Consumer electronic devices may be equipped with wireless communication circuitry that emits radio frequency (RF) electromagnetic fields that can be absorbed by human tissue in close proximity to the wireless communication circuitry. For example, the wireless communications circuitry may transmit and receive RF signals in mobile telephone RF bands, WiFi network RF bands, GPS RF bands, etc. To protect humans from harmful levels of RF radiation when using such devices, government agencies have imposed regulations limiting RF transmission power from some wireless electronic devices, such as tablet computers and mobile phones.
In some jurisdictions, specific absorption rate (SAR) standards are in place that impose maximum energy absorption limits on electronic device manufacturers. These standards impose restrictions on the amount of electromagnetic radiation that may be emitted at any particular point within a given distance of a transmitting radio frequency (RF) antenna. Particular attention is given to radiation limits at distances within a few centimeters from the device (e.g., 0-3 centimeters), where users are likely to place a human body part near the transmitting antenna. Such restrictions may be satisfied by reducing transmitted carrier signal strength when a dielectric body (e.g., a human body part) is detected in the proximity of the transmitter. Such proximity detection can be performed in a variety of ways, such as capacitive sensing or other means of measuring signal interference.
While reducing transmitted carrier signal strength may ensure user safety and/or compliance with local safety regulations, significant reductions in the transmitted carrier signal strength can result in decreased device performance, including without limitation dropped connections (e.g., a dropped call) and/or delays in the transmission of other information. The disclosed technology maximizes a transmission signal strength while controlling transmission energy of an electronic device to remain, on average, below a predetermined safety threshold. According to one implementation, a predictive methodology uses a variety of inputs to determine a nonlinear “back-off” function that gives preference to critical transmissions and mitigates a number of resulting dropped connections and other performance issues.
Implementations described and claimed herein provide a wireless transmission system that predicts an average energy emanating from an electronic device over a time interval and determines a non-linear back-off function defining at least one transmission power reduction. When transmission power is adjusted according to back-off function, the predicted average energy of the future time interval is adjusted to satisfy a power condition, thereby ensuring compliance with one or more regulatory standards.
The RF transmitter 102 is capable of transmitting at a variety of different power levels. A power controller 108 varies the transmission power of the RF transmitter 102 responsive to receipt of power instructions from a base station (not shown) and/or instructions from a back-off module 106. For example, a base station may instruct the electronic device 100 to transmit at different power levels based on the location of the electronic device 100 relative to the base station. Lower power levels may be suitable for communications when the electronic device 100 is in a close proximity to the base station, while a higher or maximum power level may be requested by the base station when the electronic device 100 is further away from the base station.
In some instances, the power controller 108 receives power instructions from the back-off module 106 rather than the base station. In general, the back-off module 106 instructs the power controller 108 to alter the power of the RF transmitter 102 when a proximity event occurs at a time when power emissions of the RF transmitter 102 are predicted to exceed a predetermined energy threshold. A “proximity event” refers to, for example, a detection of a dielectric object such as a human body part within a threshold distance of the RF transmitter 102. Proximity events of the electronic device 100 are detected by a proximity sensor 104 that utilizes one or more suitable sensing technologies (capacitive sensing, infrared sensing, transmission signal reflection, etc.) for detecting the presence of a dielectric object. A proximity event is triggered when measurements of the proximity sensor 104 indicate that one or more proximity conditions are satisfied.
In various implementations, the proximity sensor 104 has different sensing capabilities. For example, the proximity sensor 104 may be able to determine whether an object in proximity of the RF transmitter 102 is human, non-human (e.g., a dog), or inanimate (e.g., a chair). In another implementation, the proximity sensor 104 determines a type of object such as whether the object triggering the sensor is a hand, leg, user's head, torso, etc. This object-type determination capability can be useful in jurisdictions where SAR standards vary based on the type of object. For example, regulations may impose a greater reduction in transmitter power if the object is a user's torso rather than a user's hand. Other sensors in devices may be used to distinguish object types. For example, 2D and 3D cameras installed on computing devices or located proximate to computing devices may capture images that are processed to determine whether an object is a certain type.
The proximity sensor 104 sends proximity event information to the back-off module 106, and the back-off module 106 uses the proximity event information and/or a variety of other inputs to determine an applicable safety standard. In one implementation, the back-off module 106 models an amount of energy expected to emanate from the RF transmitter 102 over a predetermined future time interval referred to herein as a “response interval.” The response interval may refer to, for example, a time allotted by a regulatory authority to take appropriate response (e.g., reduce transmission power) responsive to detection of a proximity event that violates a regulatory safety standard.
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In one implementation, the back-off module 106 continuously computes the predicted transmission power 110 for a response interval (Δt), which may be a rolling time window. For example, the back-off module 106 computes the predicted transmission power 110 for a time interval spanning the next 30 seconds and, after one time period (e.g., a second) passes, re-computes the predicted transmission power 110 for the next 30 time periods. In some implementations, the back-off module 106 computes the predicted transmission power 110 for the response interval (Δt) by taking into account information pertaining to past transmissions or expected future transmissions outside of the response interval (Δt). For example, computation of the predicted transmission power 110 for the next 30 time periods may entail some consideration of transmission activities that occurred over the previous hour.
When the proximity sensor 104 detects a proximity event (e.g., by satisfaction of a proximity condition), the back-off module 106 determines a degree of transmission power reduction to impose in order to reduce predicted transmission power 110 of the RF transmitter 102 by an amount sufficient to facilitate compliance with an applicable safety standard, such as a SAR standard set by a local regulation authority. Because SAR standards vary widely between jurisdictions and also based on the type and distance of object detected, the back-off module 106 may select an applicable safety standard based on the specific circumstances of each detected proximity event.
The transmission power plot of exploded view 112 further indicates a safety threshold corresponding to an applicable safety standard that is selected by the back-off module 106. In one implementation, the safety threshold corresponds to a maximum average energy emanating from the RF transmitter 102 than can permissibly be absorbed by an object in proximity to the RF transmitter 102 during a determined response interval (e.g., Δt). For example, the U.S. Federal Communications Commission (FCC) imposes a regulation under which phones sold in the United States have an average SAR level at or below 1.6 watts per kilogram (W/kg) taken over the volume containing a mass of 1 gram of tissue that is absorbing the most signal. Different regulations may be imposed for different types of devices (e.g., phone, tablet computer, etc.) and for different body parts (e.g., torso, hands, legs) in proximity of the RF transmitter 102.
In at least one implementation, the safety threshold is based on a default stored value. Information used to determine the safety threshold may include, for example, a specific type of object triggering the proximity event, a known distance to the triggering object, the type of the electronic device 100, the geographical location in which the electronic device 100 is located, etc. In at least one implementation, the safety threshold represents a threshold absorption rate accounting for aggregated transmissions of multiple transmitters operating on the electronic device 100.
The back-off module 106 uses the safety threshold and the predicted transmission power 110 to compute or otherwise determine a “back-off function” (e.g., an example back-off function 114) to impose over the response interval (Δt). As used herein, “back-off function” refers to a mathematically described reduction in transmission power that may be static or a dynamic (time-varying) function. When summed with the predicted transmission power 110, the back-off function reduces the predicted transmission power 110 over the response interval (Δt) so that the average transmission power of the electronic device during the response interval (see, e.g., “Average Power” in exploded view 112) is at or below the safety threshold. In one implementation, the back-off function is a step function that gradually reduces the predicted transmission power 110 in multiple “steps” over the response interval (Δt). The various steps may be of variable and/or adaptive step size.
