Tactile switch for an electronic device

Information

  • Patent Grant
  • 10962930
  • Patent Number
    10,962,930
  • Date Filed
    Friday, June 26, 2020
    4 years ago
  • Date Issued
    Tuesday, March 30, 2021
    3 years ago
Abstract
An electronic watch may include a tactile switch and/or one or more sensors for detecting rotational and translational inputs. The watch may include a display configured to produce graphical outputs that may change in response to rotational inputs, translational inputs, and/or touch inputs received at the display. The watch include a crown positioned along an exterior of the watch enclosure and a shaft coupled to the crown and extending into the enclosure. The tactile switch and/or the one or more sensors may be used to detect rotational and/or translational inputs provided at the crown.
Description
TECHNICAL FIELD

The present disclosure relates generally to electronic devices, and more specifically, to input devices for computing devices.


BACKGROUND

Many types of electronic devices, such as smart phones, gaming devices, computers, watches, and the like, use input devices, such as buttons or switches, to receive user input. However, many input devices, such as buttons or switches, may allow only a single type of input. For example, a button may only transmit one type of signal, which is a compression of a button that completes a circuit. As electronic devices reduce in size, it may be desirable to have fewer input buttons or devices, without reducing functionality or the number of input types that can be used by a user to provide information to a device. Further, in instances where the button or switch may be movable or rotatable, the button may not be able to include a sensor or other electronic element that requires data and/or power to be transferred between the button and one or more components of the electronic device, as the movement may make an electrical connection difficult.


SUMMARY

One example of the present disclosure takes the form of an input module. The input module includes a switch, a rotatable and translatable input member operably connected to the switch and configured to actuate the switch, and an electrical contact operably connected to the switch and in electrical communication with the input member. During operation, the electrical connection between the input member and the electrical contact is maintained during translation and rotation of the input member. The input module may be used with a variety of electronic devices and can be used by a user to provide input to those devices.


Another example of the disclosure takes the form of a switch assembly. The switch assembly includes a rotatable and translatable input member, a coupling operable connected to the input member and moveable therewith, a tactile switch operably connected to the coupling, and an electrical contact operably connected to the tactile switch and in electrical communication with the coupling. The input member is configured to actuate the electrical component when the input member translates, and the coupling rotates as the input member rotates. Additionally, the electrical connection between the coupling and the electrical contact is maintained during translation and rotation of the input member.


Yet another example of the disclosure includes a wearable electronic device. The wearable electronic device includes an enclosure defining a cavity and a button aperture defined through the enclosure. The wearable electronic device also includes one or more processing elements received within the cavity, and a switch module operably connected to the enclosure. The switch module includes a tactile switch in communication with the processing element, a rotatable and translatable input member operably connected to the tactile switch, and a contact operably connected to the tactile switch and electrically coupled to the input member. During operation, the electrical coupling between the input member and the contact is maintained during translation and rotation of the input member.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 is a top plan view of a wearable electronic device including a multi-input device.



FIG. 2 is a simplified block diagram of the wearable electronic device.



FIG. 3 is a cross-section view of the wearable electronic device taken along line 3-3 in FIG. 1.



FIG. 4 is a cross-section view similar to FIG. 3 showing a user input force being applied to a button of a tactile switch assembly for the electronic device.



FIG. 5 is a front elevation view of another example of a tactile switch that may be used with the tactile switch assembly of FIG. 4.



FIG. 6 is a top plan view of the tactile switch of FIG. 5.



FIG. 7 is a bottom plan view of the tactile switch of FIG. 5.



FIG. 8 is a front elevation view of the tactile switch of FIG. 5 as a translating force is applied thereto.



FIG. 9 is a front elevation view of the tactile switch of FIG. 5 as a rotating force is applied thereto.



FIG. 10 is a front elevation view of yet another example of a tactile switch that can be used with the tactile switch assembly of FIG. 4.



FIG. 11 is a top plan view of the tactile switch of FIG. 10.



FIG. 12 is a bottom plan view of the tactile switch of FIG. 10.





DETAILED DESCRIPTION

Overview


Some embodiments of the present disclosure include a tactile switch assembly. The tactile switch assembly may be implemented in a number of electronic devices. In some embodiments, the tactile switch assembly may be incorporated into a portable electronic device such as a wearable electronic device, laptop computer, tablet, or the like. The wearable electronic device may be a watch, portable music player, computing or gaming device, smart phone, or the like. In some embodiments, the wearable electronic device is a watch that can be worn around the wrist of a user. In these embodiments, the tactile switch assembly may include a button that forms a crown for the watch and is connected to a sidewall of an enclosure for the device.


The tactile switch assembly includes a tactile switch, a user input member, and a shear plate or an electrical contact. The user input member, which may be a button, switch, flange, or the like, can provide a first type of input to the tactile switch by mechanically activating the switch. For example, the tactile switch may include a dome that compresses due to a translating user force to the input button and, upon compression, the tactile switch creates a signal indicating the user input. In this example, the compression of the dome may also provide feedback to a user, e.g., tactile feedback.


The shear plate may electrically connect the tactile switch and the user input button so that electrical signals are transmittable between the tactile switch and the user input button and/or between the tactile switch and one or more electrical components (e.g., sensors) on the user input button. In other embodiments, electrical signals, power and the like may be routed between the switch and button by a flex, wire, trace or other electrical element that is attached to the shear plate and button. The shear plate also acts to prevent shear forces from being transmitted to the tactile switch, preventing the tactile switch from being damaged. The user input button may also provide a second type of input to the tactile switch assembly. For example, the user input member may be rotatable relative to the tactile switch. Continuing with this example, the shear plate may be positioned between the tactile switch and the user input button, allowing the user input member to remain in communication with the shear plate even as the user input member is rotated relative thereto. For example, the shear plate may include a brush contact that maintains an electrical connection with the user input member as the user input button is rotated.


In some embodiments the tactile switch assembly may be used as a physiologic sensor and/or may be used in connection with a biometric sensor, although it should be appreciated that the sensor may be omitted from certain embodiments. In a specific embodiment, the wearable electronic device may be used to measure electrical parameters of a user's body, such as heart rate, electrical activity of the heart, and so on. As one example, the tactile switch assembly may be used to capture a user's electrocardiography. In this example, the wearable device may include a first user contact location and the user input button may form a second user contact location when touched by a user. In this embodiment, the two contacts may create an electrical path between the user and the device that allows the device to sense the user's heart rate. In these embodiments, either a contact on the shear plate may be conductive and/or the tactile switch itself may include a conductive nub or contact point for interacting with the button. These embodiments allow the tactile switch to be electrically connected to one or more elements within the housing.


In some embodiments, the tactile switch assembly may also include one or more sensing elements and/or input/output elements on, or incorporated into, the user input button. Because the communicating component electrically connects the user input button to one or more internal components of the wearable device, the sensors and/or other electronic components on the user input button may be in communication with the shear plate and signals from the sensors and/or other components may be transmitted from the user input button via an electrical contact on the shear plate to one or more processing elements. In some embodiments, a wire, flex, trace or other electrical element may electrically connect the shear plate and input/output element, such as the user input button.


The tactile switch assembly may be configured to receive multiple types of user inputs, such as, but not limited to, rotational inputs, translating inputs, and/or electrical inputs. For example, in one embodiment, the tactile switch assembly may include the shear plate and may be configured to receive rotational inputs, as well as translating inputs, without damaging the tactile switch. Additionally or alternatively, the tactile switch assembly may be in electrical communication with one or more components within the electronic device, even as the input member is moved (e.g., translated and/or rotated). In these examples, if rotational input is not desired or if the rotational input will be limited, the shear plate may be omitted and the tactile switch itself may include a conductive contact, such as an electrically conductive nub.


Turning now to the figures, an illustrative wearable electronic device will now be discussed in more detail. FIG. 1 is a top plan view of a wearable electronic device. FIG. 2 is a simplified block diagram of the wearable electronic device of FIG. 1. With reference to FIGS. 1 and 2, the wearable electronic device 100 may include a hub 102 or computing center. In embodiments where the electronic device 100 is configured to be worn by a user, the device 100 may include one or more straps 104, 106 that may connect to opposite sides of the hub 102. Each of the straps 104, 106 may wrap around a portion of a wrist, arm, leg, chest, or other portion of a user's body to secure the hub 102 to the user. For example, the ends of each of the straps 104, 106 may be connected together by a fastening mechanism 108. The fastening mechanism 108 can be substantially any type of fastening device, such as, but not limited, to, hook and loop, magnetic fasteners, snaps, buttons, clasps or the like. However, in one embodiment, such as the one shown in FIG. 1, the fastening mechanism 108 is a buckle including a prong 134 or element that can be inserted into one or more apertures 112 in the second strap 106 to secure the first and second straps 104, 106 together.


The hub 102 of the wearable electronic device generally contains the computing and processing elements of the wearable electronic device 100. FIG. 3 is a partial cross-section view of the hub 102 taken along line 3-3 in FIG. 1. With reference to FIGS. 1-3, the hub 102 may include a display 116 at least partially surrounded by an enclosure 114. In some embodiments, the display 116 may form a face of the hub 102 and the enclosure 114 may wrap around the edges and backside of the display 116. Additionally, the internal components of the wearable device 100 may be contained within the enclosure 114 between the display 116 and the enclosure 114. The enclosure 114 protects the internal components of the hub 102, as well as connects the display 116 to the hub 102.


The enclosure 114 may be constructed out of a variety of materials, such as, but not limited to, plastics, metals, alloys, and so on. The enclosure 114 includes a button aperture 172 (see FIG. 3) to receive the tactile switch assembly 110 or a portion thereof. The button aperture 172 forms a channel within a sidewall 188 of the enclosure 114 and extends from an outer surface 188 of the enclosure 114 to an interior surface 190. The button aperture 172 generally is configured to correspond to a button of the tactile switch assembly 110. That said, the button aperture 172 may be otherwise shaped and sized.


