The emergence and popularity of mobile computing has made portable computing devices, due to their compact design and light weight, a staple in today's marketplace. Computing devices, such as notebook computers and tablet computers, generally include a display member that is utilized to provide a viewable display to a user. The viewable display may be a touchscreen, allowing the user to interact directly with what is displayed by touching the screen with simple or multi-touch gestures. As an example, an input device, such as a digital pen, may be used with the computing device, to capture handwriting or brush strokes of a user. The computing device may convert handwritten analog information, provided by the digital pen, into digital data, enabling the data to be utilized in various applications on the computing device.
Examples disclosed herein provide a digital pen with pressure-sensing material that is used to determine when a user is likely using the digital pen with a computing device and/or a tilt angle of the digital pen with respect to the computing device. As will be further described, the pressure-sensing material may include an array of force sensors, or a contiguous surface of such sensors, that provides a high degree of granularity for determining when the digital pen is being used and its tilt angle. The high degree of granularity provided by the pressure-sensing material may allow for usage of the digital pen to be detected even when a low pressure is applied at the tip of the digital pen (e.g., less than 1 gram). As the pressure-sensing material may be used as a single sensor subsystem for detecting both pressure and tilt, cost of manufacturing may be lowered since separate sensors are not required for detecting pressure and tilt. In addition, the pressure-sensing material may provide flexibility in the design and materials used in the body of the digital pen.
As an example, the user is likely using the digital pen when a sufficient force is applied at a tip of the digital pen that, as will be further described, is then translated to the pressure-sensing material via an assembly of the digital pen. By using the pressure-sensing material, the initial starting pressure required to be applied at the tip for detecting when the user is writing may be low, as described above. In addition to detecting the pressure applied at the tip, the pressure-sensing material may be use for tilt detection. For example, upon using the pressure-sensing material to detect the tilt angle, or incident angle of the digital pen upon a touch-sensitive surface of the computing device, the digital pen can be used for artistic effect on the touch-sensitive surface, or for power management, as examples. With regards to artistic effect, the tilt angle may be used to emulate the width of a brush. In addition to modifying input provided by the digital pen, the tilt angle may be used for power management purposes. For example, if the tilt angle is below a threshold amount, suggesting that the digital pen may be lying flat on the touch sensitive surface of the computing device, the touchscreen of the computing device may revert to a touch mode, and not an active pen mode, thereby conserving power. In addition to the computing device conserving power, the digital pen may also conserve power by turning off a transmitter of the digital pen when the tilt angle between the digital pen and the writing surface of the computing device is below a threshold amount.
With reference to the figures,
The structure including the tip 104, shaft 108, and structure 106 may be a single part or separated into multiple parts. For example, referring to
Referring to
The density of the force sensors 116 may vary as well, where a greater amount of force sensors 116 across the pressure-sensing material 114 may provide a higher degree of accuracy when determining the pressure and tilt angle of the digital pen 100. For example, one force sensor 116 may be provided every square millimeter, or 500 force sensors 116 every square inch. As will be further described, as the digital pen 100 is tilted with respect to the computing device, a set of force sensors 116 from the array may receiving greater pressure from the structure 106 compared to other force sensors 116 from the array. The location of this set of force sensors 116 along the pressure-sensing material 114 may be used to detect the tilt angle of the digital pen 100 with respect to the computing device. Referring to the figures, the structure 106 may be a ball, and the pressure-sensing material 114 with the array of force sensors 116 may be disposed in a concave socket 118 to accommodate the ball. However, the shape of the structure 106 and corresponding interaction with the pressure-sensing material 114 may vary. For example, the pressure-sensing material 114 can be formed into a 3D shape to accommodate the structure 106 moving along it, according to how a user is writing with the digital pen 100, as will be further described.
As an example, the concave socket 118 may be part of or coupled to a flexible printed circuit (FPC) 120. The FPC 120 may then be connected to a circuit board 124 of the digital pen 100 at 126. Information collected from the pressure-sensing material 114 may be transmitted to the circuit board 124 via the FPC 120. As will be further described, the digital pen 100 may be in wireless communication with the computing device, for example, via a wireless transceiver. The wireless transceiver may then transmit the information collected from the pressure-sensing material 114 to the computing device. For example, an application running on the computing device may determine whether the artistic effect described above should be applied, based on the tilt angle of the digital pen 100 with respect to the computing device.