The back-off function is selected so as to minimize the total amount of back off implemented over the response interval Δt. For example, the back-off module 106 may identify scheduled decreases in transmission power and determine that such decreases offset or partially offset scheduled increases in transmission power. Consequently, the back-off module 106 may determine that it is permissible for transmitted power to exceed the safety threshold in some instances because such overshoot is offset by lower power periods in other instances.
In one implementation, the back-off function is selected so as to maximize the total transmission power of the electric device (e.g., a total integral of the predicted transmission power 110 taken over Δt), while allowing for compliance with the applicable safety standard. Such maximization increases device performance by reducing transmission delays, dropped calls, etc.
In one implementation, the back-off function prioritizes critical transmissions over non-critical transmissions. For example, the back-off function can elect to distribute a total amount of back off such that more back off is imposed during non-critical transmission than during critical transmissions. Critical transmissions may refer to, for example, voice calls, an emergency services call (e.g., a 911 call), an in-process call involved in a hand-over process between cell towers or base stations, etc. In contrast to critical transmissions, non-critical transmissions may refer to, for example, scheduled periodic data “checks” with a base station to check for new email messages, software updates, and other automatic data downloads.
If the proximity sensor 104 detects a proximity event during a critical transmission, the back-off module 106 may select a back-off function that imposes a small or zero degree of back-off during the immediate critical transmission (e.g., t0 to t1) and a larger degree of back-off at later times (e.g., t2 to 5) when non-critical transmissions are scheduled to occur. For example, the back-off module 106 may be able to readily determine an exact amount of transmission power back off that causes a call to be dropped at a given time. Using such information, the back-off module 106 can elect to intelligently distribute back-off across the response interval Δt so as to avoid dropping the call or to delay an inevitable call drop until the exact moment when transmission power bumps the “average power” of the response interval Δt above the safety threshold.
Responsive to detection of a proximity event, the back-off module 106 determines and communicates the back-off function to the power controller 108. The power controller 108 adjusts the transmission power of the RF transmitter 102 according to the back-off function. In some instances, transmitter power may not be reduced when a proximity event is detected. For example, the back-off module 106 may determine not to impose a back-off during the response interval (Δt) because the electronic device 100 is currently transmitting at a relatively low power and transmission power is not expected to increase or spike so as to cause the average power to exceed the Safety Threshold during the response interval.
In one implementation, the back-off module 106 continuously re-computes a “best” back-off function and dynamically alters a currently-imposed back-off function to maximize a total transmission power and/or mitigate interference with critical transmissions. For example, the back-off module 106 may recognize that if a current voice call ends within 15 seconds or less, reductions in transmitter power can be imposed during the end of the interval Δt that are sufficient to reduce the average transmission power of the response interval Δt to at or below the safety threshold. If the call is still in progress near the end of the 15 seconds, the back-off module 106 can then elect to dynamically alter the implemented back-off function and reduce transmitter power immediately during the critical transmission to ensure that the applicable safety standard is not violated.
In one implementation, special priority is given to emergency communications (e.g., 911 calls). If an emergency communication is initiated or ongoing at a time when a proximity event is detected by the proximity detector 104, the back-off module 106 determines a back-off function that does not permit power adjustments that interfere with the emergency communication. For example, the back-off module 106 may select a back-off function that reduces transmission power associated with other scheduled and/or concurrent transmissions. If such reductions are insufficient to facilitate compliance with the applicable safety standard, the back-off module 106 may allow for violation of the safety standard. For example, a user may trigger an emergency override condition, such as by pressing a button on the electronic device 100 or by providing specific input (e.g., typing 911) indicating occurrence of an emergency condition.
Furthermore, transmission power need not be kept at the highest level to complete an emergency call. A small reduction in transmission power may still allow the emergency call to continue and can potentially constitute the start of the controlled proximity back off algorithm. If, however, the emergency call experiences a poor connection (risking a dropped call) and/or takes longer than the time allowed for back off to an acceptable transmission power, the system may opt to override the back off process until the emergency call has ended naturally (e.g., one party to the call disconnects).
Although the example back-off function 114 of
Based on the predictive model, the back-off module 206 determines and dynamically adjusts a back-off step function (e.g., an example back-off step function 214) that can be implemented to ensure compliance with an applicable safety standard. The applicable safety standard may be a default safety standard or a safety standard determined in real-time based on inputs received from a proximity detector 212. For example, the proximity detector 212 may determine a general type of object (e.g., human/non-human) triggering a proximity event and/or details regarding the object, such as whether the object is a limb, torso, head, etc. Using the proximity event information, the back-off module 206 can define or refine a previously-selected safety standard (e.g., a default standard).
In one implementation, the back-off module 206 initially selects and/or modifies the applicable safety standard by analyzing information from the proximity detector 212 along with location information from a GPS unit (not shown). For example, the United Kingdom and the United States may impose different SAR standards for a human torso in proximity to an RF transmitter. Therefore, GPS information can be used to identify an appropriate legal or regulatory jurisdiction and a corresponding set of safety standards from which the back-off module 206 selects the applicable safety standard.
While a transmitter of the electronic device is actively transmitting, the back-off module 206 determines a current amount of energy emanating from the electronic device and a corresponding specific absorption rate (SAR) for an object in proximity of one or more transmitting antennas. For example, the current amount of energy emanating from the device can be determined based on transmission characteristics such as current transmission frequency information (e.g., current cellular band, cellular frequency), current transmission power, and information identifying the Radio Access Technology (RAT) supporting the electronic device (e.g., 3G, 4G, LTE, Bluetooth, WiFi, etc.). Different transmission frequencies may correspond to different SARs; therefore, such transmission characteristics can be useful in determining or estimating the actual SAR potentially affecting body tissue in close proximity to the electronic device.
In one implementation, the back-off module 206 accesses one or more tables to determine a mapping between a maximum transmission power and a safe transmission power for a current transmission frequency. The “safe transmission power” is a value approximated based on the applicable safety standard. For example, a stored table may indicate a set amount by which to reduce transmission power throughout the duration of a predetermined time interval (e.g., the FCC timer-based interval) to comply with the applicable safety standard. In one such implementation, a table stores back-off values derived based on an assumption of steady state transmission characteristics (e.g., without consideration of time-dependent back-off adjustments). The back-off module 206 identifies one or more relevant back-off values from the stored table and uses such values as a baseline (e.g., a starting point) for intelligently adjusting and distributing the back-off (e.g., via the back-off step function 214) throughout a response interval.
Derivation and dynamic modification of the back-off step function is performed based on analysis of a variety of inputs continuously received by the electronic device. Among such inputs, the back-off module 206 analyses channel conditions that quantify signal quality between the electronic device and a transmitting entity, such as a tower or base station. Example channel conditions include without limitation Received Signal Strength Indicator (RSSI) quality estimates, channel path loss estimates, channel quality indicators (CQIs), and fading conditions. For example, a fading condition may tend to indicate that the electronic device is traveling away from corresponding transmission tower, and that the transmission tower is likely to request that the electronic device increase transmission power at a set point in time in the near future. To accommodate for the expected transmission power increase, the back-off module 206 may determine a back-off step function that imposes a greater degree of back off prior to the scheduled power increase.