With reference to FIG. 3, in some embodiments, the enclosure 114 may include a sleeve 220 lining the button aperture 172. In these embodiments, the button and/or other portions of the tactile switch assembly may be received into the sleeve 220, which connects the tactile switch assembly 110 to the enclosure 114. The sleeve 220 may act to help seal the cavity 139 of the enclosure 114, as well as help to secure one or more components of the tactile switch assembly to the enclosure. In some embodiments the sleeve 220 may be an insulating material and may insulate the tactile switch or portions thereof, such as the head and coupling, from the enclosure. As will be discussed in more detail below, this may allow the tactile switch assembly to measure one or more characteristics of a user's body, such as a user's heart rate.


The enclosure 114 may also include a groove 186 defined on a top surface to receive the display 116. With reference to FIGS. 1 and 3, the display 116 may be connected to the enclosure 114 through adhesive or other fastening mechanisms. In this example, the display is seated within a recessed portion or groove of the enclosure and the enclosure wraps around the edges of the display. However, in other embodiments, the display and enclosure may be otherwise connected together.


The display 116 may be substantially any type of display screen or device that can provide a visual output for the wearable device 100. As an example, the display 116 may be a liquid crystal display, a light emitting diode display, or the like. Additionally, the display 116 may also be configured to receive a user input, such as a multi-touch display screen that receives user inputs through capacitive sensing elements. In many embodiments, the display 116 may be dynamically variable; however, in other embodiments, the display 116 may be a non-electronic component, such as a painted faceplate, that may not dynamically change.


The display 116 includes a plurality of icons 118, 120 or other graphics that are selectively modifiable. As an example, a first graphic 118 may include a time graphic that changes its characters to represent the time changes, e.g., numbers to represent hours, minutes, and seconds. A second graphic 120 may include a notification graphic, such as, battery life, messages received, or the like. The two graphics 118, 120 may be positioned substantially anywhere on the display 116 and may be varied as desired. Additionally, the number, size, shape, and other characteristics of the graphics 118, 120 may be changed as well.


The tactile switch assembly 110 is operably connected to the enclosure 114. The tactile switch assembly 110 will be discussed in more detail below, but generally allows a user to provide input to the wearable electronic device 100, as well can provide haptic feedback to a user.


With reference to FIG. 2, the wearable electronic device includes a plurality of processing or computing elements. For example, the wearable electronic device 100 may include a power source 122, one or more processing elements 124, a memory component 128, one or more optional sensors 126, and an input/output component 130. Each of the internal components may be received within the enclosure 114 and may be in communication through one or more systems buses 132, traces, printed circuit boards, or other communication mechanisms.


The power source 122 provides power to the hub 102 and other components of the wearable device 100. The power source 122 may be a battery or other portable power element. Additionally, the power source 122 may be rechargeable or replaceable.


The processing element 124 or processor is substantially any type of device that can receive and execute instructions. For example, the processing element 124 may be a processor, microcomputer, or the like. Additionally, the processing element 124 may include one or more processors and in some embodiments may include multiple processing elements.


The one or more sensors 126 may be configured to sense a number of different parameters or characteristics that may be used to influence one or more operations of the wearable electronic device 100. For example, the sensors 126 may include accelerometers, gyroscopes, capacitive sensors, light sensors, image sensors, pressure or force sensors, or the like. As will be discussed in more detail below, one or more of the sensors 126 may be used in conjunction with the tactile switch assembly 110 or separate therefrom, to provide user input to the hub 102. Certain embodiments may omit the sensor or sensors 126.


With continued reference to FIG. 2, the memory component 128 stores electronic data that may be utilized by the wearable device 100. For example, the memory component 128 may store electrical data or content e.g., audio files, video files, document files, and so on, corresponding to various applications. The memory 128 may be, for example, non-volatile storage, a magnetic storage medium, optical storage medium, magneto-optical storage medium, read only memory, random access memory, erasable programmable memory, or flash memory.


The input/output interface 130 may receive data from a user or one or more other electronic devices. Additionally, the input/output interface 130 may facilitate transmission of data to a user or to other electronic devices. For example, the input/output interface 130 may be used to receive data from a network, or may be used to send and transmit electronic signals via a wireless or wired connection (Internet, WiFi, Bluetooth, and Ethernet being a few examples). In some embodiments, the input/output interface 130 may support multiple network or communication mechanisms. For example, the network/communication interface 130 may pair with another device over a Bluetooth network to transfer signals to the other device, while simultaneously receiving data from a WiFi or other network.


The tactile switch assembly 110 will now be discussed in more detail. The tactile switch assembly 110 may include a button 148, a coupling 218, a shear plate 156, and a tactile switch 214. The components of the tactile switch may be operably connected together and select components may be in electrical communication with one another.


With reference to FIG. 3, the button 148 forms a user interface for the tactile switch assembly 110 and extends outwardly from the enclosure 114. For example, the button 148 may be an input member, such as a button or switch that is translatable and/or rotatable relative to the housing. The ability of the button 148 to translate and rotate relative to the enclosure allows a user to provide a rotational force and/or translating force to the tactile switch assembly. In some embodiments, the button 148 may form a crown for the wearable electronic device 100 and in other embodiments the button 148 may form an input button or switch for the electronic device. The button 148 may generally be a flange shaped member that may have a cylindrical body and a rounded or flat top. The button 148 includes an outer surface 232 that is configured to receive a user input and a stem 150 that extends from an interior surface 234 of the button 148. The stem 150 may define a coupling aperture 236 that extends longitudinally along a length or a portion of a length of the stem 150. In other words, the stem 150 may be hollow or partially hollow. In some embodiments, the button 148 and/or stem 150 may be made of an electrically conductive material and/or may be laced or doped with an electrically conductive material.


With continued reference to FIG. 3, the coupling 218 may be a linkage, such as a shaft, that mechanically and/or electrically couples the button 148 to the tactile switch 214. The coupling 218 may be integrally formed with the button 148 or may be a separate component operably connected thereto. For example, the stem 150 of the button 148 may form the coupling member that is integrally formed with the button. The coupling 218 may be made of a conductive material, such as one or more metals or metal alloys. Due to the conductive characteristics, the coupling 218 may further act to electrically couple the button 148 to the tactile switch 214 and shear plate 156, although in other embodiments a wire, flex or other circuit may electrically couple the button and switch, either with or without including the shear plate in such an electrical connection. The coupling may also include a low-friction material, such as graphite, on its bottom surface, which allows the coupling to more easily rotate, even as it is operably associated with the shear plate.


The coupling 218 may include a shaft 240 extending from a bottom end 222. The bottom end 222 may have a larger diameter than the shaft 240. The bottom end 222 may include an annular shelf 228 that extends around an outer surface. The annular shelf 228 may be configured to seal against the inner surface of the enclosure 114 and/or sleeve 220. Additionally, the annular shelf 228 may be configured to secure a trackable element 146, sensor, or sealing member to the coupling 218.


The bottom end 222 of the coupling 218 forms a joint to operably connect the coupling 218 to the shear plate 156. In these embodiments, the coupling 218 may include an engagement feature 226 connected to the bottom end 222. The engagement feature 226 is configured to rotatably connect to the shear plate 156 and maintain an electrical connection to the shear plate 156 either while the coupling is rotating or stationary; this will be discussed in more detail below. As shown in FIG. 3, in one embodiment, the engagement feature 226 includes a recess 224 formed into the bottom surface 244 of the bottom end 222. An annular wall 242 extends from the bottom surface 244 surrounding the recess 224.


With continued reference to FIG. 3, the shear plate 156 may be positioned between the coupling 218 and the tactile switch 214. In some embodiments, the shear plate 156 may be integrated with the tactile switch 214, one example of which is shown in FIG. 10. In other embodiments, such as the one shown in FIG. 3, the shear plate 156 may be a separate component operably connected to the tactile switch 214. As will be discussed in more detail below, the shear plate 156 may substantially prevent shearing forces from the coupling from being transmitted to the tactile switch 214.


The shear plate 156 may include an electrical contact 158 that extends upwards from a main body 250. The electrical contact 158 is a conductive material or otherwise laced with a conductive material such that the electrical contact 158 may transmit electrical signals. The main body 250 may be shaped as a plate or otherwise be configured to extend across a length and/or width of the tactile switch 214. The shear plate 156 may be at least partially rigid and configured to transfer a force from the coupling 218 to the tactile switch 214, which will be discussed in more detail below. Additionally, the shear plate 156 may include one or more terminals or connection mechanisms to connect the electrical contact 158 to the processing element 124 and/or power source.


The tactile switch 214 may include a nub 216 and a collapsible dome 252. The nub 216 interacts with a contact element on an interior of the dome 252 to indicate when the switch sensor 160 has been activated. For example, when the contact element 168 contacts the bottom of the switch, a circuit may be completed, a signal may be stimulated or created, or the like. The dome 252 is a resilient and flexible material that collapses or flexes upon a predetermined force level and returns to its original shape when a force is removed. The dome 252 may be a thin metal dome, a plastic dome, or other may be constructed from other materials. The dome 252 may produce an audible sound, as well as an opposing force, in response to a collapsing force exerted by a user. The audible sound and opposing force provide feedback to a user when a user compresses the dome 252. The nub 216 is connected to the dome 252 and when a force is applied to the nub 216, the nub 216 collapses the dome 252.


