The invention relates to an apparatus for input of control signals for moving an object in three spatial directions and in three rotational directions.
In various fields such as computer-aided design (CAD) a three-directional object is moved on a display. This requires translations of the object in three spatial directions and rotations around these axes. To this end, specific input devices have been developed which provide control signals to a computational unit for representing the object. The present application is directed to an improvement of such input devices.
The German patent application DE 36 11 337 A1 describes an optoelectronic assembly which is arranged in a plastic sphere and which can simultaneously detect six components, namely translations along three axes and angular rotations around three axes. To this end, six light emitting devices are arranged in equal angular distances with respect to each other in a plane. Each light emitting device is located behind a fixedly arranged slit diaphragm. The relative movements or relative positions are detected by light-sensitive detectors which are movably arranged with respect to the assembly of light emitting devices and slit diaphragms. The detecting axis of a detector is essentially orthogonal to the slit direction.
Further documents which show the technical background of the invention are DE 10 15 87 75 A1, DE 10 15 87 76 A1, and the DE 10 15 87 77 A1.
However, applicant has found that such input devices are insufficient for moving three-directional objects on a display. For example, further inputs may be necessary which interrupt or disturb the flow of work. Such inputs are made, for example, via a keyboard or a mouse. This is particularly disturbing when the inputs have to be made frequently or require a sequence of inputs.
It is therefore the problem of the present invention to provide an apparatus for the input of control signals for moving an object in three spatial directions and three rotational directions which overcomes the disadvantages of the prior art and which provides in particular ergonomic and extended possibilities for input of a user.
According to a first aspect of the invention, this problem is solved by an apparatus according to claim 1. In one example, an apparatus is for input of control signals for moving an object in three spatial directions and three rotational directions and for connection to a computational unit with a display which represents at least partial areas of the object. The apparatus comprises a carrier element, an input element which is movable with respect to the carrier element and which is for input of the control signals, and an actuator which is arranged at the carrier element or at the input element. The actuator is designed so as to influence the representation of the size of the object on the display and/or to change the sensitivity of the input of at least one control signal.
The additional actuator enables to directly influence important parameters during moving of an object on the display, namely the size of the object and/or the sensitivity of the input of the control signals. Due to the arrangement of the actuator at the carrier element or at the input element, the actuator can be actuated with the same hand as the input element. Changing to another hand and/or to another input medium such as a mouse which disturbs or delays the flow of work is therefore not necessary.
According to a second aspect of the invention, the problem of the invention is solved by an apparatus according to claim 2. In one embodiment, an apparatus is for input of control signals for moving an object in three spatial directions and three rotational directions and for connection to a computational unit with a display which represents at least partial areas of the object. The apparatus comprises a carrier element, an input element which is movable with respect to the carrier element and which is for input of the control signals, and an actuator which is arranged at the carrier element. The actuator is designed as a rotational or translational element in order to receive further inputs of a user and extends at least partially around the input element.
Since the actuator extends at least partially around the input element, the actuator can be manipulated by the same hand which actuates the input element. For example, the input element can be actuated by a part of the heel of the hand and the actuator can be actuated by the fingertips. The actuator and the input element therefore can be actuated simultaneously which leads to a substantially faster flow of work. This is particularly advantageous for input parameters which have to be changed frequently in connection with the input of control signals by the input element.
According to a third aspect, the problem of the invention is solved by an apparatus according to claim 3. In one embodiment, an apparatus is for input of control signals and for moving an object in three spatial directions and three rotational directions and for connection to a computational unit with a display which represents at least partial areas of the object. This apparatus comprises a carrier element, an input element which is movable with respect to the carrier element and which is for input of the control signals, and an actuator which is designed as a rotational or translational element. The actuator is arranged at the input element.
In contrast to the previous embodiments wherein the actuator is arranged at the carrier element, in this case the actuator is arranged at the input element. Also this arrangement enables to actuate the actuator and the input element simultaneously.
It is a common feature of all three solutions that they enable more economic and extended possibilities for inputs of a user compared to the solutions known from the prior art by an actuator which is arranged at the input element or at the carrier element.
In a preferred embodiment, the actuator is designed as a rotational element which is rotatably arranged around the input element. The embodiment as a rotational element is particularly advantageous in order to quickly pass through a large range of values, as well as to select a value from a continuous range of values.
It is further preferred that the actuator encompasses the input element in a circle. Due to the circular shape, the hand of the user can grip the actuator at any position and does not have to search for a preferred grip position.
It is further preferred that the grip surface of the actuator is curved in a direction orthogonal to the rotational direction. The actuator therefore adjusts to the position and the direction of the fingertips and provides a convenient resting surface. The actuator can therefore be gripped and moved particularly well.
In a further embodiment, the actuator input is a selection from a display of a carrier. This enables further input possibilities by the apparatus as an alternative to conventional inputs via a mouse and a display of the computational unit. For example, in this way a parameter can be selected whose value is then input by the actuator.
It is further preferred that the actuator input modifies the sensitivity of the input of control signals. The sensitivity is closely connected with the input of the control signals themselves and therefore can be advantageously modified by the apparatus with the same hand so that no interruption of the flow of work by changing to another input medium is necessary.