In another implementation, a weak RSSI indicates that a voice call may be dropped at a relatively low power level. The back-off module 206 selects a back-off step function that ensures a minimum baseline power throughout the response interval or as long as possible so as to prevent dropping of the call or to mitigate a likelihood that the call is dropped. As the electronic device continually receives updates indicating signal improvement and/or worsening, the back-off module 206 dynamically adjusts the back-off function to maximize transmission power to an extent possible while facilitating continued compliance with the applicable safety standard.
The back-off step function may be derived based on a consideration of scheduled channel activities during the response interval. Scheduled channel activities may refer to, for example, scheduled critical and non-critical transmissions, as well as information describing whether the electronic device is in a “handover” (e.g., handoff) mode between two different RAT networks. If, for example, control of the electronic device is transferred between a cellular network and a WiFi network, an applicable safety standard may change at the time of the handoff. For example, SARs standards in the United States apply to cellular transmissions but not WiFi transmissions. Accordingly, the back-off module 206 may determine not to impose back off during the first portion of a response interval because the electronic device is about to be transferred to an RAT network for which the currently-applicable safety standard is no longer relevant.
Further, the back-off module 206 also receives and analyzes ambulatory information indicating whether the electronic device is static or mobile. Movement of the mobile device can be determined from a variety of factors including Assisted GPS, data from inertial measurement devices (accelerometers, gyroscopes, and compasses, for example), base station information, including handover or handoff events, etc. If, for example, the electronic device is moving away from a corresponding transmitter, the back-off module 206 may be able to determine a likelihood that the corresponding transmitter will request an increase in transmission power of the electronic device in the near future. Likewise, if the electronic device is moving toward a corresponding transmitter, the back-off module 206 may be able to determine a time at which an increased degree of back off can be imposed without interfering with a critical transmission. Such information can be used to adaptively vary the “steps” in the resulting back-off step function 214.
Further still, the back-off module 206 also generates the back-off step function 214 based on actual current and predicted transmission power levels of the electronic device. The back-off module 206 may receive information regarding the “next power level” of all different wireless transmitters of the electronic device. Such information may be communicated between the mobile device and one or more base stations in a closed control power loop.
For each identified “special circumstance” (e.g., each scheduled channel activity, atypical channel condition, identified “hand-off”, etc.), the back-off module 206 evaluates and selects one or more corresponding power levels (e.g., steps of the back-off step function). Collectively, the various power levels of the back-off step function 214 are selected to maximize performance of the electronic device over a response interval while facilitating compliance with the applicable safety standard. Such performance maximization is achieved, for example, by maximizing transmission power of the electronic device throughout the duration of the response interval and/or by mitigating interference with critical transmissions.
The back-off module 206 determines and communicates the back-off function to a power controller 204 that adjusts the transmission power of the electronic device according to the back-off function.
If the decision operation 302 decides that the proximity condition is satisfied, a determination operation 304 determines a safety threshold defining a maximum permissible average energy emanating from an electronic device over a response interval. In one implementation, a default safety threshold is assumed. In another implementation, the safety threshold is determined and/or refined in real-time responsive to detection of a proximity event and/or receipt of information from a proximity detector. For example, a proximity detector may collect data identifying a specific type of object that triggered an event (e.g., a human arm), and an applicable safety standard (e.g., an SAR regulation) can be selected accordingly. In one implementation, GPS information is used to supplement proximity detector data so as to allow for selection of the applicable safety standard based on identification of a governing regulatory authority.
A prediction operation 306 predicts the average energy emanating from the electronic device over the response interval. Such prediction takes into account a variety of conditions and considerations including without limitation transmission characteristics (e.g., current transmission power, transmission frequency, transmission band, RAT technology), channel conditions, scheduled channel activities, detectable “handovers” of the device from one RAT network to another; ambulatory conditions regarding movement of the electronic device, expected transmission power changes of one or more antennas on the electronic device, etc. In one implementation, the predicted average energy emanating from the electronic device is a total aggregated energy output from multiple transmitters.
Another determination operation 308 determines a back-off step function that maximizes a total transmission energy while reducing the predicted average transmission energy of the response interval to below the safety threshold. In one implementation, the back-off step function has a variable and/or adaptive step size with steps selected to maximize device performance in relation to one or more identified channel conditions, channel activities, static or dynamically altering transmission characteristics, etc. For example, the back-off function may prioritize critical transmissions over non-critical transmissions and include one or more back-off steps sized to mitigate interference with a critical transmission. Interference with a critical transmission is mitigated when, for example, power reductions are timed to effect non-critical transmissions disproportionally more than critical transmissions.
An adjustment operation 310 adjusts power to one or more transmitters of the electronic device according to the back-off step function. In some circumstances, the back-off function may indicate that compliance with an applicable safety standard (e.g., average energy at or below the determined safety threshold) can be achieved without reducing transmitter power. In such case, the adjustment operation 310 does not adjust power to one or more transmitters responsive to detection of the proximity event.
An input analysis operation 312 continually analyzes newly-received inputs to determine whether any transmission conditions of the electronic device have changed. For example, the input analysis operation 312 may determine whether there are changed channel activities, channel conditions, or transmission characteristics (e.g., transmission power changes via request of a base station, transmission frequency changes), etc. If the input analysis operation 310 determines that there are changed transmission conditions, the decision operation 302 decides whether the proximity condition is still satisfied. If the proximity condition is still satisfied, operations 304 through 310 are repeated, and the back-off function is dynamically updated based on the changed transmission conditions. If the proximity condition is no longer satisfied, a waiting operation 316 commences to wait for satisfaction of a proximity condition during a next transmission of the electronic device.
If the input analysis operation 312 determines that there are not any changed transmission conditions, another determination operation 314 determines whether the electronic device continues to transmit data. If the electronic device continues to transmit data, the input analysis operation 312 repeats a check for changed transmission conditions.
If the determination operation 314 determines that the electronic device is no longer transmitting data, the waiting operation 316 commences to wait for satisfaction of a proximity condition during a next transmission of the electronic device.
One or more application programs 412 are loaded in the memory 404 and executed on the operating system 410 by the processor 402. Examples of applications 412 include without limitation a back-off module, proximity detection module, etc. The mobile device 400 includes a power supply 416, which is powered by one or more batteries or other power sources and which provides power to other components of the mobile device 400. The power supply 416 may also be connected to an external power source that overrides or recharges the built-in batteries or other power sources.
The mobile device 400 includes one or more communication transceivers 430 to provide network connectivity (e.g., mobile phone network, Wi-Fi®, BlueTooth®, etc.). The mobile device 400 also includes various other components, such as a positioning system 420 (e.g., a global positioning satellite transceiver), one or more accelerometers 422, and additional storage 428. Other configurations may also be employed.
In an example implementation, a back-off module, proximity detector, and other modules may be embodied by instructions stored in memory 404 and/or storage devices 428 and processed by the processor 402. Applicable safety standards (e.g., SAR standards) and/or tables including back-off values may be stored in memory 404 and/or storage devices 428 as persistent datastores.