In some embodiments, the wearable electronic device may include a trackable element 146 and a sensing element 142. The sensing element 142 is configured to detect the trackable element 146 in order to detect inputs to the button 148. For example, in some embodiments, the button 148 (or other button) may be rotatable to provide a first input and compressible to provide a second input. In this example, the sensing element 142 may sense rotational input by tracking the position of the trackable element 146 which may be mounted to the coupling 218 and/or stem 150. As one example, the trackable element 146 may be a magnetic element and the sensing element 142 may include a magnetic field sensor, such as one or more Hall effect sensors, that may be used to track rotation of the trackable element 146. As yet another option, rotation may be optically sensed. The trackable element 146 may be a pattern, such as a series, set or other pattern of light and dark marks, stripes, or the like, or areas of varying reflectance, polish, and so on. The sensing element 142 may receive light generated by a light source (not shown) and reflected off the trackable element. The reflected light may vary with the pattern of the trackable element, such that the reflected light may be sensed and the pattern of the trackable element on which the light impinged may be determined. Thus, if the pattern of the trackable element is sufficiently unique along its surface, the button input may be sensed. As still another option, the pattern of the trackable element may vary along a circumference of the trackable element and the trackable element may rotate as the shaft 240 rotates. Thus, a rotational position of the shaft may be determined from the trackable element 146. As still another option, the trackable element may be incorporated onto the shaft itself, and may not be a separate piece. That is, the shaft may be marked as discussed above in certain embodiments.


The tactile switch assembly 110 optionally may further include one or more sensors 126 positioned within or connected to the button 148. The sensors 126 may be electrically connected to the coupling 218, either via one or more wires or pathways within the button 148 or in instances where the button 148 may be a conductive material. The sensor 126 may be configured to sense one or more characteristics and relay data to the processing element 124 via the coupling 218.


With reference to FIG. 3, assembly of the tactile switch assembly 110 within the wearable electronic device 100 will now be discussed in more detail. The tactile switch 214 is connected to a substrate 166 or other supporting structure within the cavity 139 of the wearable device 100. The substrate 166 and/or switch 214 may be in electrical communication with the processing element 124 (see, FIG. 2). The dome 252 is oriented towards the wall 190 of the enclosure 114 such that the nub 216 is substantially aligned with the button aperture 172. The shear plate 156 is positioned over and operably connected the tactile switch 214. The shear plate 156 is orientated such that the electrical contact 158 may be substantially aligned with the nub 216 of the switch 214.


With continued reference to FIG. 3, the coupling 218 is operably connected to the shear plate 156 and electrically connected to the contact 158. In particular, the electrical contact 158 may be received into the recess 224 formed in the bottom surface 244 of the coupling 218. The annular wall 242 surrounds the electrical contact 158. In some embodiments, the electrical contact 158 may be in contact with the interior of the annular wall 242 and/or the end wall of the recess 224 of the coupling. In this manner, the coupling 218 may be connected to shear plate 156 and may also be in electrically communication therewith.


The shaft 240 of the coupling 218 extends through the button aperture 172 and is received into the coupling aperture 236 of the stem 150. A sealing member 154, such as an O-ring, cup seal, or membrane, is received around the shaft 240 and seals against the sleeve 220 or the interior walls of the enclosure 114. The button 148 extends outwards from the coupling 218 and extends past the outer edge of the enclosure 114.


Operation of the tactile switch assembly 110 with the wearable device 100 will now be discussed in more detail. If a user provides a rotational force to the button 148, the stem 150 and button 148 will rotate in the direction of the force. The rotation of the button 148 causes the coupling 218 to rotate along with the button 148. As the coupling 218 rotates, the trackable element 146 rotates, allowing the sensing element 142 to track the rotation of the coupling 218, which may be correlated to the user input to the button 148. Additionally, the coupling 218 rotates around the electrical contact 158 of the shear plate 156. The annular wall 242 prevents the coupling 218 from rotating off-axis from the contact 158, as well as help to secure the two components together. In some embodiments the electrical contact 158 may be a brush contact or may otherwise be configured to maintain an electrical connection between the walls defining the recess 224 and the annular wall 242 of the coupling 218, without substantially hindering the rotation of the coupling 218. Additionally, because the coupling 218 rotates around the electrical contact 158, the rotational force experienced by the coupling 218 may not be transmitted to the tactile switch 214 positioned below the shear plate to which the electrical contact is connected. By preventing the shearing forces from being transmitted to the tactile switch 214, the tactile switch 214 may be prevented from rotating, which could damage the switch, cause the switch to become displaced relative to the coupling, and/or otherwise damage the tactile switch. In some embodiments, the electrical contact 158 may be configured to experience shear forces around 20N and torque at least higher than 10N-mm. This allows the tactile switch assembly 110 to receive rotational inputs to the button 148, while maintaining an electrical connection between the coupling and the contact, without damaging either of the components.



FIG. 4 is a cross-section view of the wearable electronic device 100 similar to FIG. 3 but illustrating a compression force applied to the button 148. With reference to FIG. 4, as the user applies a force, either an angled force AF or an on-axis force F, the button 148 moves towards the sidewall 260, such that the bottom surface 262 of the button 148 abuts against the enclosure 114. Lateral movement of the button 148, causes the coupling 218 to move correspondingly and slide further into the cavity 139. As the coupling 218 moves into the cavity 139, it transmits the force AF, F to shear plate 156. In particular, the end wall of the recess presses against the electrical contact 158, which compresses against the nub 216 of the dome 252. In some embodiments the tactile switch assembly 110 may be configured to receive user input forces ranging between 1 to 3 Newtons. Because the shear plate 156 may be at least somewhat rigid, the shear plate 156 transmits the force from the coupling 218 to the dome 252 causing it to collapse. As the dome 252 collapses, an electrical contact within the tactile switch 214 touches the interior surface of the dome to complete an electrical connection, indicating the user input.


Once the force has been removed from the button 148, the dome resiliently returns to its original position, providing a biasing force against the coupling 218 to return both the button and the coupling to their original positions. In some embodiments, the tactile switch may include a separate biasing element, such as a spring, that exerts a force (either directly or indirectly via the shear plate) against the coupling. In these embodiments, the button 148 and the coupling 218 may return to their original positions prior to the user translation force F applied to the button 148.


In some embodiments, the button aperture 172 may be sufficiently large that the tactile switch 214 can be activated by the angled force AF, even when the tactile switch 214 is positioned directly beneath the coupling. In other words, the angled force AF or other off-axis force may activate the tactile switch 214 when the frictional engagement of the stem 150 and/or coupling 218 within the button aperture 172 sidewall is insufficient to resist the angled force AF. As the angle increases, the frictional force acting on the stem and/or coupling increases and by varying the size of the stem and/or button aperture, a predetermined angle range may be selected for which the angled force AF can activate the switch. For example, a maximum angle of the input force can be selected and when the force is below that angle, the angled force can activate the tactile switch 214 and when the angled force is at or above the maximum angle, the input button may not be activated. As an example, a force applied to the input button at an angle up to 30 or 45 degrees may be able to activate the tactile switch 214.


With continued reference to FIG. 4, as the tactile switch 214 is compressed by the coupling 218, the coupling 218 remains in electrical communication with the electrical contact 158. This allows the sensor 126 to remain in communication with the one or more processing elements 124 via the shear plate 156 and/or the button 148 to remain electrically connected to the shear plate 156.


The tactile switch 214 of the present disclosure allows a user to provide multiple types of inputs to the wearable device 100, e.g., rotational, translational, and angled. Additionally, the tactile switch assembly 110 allows the movable components, in particular the button 148 and coupling 218, to remain in electrical communication with the shear plate 156 (and thus other electrical components within the device), without restricting movement. This allows one or more sensing elements 126 on the button 148 to provide signals to non-movable components or other components positioned within the enclosure 114. The sensing elements 126 may receive power via the coupling 218 and the button 148.


In some embodiments, the tactile switch assembly 110 optionally may be used as a physiological sensor, although this functionality may be omitted from certain embodiments. For example, in one embodiment, the enclosure 114 may be electrically conductive and when worn by a user may be in communication with the user's skin. With reference to FIG. 3, in this embodiment the sleeve 220 may be an insulating material, such as rubber, plastic, or the like, and isolates the button 148, stem 150, and coupling 218 from the conducive housing 114. To measure one or more characteristics of the user's heart, such as by an electrocardiograph (ECG), the user may press his or her finger on the button 148. In this example, the wearable device 100 may be worn around a user wrist and the finger placed on the button 148 may be from the opposite arm as the arm wearing the device 100. The connection between the user's finger and the button 148 may act as a first lead for the ECG and the connection between the user's wrist (or other portion of the arm) may act as the second lead for the ECG.


As the user places his or her finger on the button 148, an electrical connection via the coupling 218 and electrical contact 158 allows for a second reference point. In this manner, voltage signals detected at the first location can be compared with voltage signals detected at the second location and subtracted to detect rise and falls between the two signals. These rise and falls can be correlated to the rhythm of a user's heart. Additionally, in some embodiments, the device 100 may use one of the connections to the user's skin to send a pulse or signal through the user in order to measure the ECG characteristics of the user's heart.


Brush Contact


In some embodiments, the tactile switch itself may include an electrical contact and the shear plate may be omitted or integrated with the tactile switch. FIGS. 5-7 illustrate various views of another examples of the tactile switch removed from the wearable electronic device. In these embodiments, the tactile switch assembly may be configured to receive one or more input types, as well as remain in electrical communication with one or more elements within the device. The tactile switch 314 of FIGS. 5-7 may be substantially the same as the tactile switch 214 but may be integrally formed with an electrical contact on an outer surface of the dome. With reference to FIGS. 5-7, in this embodiment, the tactile switch 314 may include a substrate 366, one more supports 368 extending from a bottom surface 374 of the substrate 366. The supports 368 support the tactile switch 314 within the wearable electronic device 100, such as on the substrate 166.


