Computing devices such as tablets, slates, mobile phones, smart phones, televisions and others utilize display screens to output images to a user and one or more speakers to output audio. The audio and images may be synchronized with each other, for example when the device is utilized for watching a movie, or they may be independent of each other, for example when a user is browsing the web or listening to music.
Computing devices are often utilized to convey media to a user. Media may include video, images, and/or audio. As the demand for smaller and smaller computing devices grows, the ability to provision high quality media is impacted. For example, as housings for the computing devices become smaller in size, it becomes more difficult to incorporate displays and speakers, along with the other components. With respect to speakers, not only do the components themselves need to become smaller, the area utilized to produce high quality sound is also impacted. Generally, speakers utilize a volume or cabinet space to generate sound waves. If the volume is diminished, the audio may be compromised. This in addition to a need for audio directionality and intended positioning of the computing devices prevents the use of speakers in various positions.
In the present disclosure, various examples are discussed that enable high quality audio in computing systems utilizing novel speaker placement and audio signal adjustment. The computing devices may comprise: slates, tablets, mobile phones, smart phones, notebook computers, desktop computers, televisions, or other computing devices. While the present disclosure will be discussed primarily in the context of a tablet, it is expressly noted that the disclosure is not so limited.
Referring to
In the illustrated example, the housing 102 includes multiple surfaces. The multiple surfaces include the front planar surface 104, the first back planar surface 106, and the second back planar surface 116. A planar surface as used herein is a substantially flat surface. Each of the front and back planar surfaces are substantially parallel to one another, however, in other examples, various other components may be attached to or integrated with the planar surfaces, for example bumpers and/or friction devices to support the housing when placed on supporting surfaces.
Materials for the housing 102 and various surfaces 104, 106, 116 may include various transparent materials, such as glass or plastics, various metals, for example aluminum or steel. The various surfaces 104, 106, 116 may be manufactured such that the surfaces are integrated into a single housing, or alternatively, the various surfaces may be manufactured independently of one another and assembled together with various other components. Various paints, scratch resistant seals, and rubberized coatings may also be included, among other materials. The various surfaces may comprise combinations of materials. For example, the front planar surface 104 may comprise a predominantly glass surface; the first back planar surface 106 may comprise a predominantly plastic surface; and the second back planar surface 116 may comprise a predominantly aluminum surface with a soft touch paint. Other combinations are contemplated.
Disposed within the housing 102 is a speaker 108. The speaker 108 is disposed between the front planar surface 104 and the first back planar surface 106. The speaker 108 is disposed such that it directs audio 110 substantially orthogonally through the first back planar surface 106. The speaker 108 may be any speaker configured to generate audio in response to an audio signal. The speaker 108 may be disposed within the housing 102 or disposed within a cabinet within the housing 102. In various examples, the first back planar surface 106 may include one or more slots, holes, or channels into the housing 102 such that the audio may escape the housing in an efficient manner (viewed more easily in
The second back planar surface 116 may be disposed substantially parallel to the first back planar surface 106 to enable an acoustic response from the speaker 108, wherein the acoustic response comprises a reflection of the audio directed substantially orthogonally through the first back planar surface 106. The acoustic response may be enabled via the distance between the first back planar surface 104 and the second back planar surface 110. This may be the difference between height 114 and height 112, which are defined by the various planar surfaces 104, 106, and 116. In various examples the various planar surfaces may be substantially rectangular in shape.
In one example, the second back planar surface 116 may be integral with a pan that couples directly to the first back planar surface 106 and includes a depth. The pan may have dimensions smaller than that of the first back planar surface 106 forming a ledge around the periphery of the pan. Additionally, the depth of the pan may enable an acoustic response from the speaker 108 when the system is held by a user's hand or alternatively placed on a flat supporting surface such as a table, desk or other surface (as illustrated in
In various examples, the acoustic response 110 from the speaker 108 may be provided via one or more reflections from a supporting surface. The reflections off the surface may disperse the audio giving an omni-directional presence to a user. An omni-directional presence may appear to a user as surround sound. The acoustic response may be determined based upon the positioning of the first back planar surface 106 relative to the second back planar surface 116.
Referring to
In various examples, the first and second distances 212, 214 may be determined to provide an acoustic response while providing an aesthetically pleasing slim appearance. For example, the first and second distances may be determined such that they create a depth 216 to enable audio 208 to be directed orthogonally through the first back planar surface 204 and produce an acoustic response that is not immediately muted by a supporting surface 222. A supporting surface 222 may include a table, desk, protective case, a user's hand, lap, or other surface.