The mobile device 400 may include a variety of tangible computer-readable storage media and intangible computer-readable communication signals. Tangible computer-readable storage can be embodied by any available media that can be accessed by the mobile device 400 and includes both volatile and nonvolatile storage media, removable and non-removable storage media. Tangible computer-readable storage media excludes intangible communications signals and includes volatile and nonvolatile, removable and non-removable storage media implemented in any method or technology for storage of information such as computer readable instructions, data structures, program modules or other data. Tangible computer-readable storage media includes, but is not limited to, RAM, ROM, EEPROM, flash memory or other memory technology, CDROM, digital versatile disks (DVD) or other optical disk storage, magnetic cassettes, magnetic tape, magnetic disk storage or other magnetic storage devices, or any other tangible medium which can be used to store the desired information and which can accessed by mobile device 400. In contrast to tangible computer-readable storage media, intangible computer-readable communication signals may embody computer readable instructions, data structures, program modules or other data resident in a modulated data signal, such as a carrier wave or other signal transport mechanism. The term “modulated data signal” means a signal that has one or more of its characteristics set or changed in such a manner as to encode information in the signal.
An example method includes determining a back-off function defining at least one transmission power adjustment. The at least one transmission power adjustment is effective to adjust a predicted average energy of an electronic device over a future time interval to satisfy a power condition. The example method also includes adjusting transmission power of the electronic device according to the back-off function responsive to satisfaction of a proximity condition.
Another example method of any previous example method wherein the back-off function is a step function.
Another example method of any previous example method wherein the back-off function prioritizes critical transmissions over non-critical transmissions.
Another example method of any previous example method wherein the back-off function maximizes a total average energy emanating from the electronic device while controlling the predicted average energy to satisfy the power condition.
Another example method of any previous example method further including defining the power condition based on a type of object triggering the proximity event.
Another example method of any previous example method further including defining the power condition based on a geographical location of the electronic device provided by a global positioning system (GPS).
Another example method of any previous example method further including predicting the average energy based on channel conditions.
Another example method of any previous example method further including predicting the average energy based on at least one of a current channel activity and a scheduled channel activity.
An example apparatus includes a back-off module that determines a back-off function defining at least one transmission power adjustment. The at least one transmission power adjustment is effective to adjust a predicted average energy of an electronic device over a future time interval to satisfy a power condition. A power controller adjusts power of at least one transmitter of the electronic device according to the back-off function.
Another example apparatus of any previous example apparatus wherein the back-off function has a variable step size.
Another example apparatus of any previous example apparatus wherein the back-off module dynamically adjusts the back-off function throughout the future time interval.
Another example apparatus of any previous example apparatus wherein the back-off function prioritizes critical transmissions over non-critical transmissions.
Another example apparatus of any previous example apparatus wherein the non-linear back-off function maximizes a total energy emanating from the electronic device while adjusting the predicted average energy to satisfy the power condition.
Another example apparatus of any previous example apparatus wherein the back-off module predicts the average energy based on at least one of a current channel activity and a scheduled channel activity.
Another example apparatus of any previous example apparatus wherein the back-off module predicts the average energy based on observed channel conditions.
Another example apparatus of any previous example apparatus wherein the back-off module defines the power condition based on a type of object triggering the proximity event.
Another example apparatus of any previous example apparatus wherein the back-off module defines the power condition based on a geographical location of the electronic device provided by a global positioning system (GPS).
Another example method includes determining a back-off step function with a variable step size. The back-off step function defines at least one transmission power adjustment effective to adjust a predicted average energy of an electronic device over a future time interval to satisfy a power condition while maximizing total transmission power of the electronic device over the future time interval. The example method further includes adjusting the transmission power according to the back-off step function responsive to detection of a proximity event.
Another example method of any previous example method wherein the back-off step function minimizes transmission power reductions that occur during critical transmissions.
Another example method of any previous example method wherein the determining the back-off step function further includes determining the back-off step function based on at least one of channel conditions and channel activities.
Another example apparatus includes means for determining a back-off function defining at least one transmission power adjustment. The at least one transmission power adjustment is effective to adjust a predicted average energy of an electronic device over a future time interval to satisfy a power condition. The example apparatus also includes means for adjusting transmission power of the electronic device according to the back-off function responsive to satisfaction of a proximity condition.
Another example apparatus of any previous example apparatus wherein the back-off function is a step function.
Another example apparatus of any previous example apparatus wherein the back-off function prioritizes critical transmissions over non-critical transmissions.
Another example apparatus of any previous example apparatus wherein the back-off function maximizes a total average energy emanating from the electronic device while controlling the predicted average energy to satisfy the power condition.
Another example apparatus of any previous example apparatus further including means for defining the power condition based on a type of object triggering the proximity event.
Another example apparatus of any previous example apparatus further including means for defining the power condition based on a geographical location of the electronic device provided by a global positioning system (GPS).
Another example apparatus of any previous example apparatus further including means for predicting the average energy based on channel conditions.
Another example apparatus of any previous example apparatus further including means for predicting the average energy based on at least one of a current channel activity and a scheduled channel activity.
Yet another example apparatus includes means for determining a back-off step function with a variable step size. The back-off step function defines at least one transmission power adjustment effective to adjust a predicted average energy of an electronic device over a future time interval to satisfy a power condition while maximizing total transmission power of the electronic device over the future time interval. The example apparatus further includes means for adjusting the transmission power according to the back-off step function responsive to detection of a proximity event.
Another example apparatus of any previous example apparatus wherein the back-off step function minimizes transmission power reductions that occur during critical transmissions.
Another example apparatus of any previous example apparatus wherein the means for determining the back-off step function further includes means for determining the back-off step function based on at least one of channel conditions and channel activities.
The implementations of the invention described herein are implemented as logical steps in one or more computer systems. The logical operations of the present invention are implemented (1) as a sequence of processor-implemented steps executing in one or more computer systems and (2) as interconnected machine or circuit modules within one or more computer systems. The implementation is a matter of choice, dependent on the performance requirements of the computer system implementing the invention. Accordingly, the logical operations making up the embodiments of the invention described herein are referred to variously as operations, steps, objects, or modules. Furthermore, it should be understood that logical operations may be performed in any order, adding and omitting as desired, unless explicitly claimed otherwise or a specific order is inherently necessitated by the claim language.
The above specification, examples, and data provide a complete description of the structure and use of exemplary embodiments of the invention. Since many implementations of the invention can be made without departing from the spirit and scope of the invention, the invention resides in the claims hereinafter appended. Furthermore, structural features of the different embodiments may be combined in yet another implementation without departing from the recited claims.