The tactile switch 314 may include a nub 316 extending form a top surface 372 of the substrate 366. The nub 316 forms an electrical contact for the dome 352, which will be discussed in more detail below. The nub 316 may be in electrical communication with one or more of the connection terminals 360a, 360b, 360d, 360e, which may be in communication with the processing element 124 (see, FIG. 2). The nub 316 may be a conductive protrusion or may include a contact pad or other conductive segment that is configured to be in selective communication with a corresponding dome contact.


With reference to FIG. 5, the dome 352 may be resilient and may be configured to collapse under a predetermined user force and spring back to its an initial position. The dome 352 may include a leg 370 extending form one side of the dome 352. The leg 370 may support one or more electrical communication mechanisms, such as, but not limited to, flexible circuit (flex), wiring, or the like. The dome 352 may also define a dome cavity 320 which is positioned over the base contact 316. A top surface 322 of the dome 352 may be configured to be spatially separated from a top surface of the nub 316 such that the dome may only touch the contact 316 when a sufficient force is applied to the top surface 322 of the dome. A dome contact 318 may be operably connected to an interior surface of the dome 352 and be at least partially aligned with the nub 316.


The dome 352 may be a non-conductive material, such as plastic. In one embodiment, the dome 352 may be an injection molded plastic. However, as mentioned above, one or more components of the dome 352 may include electrically conductive components, such as a flexible circuit (flex), copper wiring, and so on. Alternatively, the dome 352 may be a metal element or other material that is electrically conductive and may include one or more insulating elements connected thereto.


With reference to FIGS. 5 and 6, the tactile switch 314 may further include an electrical contact 358, which may replace the contact 158 of the shear plate 156, such that the shear plate may be omitted. The electrical contact 358 may be operably connected to the top surface 322 of the dome 352. In embodiments where the tactile switch may be used to receive rotational inputs, the electrical contact 358 may form a brush contact for the coupling 318 to electrically connect the tactile switch 314 and the coupling 318. In this manner, the electrical contact may be substantially similar to the electrical contact 158; however, in this embodiment, the electrical contact 358 may be formed integrally with the dome 352. However, in embodiments where rotational inputs are not desired, the electrical contact 358 may be a conductive surface that does not receive shear forces.


The electrical contact 358 is in communication with one of the connection terminals 360a, 360b, 360c, 360d. For example, the electrical contact 358 may be in communication with lead 360a. In some embodiments, the dome may include a flex or other shear plate that couples the electrical contact 358 to the lead 360a or alternatively, the dome 352 itself may be conductive and act to couple the two components together.


As shown in FIG. 3, the electrical contact 158 may be received into the coupling 218. However, in some embodiments, such as the embodiment illustrated in FIG. 6, the electrical contact 358 may define a receiving cavity 384 surrounded by an annular wall 382. In these embodiments, one or more portions of the coupling 318 may be received into a recess or aperture defined within the electrical contact. In this manner, the coupling 218 may rotate within the electrical contact 358, contacting the interior walls of the annular wall 382.


Operation of the tactile switch assembly will now be discussed in more detail. With reference to FIGS. 3 and 8, as the coupling 218 is compressed, e.g., due to the user input force F, the coupling 218 compresses the electrical contact 358. As the electrical contact 358 is compressed, the force is transmitted to the dome 352, which collapses, pressing the dome contact 318 onto a top surface of the nub 316. As the dome contact 318 touches the nub 316, an electrical signal is created and transmitted via one of the terminals 360a, 360b, 360c, 360d to the processing element 124 (see, FIG. 2). The processing element 124 then registers the user input to the tactile switch 314.



FIG. 9 is a simplified front elevation view of the tactile switch and coupling as the user applies a rotational force. With reference to FIG. 9, in instances where the user may provide a rotational input force R to the tactile switch assembly 310, the coupling 218 may receive the force applied to the button 148, causing the coupling 218 to rotate correspondingly. In embodiments where the coupling 218 is received into a recess 384 (see, FIG. 6) of the electrical contact 358, the coupling 218 may rotate within the annular wall 382, maintaining a connection between the walls and/or bottom surface 383 (see, FIG. 6) of the electrical contact 358. This allows the coupling 218 to rotate along with a rotational input from the user, while still maintaining an electrical connection to the tactile switch 314.


Conductive Nub


In some embodiments, the nub of the tactile switch may be conductive and the shear plate may be omitted. For example, in some embodiments, the user input surface may be configured to translate, such as moving horizontally or vertically relative to the housing, and in these embodiments, the tactile switch may not receive shearing forces. Alternatively, the nub of the tactile switch may be configured to receive shear forces, while still activating the tactile switch.



FIGS. 10-12 illustrate various views of another example of the tactile switch. With reference to FIGS. 10-12, the tactile switch 414 in this embodiment may be substantially similar to the tactile switches 114, 314, but may include a conductive nub. In other words, the shear plate may be integrated with the nub of the tactile switch. In particular, the tactile switch 414 may include a substrate 466, one or more substrate supports 468, a plurality of connection terminals 460a, 460b, 460c, 460d, and the nub 416.


With reference to FIGS. 10 and 11, the nub 416 may be operably connected to the top surface 472 of the substrate 466. In some embodiments, the substrate 466, or at least portions of the top surface 472, may be insulated to electrically separate the various terminals of the switch 414, as well as the nub 416 for certain components of the switch 414. The nub 416 may include a conductive portion, such as pad 421 on a top surface of the nub 416, or the nub 416 may be made of a conductive material, or another material laced with conductive elements. One or more of the terminals is in electrical communication with the nub 416. For example, terminal 460d may be in communication with the nub 416, whereas terminals 460a, 460b, 460c may be used as one or more contacts for the switch contact within the substrate 466. In these embodiments, the nub 416 may act as a brush contact to allow the coupling to rotate.


The tactile switch 414 may be used with the tactile switch assembly 110 of FIG. 3. In these embodiments, the nub 416 may be received into the recess 224 of the coupling 218. Similarly to the electrical contact 158, the nub 416 may be received between the sidewalls of the annular wall 242, which operably connects the nub and the coupling 218.


In embodiments where the tactile switch assembly 110 includes the tactile switch 414 of FIGS. 10-12, the nub 416 may be configured to not only be conductive, but may also resist shear forces and overload. For example, with the shear plate omitted, the nub 416 may experience shear forces as the coupling 218 rotates on top of the nub 416 and around the nub 416. Additionally, the nub is configured to receive mechanical inputs, such as the force of the coupling 218, and under the load of the force, the nub 416 completes a switch circuit by connecting one or more of the terminals together. As one example, the nub 416 may at least partially compress when a compressive force is applied to the button 148, allowing the nub 416 to function as the dome, to provide tactile feedback to a user as well as create a signal corresponding to the user's input.


CONCLUSION

The foregoing description has broad application. For example, while examples disclosed herein may focus on a wearable electronic device, it should be appreciated that the concepts disclosed herein may equally apply to substantially any other type of electronic device. Similarly, although the input button may be discussed with respect to a crown for a watch, the devices and techniques disclosed herein are equally applicable to other types of input button structures. Accordingly, the discussion of any embodiment is meant only to be exemplary and is not intended to suggest that the scope of the disclosure, including the claims, is limited to these examples.

Claims
  • 1. A watch comprising: an enclosure;a touch-sensitive display positioned at least partially within the enclosure; anda tactile switch assembly comprising: a button positioned at a side of the enclosure;a coupling attached to the button and extending into the enclosure;a tactile switch positioned at an end of the coupling opposite to the button, the tactile switch configured to detect an inward translation of the coupling; anda sensing element positioned along a side of the coupling and configured to detect a rotation of the coupling.
  • 2. The watch of claim 1, wherein the sensing element is configured to detect the rotation of the coupling using light reflected from the coupling.
  • 3. The watch of claim 2, wherein the sensing element is configured to detect areas of varying reflectance along an exterior surface of the coupling.
  • 4. The watch of claim 2, wherein the sensing element is configured to detect the rotation using a pattern of elements positioned along an exterior surface of the coupling.
  • 5. The watch of claim 1, wherein: the tactile switch assembly further comprises a spring; andthe spring is configured to provide a restoring force in response to the inward translation of the coupling.
  • 6. The watch of claim 1, wherein: the button is formed from a first conductive material; andthe coupling includes a shaft formed from a second conductive material.
  • 7. The watch of claim 6, wherein the shaft electrically couples the button to the tactile switch.
  • 8. The watch of claim 6, wherein: the watch further comprises a shear plate positioned between an end of the shaft and the tactile switch; andthe shaft electrically couples the button to the tactile switch through the shear plate.
  • 9. The watch of claim 1, wherein the tactile switch comprises a dome that collapses in response to the inward translation of the coupling.
  • 10. A wearable electronic device comprising: an enclosure defining a button aperture;a display positioned at least partially within the enclosure;a button positioned on a side of the enclosure and aligned with the button aperture;a shaft coupled to the button and extending through the button aperture;a sensing element positioned within the enclosure and configured to detect a rotational input applied to the button; anda tactile switch positioned along an end of the shaft and configured to detect a press input applied to the button.
  • 11. The wearable electronic device of claim 10, wherein the sensing element comprises an optical sensing element that is configured to detect light reflected from a surface of the shaft.
  • 12. The wearable electronic device of claim 11, wherein: the surface of the shaft defines a unique pattern of trackable elements; andthe optical sensing element is configured to detect the rotational input using light reflected from the unique pattern of trackable elements.
  • 13. The wearable electronic device of claim 10, wherein: the tactile switch includes a collapsible dome that is oriented toward an inner wall of the enclosure; andthe collapsible dome deflects away from the inner wall in response to the press input applied to the button.
  • 14. The wearable electronic device of claim 10, wherein: the end of the shaft extends from an annular shelf; andthe annular shelf is configured to contact an inner surface of the enclosure thereby limiting an outward movement of the shaft.
  • 15. A wearable electronic device comprising: an enclosure defining an interior volume;a strap coupled to the enclosure and configured to attach the wearable electronic device to a wrist;a display positioned within the enclosure;a crown positioned at a side of the enclosure and configured to receive a rotational input and a translational input;a shaft coupled to the crown and extending into the interior volume of the enclosure;a sensing element positioned in the interior volume and configured to detect the rotational input; anda tactile switch positioned at an end of the shaft and configured to detect the translational input.
  • 16. The wearable electronic device of claim 15, wherein: the display includes a light-emitting diode display; andthe light-emitting diode display comprises capacitive sensing elements that are configured to detect multi-touch input.
  • 17. The wearable electronic device of claim 15, wherein: the crown is formed from a first conductive metal material;the shaft is formed from a second conductive metal material; andthe second conductive metal material of the shaft is electrically coupled to the first conductive metal material of the crown.
  • 18. The wearable electronic device of claim 15, wherein: the enclosure defines a button aperture;the wearable electronic device comprises a sleeve formed from an insulating material; andthe sleeve is positioned in the button aperture and electrically insulates the shaft from the enclosure.
  • 19. The wearable electronic device of claim 15, wherein the sensing element is configured to detect the rotational input using light reflected from the shaft from a light source.
  • 20. The wearable electronic device of claim 15, wherein the wearable electronic device is configured to measure a heart rate.
CROSS-REFERENCE TO RELATED APPLICATIONS