In the illustrated example the display 202 is configured to direct an image substantially orthogonal, as indicated by arrow 220, to the display surface 202. The speaker 206 is to direct audio substantially orthogonal, as indicated by arrows 208, to the first back surface 204. In various examples, a side wall coupled to the second back surface 210 may be configured to interact with audio 208 from the speaker 206 to provide a reflected acoustic response. This may be in addition to any acoustic response intended from a support surface 222 described previously.
As used herein, an acoustic response may be any response to the audio propagated by the speaker 206 once interfered with by another object, for example, a support surface 222 or an appendage of a user. In at least one example, a controller (not illustrated) disposed within the system may adjust audio to the speaker 206 based on an orientation of the system. The controller, based on the orientation, may determine an acoustic response is likely. For example, if the controller determines the system to be lying flat, the controller may determine that any audio propagated by the speaker 206 is likely to engage a reflective surface, for example the lap of a user or a support surface 222. The controller may adjust the audio signal accordingly. In another example if the controller determines that the system is upright, the controller may determine that any audio propagated by the system is not likely to engage a reflective surface, for example that the system is being held by a user. The controller may then adjust the audio accordingly.
In various examples, adjusting the audio signal may include increasing or decreasing a volume of the audio signal, increasing or decreasing a level or power of an independent a range of frequencies (e.g., low, mid-range, or high), or altering another audio characteristic of the signal such as adding predefined settings, i.e., reverb effects. The system may make determinations of orientation based upon data received via sensors. Sensors may include pressure sensors, gyroscope sensors, image sensors, or others.
Referring to
As illustrated, the front planar surface 302, the first back planar surface 304, and the second back planar surface 310 are substantially rectangular in shape. The second back planar surface 310 is illustrated as being smaller in dimension relative to the first back planar surface 304. This difference in dimension provisions a ledge or step around the periphery of the second back planar surface 310. The ledge or step enables audio from speakers 306A-B to propagate orthogonally through the first back planar surface 304 when the system is placed on a support surface or alternatively held by a user. While not illustrated, given the elevational view, the second back planar surface 310 is to elevate the first back planar surface 304 a predetermined height above a supporting surface to disperse the audio directed substantially orthogonally through the first back planar surface 304 to generate an omni-directional acoustic response.
Referring to
In various examples, the apparatus 400 may be an apparatus or system as described with reference to
In response to the determination of orientation and/or surface engagement, the controller may determine an adjustment for an audio signal to be transmitted to the speaker 406 for conversion to audio output. The audio signal may be consistent with a first output 430 or a second output 432, wherein the first output 430 is different than the second output 432. In various examples, the adjustment to the audio may include increases or decreases in volume, changes or alterations to particular frequencies or ranges of frequencies, or other known signal processing techniques. This, in various examples, may enable an automated and customized sound experience.
Referring to
Referring to
In response to the determining, the computing device may adjust an audio signal provisioned from a speaker directed orthogonally to a surface of the computing device at 502. For example, the computing device may adjust an audio signal in a first manner in response to a determination that the computing devices is engaging a surface; and adjust an audio signal in a second manner in response to a determination that the computing device is not engaging a surface.
Subsequent to adjusting the audio signal, the computing device may output the audio signal to provision an omni-directional acoustic response at 504. Output the audio signal to provision the omni-direction acoustic response at 504 may enable a user to perceive a high quality audio signal. The flow diagram may then end.
Referring to
In response to the determining, the computing device may adjust the audio signal at 602. Adjusting the audio signal may include adjusting a volume of the audio signal. In one example, in response to determining that the computing device is engaging a surface, the computing device may decrease a volume. In other examples, the volume may be increased. In still other examples, the computing device may adjust the audio signal by adjusting a frequency of the audio signal. Adjusting the frequency of the audio signal may include, among other things, increasing or decreasing a power level to a frequency or a range of frequencies.
In response to adjusting the audio, the computing device may output the audio to provision an omni-direction acoustic response at 604. Subsequent or during output of the audio, the computing device may determine that the support is no longer engaging the surface at 606. Again, one or more sensors may be utilized in making the determination. In response to the determination that the support is no longer engaging the surface, the computing device may adjust the audio signal at 608. In one embodiment, adjusting the audio signal may include increasing a volume of the audio signal. The increase in various examples may be in response to an estimated loss of reflection from the support surface. In other examples, other adjustments may be made to the audio signal. The method may then end at 610.
Although certain embodiments have been illustrated and described herein, it will be appreciated by those of ordinary skill in the art that a wide variety of alternate and/or equivalent embodiments or implementations calculated to achieve the same purposes may be substituted for the embodiments shown and described without departing from the scope of this disclosure. Those with skill in the art will readily appreciate that embodiments may be implemented in a wide variety of ways. This application is intended to cover any adaptations or variations of the embodiments discussed herein. Therefore, it is manifestly intended that embodiments be limited only by the claims and the equivalents thereof.
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