In a further embodiment, the carrier element comprises keys for additional inputs of a user, wherein a lighting of the keys depends on a selectable function of the apparatus. Also this alternative extends the input possibilities by the apparatus, for example for particularly frequently required functions, without repeatedly having to repeat a selection in menus.
In a preferred embodiment, the input element is arranged on a printed circuit board of the carrier element. This enables a particularly easy mounting of the input element and therefore provides a simple possibility for detecting the movements of the actuator. It is further preferred that the movement of the actuator is detected by a light barrier or a photo sensor. The movement therefore can be detected without contact so that the measuring device is not subject to wear.
In a further embodiment a covering plate of the carrier element comprises a preferably circular recess which extends through a part of the input element. This enables an advantageous mounting of the input element on the printed circuit board of the apparatus, as explained above. Preferably, the actuator is arranged at the boundary of this recess so that it is located in the direct proximity of the input element and can be actuated with the fingertips of the hand which actuates the input element.
Preferably, the input element comprises exchangeable caps so that the user can select a particularly suitable shape.
In a further embodiment the control signals are for moving of an object in less than three spatial directions and/or less than three rotational directions. In this way, the input element can be adapted to a desired functionality for moving of two- and three-dimensional objects on a display, for example exclusively for the input of rotations of an object or for moving an object in a plane and rotations of the object around an axis orthogonal to this plane.
Further preferred embodiments are described in further dependent patent claims.
In the following detailed description, currently preferred embodiments of the invention are described with respect to the following figures:
In the following, currently preferred embodiments of the present invention are described with respect to an apparatus for input of control signals for moving an object on a display. However, it should be understood that the invention may be used in other fields, for example for input of control signals for remote control of an object or for the input of forces and positions for control purposes.
As can be recognized in
Actuator 6 is arranged in the area of the covering plate 4 and is for detecting of further inputs of a user. A display area 7 with a display 71 is arranged beside the covering plate 4. In further embodiments which are not illustrated, display 71 is arranged in the area of the hand rest 3 or the covering plate 4.
In the embodiment illustrated in
It is particularly preferred that the actuator 6 has a circular shape so that the hand does not have to search for a particular grip position in order to grip the actuator 6. Gripping the actuator is further supported by a convex curvature of the surface of actuator 6 orthogonal to a movement direction of actuator 6 which can also be recognized in
In a further embodiment which is also not illustrated, the actuator 6 for detecting inputs of a user is arranged at other locations of the 3D sensor. For example, the actuator 6 can be arranged at the surface of the input element 5. Such an actuator can be designed as a turning knob whose rotational axis extends essentially in a radial direction of input element 5 or along a symmetry axis of input element 5. Alternatively, the rotational axis may extend parallel to the surface of the input element 5 wherein the rotational axis is turned by a finger, similar to a computer mouse with a turning knob. In a further variant, the actuator 6 is designed as a slide on the surface of input element 5.
In further embodiments which are not illustrated, one or more actuators for detecting inputs are arranged on cover plate 4 or in display area 7 and are respectively designed as a turning knob with different radii and different rotational axes (orthogonal, tilted, or parallel to the surface of cover plate 4 or display area 7), or as slides.
In the embodiment of
In a preferred embodiment, the input by actuator 6 concerns the sensitivity for the input of movements of the input element 5. This sensitivity is closely connected to the input of the control signals and may be advantageously performed by the 3D sensor itself using the same hand, without requiring an interrupt of the flow of work. The selected sensitivity may concern all control signals or only a part of the control signals. Also in this embodiment, actuator 6 may be arranged, as described above, in locations other than illustrated in
In further variants, the step size of the movement of actuator 6 can be modified, or the movement can be switched to a continuous movement. In further embodiments, the step size is associated with a respective function of the actuator, as described above.
In an embodiment, the 3D sensor can be switched over so that the control signals generated by the input element can be used for moving an object in less than three spatial directions and/or less than three rotational directions. In this way, the input element can be switched over to a respectively desired functionality when moving two- and three-directional objects on a display. For example, the 3D sensor could exclusively be used for input of rotations of an object. Another example is moving of an object in a plane and rotating it around an axis orthogonal to this plane. To this end, one or more switch buttons could be provided, for example a button “2D/3D” 44, as illustrated in
In a further embodiment, the inputs of the 3D sensor are directly delivered to a computer where they are processed by a corresponding device driver. The processed data may then be sent, for example for display on a display 71, to the 3D sensor. This has the advantage that the processing unit of the 3D sensor may be simple and that necessary adjustments of the device driver 3D sensor can be made at any time on the connected computer.
Alternatively, the generated control signals may be directly processed in a processing unit of the 3D sensor. Such a 3D sensor has the advantage that it is independent of a particular computing environment.
The cross-section of
Number | Date | Country | Kind |
---|---|---|---|
10 2008 019 144.2 | Apr 2008 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP2009/002802 | 4/16/2009 | WO | 00 | 11/30/2010 |