This patent application is a continuation patent application of U.S. patent application Ser. No. 16/422,722, filed May 24, 2019, and titled “Tactile Switch for an Electronic Device,” which is a continuation patent application of U.S. patent application Ser. No. 16/247,335, filed Jan. 14, 2019, and titled “Tactile Switch for an Electronic Device,” now U.S. Pat. No. 10,331,082, issued Jun. 25, 2019, which is a continuation patent application of U.S. patent application Ser. No. 16/179,872, filed Nov. 2, 2018 and titled “Tactile Switch for an Electronic Device,” now U.S. Pat. No. 10,331,081, issued Jun. 25, 2019, which is a continuation patent application of U.S. patent application Ser. No. 16/033,491, filed Jul. 12, 2018 and titled “Tactile Switch for an Electronic Device,” now U.S. Pat. No. 10,216,147, issued Feb. 26, 2019, which is a continuation patent application of U.S. patent application Ser. No. 15/969,630, filed May 2, 2018 and titled “Tactile Switch for an Electronic Device,” now U.S. Pat. No. 10,175,652, issued Jan. 8, 2019, which is a continuation patent application of U.S. patent application Ser. No. 15/829,509, filed Dec. 1, 2017 and titled “Tactile Switch for an Electronic Device,” now U.S. Pat. No. 9,971,305, issued May 15, 2018, which is a continuation patent application of U.S. patent application Ser. No. 15/637,949, filed Jun. 29, 2017 and titled “Tactile Switch for an Electronic Device,” now U.S. Pat. No. 9,836,025, issued Dec. 5, 2017, which is a continuation patent application of U.S. patent application Ser. No. 15/465,523, filed Mar. 21, 2017, and titled “Tactile Switch for an Electronic Device,” now U.S. Pat. No. 9,709,956, issued Jul. 18, 2017, which is a continuation patent application of U.S. patent application Ser. No. 15/261,904, filed Sep. 10, 2016, and titled “Tactile Switch for an Electronic Device,” now U.S. Pat. No. 9,620,312, issued Apr. 11, 2017, which is a continuation patent application of U.S. patent application Ser. No. 14/455,375, filed Aug. 8, 2014, and titled “Tactile Switch for an Electronic Device,” now U.S. Pat. No. 9,627,163, issued Apr. 18, 2017, which is a nonprovisional patent application of and claims priority to U.S. Provisional Patent Application No. 61/864,389, filed Aug. 9, 2013, and titled “Tactile Switch for an Electronic Device,” the disclosures of which are hereby incorporated herein by reference in their entireties.

