
In order to solve aforesaid problems, a pen-shaped input apparatus is disclosed in this disclosure. The pen-shaped input apparatus includes a transparent spherical portion for contacting with an object surface (e.g. desktop). The transparent spherical portion can be utilized to ensure the distance between the capturing module and the object surface, for better capturing stability. Besides, the pen-shaped input apparatus includes a plurality of light sources symmetrically disposed around an optical axis for capturing, for elevating the inlet light intensity during the optical detection.
Therefore, an aspect of the disclosure is to provide a pen-shaped input apparatus, which includes a body portion, a capturing module, a transparent spherical portion and a plurality of light sources. The body portion has a side surface. The capturing module is disposed within the body portion and adjacent to the side surface. The capturing module includes an optical sensor and a lens unit. The transparent spherical portion is disposed on the side surface. The transparent spherical, the lens unit and the optical sensor are lined on an optical axis for capturing. The light sources are located between the side surface of the body portion and the transparent spherical portion respectively. The light sources are symmetrically disposed around the optical axis for capturing.
According to an embodiment of the disclosure, the transparent spherical portion is in a hemisphere shape. The optical axis for capturing substantially penetrates a center of a circle of the transparent spherical portion. In this case, the transparent spherical portion has a spherical surface and a sectional surface. The sectional surface faces the side surface of the body portion, and the spherical surface is used for facing an object surface.
According to an embodiment of the disclosure, the transparent spherical portion includes a material selected from the group consisted of plastic, acrylic, glass and polycarbonate.
According to an embodiment of the disclosure, the light sources include a first light source and a second light source. The first light source and the second light sources are symmetrically disposed on opposite sides of the optical axis for capturing.
According to an embodiment of the disclosure, the light sources comprise a first light source, a second light source, a third light source, and a fourth light source. The first light source, the second light source, the third light source and the fourth light source are symmetrically disposed on four sides around the optical axis for capturing.
According to an embodiment of the disclosure, the light sources are symmetrically disposed to surround the optical axis for capturing.
According to an embodiment of the disclosure, the pen-shaped input apparatus further includes a light-guiding structure. The light guiding structure is disposed adjacent to the plurality of light sources. In an embodiment, the light-guiding structure includes a plurality of light-guiding rods in circular sector shape. The light-guiding rods in circular sector shape correspond to the plurality of light sources respectively. In another embodiment, the light-guiding structure includes a plurality of light-guiding rods in lateral stair shape. The light-guiding rods in lateral stair shape correspond to the light sources respectively. An inlet light direction of each of the light-guiding rods is substantially perpendicular to the optical axis for capturing. An outlet light direction of each of the light-guiding rods is substantially parallel to the optical axis for capturing.
The invention can be more fully understood by reading the following detailed description of the embodiments, with reference made to the accompanying drawings as follows:
In order to solve problems in traditional mouse-pen, e.g. unstable subject distance due to different holding gestures or unstable detection radiance due to a light source on singular side, a pen-shaped input apparatus is disclosed in this disclosure. The pen-shaped input apparatus in the disclosure includes a transparent spherical portion for contacting with an object surface (e.g. desktop). The transparent spherical portion can be utilized to ensure the distance between the capturing module and the object surface, for better capturing stability. Besides, the pen-shaped input apparatus includes a plurality of light sources symmetrically disposed around an optical axis for capturing, for elevating the inlet light intensity during the optical detection.
Please refer to
In this embodiment, the body portion 320 can be formed in a long stick shape, which can be grasped easily by users. The body portion 320 has a side surface 322. In practical applications, the side surface 322 in an outward direction facing an object surface 400. In this embodiment, the capturing module 340, transparent spherical portion 360 and the light sources 380 are disposed on the body portion 320 and located adjacent to the side surface 322 substantially.
The capturing module 340 is disposed within the body portion 320 and located adjacent to the side surface 322. As shown in the figures, the capturing module 340 includes an optical sensor 342 and a lens unit 344. The lens unit 344, located in front of the optical sensor 342, is used for gathering the inlet light toward the optical sensor 342, so as to broaden the range of sensible angle of the optical sensor 342. In practical applications, the optical sensor 342 can be a charge-coupled device (CCD) optical sensor, a complementary metal-oxide-semiconductor (CMOS) optical sensor or other equivalent optical sensors. The lens unit 344 may include a singular lens or a lens set with multiple lenses, but the invention is not limited to this.
The transparent spherical portion 360 is disposed on the side surface 322. In this embodiment, the transparent spherical portion 360 is in a hemisphere shape. The transparent spherical portion 360 has a spherical surface 362 and a sectional surface 364. The sectional surface 364 faces the side surface 322 of the body portion 320. The spherical surface 362 is used for contacting with the object surface 400 outside.
Besides, the transparent spherical portion 360 includes a material selected from the group consisted of plastic, acrylic (also called Polymethylmethacrylate, PMMA), glass and polycarbonate (PC).
In this embodiment, the transparent spherical 360, the lens unit 344 and the optical sensor 342 are substantially lined on a straight line in sequence. The straight line forms an optical axis for capturing 324 of the pen-shaped input apparatus 300. As shown in
When a user change the angle between the pen-shaped input apparatus 300 and the contacted objected surface 400, the total traveling distance of the detection radiation (which is emitted by the light source 380, reflected by the object surface 400 and collected by the capturing module 340) may remain steady without critical variation, because that the transparent spherical portion 360 in the hemisphere shape have a constant radius from the circumference to the center.
In the embodiment, the pen-shaped input apparatus 300 includes two light sources 380 disposed between the side surface 322 of the body portion 320 and the transparent spherical portion 360 respectively. In this embodiment, these two light sources 380 are symmetrically disposed on opposite sides of the optical axis for capturing 324, but the invention is not limited to this.
Utilizing the light sources 380 on both sides to project light on the object surface 400 may ensure sufficient detection radiation reflected back to the capturing module 340 by the object surface 400 no matter what angle it is of the optical axis for capturing 324 relative to the object surface 400. The optical sensor 342 of the capturing module 340 may receive the detection radiation, and the optical sensor 342 may further transmit the detected data to a process unit or a processor (no shown), so as to determine the coordinate of the position of the pen-shaped input apparatus 300.
Besides, in the embodiment of
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In the embodiment of
However, the disclosure is not limited to have a specific amount of light sources (e.g. 2, 4, or 28 light sources in
Besides, in order to make the distribution of the outlet light even, the pen-shaped input apparatus (e.g. the pen-shaped input apparatus 300-304) may further include a light-guiding structure. The light-guiding structure is disposed adjacent to aforesaid light sources.
Take the pen-shaped input apparatus 300 in
In
In another embodiment, the pen-shaped input apparatus may utilize lateral type light sources. Please refer to
In summary, the pen-shaped input apparatus in the disclosure includes a transparent spherical portion for contacting with an object surface (e.g. desktop). The transparent spherical portion can be utilized to ensure the distance between the capturing module and the object surface, for better capturing stability. Besides, the pen-shaped input apparatus includes a plurality of light sources symmetrically disposed around an optical axis for capturing, for elevating the inlet light intensity during the optical detection.
Although the present disclosure has been described in considerable detail with reference to certain embodiments thereof, other embodiments are possible. Therefore, the spirit and scope of the appended claims should not be limited to the description of the embodiments contained herein. It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present disclosure without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the present disclosure cover modifications and variations of this invention provided they fall within the scope of the following claims.