This application claims benefit of the Japanese Patent Application No. 2007-021332 filed on Jan. 31, 2007, which is hereby incorporated by reference.
1. Field of the Invention
The present invention relates to a capacitive motion detection device detecting, by the use of capacitances, the motions of an object to be detected in an area to be operated and an input device using the same.
2. Description of the Related Art
Methods for detecting the motions of an object to be detected, such as a human body, include, for example, a method for detecting the motions of a person by capturing the images of the person and outputting the motions to a control unit in a personal computer (PC), using at least one camera and an image processing unit (for example, Japanese Unexamined Patent Application Publication No. 2001-87549). Moreover, the methods include a method for outputting the motions to a control unit in a PC by embedding, for example, an acceleration sensor in a device and moving the device in specific directions.
However, in the method, in which a camera and image processing are used, the costs of hardware, software, and the like are high, and the space in which the method is used is limited because a specific space for capturing camera images needs to be prepared in advance. Moreover, in the method, in which an acceleration sensor is used, the hardware needs to be directly moved. When the hardware main body is moved, the device may be affected by vibrations. Moreover, even when a small input device in which an acceleration sensor is embedded is used, the small input device needs to be held in hand and operated.
In view of the aforementioned problems, the present invention provides a capacitive motion detection device and an input device using the same. The capacitive motion detection device has a simple configuration, has few limitations regarding the operating environment, does not affect a device due to vibrations, and need not include a specific input device.
A capacitive motion detection device according to a first aspect of the present invention includes two or more detection electrode/drive electrode pairs in each of which a capacitance is formed between a detection electrode and a drive electrode, the detection electrode/drive electrode pairs being provided at individual direction detection positions for an area to be operated, the area being operable from two or more directions, motion detecting means for performing motion detection of an object to be detected in the area to be operated from a variation in a capacitance obtained in each of the detection electrode/drive electrode pairs, and switching means for switching a mode to a mode of the motion detection.
In this arrangement, since the motions of an object to be detected in an area to be operated are detected on the basis of a capacitance obtained in each of the two or more detection electrode/drive electrode pairs, a capacitive motion detection device that has a simple configuration, has few limitations regarding the operating environment, is not likely to affect a device due to vibrations, and need not include a specific input device can be implemented.
In the capacitive motion detection device according to the first aspect of the present invention, the switching means is preferably a capacitive sensor, and when a variation in a capacitance detected by the capacitive sensor is less than a predetermined threshold value, the mode is preferably switched to the mode of the motion detection. In this case, it is preferable that the capacitive sensor also function as a position input device.
In the capacitive motion detection device according to the first aspect of the present invention, the switching means is preferably a changeover switch, and when the changeover switch has been operated or when the changeover switch is being operated, the mode is preferably switched to the mode of the motion detection.
An input device according to a second aspect of the present invention includes a device main body that includes the aforementioned capacitive motion detection device, and control means for operating the device main body on the basis of detection of a motion of the object to be detected, the detection being performed by the capacitive motion detection device, the control means being included in the device main body.
An embodiment of the present invention will now be described in detail with reference to the attached drawings.
When the position of an object to be detected, for example, a human body, is detected using capacitances, an arrangement in which a drive electrode 21 is disposed at the center, and detection electrodes 22a and 22b are disposed on the both sides of the drive electrode 21, as shown in
When it is difficult to dispose an electrode at the center of the monitor 13, as is the case with the notebook PC 1, the position of the hand 2 can be detected by adopting an arrangement of electrodes shown in
While, in the embodiment, the drive electrodes 12a and 12d are separately disposed on the upper and lower sides, and the detection electrodes 12b and 12c are disposed on the right and left sides, for example, the number of electrodes and the arrangement of electrodes are not limited as long as detection electrodes and drive electrodes are disposed at positions where an object to be detected in the area to be operated can be detected (as long as detection electrode/drive electrode pairs exist).
The motions of the hand 2 in the area to be operated can be detected from a capacitance obtained in each of the detection electrode/drive electrode pairs. Capacitances are always formed between the detection electrodes 12b and 12c and the drive electrodes 12a and 12d. In this case, a capacitance Cx1 is formed between the detection electrode 12b and the drive electrodes 12a and 12d, and a capacitance Cx2 is formed between the detection electrode 12c and the drive electrodes 12a and 12d. In such an arrangement, when the hand 2 moves in the right or left direction of the X-axis direction (the horizontal direction), the capacitances Cx1 and Cx2 change due to capacitances formed with the hand 2. For example, when the hand 2 moves in the right direction, the capacitance Cx1 increases, and the capacitance Cx2 decreases. Thus, the motions of the hand 2 in the X-axis direction (the horizontal direction) can be detected by obtaining the difference between the capacitances Cx1 and Cx2 (Cx1−Cx2), as shown in
Moreover, the motions of the hand 2 in the Y-axis direction (the vertical direction) can be detected by setting the electrodes 12a and 12d disposed on the upper and lower sides of the monitor 13 as detection electrodes, setting the electrodes 12b and 12c disposed on the right and left sides of the monitor 13 as drive electrodes, and using a detection method that is similar to that described above. Moreover, the motions of the hand 2 in the Z-axis direction (the depth direction) can be detected by setting one of the electrodes 12a, 12b, 12c, and 12d around the monitor 13 and the electrodes 12e and 12f near the keyboard 15 and the glidepoint 14 as detection electrodes and setting an electrode near the center among the determined detection electrodes as a drive electrode, for example, setting the electrodes 12a and 12f as detection electrodes and setting the electrode 12d as a drive electrode. In this manner, the motions of the hand 2 in the three axis directions can be detected.