US Referenced Citations (457)
Number Name Date Kind
2237860 Bolle Apr 1941 A
2288215 Taubert et al. Jun 1942 A
2497935 Feurer Feb 1950 A
2771734 Morf Nov 1956 A
2788236 Kafowi Apr 1957 A
2797592 Marrapese Jul 1957 A
3040514 Dinstman Jun 1962 A
3056030 Kelchner Sep 1962 A
3130539 Davis Apr 1964 A
3355873 Morf Dec 1967 A
3362154 Perret Jan 1968 A
3410247 Dronberger Nov 1968 A
3495398 Widmer et al. Feb 1970 A
3577876 Spadini May 1971 A
3621649 Vulcan et al. Nov 1971 A
3662618 Kroll et al. May 1972 A
3733803 Hiraga May 1973 A
4007347 Haber Feb 1977 A
4031341 Wuthrich et al. Jun 1977 A
4037068 Gaynor Jul 1977 A
4077200 Schneider Mar 1978 A
4133404 Griffin Jan 1979 A
4170104 Yamagata Oct 1979 A
4258096 LaMarche Mar 1981 A
4287400 Kitik Sep 1981 A
4289400 Kubota et al. Sep 1981 A
4311026 Ochoa Jan 1982 A
4311990 Burke Jan 1982 A
4324956 Sakakino et al. Apr 1982 A
4345119 Latasiewicz Aug 1982 A
4364674 Tesch Dec 1982 A
4379642 Meyrat Apr 1983 A
4395134 Luce Jul 1983 A
4396298 Ripley Aug 1983 A
4417824 Paterson et al. Nov 1983 A
4448199 Schmid May 1984 A
4520306 Kirby May 1985 A
4581509 Sanford et al. Apr 1986 A
4600316 Besson Jul 1986 A
4617461 Subbarao et al. Oct 1986 A
4634861 Ching et al. Jan 1987 A
4641026 Garcia, Jr. Feb 1987 A
4670737 Rilling Jun 1987 A
4766642 Gaffney et al. Aug 1988 A
4783772 Umemoto et al. Nov 1988 A
4884073 Souloumiac Nov 1989 A
4914831 Kanezashi et al. Apr 1990 A
4922070 Dorkinski May 1990 A
4931794 Haag Jun 1990 A
4952799 Loewen Aug 1990 A
4980685 Souloumiac et al. Dec 1990 A
4987299 Kobayashi et al. Jan 1991 A
5034602 Garcia et al. Jul 1991 A
5177355 Branan Jan 1993 A
5214278 Banda May 1993 A
5258592 Nishikawa et al. Nov 1993 A
5288993 Bidiville et al. Feb 1994 A
5347123 Jackson et al. Sep 1994 A
5383166 Gallay Jan 1995 A
5471054 Watanabe Nov 1995 A
5477508 Will Dec 1995 A
5509174 Worrell Apr 1996 A
5559761 Frenkel et al. Sep 1996 A
5572314 Hyman et al. Nov 1996 A
5583560 Florin et al. Dec 1996 A
5631881 Pessey et al. May 1997 A
5726645 Kamon et al. Mar 1998 A
5748111 Bates May 1998 A
5825353 Will Oct 1998 A
5841050 Clift et al. Nov 1998 A
5847335 Sugahara et al. Dec 1998 A
5867082 Van Zeeland Feb 1999 A
5943233 Ebina Aug 1999 A
5953001 Challener et al. Sep 1999 A
5960366 Duwaer et al. Sep 1999 A
5963332 Feldman et al. Oct 1999 A
5999168 Rosenberg et al. Dec 1999 A
6069567 Zawilski May 2000 A
6128006 Rosenberg et al. Oct 2000 A
6134189 Carrard Oct 2000 A
6154201 Levin et al. Nov 2000 A
6175679 Veligdan et al. Jan 2001 B1
6203190 Stotz Mar 2001 B1
6241684 Amano Jun 2001 B1
6246050 Tullis et al. Jun 2001 B1
6252825 Perotto Jun 2001 B1
6304247 Black Oct 2001 B1
6355891 Ikunami Mar 2002 B1
6361502 Puolakanaho et al. Mar 2002 B1
6377239 Isikawa Apr 2002 B1
6392640 Will May 2002 B1
6396006 Yokoji et al. May 2002 B1
6422740 Leuenberger Jul 2002 B1
6477117 Narayanaswami et al. Nov 2002 B1
6502982 Bach et al. Jan 2003 B1
6525278 Villain et al. Feb 2003 B2
6556222 Narayanaswami Apr 2003 B1
6575618 Inoue et al. Jun 2003 B1
6587400 Line Jul 2003 B1
6636197 Goldenberg et al. Oct 2003 B1
6646635 Pogatetz et al. Nov 2003 B2
6661438 Shiraishi et al. Nov 2003 B1
6672758 Ehrsam et al. Jan 2004 B2
6794992 Rogers Sep 2004 B1
6809275 Cheng et al. Oct 2004 B1
6834430 Worrell Dec 2004 B2
6846998 Hasumi et al. Jan 2005 B2
6882596 Guanter Apr 2005 B2
6888076 Hetherington May 2005 B2
6896403 Gau May 2005 B1
6909378 Lambrechts et al. Jun 2005 B1
6914551 Vidal Jul 2005 B2
6961099 Takano et al. Nov 2005 B2
6963039 Weng et al. Nov 2005 B1
6967903 Guanter Nov 2005 B2
6977868 Brewer et al. Dec 2005 B2
6982930 Hung Jan 2006 B1
6985107 Anson Jan 2006 B2
6987568 Dana Jan 2006 B2
6998553 Hisamune et al. Feb 2006 B2
7016263 Gueissaz et al. Mar 2006 B2
7021442 Borgerson Apr 2006 B2
7031228 Born et al. Apr 2006 B2
7034237 Ferri et al. Apr 2006 B2
7081905 Raghunath et al. Jul 2006 B1
7102626 Denny, III Sep 2006 B2
7111365 Howie, Jr. Sep 2006 B1
7113450 Plancon et al. Sep 2006 B2
7119289 Lacroix Oct 2006 B2
7135673 Saint Clair Nov 2006 B2
7167083 Giles Jan 2007 B2
7244927 Huynh Jul 2007 B2
7255473 Hiranuma et al. Aug 2007 B2
7265336 Hataguchi et al. Sep 2007 B2
7274303 Dresti et al. Sep 2007 B2
7285738 Lavigne et al. Oct 2007 B2
7286063 Gauthey Oct 2007 B2
7292741 Ishiyama et al. Nov 2007 B2
7358481 Yeoh et al. Apr 2008 B2
7369308 Tsuruta et al. May 2008 B2
7371745 Ebright et al. May 2008 B2
7385874 Vuilleumier Jun 2008 B2
7404667 Born et al. Jul 2008 B2
7465917 Chin et al. Dec 2008 B2
7468036 Rulkov et al. Dec 2008 B1
7506269 Lang et al. Mar 2009 B2
7520664 Wai Apr 2009 B2
7528824 Kong May 2009 B2
7545367 Sunda et al. Jun 2009 B2
7591582 Hiranuma et al. Sep 2009 B2
7593755 Colando et al. Sep 2009 B2
7605846 Watanabe Oct 2009 B2
7634263 Louch et al. Dec 2009 B2
7646677 Nakamura Jan 2010 B2
7655874 Akieda Feb 2010 B2
7682070 Burton Mar 2010 B2
7708457 Girardin May 2010 B2
7710456 Koshiba et al. May 2010 B2
7732724 Otani et al. Jun 2010 B2
7761246 Matsui Jul 2010 B2
7763819 Ieda et al. Jul 2010 B2
7772507 Orr Aug 2010 B2
7778115 Ruchonnet Aug 2010 B2
7781726 Matsui et al. Aug 2010 B2
RE41637 O'Hara et al. Sep 2010 E
7791588 Tierling et al. Sep 2010 B2
7791597 Silverstein et al. Sep 2010 B2
7822469 Lo Oct 2010 B2
7856255 Tsuchiya et al. Dec 2010 B2
7858583 Schmidt et al. Dec 2010 B2
7865324 Lindberg Jan 2011 B2
7894957 Carlson Feb 2011 B2
7946758 Mooring May 2011 B2
8063892 Shahoian et al. Nov 2011 B2
8138488 Grot Mar 2012 B2
8143981 Washizu et al. Mar 2012 B2
8167126 Stiehl May 2012 B2
8169402 Shahoian et al. May 2012 B2
8188989 Levin et al. May 2012 B2
8195313 Fadell et al. Jun 2012 B1
8229535 Mensinger et al. Jul 2012 B2
8248815 Yang et al. Aug 2012 B2
8263886 Lin et al. Sep 2012 B2
8263889 Takahashi et al. Sep 2012 B2
8275327 Yi et al. Sep 2012 B2
8294670 Griffin et al. Oct 2012 B2
8312495 Vanderhoff Nov 2012 B2
8318340 Stimits Nov 2012 B2
8368677 Yamamoto Feb 2013 B2
8371745 Manni Feb 2013 B2
8373661 Lan et al. Feb 2013 B2
8410971 Friedlander Apr 2013 B2
8432368 Momeyer et al. Apr 2013 B2
8439559 Luk et al. May 2013 B2
8441450 Degner et al. May 2013 B2
8446713 Lai May 2013 B2
8456430 Oliver et al. Jun 2013 B2
8477118 Lan et al. Jul 2013 B2
8493190 Periquet et al. Jul 2013 B2
8508511 Tanaka et al. Aug 2013 B2
8525777 Stavely et al. Sep 2013 B2
8562489 Burton et al. Oct 2013 B2
8568313 Sadhu Oct 2013 B2
8576044 Chapman Nov 2013 B2
8593598 Chen et al. Nov 2013 B2
8607662 Huang Dec 2013 B2
8614881 Yoo Dec 2013 B2
8666682 LaVigne et al. Mar 2014 B2
8677285 Tsern et al. Mar 2014 B2
8704787 Yamamoto Apr 2014 B2
8711093 Ong et al. Apr 2014 B2
8724087 Van De Kerkhof et al. May 2014 B2
8730167 Ming et al. May 2014 B2
8743088 Watanabe Jun 2014 B2
8783944 Doi Jul 2014 B2
8797153 Vanhelle et al. Aug 2014 B2
8804993 Shukla et al. Aug 2014 B2
8816962 Obermeyer et al. Aug 2014 B2
8824245 Lau et al. Sep 2014 B2
8847741 Birnbaum et al. Sep 2014 B2
8859971 Weber Oct 2014 B2
8860674 Lee et al. Oct 2014 B2
8863219 Brown et al. Oct 2014 B2
D717679 Anderssen Nov 2014 S
8878657 Periquet et al. Nov 2014 B2
8885856 Sacha Nov 2014 B2
8895911 Takahashi Nov 2014 B2
8905631 Sakurazawa et al. Dec 2014 B2
8908477 Peters Dec 2014 B2
8920022 Ishida et al. Dec 2014 B2
8922399 Bajaj et al. Dec 2014 B2
8928452 Kim et al. Jan 2015 B2
8948832 Hong et al. Feb 2015 B2
8954135 Yuen et al. Feb 2015 B2
8975543 Hakemeyer Mar 2015 B2
8994827 Mistry et al. Mar 2015 B2
9001625 Essery et al. Apr 2015 B2
9024733 Wouters May 2015 B2
9028134 Koshoji et al. May 2015 B2
9030446 Mistry et al. May 2015 B2
9034666 Vaganov et al. May 2015 B2
9039614 Yuen et al. May 2015 B2
9041663 Westerman May 2015 B2
9042971 Brumback et al. May 2015 B2
9049998 Brumback et al. Jun 2015 B2
9052696 Breuillot et al. Jun 2015 B2
9086717 Meerovitsch Jul 2015 B2
9086738 Leung et al. Jul 2015 B2
9100493 Zhou Aug 2015 B1
9101184 Wilson Aug 2015 B2