Referring to the following figures, while the digital pen 100 is being used with a computing device, a location of the force sensors 116 from the array that is to receive the greatest pressure or force from the structure 106 may be used to determine the tilt angle of the digital pen 100 with respect to the computing device. With the number of force sensors 116 provided on the pressure-sensing material 114, the pressure-sensing material 114 can sense many points in an XY field. As described above, each point, or force sensor 116, can sense pressure, and based on the location of the point receiving the greatest pressure, the pressure-sensing material 114 will know where the highest pressure is occurring. As an example, the following formula may be used to determine the tilt angle:
where r is the radius of the structure 106 and L is the radial distance between a center point of the socket 118, where the pressure-sensing material 114 is disposed, and the location of the force sensors 116 in the socket 118 that is receiving the greatest pressure or force from the structure 106. As mentioned above, the pivot point 112 may transfer or translate the force to be applied at the tip 104 to a reactionary force at the structure 106 to be applied to the pressure-sensing material 114. As the location of the force sensors 116 from the array that is to receive the reactionary force is to change, the tilt angle of the digital pen 100 with respect to the computing device is to change as well. As will be further described, while force is to be applied at the tip 104, the pivot point 112 is to cause the structure 106 to move along the pressure-sensing material 114 according to a tilt of the digital pen 100 with respect to the computing device.
Referring to
In addition to determining the tilt angle, the pressure-sensing material 114 may determine when the user is likely intending to write with the digital pen. As mentioned above, the force sensors 116 may have a high degree of sensitivity and a high dynamic range, where the array of force sensors 116 may be able to detect anything from a feather-light tap to a hard push. As a result, the sensitivity of the digital pen 100 for determining when the user is intending to write may be controlled by implementing a threshold. For example, when the reactionary force 204 the structure 106 is to apply on the pressure-sensing material 114 is above the threshold value, the digital pen 100 may enter a writing mode. In addition, the pressure-sensing material 114 may detect how hard the user is writing with the digital pen 100 according to a magnitude of the reactionary force 204 the force sensors 116 from the array is to receive from the structure 106.
Referring to
Referring to
As used herein, a circuit board refers to a board that mechanically supports and electrically connects electronic components using conductive tracks, pads and/or other features. For instance, circuit board 124 may include copper tracks and conductive surfaces attached to a substrate. Various electrical components, such as capacitors and resistors, may be soldered to circuit board 124. As mentioned, circuit board 124 may be used to activate and deactivate elements of the circuit board 124, such as the wireless transceiver 504. As shown in
Digital pen 500 may further include a processor 502. Processor 502 may be a hardware processor such as a central processing unit (CPU), a semiconductor based microprocessor, and/or other hardware devices suitable for retrieval, reception, and/or execution of instructions. In some examples, processor 502 may be coupled to circuit board 124. In such examples, processor 502 may be activated upon activation of circuit board 124. As an example, upon the pressure-sensing material 114 detecting a tilt angle of the digital pen 500 with respect to the computing device, as described above, the processor 502 may wirelessly transmit this information to the computing device, where an application running on the computing device may determine whether any artistic effect should be applied to the input the user is providing via the digital pen 500 on the touchscreen surface of the computing device. For example, if the digital pen 500 is being used as a pencil, if the tilt angle of the digital pen 500 with respect to the computing device exceeds a threshold, the input may be processed differently (e.g., entered as sketching input).
It is appreciated that examples described may include various components and features. It is also appreciated that numerous specific details are set forth to provide a thorough understanding of the examples. However, it is appreciated that the examples may be practiced without limitations to these specific details. In other instances, well known methods and structures may not be described in detail to avoid unnecessarily obscuring the description of the examples. Also, the examples may be used in combination with each other.
Reference in the specification to “an example” or similar language means that a particular feature, structure, or characteristic described in connection with the example is included in at least one example, but not necessarily in other examples. The various instances of the phrase “in one example” or similar phrases in various places in the specification are not necessarily all referring to the same example.
It is appreciated that the previous description of the disclosed examples is provided to enable any person skilled in the art to make or use the present disclosure. Various modifications to these examples will be readily apparent to those skilled in the art, and the generic principles defined herein may be applied to other examples without departing from the spirit or scope of the disclosure. Thus, the present disclosure is not intended to be limited to the examples shown herein but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.
Filing Document | Filing Date | Country | Kind |
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PCT/US2017/040333 | 6/30/2017 | WO | 00 |