The present disclosure relates to portable electronic devices including touch-sensitive displays and the control of such portable electronic devices.
Electronic devices, including portable electronic devices, have gained widespread use and may provide a variety of functions including, for example, telephonic, electronic messaging and other personal information manager (PIM) application functions. Portable electronic devices include, for example, several types of mobile stations such as simple cellular telephones, smart telephones, wireless personal digital assistants (PDAs), and laptop computers with wireless 802.11 or Bluetooth capabilities.
Portable electronic devices such as PDAs or smart telephones are generally intended for handheld use and ease of portability. Smaller devices are generally desirable for portability. A touch-sensitive display, also known as a touchscreen display, is particularly useful on handheld devices, which are small and have limited space for user input and output. The information displayed on the touch-sensitive displays may be modified depending on the functions and operations being performed.
Embodiments of the present disclosure will now be described, by way of example only, with reference to the attached figures, wherein:
The following describes a portable electronic device and method of facilitating input at a portable electronic device having a touch-sensitive display, the method including: when a first portion of a keyboard is displayed in a keyboard area on the touch-sensitive display, detecting a navigation input in a navigation area on the touch-sensitive display; and in response to detecting the navigation input, displaying a second portion of the keyboard; wherein the keyboard area and the navigation area do not overlap.
In an aspect there is provided, a method of facilitating input at a portable electronic device having a touch-sensitive display, the method including: when a first portion of a keyboard is displayed in a keyboard area on the touch-sensitive display, detecting a navigation input in a navigation area on the touch-sensitive display; and in response to detecting the navigation input, displaying a second portion of the keyboard; wherein the keyboard area and the navigation area do not overlap.
In another aspect there is provided, a portable electronic device including: a touch-sensitive display configured to display information; and a processor connected to the touch-sensitive display to: detect a navigation input on the touch-sensitive display when a first portion of a keyboard is displayed in a keyboard area; and display a second portion of the keyboard in the keyboard area of the touch-sensitive display in response to the navigation input.
For simplicity and clarity of illustration, reference numerals may be repeated among the figures to indicate corresponding or analogous elements. Numerous details are set forth to provide an understanding of the embodiments described herein. The embodiments may be practiced without these details. In other instances, well-known methods, procedures, and components have not been described in detail to avoid obscuring the embodiments described. The description is not to be considered as limited to the scope of the embodiments described herein.
The disclosure generally relates to an electronic device, which is a portable electronic device in the embodiments described herein. Examples of portable electronic devices include mobile, or handheld, wireless communication devices such as pagers, cellular phones, cellular smart-phones, wireless organizers, personal digital assistants, wirelessly enabled notebook computers, and so forth. The portable electronic device may also be a portable electronic device without wireless communication capabilities, such as a handheld electronic game device, digital photograph album, digital camera, or other device.
A block diagram of an example of a portable electronic device 100 is shown in
The processor 102 interacts with other components, such as Random Access Memory (RAM) 108, memory 110, a display 112 with a touch-sensitive overlay 114 operably connected to an electronic controller 116 that together comprise a touch-sensitive display 118, an actuator 120, one or more force sensors 122, an auxiliary input/output (I/O) subsystem 124, a data port 126, a speaker 128, a microphone 130, short-range communications 132, and other device subsystems 134. The processor 102 may optionally interact with one or more actuators (not shown) to provide tactile feedback and one or more force sensors (not shown) to detect a force imparted on the touch-sensitive display 118. Interaction with a graphical user interface is performed through the touch-sensitive overlay 114. The processor 102 interacts with the touch-sensitive overlay 114 via the electronic controller 116. Information, such as text, characters, symbols, images, icons, and other items that may be displayed or rendered on a portable electronic device, is displayed on the touch-sensitive display 118 via the processor 102. The processor 102 may interact with an orientation sensor such as an accelerometer 136 that may be utilized to detect direction of gravitational forces or gravity-induced reaction forces.
To identify a subscriber for network access, the portable electronic device 100 uses a Subscriber Identity Module or a Removable User Identity Module (SIM/RUIM) card 138 for communication with a network, such as the wireless network 150. Alternatively, user identification information may be programmed into memory 110.