The notebook PC 1 serving as an input device includes a device main body 11 and a control unit that is included in the device main body 11 and operates the device main body 11 on the basis of motion detection. The device main body 11 includes detection electrode/drive electrode pairs described above and a motion detection circuit that detects the motions of an object to be detected in the area to be operated from a variation in a capacitance obtained in each of the detection electrode/drive electrode pairs.
In the notebook PC 1 including a capacitive motion detection device according to the present invention, it is expected that, when the keyboard 15 is being operated, the hand 2 will be close to the capacitive motion detection device, and thus an input operation on the keyboard 15 may be detected as a motion. Thus, in the present invention, assuming that a keyboard input operation and a motion input operation are seldom performed at the same time, an arrangement that switches between a mode in which a user (an operator) intentionally performs a motion input operation and a mode (a normal mode) in which the user performs an input operation (in this case, a keyboard input operation) other than a motion input operation is adopted. That is, the capacitive motion detection device includes a switching unit that switches the mode to the motion detection mode.
Regarding the switching unit, for example, keyboard input detection, using a separate capacitive sensor or diverting an existing capacitive sensor, may be provided to detect a keyboard input operation, and when a capacitance detected by the capacitive sensor is less than a predetermined threshold value, the mode may be switched to the motion detection mode. Alternatively, a changeover switch may be provided, and when the changeover switch has been operated or when the changeover switch is being operated, the mode may be switched to the motion detection mode.
In a case where the mode is switched to the motion detection (motion input operation) mode, using a capacitive sensor, switching is performed, as shown in
In a case where the mode is switched to the motion detection (motion input operation) mode, using a changeover switch, switching is performed, as shown in
In this case, the position, size, and shape of the changeover switch 31 are not limited to those shown in
A case has been described where an area in front of the monitor 13 is set as an area to be operated serving as the detection reference for the hand 2, which is an object to be detected. Alternatively, an area above the keyboard 15 may be set as an area to be operated serving as the detection reference for the hand 2, which is an object to be detected, the horizontal direction of the keyboard area may be set as the X-axis, the vertical direction of the keyboard area may be set as the Y-axis, and the depth direction of the keyboard area may be set as the Z-axis, as shown in
Moreover, an electrode 33 may be provided in the monitor 13 so as to constitute detection electrodes and drive electrodes, as shown in
In the small electrode unit 34 shown in
Even in a case where the small electrode unit 34 shown in
In a case where the mode is switched to the motion detection (motion input operation) mode, using a capacitive sensor, switching is performed, as shown in
Moreover, in a case where the mode is switched to the motion detection (motion input operation) mode, using a changeover switch, switching is performed, as shown in
In this case, the position, size, and shape of the changeover switch 31 are not limited to those shown in
The electrode unit 34 may be provided on both sides of the glidepoint 14, as shown in
As described above, according to the embodiment, since the motions of an object to be detected in an area to be operated are detected on the basis of a capacitance obtained in each of the two or more detection electrode/drive electrode pairs, a capacitive motion detection device that has a simple configuration, has few limitations regarding the operating environment, is not likely to affect a device due to vibrations, and need not include a specific input device can be implemented. In an input device that includes such a capacitive motion detection device, various types of operations, for example, changing the hierarchical level of a page of an application, turning pages, scrolling a screen, and operating a specific part, can be performed by capacitive motion detection.
The present invention is not limited to the aforementioned embodiment and may be changed in various forms. For example, right or left, upper or lower, front or back, and the number, positions, sizes, and shapes of members in the aforementioned embodiment may be fitly changed. Moreover, since the device main body includes a capacitive sensor, the function may be used as a function of detecting the approach of a person. For example, an arrangement may be adopted in which it is determined whether a person is approaching a device that includes the capacitive motion detection device, and when a person is moving away from the device, the mode is automatically changed to a power saving mode; when a person is approaching the device, the power saving mode is automatically cancelled. Moreover, changes may be fitly made in the present invention without departing from the scope of the present invention.
Number | Date | Country | Kind |
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2007-21332 | Jan 2007 | JP | national |
Number | Date | Country | |
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Parent | PCT/JP2008/051321 | Jan 2008 | US |
Child | 12511981 | US |