9105413 Hiranuma et al. Aug 2015 B2
9123483 Ferri et al. Sep 2015 B2
9134807 Shaw Sep 2015 B2
9141087 Brown et al. Sep 2015 B2
9176577 Jangaard et al. Nov 2015 B2
9176598 Sweetser et al. Nov 2015 B2
9202372 Reams et al. Dec 2015 B2
9213409 Redelsheimer et al. Dec 2015 B2
9223296 Yang et al. Dec 2015 B2
9241635 Yuen et al. Jan 2016 B2
9244438 Hoover et al. Jan 2016 B2
9256209 Yang et al. Feb 2016 B2
9277156 Bennett et al. Mar 2016 B2
9350850 Pope et al. May 2016 B2
9386932 Chatterjee et al. Jul 2016 B2
9426275 Eim et al. Aug 2016 B2
9430042 Levin Aug 2016 B2
9437357 Furuki et al. Sep 2016 B2
9449770 Sanford et al. Sep 2016 B2
9501044 Jackson et al. Nov 2016 B2
9520100 Houjou et al. Dec 2016 B2
9532723 Kim Jan 2017 B2
9542016 Armstrong-Muntner Jan 2017 B2
9545541 Aragones et al. Jan 2017 B2
9552023 Joo et al. Jan 2017 B2
9599964 Gracia Mar 2017 B2
9607505 Rothkopf et al. Mar 2017 B2
9620312 Ely et al. Apr 2017 B2
9627163 Ely Apr 2017 B2
9632318 Goto et al. Apr 2017 B2
9638587 Marquas et al. May 2017 B2
9651922 Hysek et al. May 2017 B2
9659482 Yang et al. May 2017 B2
9680831 Jooste et al. Jun 2017 B2
9709956 Ely et al. Jul 2017 B1
9753436 Ely et al. Sep 2017 B2
D800172 Akana Oct 2017 S
9800717 Ma et al. Oct 2017 B2
9836025 Ely et al. Dec 2017 B2
9873711 Hoover et al. Jan 2018 B2
9874945 Fukumoto Jan 2018 B2
9886006 Ely et al. Feb 2018 B2
9891590 Shim et al. Feb 2018 B2
9891651 Jackson et al. Feb 2018 B2
9898032 Hafez et al. Feb 2018 B2
9927902 Burr et al. Mar 2018 B2
9939923 Sharma Apr 2018 B2
9946297 Nazzaro et al. Apr 2018 B2
9952558 Ely Apr 2018 B2
9952682 Zhang et al. Apr 2018 B2
9971305 Ely et al. May 2018 B2
9971405 Holenarsipur et al. May 2018 B2
9979426 Na et al. May 2018 B2
10001817 Zambetti et al. Jun 2018 B2
10012550 Yang Jul 2018 B2
10018966 Ely et al. Jul 2018 B2
10019097 Ely et al. Jul 2018 B2
10037006 Ely Jul 2018 B2
10048802 Shedletsky Aug 2018 B2
10061399 Bushnell et al. Aug 2018 B2
10092203 Mirov Oct 2018 B2
10114342 Kim et al. Oct 2018 B2
10145711 Boonsom et al. Dec 2018 B2
10175652 Ely et al. Jan 2019 B2
10209148 Lyon et al. Feb 2019 B2
10216147 Ely et al. Feb 2019 B2
10222756 Ely et al. Mar 2019 B2
10222909 Shedletsky et al. Mar 2019 B2
10234828 Ely et al. Mar 2019 B2
10241593 Chen Mar 2019 B2
10296125 Ely et al. May 2019 B2
10331081 Ely et al. Jun 2019 B2
10331082 Ely et al. Jun 2019 B2
10353487 Chung et al. Jul 2019 B2
10379629 Bushnell et al. Aug 2019 B2
10474194 Ell Nov 2019 B1
10509486 Bushnell et al. Dec 2019 B2
10551798 Bushnell et al. Feb 2020 B1
10572053 Ely et al. Feb 2020 B2
10599101 Rothkopf et al. Mar 2020 B2
10664074 Moussette et al. May 2020 B2
10732571 Ely Aug 2020 B2
20030174590 Arikawa et al. Sep 2003 A1
20040047244 Iino et al. Mar 2004 A1
20040082414 Knox Apr 2004 A1
20040130971 Ecoffet et al. Jul 2004 A1
20040264301 Howard et al. Dec 2004 A1
20050075558 Vecerina et al. Apr 2005 A1
20050088417 Mulligan Apr 2005 A1
20060250377 Zadesky et al. Nov 2006 A1
20070013775 Shin Jan 2007 A1
20070050054 Sambandam Guruparan et al. Mar 2007 A1
20070182708 Poupyrev et al. Aug 2007 A1
20070211042 Kim et al. Sep 2007 A1
20070222756 Wu et al. Sep 2007 A1
20070229671 Takeshita et al. Oct 2007 A1
20070247421 Orsley et al. Oct 2007 A1
20080130914 Cho Jun 2008 A1
20090051649 Rondel Feb 2009 A1
20090073119 Le et al. Mar 2009 A1
20090122656 Bonnet et al. May 2009 A1
20090146975 Chang Jun 2009 A1
20090152452 Lee et al. Jun 2009 A1
20090217207 Kagermeier et al. Aug 2009 A1
20090285443 Camp et al. Nov 2009 A1
20090312051 Hansson et al. Dec 2009 A1
20100033430 Kakutani et al. Feb 2010 A1
20100053468 Havrill Mar 2010 A1
20100081375 Rosenblatt et al. Apr 2010 A1
20100149099 Elias Jun 2010 A1
20110007468 Burton et al. Jan 2011 A1
20110090148 Li et al. Apr 2011 A1
20110158057 Brewer et al. Jun 2011 A1
20110242064 Ono et al. Oct 2011 A1
20110270358 Davis et al. Nov 2011 A1
20120067711 Yang Mar 2012 A1
20120068857 Rothkopf et al. Mar 2012 A1
20120075082 Rothkopf et al. Mar 2012 A1
20120112859 Park et al. May 2012 A1
20120113044 Strazisar et al. May 2012 A1
20120206248 Biggs Aug 2012 A1
20120272784 Bailey et al. Nov 2012 A1
20130037396 Yu Feb 2013 A1
20130087443 Kikuchi Apr 2013 A1
20130191220 Dent et al. Jul 2013 A1
20130235704 Grinberg Sep 2013 A1
20130261405 Lee et al. Oct 2013 A1
20130335196 Zhang et al. Dec 2013 A1
20140009397 Gillespie Jan 2014 A1
20140045547 Singamsetty et al. Feb 2014 A1
20140071098 You Mar 2014 A1
20140073486 Ahmed et al. Mar 2014 A1
20140132516 Tsai et al. May 2014 A1
20140197936 Biggs et al. Jul 2014 A1
20140340318 Stringer et al. Nov 2014 A1
20140347289 Suh et al. Nov 2014 A1
20140368442 Vahtola Dec 2014 A1
20140375579 Fujiwara Dec 2014 A1
20150049059 Zadesky et al. Feb 2015 A1
20150098309 Adams et al. Apr 2015 A1
20150124415 Goyal et al. May 2015 A1
20150186609 Utter, II Jul 2015 A1
20150221460 Teplitxky et al. Aug 2015 A1
20150320346 Chen Nov 2015 A1
20150338642 Sanford Nov 2015 A1
20150366098 Lapetina et al. Dec 2015 A1
20160018846 Zenoff Jan 2016 A1
20160054813 Shediwy et al. Feb 2016 A1
20160058375 Rothkopf et al. Mar 2016 A1
20160061636 Gowreesunker et al. Mar 2016 A1
20160062623 Howard et al. Mar 2016 A1
20160069713 Ruh et al. Mar 2016 A1
20160109861 Kim et al. Apr 2016 A1
20160116306 Ferri et al. Apr 2016 A1
20160147432 Shi et al. May 2016 A1
20160170598 Zambetti et al. Jun 2016 A1
20160170608 Zambetti et al. Jun 2016 A1
20160170624 Zambetti et al. Jun 2016 A1
20160241688 Vossoughi Aug 2016 A1
20160253487 Sarkar et al. Sep 2016 A1
20160306446 Chung et al. Oct 2016 A1
20160320583 Hall, Jr. Nov 2016 A1
20160327911 Eim et al. Nov 2016 A1
20160338642 Parara et al. Nov 2016 A1
20160378069 Rothkopf et al. Dec 2016 A1
20160378070 Rothkopf et al. Dec 2016 A1
20160378071 Rothkopf et al. Dec 2016 A1
20170011210 Cheong et al. Jan 2017 A1
20170027461 Shin et al. Feb 2017 A1
20170031449 Karsten et al. Feb 2017 A1
20170045958 Battlogg et al. Feb 2017 A1
20170061863 Eguchi Mar 2017 A1
20170069443 Wang et al. Mar 2017 A1
20170069444 Wang et al. Mar 2017 A1
20170069447 Wang et al. Mar 2017 A1
20170090599 Kuboyama Mar 2017 A1
20170104902 Kim et al. Apr 2017 A1
20170139489 Chen et al. May 2017 A1
20170216519 Vouillamoz Aug 2017 A1
20170216668 Burton et al. Aug 2017 A1
20170238138 Aminzade Aug 2017 A1
20170251561 Fleck et al. Aug 2017 A1
20170269715 Kim et al. Sep 2017 A1
20170285404 Kubota et al. Oct 2017 A1
20170301314 Kim et al. Oct 2017 A1
20170307414 Ferri et al. Oct 2017 A1
20170331869 Bendahan et al. Nov 2017 A1
20170357465 Dzeryn et al. Dec 2017 A1
20180136686 Jackson et al. May 2018 A1
20180196517 Tan et al. Jul 2018 A1
20180225701 Han Aug 2018 A1
20180235491 Bayley et al. Aug 2018 A1
20180239306 Ely Aug 2018 A1
20190017846 Boonsom et al. Jan 2019 A1
20190072911 Ely et al. Mar 2019 A1
20190163324 Shedletsky May 2019 A1
20190250754 Ely et al. Aug 2019 A1
20190278232 Ely et al. Sep 2019 A1
20190294117 Ely et al. Sep 2019 A1
20190391539 Perkins et al. Dec 2019 A1
20200041962 Beyhs Feb 2020 A1
20200064774 Ely et al. Feb 2020 A1
20200064779 Pandya et al. Feb 2020 A1
20200073339 Roach et al. Mar 2020 A1
20200110473 Bushnell et al. Apr 2020 A1
20200159172 Bushnell et al. May 2020 A1
20200233380 Rothkopf Jul 2020 A1
Foreign Referenced Citations (170)
Number Date Country
1888928 Jan 1937 CH
1302740 Sep 2001 CN
1445627 Oct 2003 CN
1504843 Jun 2004 CN
1601408 Mar 2005 CN
1624427 Jun 2005 CN
1792295 Jun 2006 CN
1825224 Aug 2006 CN
101035148 Sep 2007 CN
101201587 Jun 2008 CN
201081979 Jul 2008 CN
201262741 Jun 2009 CN
101750958 Jun 2010 CN
201638168 Nov 2010 CN
101923314 Dec 2010 CN
102216959 Oct 2011 CN
202008579 Oct 2011 CN
102590925 Jul 2012 CN
102890443 Jan 2013 CN
202710937 Jan 2013 CN
103177891 Jun 2013 CN
103191557 Jul 2013 CN
103253067 Aug 2013 CN
103645804 Mar 2014 CN
203564224 Apr 2014 CN
103852090 Jun 2014 CN