Number | Name | Date | Kind |
---|---|---|---|
4016490 | Weckenmann et al. | Apr 1977 | A |
4729129 | Koerner | Mar 1988 | A |
4806944 | Jacomb-Hood | Feb 1989 | A |
5166679 | Vranish et al. | Nov 1992 | A |
5212621 | Panter | May 1993 | A |
5408690 | Ishikawa et al. | Apr 1995 | A |
5564086 | Cygan et al. | Oct 1996 | A |
6178310 | Jeong | Jan 2001 | B1 |
6657595 | Phillips et al. | Dec 2003 | B1 |
6989745 | Milinusic et al. | Jan 2006 | B1 |
7009944 | Hulbert | Mar 2006 | B1 |
7053629 | Nevermann | May 2006 | B2 |
7062288 | Raaf | Jun 2006 | B2 |
7071776 | Forrester et al. | Jul 2006 | B2 |
7124193 | Leung | Oct 2006 | B1 |
7146139 | Nevermann | Dec 2006 | B2 |
7151382 | Kean et al. | Dec 2006 | B1 |
7162264 | Vance | Jan 2007 | B2 |
7167093 | Fergusson | Jan 2007 | B2 |
7541874 | Maeda et al. | Jun 2009 | B2 |
7729715 | Love | Jun 2010 | B2 |
7917175 | Song et al. | Mar 2011 | B2 |
8063375 | Cobbinah et al. | Nov 2011 | B2 |
8134461 | Van Doorn | Mar 2012 | B2 |
8208423 | Liu | Jun 2012 | B2 |
8213982 | Marlett et al. | Jul 2012 | B2 |
8269511 | Jordan | Sep 2012 | B2 |
8324549 | Romero et al. | Dec 2012 | B2 |
8326385 | Brogle et al. | Dec 2012 | B2 |
8401851 | Bushey et al. | Mar 2013 | B2 |
8417296 | Caballero et al. | Apr 2013 | B2 |
8432322 | Amm et al. | Apr 2013 | B2 |
8442572 | Borran | May 2013 | B2 |
8466839 | Schlub et al. | Jun 2013 | B2 |
8483632 | Asrani et al. | Jul 2013 | B2 |
8515496 | Cheng et al. | Aug 2013 | B2 |
8547952 | Liu | Oct 2013 | B2 |
8548388 | Chiu et al. | Oct 2013 | B2 |
8559999 | Hu | Oct 2013 | B2 |
8565205 | Ho et al. | Oct 2013 | B2 |
8577289 | Schlub et al. | Nov 2013 | B2 |
8630596 | Harel et al. | Jan 2014 | B2 |
8723531 | Harrison | May 2014 | B2 |
8723749 | Lin et al. | May 2014 | B2 |
8775103 | Jayaraj et al. | Jul 2014 | B1 |
8781437 | Ngai et al. | Jul 2014 | B2 |
8792930 | Gopalakrishnan et al. | Jul 2014 | B1 |
8798695 | Zheng et al. | Aug 2014 | B1 |
8860526 | Manssen et al. | Oct 2014 | B2 |
8922443 | Zhu et al. | Dec 2014 | B2 |
8975903 | Salter et al. | Mar 2015 | B2 |
9325355 | Pecen et al. | Apr 2016 | B2 |
9337833 | Siska | May 2016 | B2 |
9466872 | Sanchez et al. | Oct 2016 | B2 |
9531420 | Prendergast et al. | Dec 2016 | B1 |
20020009976 | Rashidi | Jan 2002 | A1 |
20020039028 | Douglas et al. | Apr 2002 | A1 |
20020175814 | Wadlow et al. | Nov 2002 | A1 |
20030064732 | McDowell et al. | Apr 2003 | A1 |
20030064761 | Nevermann | Apr 2003 | A1 |
20030210203 | Phillips et al. | Nov 2003 | A1 |
20030214310 | McIntosh | Nov 2003 | A1 |
20030228846 | Berliner et al. | Dec 2003 | A1 |
20040021608 | Kojima et al. | Feb 2004 | A1 |
20040075613 | Jarmuszewski et al. | Apr 2004 | A1 |
20040093624 | French et al. | May 2004 | A1 |
20040108957 | Umehara et al. | Jun 2004 | A1 |
20040113847 | Qi et al. | Jun 2004 | A1 |
20040160378 | Abrams et al. | Aug 2004 | A1 |
20040222925 | Fabrega-Sanchez et al. | Nov 2004 | A1 |
20050017906 | Man et al. | Jan 2005 | A1 |
20050184914 | Ollikainen et al. | Aug 2005 | A1 |
20060244663 | Fleck et al. | Nov 2006 | A1 |
20070037619 | Matsunaga et al. | Feb 2007 | A1 |
20070111681 | Alberth, Jr. et al. | May 2007 | A1 |
20070120745 | Qi et al. | May 2007 | A1 |
20070122307 | Da Costa et al. | May 2007 | A1 |
20080051165 | Burgan et al. | Feb 2008 | A1 |
20080055160 | Yong-Jin et al. | Mar 2008 | A1 |
20080158065 | Wee | Jul 2008 | A1 |
20080218493 | Patten et al. | Sep 2008 | A1 |
20080254836 | Qi et al. | Oct 2008 | A1 |
20090033562 | Takeuchi et al. | Feb 2009 | A1 |
20090047998 | Alberth, Jr. | Feb 2009 | A1 |
20090230884 | Van Doorn | Sep 2009 | A1 |
20090253459 | Naganuma et al. | Oct 2009 | A1 |
20090295648 | Dorsey et al. | Dec 2009 | A1 |
20090305742 | Caballero | Dec 2009 | A1 |
20090325511 | Kim | Dec 2009 | A1 |
20100026664 | Geaghan | Feb 2010 | A1 |
20100052997 | Kan et al. | Mar 2010 | A1 |
20100056210 | Bychkov et al. | Mar 2010 | A1 |
20100067419 | Liu | Mar 2010 | A1 |
20100113111 | Wong et al. | May 2010 | A1 |
20100234058 | Hu | Sep 2010 | A1 |
20100234081 | Wong et al. | Sep 2010 | A1 |
20100279751 | Pourseyed et al. | Nov 2010 | A1 |
20100283691 | Xiaomeng et al. | Nov 2010 | A1 |
20100317302 | Greenwood et al. | Dec 2010 | A1 |
20100321325 | Springer et al. | Dec 2010 | A1 |
20110001675 | Lee | Jan 2011 | A1 |
20110012793 | Amm et al. | Jan 2011 | A1 |
20110012794 | Schlub et al. | Jan 2011 | A1 |
20110043408 | Shi et al. | Feb 2011 | A1 |
20110063042 | Mendolia et al. | Mar 2011 | A1 |
20110117973 | Asrani et al. | May 2011 | A1 |
20110124363 | Calvarese et al. | May 2011 | A1 |
20110157077 | Martin et al. | Jun 2011 | A1 |
20110199267 | Hayashi | Aug 2011 | A1 |
20110222469 | Ali et al. | Sep 2011 | A1 |
20110250928 | Schlub et al. | Oct 2011 | A1 |
20110298669 | Rao | Dec 2011 | A1 |
20120021707 | Forrester et al. | Jan 2012 | A1 |
20120021800 | Rao | Jan 2012 | A1 |
20120023225 | Imes et al. | Jan 2012 | A1 |
20120032951 | Elin | Feb 2012 | A1 |
20120044115 | Mccaughey et al. | Feb 2012 | A1 |
20120071195 | Chakraborty et al. | Mar 2012 | A1 |
20120074961 | Herrmann | Mar 2012 | A1 |
20120133561 | Konanur et al. | May 2012 | A1 |
20120147801 | Ho et al. | Jun 2012 | A1 |
20120164962 | Lin et al. | Jun 2012 | A1 |
20120172079 | Baldemair et al. | Jul 2012 | A1 |
20120178494 | Haim et al. | Jul 2012 | A1 |
20120190398 | Leukkunen | Jul 2012 | A1 |
20120210105 | Sagae et al. | Aug 2012 | A1 |
20120211784 | Kazmi | Aug 2012 | A1 |
20120214422 | Shi et al. | Aug 2012 | A1 |
20120215847 | Li et al. | Aug 2012 | A1 |
20120223865 | Li et al. | Sep 2012 | A1 |
20120270519 | Ngai et al. | Oct 2012 | A1 |
20120270592 | Ngai et al. | Oct 2012 | A1 |
20120276861 | Isobe et al. | Nov 2012 | A1 |
20120295554 | Greene et al. | Nov 2012 | A1 |
20120298497 | Maeda et al. | Nov 2012 | A1 |
20120299772 | Shtrom et al. | Nov 2012 | A1 |
20120329524 | Kent et al. | Dec 2012 | A1 |