The portable electronic device 100 includes an operating system 146 and software programs or components 148 that are executed by the processor 102 and are typically stored in a persistent, updatable store such as the memory 110. Additional applications or programs may be loaded onto the portable electronic device 100 through the wireless network 150, the auxiliary I/O subsystem 124, the data port 126, the short-range communications subsystem 132, or any other suitable subsystem 134.
A received signal such as a text message, an e-mail message, or web page download is processed by the communication subsystem 104 and input to the processor 102. The processor 102 processes the received signal for output to the display 112 and/or to the auxiliary I/O subsystem 124. A subscriber may generate data items, for example e-mail messages, which may be transmitted over the wireless network 150 through the communication subsystem 104. For voice communications, the overall operation of the portable electronic device 100 is similar. The speaker 128 outputs audible information converted from electrical signals, and the microphone 130 converts audible information into electrical signals for processing.
The touch-sensitive display 118 may be any suitable touch-sensitive display, such as a capacitive, resistive, infrared, surface acoustic wave (SAW) touch-sensitive display, strain gauge, optical imaging, dispersive signal technology, acoustic pulse recognition, and so forth, as known in the art. A capacitive touch-sensitive display may include a capacitive touch-sensitive overlay 114. The overlay 114 may be an assembly of multiple layers in a stack including, for example, a substrate, a ground shield layer, a barrier layer, one or more capacitive touch sensor layers separated by a substrate or other barrier, and a cover. The capacitive touch sensor layers may be any suitable material, such as patterned indium tin oxide (ITO).
One or more touches, also known as touch contacts or touch events, may be detected by the touch-sensitive display 118. The processor 102 may determine attributes of the touch, including a location of a touch. Touch location data may include an area of contact or a single point of contact, such as a point at or near a center of the area of contact. The location of a detected touch may include x and y components, e.g., horizontal and vertical components, respectively, with respect to one's view of the touch-sensitive display 118. For example, the x location component may be determined by a signal generated from one touch sensor, and the y location component may be determined by a signal generated from another touch sensor. A signal is provided to the controller 116 in response to detection of a touch. A touch may be detected from any suitable object, such as a finger, thumb, appendage, or other items, for example, a stylus, pen, or other pointer, depending on the nature of the touch-sensitive display 118. Multiple simultaneous touches may be detected.
The touch-sensitive display 118 is also configured to detect a gesture. A gesture, such as a swipe, is a type of touch, that begins at an origin point and continues to a finishing point while touch contact is maintained. A swipe may be long or short in distance, or duration, or both distance and duration. Two points of the swipe may be utilized to determine a vector that describes a direction of the swipe. The direction may be referenced with respect to the touch-sensitive display 118, the orientation of the information displayed on the touch-sensitive display 118, or another reference. For the purposes of providing a reference, “horizontal” as utilized herein is substantially left-to-right or right-to-left relative to the orientation of the displayed information, and “vertical” as utilized herein is substantially upward or downward relative to the orientation of the displayed information. The origin point and the finishing point of the swipe may be utilized to determine the magnitude or distance of the swipe. The duration of the swipe may be determined from the origin point and finishing point of the swipe in time. The processor 102 receives data from the controller 116 to determine the direction, magnitude, and duration of the swipe. The gesture may be tracked and a plurality of sub-vectors determined for each gesture. The final sub-vector may be utilized to determine a distance and duration of a final portion of the gesture. The processor 102 receives data from the controller 116 to determine the speed of the swipe based on the distance and duration of the final portion of the gesture.
Actuators 120 may be disposed beneath the touch-sensitive display 118 and may be depressed or activated by applying sufficient force to the touch-sensitive display 118 to overcome the actuation force of the actuator 120. The actuators 120 may provide input to the processor 102 when actuated. Actuation of the actuator(s) 120 may result in provision of tactile feedback. Force sensors 122 may work in combination with the actuators to measure an applied force. Force generally refers to force measurements, estimates, and/or calculations, such as pressure, deformation, stress, strain, force density, force-area relationships, thrust, torque, and other effects that include force or related quantities.