203630524 Jun 2014 CN
103956006 Jul 2014 CN
203693601 Jul 2014 CN
203705837 Jul 2014 CN
203732900 Jul 2014 CN
103995456 Aug 2014 CN
104020660 Sep 2014 CN
203941395 Nov 2014 CN
104777987 Apr 2015 CN
104685794 Jun 2015 CN
204479929 Jul 2015 CN
204496177 Jul 2015 CN
104880937 Sep 2015 CN
104898406 Sep 2015 CN
204650147 Sep 2015 CN
105022947 Nov 2015 CN
105096979 Nov 2015 CN
105339871 Feb 2016 CN
105547146 May 2016 CN
105556433 May 2016 CN
105683876 Jun 2016 CN
105955519 Sep 2016 CN
205645648 Oct 2016 CN
205721636 Nov 2016 CN
205750744 Nov 2016 CN
106236051 Dec 2016 CN
206209589 May 2017 CN
107111342 Aug 2017 CN
107122088 Sep 2017 CN
107966895 Apr 2018 CN
3706194 Sep 1988 DE
102008023651 Nov 2009 DE
102016215087 Mar 2017 DE
0556155 Aug 1993 EP
1345095 Sep 2003 EP
1519452 Mar 2005 EP
1669724 Jun 2006 EP
1832969 Sep 2007 EP
2375295 Oct 2011 EP
2720129 Apr 2014 EP
2884239 Jun 2015 EP
2030093 Oct 1970 FR
2801402 May 2001 FR
2433211 Jun 2007 GB
S52151058 Dec 1977 JP
S52164551 Dec 1977 JP
S53093067 Aug 1978 JP
S54087779 Jun 1979 JP
S5708582 Jan 1982 JP
S5734457 Feb 1982 JP
S60103936 Jun 1985 JP
S60103937 Jun 1985 JP
H02285214 Nov 1990 JP
H04093719 Mar 1992 JP
H04157319 May 1992 JP
H05203465 Aug 1993 JP
H05312595 Nov 1993 JP
H06050927 Dec 1994 JP
H06331761 Dec 1994 JP
H06347293 Dec 1994 JP
H07116141 May 1995 JP
H10161811 Jun 1998 JP
H11121210 Apr 1999 JP
H11191508 Jul 1999 JP
2000316824 Nov 2000 JP
2000337892 Dec 2000 JP
2001084934 Mar 2001 JP
2001167651 Jun 2001 JP
2001202178 Jul 2001 JP
2001524206 Nov 2001 JP
2002165768 Jun 2002 JP
2003050668 Feb 2003 JP
2003151410 May 2003 JP
2003331693 Nov 2003 JP
2004184396 Jul 2004 JP
2005017011 Jan 2005 JP
2005063200 Mar 2005 JP
2005099023 Apr 2005 JP
2005108630 Apr 2005 JP
2006164275 Jun 2006 JP
2007101380 Apr 2007 JP
2007149620 Jun 2007 JP
2007248176 Sep 2007 JP
2007311153 Nov 2007 JP
2008053980 Mar 2008 JP
2008122124 May 2008 JP
2008122377 May 2008 JP
2008170436 Jul 2008 JP
2008235226 Oct 2008 JP
2009009382 Jan 2009 JP
2009070657 Apr 2009 JP
2009519737 May 2009 JP
2009540399 Nov 2009 JP
2010032545 Feb 2010 JP
2010515153 May 2010 JP
2010165001 Jul 2010 JP
2010186572 Aug 2010 JP
2010243344 Oct 2010 JP
2010244797 Oct 2010 JP
2011021929 Feb 2011 JP
2011165468 Aug 2011 JP
2011221659 Nov 2011 JP
2013057516 Mar 2013 JP
2013079961 May 2013 JP
2013524189 Jun 2013 JP
3190075 Apr 2014 JP
5477393 Apr 2014 JP
2014512556 May 2014 JP
2014174031 Sep 2014 JP
2018510451 Apr 2018 JP
20010030477 Apr 2001 KR
200278568 Mar 2002 KR
20070011685 Jan 2007 KR
20070014247 Feb 2007 KR
100754674 Sep 2007 KR
20080045397 May 2008 KR
2020100007563 Jul 2010 KR
20110011393 Feb 2011 KR
20110012784 Feb 2011 KR
20110113368 Oct 2011 KR
20130036038 Apr 2013 KR
20130131873 Dec 2013 KR
20140051391 Apr 2014 KR
20140104388 Aug 2014 KR
20160017070 Feb 2016 KR
20160048967 May 2016 KR
1040225 Nov 2014 NL
129033 Nov 2013 RO
200633681 Oct 2006 TW
WO2001022038 Mar 2001 WO
WO2001069567 Sep 2001 WO
WO2003032538 Apr 2003 WO
WO2010058376 May 2010 WO
WO2012083380 Jun 2012 WO
WO2012094805 Jul 2012 WO
WO2014018118 Jan 2014 WO
WO2014200766 Dec 2014 WO
WO2015147756 Oct 2015 WO
WO2016080669 May 2016 WO
WO2016104922 Jun 2016 WO
WO2016155761 Oct 2016 WO
WO2016196171 Dec 2016 WO
WO2016208835 Dec 2016 WO
WO2017013278 Jan 2017 WO
Non-Patent Literature Citations (27)
Entry
Author Unknown, “Desirable Android Wear smartwatch from LG,” Gulf News, Dubai, 3 pages, Jan. 30, 2015.
Author Unknown, “Fossil Q ups smartwatch game with handsome design and build,” Business Mirror, Makati City, Philippines, 3 pages, Dec. 20, 2016.
Author Unknown, “How Vesag Helps Kids Women and Visitors,” http://www.sooperarticles.com/health-fitness-articles/children-health-articles/how-vesag-helps-kids-women-visitors-218542.html, 2 pages, at least as early as May 20, 2015.
Author Unknown, “mHealth,” http://mhealth.vesag.com/?m=201012, 7 pages, Dec. 23, 2010.
Author Unknown, “mHealth Summit 2010,” http://www.virtualpressoffice.com/eventsSubmenu.do?page=exhibitorPage&showId=1551 &companyId=5394, 5 pages, Nov. 18, 2010.
Author Unknown, “MyKronoz ZeTime: World's Most Funded Hybrid Smartwatch Raised over $3M on Kickstarter, Running until Apr. 27th,” Business Wire, New York, New York, 3 pages, Apr. 21, 2017.
Author Unknown, “RedEye mini Plug-in Universal Remote Adapter for iPhone, iPod touch and iPad,” Amazon.com, 4 pages, date unknown.
Author Unknown, “Re iPhone Universal Remote Control—Infrared Remote Control Accessory for iPhone and iPod touch,” http://www.amazon.com/iPhone-Universal-Remote-Control-Accessory/dp/tech-data/B0038Z4 . . . , 2 pages, at least as early as Jul. 15, 2010.
Author Unknown, “Vesag Wrist Watch for Dementia Care from VYZIN,” http://vyasa-kaaranam-ketkadey.blogspot.com/2011/03/vesag-wrist-watch-for-dementia-care.html, 2 pages, Mar. 31, 2011.
Author Unknown, Vyzin Electronics Private Limited launches “Vesag Watch,” http://www.virtualpressoffice.com/showJointPage.do?page=jp&showId=1544, 5 pages, Jan. 6, 2011.
Author Unknown, “Vyzin Unveiled Personal Emergency Response System (PERS) with Remote Health Monitoring That Can Be Used for Entire Family,” http://www.24-7pressrelease.com/press-release/vyzin-unveiled-personal-emergency-response-system-pers-with-remote-health-monitoring-that-can-be-used-for-entire-family-219317.php, 2 pages, Jun. 17, 2011.
Author Unknown, “DeskThorityNet, Optical Switch Keyboards,” http://deskthority.net/keyboards-f2/optical-switch-keyboards-t1474.html, 22 pages, Jul. 11, 2015.
Epstein et al., “Economical, High-Performance Optical Encoders,” Hewlett-Packard Journal, pp. 99-106, Oct. 1988. [text only version].
GreyB, “Google Watch: Convert your arm into a keyboard,” http://www.whatafuture.com/2014/02/28/google-smartwatch/#sthash.Yk35cDXK.dpbs, 3 pages, Feb. 28, 2014.
IBM, “Additional Functionality Added to Cell Phone via “Learning” Function Button,” www.ip.com, 2 pages, Feb. 21, 2007.
Kim, Joseph, “2010 mHealth Summit Emerges as Major One-Stop U.S. Venue for Mobile Health,” http://www.medicineandtechnology.com/2010/08/2010-mhealth-summit-emerges-as-major.html, 3 pages, Aug. 26, 2010.
Krishnan et al., “A Miniature Surface Mount Reflective Optical Shaft Encoder,” Hewlett-Packard Journal, Article 8, pp. 1-6, Dec. 1996.
Rick, “How VESAG Helps Health Conscious Citizens,” http://sensetekgroup.com/2010/11/29/wireless-health-monitoring-system/, 2 pages, Nov. 29, 2010.
Sadhu, Rajendra, “How VESAG Helps People Who Want to ‘Be There’?,” http://ezinearticles.com/?How-Vesag-Helps-People-Who-Want-to-Be-There?&id-5423873, 1 page, Nov. 22, 2010.
Sadhu, Rajendra, “Mobile Innovation Helps Dementia and Alzheimer's Patients,” http://www.itnewsafrica.com/2010/11/mobile-innovation-helps-dementia-andalzheimer%E2%80%99s-patients/, 3 pages, Nov. 22, 2010.
Sherr, Sol, “Input Devices,” p. 55, Mar. 1988.
Tran et al., “Universal Programmable Remote Control/Telephone,” www.ip.com, 2 pages, May 1, 1992.
U.S. Appl. No. 15/879,223, filed Jan. 24, 2018, pending.
U.S. Appl. No. 16/399,868, filed Apr. 30, 2019, pending.
U.S. Appl. No. 16/840,336, filed Apr. 4, 2020, pending.
U.S. Appl. No. 16/872,600, filed May 12, 2020, pending.
U.S. Appl. No. 16/890,880, filed Jun. 2, 2020, pending.
Related Publications (1)
Number Date Country
20200326659 A1 Oct 2020 US
Provisional Applications (1)
Number Date Country
61864389 Aug 2013 US
Continuations (10)
Number Date Country
Parent 16422722 May 2019 US
Child 16912981 US
Parent 16247335 Jan 2019 US
Child 16422722 US
Parent 16179872 Nov 2018 US
Child 16247335 US
Parent 16033491 Jul 2018 US
Child 16179872 US
Parent 15969630 May 2018 US
Child 16033491 US
Parent 15829509 Dec 2017 US
Child 15969630 US
Parent 15637949 Jun 2017 US
Child 15829509 US
Parent 15465523 Mar 2017 US
Child 15637949 US
Parent 15261904 Sep 2016 US
Child 15465523 US
Parent 14455375 Aug 2014 US
Child 15261904 US