20130005413 | Brogle et al. | Jan 2013 | A1 |
20130016621 | Kil et al. | Jan 2013 | A1 |
20130026846 | Gianesello et al. | Jan 2013 | A1 |
20130033400 | Chiang | Feb 2013 | A1 |
20130045700 | Stallman et al. | Feb 2013 | A1 |
20130050046 | Jarvis et al. | Feb 2013 | A1 |
20130051261 | Kazmi et al. | Feb 2013 | A1 |
20130060517 | Sanchez | Mar 2013 | A1 |
20130120257 | Park et al. | May 2013 | A1 |
20130122827 | Ali et al. | May 2013 | A1 |
20130127677 | Lin et al. | May 2013 | A1 |
20130133827 | Ali et al. | May 2013 | A1 |
20130137487 | Sato | May 2013 | A1 |
20130149957 | Desclos et al. | Jun 2013 | A1 |
20130157564 | Curtis et al. | Jun 2013 | A1 |
20130169348 | Shi | Jul 2013 | A1 |
20130178167 | Lockerbie et al. | Jul 2013 | A1 |
20130178174 | Geris et al. | Jul 2013 | A1 |
20130200618 | Yarga et al. | Aug 2013 | A1 |
20130203363 | Gratt et al. | Aug 2013 | A1 |
20130210106 | Wang et al. | Aug 2013 | A1 |
20130210477 | Peter | Aug 2013 | A1 |
20130217342 | Abdul-Gaffoor et al. | Aug 2013 | A1 |
20130241670 | Mikhemar et al. | Sep 2013 | A1 |
20130278474 | Lenormand et al. | Oct 2013 | A1 |
20130293244 | Leek | Nov 2013 | A1 |
20130314365 | Woolley et al. | Nov 2013 | A1 |
20130335291 | Judson et al. | Dec 2013 | A1 |
20140015547 | Bottomley et al. | Jan 2014 | A1 |
20140015595 | Van Ausdall et al. | Jan 2014 | A1 |
20140021801 | Kao et al. | Jan 2014 | A1 |
20140066124 | Novet | Mar 2014 | A1 |
20140071008 | Desclos et al. | Mar 2014 | A1 |
20140078094 | Yang | Mar 2014 | A1 |
20140087663 | Burchill et al. | Mar 2014 | A1 |
20140098491 | Wang | Apr 2014 | A1 |
20140098693 | Tabet et al. | Apr 2014 | A1 |
20140128032 | Muthukumar | May 2014 | A1 |
20140139380 | Ouyang et al. | May 2014 | A1 |
20140141733 | Wong et al. | May 2014 | A1 |
20140152121 | Ku | Jun 2014 | A1 |
20140155000 | Erkens | Jun 2014 | A1 |
20140159980 | Finegold | Jun 2014 | A1 |
20140173269 | Varoglu et al. | Jun 2014 | A1 |
20140176938 | Yang et al. | Jun 2014 | A1 |
20140177371 | Abbasi et al. | Jun 2014 | A1 |
20140206297 | Schlub et al. | Jul 2014 | A1 |
20140274188 | Thorson | Sep 2014 | A1 |
20140274189 | Moller | Sep 2014 | A1 |
20140280450 | Luna | Sep 2014 | A1 |
20140292587 | Yarga et al. | Oct 2014 | A1 |
20140307570 | Hong | Oct 2014 | A1 |
20140315592 | Schlub et al. | Oct 2014 | A1 |
20140357207 | Ma | Dec 2014 | A1 |
20140357313 | Mercer et al. | Dec 2014 | A1 |
20140370929 | Khawand et al. | Dec 2014 | A1 |
20150022206 | Adolf et al. | Jan 2015 | A1 |
20150031408 | Kalla et al. | Jan 2015 | A1 |
20150053575 | Bridges et al. | Feb 2015 | A1 |
20150141080 | Standing | May 2015 | A1 |
20150169093 | Nakao | Jun 2015 | A1 |
20150177371 | Abbasi et al. | Jun 2015 | A1 |
20140201385 | Mercer et al. | Jul 2015 | A1 |
20150199042 | Standing et al. | Jul 2015 | A1 |
20150200444 | Mercer et al. | Jul 2015 | A1 |
20150201387 | Khawand et al. | Jul 2015 | A1 |
20150288074 | Harper et al. | Oct 2015 | A1 |
20150382307 | Harper et al. | Dec 2015 | A1 |
20160049978 | Mercer et al. | Feb 2016 | A1 |
20160064801 | Han et al. | Mar 2016 | A1 |
20160164563 | Khawand et al. | Jun 2016 | A1 |
20160204836 | Lee et al. | Jul 2016 | A1 |
Number | Date | Country |
---|---|---|
1179864 | Apr 1998 | CN |
100504407 | Sep 2006 | CN |
102064812 | May 2011 | CN |
102077234 | May 2011 | CN |
202276339 | Jun 2012 | CN |
102714346 | Oct 2012 | CN |
103248747 | Aug 2013 | CN |
84321 | May 1999 | EP |
1298809 | Apr 2003 | EP |
1469550 | Dec 2004 | EP |
1732167 | Dec 2006 | EP |
2015548 | Feb 2010 | EP |
2276108 | Jan 2011 | EP |
2381527 | Oct 2011 | EP |
2383364 | Nov 2011 | EP |
2405534 | Jan 2012 | EP |
2410661 | Jan 2012 | EP |
2509229 | Oct 2012 | EP |
2509229 | Oct 2012 | EP |
2568605 | Mar 2013 | EP |
2787780 | Oct 2014 | EP |
2293277 | Mar 1996 | GB |
2380359 | Apr 2003 | GB |
2409345 | Jun 2004 | GB |
2002043957 | Feb 2002 | JP |
2007194995 | Aug 2007 | JP |
200042797 | Jul 2000 | WO |
0148858 | Jul 2001 | WO |
2004015813 | Feb 2004 | WO |
2004091046 | Oct 2004 | WO |
2005018046 | Feb 2005 | WO |
2007043150 | Apr 2007 | WO |
20090149023 | Dec 2009 | WO |
2011051554 | May 2011 | WO |
2011058128 | May 2011 | WO |
2012152103 | Feb 2012 | WO |
2012061582 | May 2012 | WO |
2012091651 | Jul 2012 | WO |
2012113754 | Aug 2012 | WO |
2012122113 | Sep 2012 | WO |
2012122116 | Sep 2012 | WO |
2012143936 | Oct 2012 | WO |
2012176217 | Dec 2012 | WO |
2013011352 | Jan 2013 | WO |
2013101106 | Jul 2013 | WO |
2013103948 | Jul 2013 | WO |
2013165419 | Jul 2013 | WO |
2013141791 | Sep 2013 | WO |
2013169527 | Nov 2013 | WO |
2014036532 | Mar 2014 | WO |
2015134117 | Sep 2015 | WO |
2016111897 | Jul 2016 | WO |
Entry |
---|
International Searching Authority, U.S. Patent and Trademark Office, International Search Report and Written Opinion for PCT/US2015/052769, dated Feb. 17, 2016, 27 pages. |
“Digital, Silicon Microphone has 2.6 X 1.6mm2 Footprint”, Published on: Dec. 12, 2005, Available at: http://news.thomasnet.com/fullstory/Digital-Silicon-Microphone-has-2-6-x-1-6-mm-footprint-471386. |
Khawand, et al., “Radiating Structure with Integrated Proximity Sensing” formerly titled as “SAR Sensor Execution where Part of One or More Antennas is on the Exterior Surface of a Mobile Device”, unfiled U.S. Appl. |
Holopainen, et al., “Broadband Equivalent Circuit Model for Capacitive Coupling Element-Based Mobile Terminal Antenna”, In IEEE Antennas and Wireless Propagation Letters, vol. 9, Jul. 8, 2010, 4 pages. |
Ozyalcin, et al., “SAR Simulations in Wireless Communication and Safety Discussions in the Society”, In Proceedings of Turkish Journal of Electrical Engineering & Computer Sciences, vol. 10, Issue 2, Dec. 31, 2013, 16 pages. |
U.S. Appl. No. 13/918846, PAI, et al., “Radio Frequency (RF) Power Back-Off Optimization for Specific Absorption Rate (SAR) Compliance”, Filed Date: Jun. 14, 2013. |