According to the method of
Continued reference is made to
The navigation area 300 and keyboard area 302 may be continuously displayed on the touch-sensitive display 118 or may be displayed in response to an indicator 312 being located in a text field. In the example of
When a portion of the keyboard 304 is displayed, regions on the touch-sensitive overlay 114 are associated with the keys 306. A touch anywhere on a region results in selection of the key 306 associated therewith and entering of the associated character into the text field. The regions may align with the keys 306 of the touch-sensitive display 118 or may be larger or smaller than the keys 306. Because only a portion of the keyboard 304 is displayed at any one time, keys 306 of the keyboard 304 may be displayed in a larger size than would be possible if all of the keys 306 were to be displayed on the touch-sensitive display 118 together. Further, the regions on the touch-sensitive overlay 114 that are associated with the keys 306 may also be larger.
In this example, the keyboard 304 is a QWERTY keyboard, such as the QWERTY keyboard shown in
When typing an email message, for example, characters associated with the regions at which keyboard input is detected on the keyboard area 302 are displayed on the touch-sensitive display 118. As shown in
When a different keyboard portion is displayed in the keyboard area 302, the regions on the touch-sensitive overlay 114 that are associated with the keys 306 are associated with different keys 306. For example, region 316, which is shown in dashed line to indicate that the region is not displayed on the touch-sensitive display 118, is associated with key “Q” in
In the method of
Navigation between keyboard portions may be determined based on a length and duration of a swipe, for example. A short and/or slow swipe may cause the keyboard portion to move one key width in the direction of the swipe, whereas a long and/or fast swipe may cause the keyboard portion to move a greater distance in the direction of the swipe. Alternatively, any swipe may move the keyboard portion one key width in the direction of the swipe so that multiple swipes may be detected before the entire keyboard has been displayed.
Continued reference is made to
The navigation area 300 may include lines 502 to indicate quadrant location in order to facilitate correct selection of the desired quadrant. The quadrants of the navigation area 300 may alternatively be provided with different colors in order to distinguish between the quadrants. Displaying lines and/or colors to indicate quadrant location may be a user-modifiable setting.
The navigation area 300 may be configured to detect touch input, gesture input or both. In the example of
Referring to
The examples of
Referring to
Referring to
In another embodiment, the first and second keyboard portions, when combined, form a full keyboard. The navigation area 300 may function as a switch to toggle the keyboard area 302 between the first portion of the keyboard, which is displayed when no touch is detected, and the second portion of the keyboard, which is displayed when a touch is detected. In this embodiment, the second portion of the keyboard continues to be displayed while the touch in the navigation area 300 is maintained.
Although the keyboard area 302 has been described as displaying a portion of the overall virtual keyboard, some often-selected keys may be continuously displayed in the keyboard area 302. Often-selected keys may include function keys such as: delete, enter/return, shift and space, for example. The often-selected keys may be continuously displayed in the same position in the keyboard area 302 independent from the keyboard portions. For example, the delete key may always be positioned at the top right corner of the keyboard area 302. In one embodiment, the often-selected keys include characters that are determined by a frequency ranking based on past keyboard input by the user.
Although the navigation area 300 and keyboard area 302 have been shown as being adjacent to one another, the navigation area 300 and keyboard area 302 may alternatively be spaced from one another. Further, although the navigation area 300 and keyboard area 302 have been shown as square or rectangular in shape, both areas 300, 302 may be any shape that facilitates touch and/or gesture input by a user. The keyboard is not limited to being a QWERTY keyboard. The keyboard may be a DVORAK keyboard or another language keyboard such as an AZERTY keyboard, for example.
The method and apparatus described herein facilitates typing on the small touch-sensitive display 118 of a portable electronic device 10. By displaying a portion of a keyboard, the keys 306 may be larger to increase typing accuracy and reduce unintentional key selection.
The present disclosure may be embodied in other specific forms without departing from its spirit or essential characteristics. The described embodiments are to be considered in all respects only as illustrative and not restrictive. The scope of the present disclosure is, therefore, indicated by the appended claims rather than by the foregoing description. All changes that come within the meaning and range of equivalency of the claims are to be embraced within their scope.