International Searching Authority, United States Patent and Trademark Office, International Search Report and Written Opinion for Application No. PCT/US2014/072411, Mar. 27, 2015, 10 Pageswebspace/disk/AudenSARSolutiondatasheet—110927.pdf. |
“Semtech Launches Smart Proximity Sensor for Short-Range Human Presence Detection & SAR Regulations in Mobile & Tablet PC Applications”, Published on: Jul. 24, 2012, Available at: http://www.semtech.com/Press-Releases/2012/Semtech-Launches-Smart-Proximity-Sensor-for-Short-Range-Human-Presence-Detection-SAR-Regulations-in-Mobile-Tablet-PC-Applications.html. |
Toit, Riaan Du, “Using Proximity Sensing to Meet Mobile Device FCC SAR Reulations”, Published on: Apr. 17, 2012, Available at: http://www.eetimes.com/General/PrintView/431201. |
Khawand, et al.,' “Radio Frequency (RF) Power Back-Off Optimization for Specific Abdorption Rate (SAR) Compliance”, U.S. Appl. No. 13/918,846, Jun. 14, 2013, 40 pages. |
Mercer, et al.,' “Specific Absorption Rate Mitigation”, U.S. Appl. No. 13/905,088, May 19, 2013, 53 pages. |
International Searching Authority, United States Patent and Trademark Office, International Search Report and Written Opinion for Application No. PCT/US2014/042023, Aug. 29, 2014, 11 Pages. |
International Searching Authority, United States Patent and Trademark Office, International Search Report and Written Opinion for Application No. PCT/US2014/039479, Sep. 19, 2014, 11 Pages. |
International Searching Authority, United States Patent and Trademark Office, International Search Report and Written Opinion for Application No. PCT/US2014/072412, Mar. 30, 2015, 11 pages. |
International Searching Authority, United States Patent and Trademark Office, International Search Report and Written Opinion for Application No. PCT/US2014/072414, Apr. 14, 2015, 9 Pages. |
“Non-Final Office Action”, U.S. Appl. No. 13/905,088, Mar. 23, 2015, 37 pages. |
“Non-Final Office Action”, U.S. Appl. No. 14/152,351, Feb. 20, 2015, 9 pages. |
Second Written Opinion of the International Preliminary Examining Authority, Application No. PCT/US2014/042023, dated: Mar. 2, 2015; 6 Pages. |
Mrazovac, “Reaching the Next Level of Indoor Human Presence Detection: An RF Based Solution”, 11th International Conference on Telecommunications in Modern Satellite, Cable and Broadcasting Services, Oct. 16, 2013, 4 pages. |
International Searching Authority, U.S. Patent and Trademark Office, International Search Report for PCT/US2014/072411, dated Mar. 27, 2015, 4 pages. |
International Searching Authority, U.S. Patent and Trademark Office, Written Opinion for PCT/US2014/072411, dated Mar. 27, 2015, 6 pages. |
I.B. Bonev et al, “Parmetric Study of Antenna with Parasitic Element for Improving the Hearing Aids Compatibility of Mobile Phones and the Specific Absorption Rate in the Head”, Proceedings in Progress in Electromagnetics Research Symposium, Marrakesh, Morocco, Mar. 20-23, 2011, 5 pages. |
J. Poutanen, “Interaction Between Mobile Terminal Antenna and User” Helsinki University of Technology Master's Thesis, Oct. 9, 2007, 100 pages. |
Poutanent, et al., “Behavior of Mobile Terminal Antennas near Human Tissue at a Wide Frequency Range”, In International Workshop on Antenna Technology: Small Antennas and Novel Metamaterials, Mar. 4, 2008, 4 pages. |
Sterner, et al., “Development of an Antenna Sensor for Occupant Detection in Passenger Transportation”, In Proceedings of Procedia Engineering, vol. 47, Sep. 9, 2012, 6 pages. |
Curto, et al., “Circular Loop Antenna Operating at 434 MHz for Medical Applications: Loop-Tissue Interaction”, In Proceeding of: Irish Signals and Systems Conference, Jul., 2006, 6 pages. |
International Searching Authority, U.S. Patent and Trademark Office, Updated Search Report for PCT/US2014/072412, dated Aug. 5, 2015, 3 pages. |
International Searching Authority, U.S. Patent and Trademark Office, Updated Written Opinion for PCT/US2014/072412, dated Oct. 5, 2015, 8 pages. |
International Searching Authority, U.S. Patent and Trademark Office, Search Report and Written Opinion or PCT/US2014/072413, dated Jul. 16, 2015, 16 pages. |
“SAR Evaluation Considerations for Laptop, Notebook, Netbook and Tablet Computers,” Federal Communications Commission Office of Engineering and Technology Laboratory Division, May 28, 2013, 14 pages. |
Hochwald, et al “Minimizing Exposure to Electromagnetic Radiation in Portable Devices”, In Proceedings of Information Theory and Applications Workshop, Feb. 5, 2012, p. 107. |
International Searching Authority, United States Patent and Trademark Office, International Preliminary Report on Patentability, Application No. PCT/US2014/039479, dated Jun. 15, 2015, 8 pages. |
International Searching Authority, United States Patent and Trademark Office, Second International Search Report and Written Opinion for PCT/US2014/072412; dated Oct. 5, 2015, 11 pages. |
Myllymaki, Sami “Capacitive Antenna Sensor for Proximity Recognition”; http://herkules.ouluNisbn9789514299155/sbn9789514299155.pdf, dated Nov. 30, 2012, 60 pages. |
International Searching Authority, United States Patent and Trademark Office, Search Report and Written Opinion for PCT/US2014/065856, dated Feb. 4, 2015, 10 pages. |
International Searching Authority, United States Patent and Trademark Office, Second Written Opinion of Pea for PCT/US2014/065856, dated Oct. 13, 2015, 6 pages. |
International Searching Authority, U.S. Patent and Trademark Office, International Search Report and Mitten Opinion for PCT/US2015/037563, dated Aug. 20, 2015, dated Aug. 31, 2015, 11 pages. |
International Searching Authority, U.S. Patent and Trademark Office, Written Opinion of International Preliminary Examining Authority for PCT/US2014/072412, dated Dec. 4, 2015, 5 pages. |
International Searching Authority, U.S. Patent and Trademark Office, International Search Report and Mitten Opinion for PCT/US2014/072413 dated Jul. 16, 2015, 16 pages. |
International Searching Authority, U.S. Patent and Trademark Office, Written Opinion of the International Preliminary Examining Authority for PCT/US2014/072413 dated Dec. 17, 2015, 6 pages. |
International Seraching Authority, U.S. Patent and Trademark Office, International Search Report and Witten Opinion for PCT/US2015/062851, dated Jan. 28, 2016, dated Feb. 5, 2016, 11 pages. |
International Preliminary Examining Authority, International Preliminary Report on Patentability for PCT/US2014/065856, dated Feb. 10, 2016, 8 pages. |
International Preliminary Examining Authority, Second Written Opinion of the International Preliminary Examining Authority for PCT/2014/065856, dated Oct. 13, 2015, 6 pages. |
Office Action Issued in Columbian Patent Application No. NC2016/0000122, dated Aug. 19, 2016, 2 pages. |
“Low SAR Solution for Tablet PC”, Published on: Sep. 27, 2011, Available at: http://www.auden.com.tw/TRC/webspace/disk/AudenSARSolutiondatasheet—110927.pdf. |
Rogerson, James, “Samsung reveals a folding phone-to-tablet prototype”, http://www.techradar.com/us/news/phone-and-communications/mobile..nes/samsung-reveals-a-folding-phone-to-tablet-prototype-1197384, 7 pages. |
Mercer, et al., “Dynamic Antenna Power Control for Multi-Context Device”, U.S. Appl. No. 14/987,964, Filed Date: Jan. 5, 2016, 52 pages. |
“Non-Final Office Action”, U.S. Appl. No. 14/152,652, Jul. 16, 2015, 9 pages. |
“Non-Final Office Action”, U.S. Appl. No. 14/152,086, Jul. 22, 2015, 13 pages. |
“Non-Final Office Action”, U.S. Appl. No. 14/152,529, Sep. 22, 2015, 18 pages. |
“Non-Final Office Action”, U.S. Appl. No. 13/918,846, Sep. 23, 2015, 16 pages. |
“Non-Final Office Action”, U.S. Appl. No. 14/152,086, Nov. 30, 2015, 19 pages. |
“Non-Final Office Action”, U.S. Appl. No. 14/562,212, Dec. 18, 2015, 16 pages. |
“Non-Final Office Action”, U.S. Appl. No. 14/927,287, Dec. 21, 2015, 28 pages. |
“Final Office Action”, U.S. Appl. No. 14/152,652, Dec. 23, 2016, 9 pages. |
“Non-Final Office Action”, U.S. Appl. No. 14/320,320, Jan. 21, 2016, 9 pages. |
“Non-Final Office Action”, U.S. Appl. No. 14/152,529, Jan. 22, 2016, 18 pages. |
Office Action Issued in United Kingdom Patent Application No. 1219096.3, dated Jan. 28, 2016, 4 pages. |
“Final Office Action”, U.S. Appl. No. 13/918,846, Mar. 2, 2016, 20 pages. |
“Non-Final Office Action”, U.S. Appl. No. 14/152,652, Apr. 18, 2016 9 pages. |
“Final Office Action Issued in U.S. Appl. No. 14/927,287”, dated May 11, 2016, 34 pages. |
“Non-Final Office Action”, U.S. Appl. No. 14/086,866, dated May 19, 2016, 7 pages. |
Office Action Issued in Chinese Patent Application No. 201380055749.X, dated Jun. 6, 2016, 12 pages. |
“Non-Final Office Action”, U.S. Appl. No. 13/918,846, Jun. 14, 2016, 21 pages. |
“Final Office Action”, U.S. Appl. No. 14/562,212, Jun. 17, 2016, 17 pages. |
“Non-Final Office Action”, U.S. Appl. No. 14/506,478, Jul. 1, 2016, 10 pages. |
“Final Office Action”, U.S. Appl. No. 14/320,320, Jul. 29, 2016, 10 pages. |
International Searching Authority, United States Patent and Trademark Office, International Search Report and Written Opinion for Application No. PCT/US2013/066441, dated Dec. 12, 2013, 12 pages. |
International Preliminary Examining Authority, United States Patent and Trademark Office, International Preliminary Report on Patentability, Application No. PCT/US2013/066441, dated May 7, 2015, 9 pages. |
Second Written Opinion Issued in PCT Application No. PCT/US2014/072411, dated Nov. 26, 2015, 7 pages. |
International Searching Authority, U.S. Patent and Trademark Office, Second Written Opinion of the International Preliminary Examining Authority for PCT/US2014/072414 dated Dec. 9, 2015, 29 pages. |
International Preliminary Report of Patentability issued in PCT Application No. PCT/US2014/072412; dated Mar. 22, 2016, 7 pages. |
International Preliminary Examining Authority, International Preliminary Report on Patentability for PCT/US2014/072411; dated Mar. 23, 2016, 8 pages. |
International Preliminary Examining Authority, International Preliminary Report on Patentability for PCT/US2014/072414; dated Mar. 23, 2016, 7 pages. |
International Preliminary Examining Authority, International Preliminary Report on Patentability for PCT/US2014/072413, dated Mar. 24, 2016, 7 pages. |
International Preliminary Examining Authority, Second Written Opinion of the International Preliminary Examining Authority for PCT/2015/037563, dated Jun. 1, 2016, 5 pages. |
Second Written Opinion Issued in PCT Application No. PCT/US2015/052769, dated Jul. 7, 2016, 5 pages. |
Ban, et al., “A Dual-Loop Antenna Design for Hepta-Band WWAN/LTE Metal-Rimmed Smartphone Applications”, In Journal of IEEE Transactions on Antennas and Propagation, vol. 63, Issue 1, Jan., 2015, 8 pages. |
Chung, et al., “A dual-mode antenna for wireless charging and Near Field Communication”, In Proceedings of EEE International Symposium on Antennas and Propagation & USNC/URSI National Radio Science Meeting, Jul. 24, 2015, 5 pages. |
Design of Printed Trace Differential Loop Antennas, http://www.silabs.com/Support%20Documents/TechnicalDocs/AN639.pdf, Retrieved on: Nov. 17, 2016, 28 pages. |
Mumcu, et al., “Small Wideband Double-Loop Antennas Using Lumped Inductors and Coupling Capacitors”, In Journal of IEEE Antennas and Wireless Propagation Letters, vol. 10, Feb. 4, 2011, 5 pages. |
Osoinach, Bryce, “Proximity Capacitive Sensor Technology for Touch Sensing Applications”, In White Paper of Proximity Sensing, 2007, 7 pages. |
Pal, et al., “A low-profile switched-beam dual-band capacitively coupled Square Loop Antenna”, In Proceedings of Antennas and Propagation Conference, Nov. 11, 2013, 5 pages. |
Pal, et al., “Dual-Band Low-Profile Capacitively Coupled Beam-Steerable Square-Loop Antenna”, In Journal of IEEE Transactions on Antennas and Propagation, vol. 62, Issue 3, Mar., 2014, pp. 1204-1211. |
Quddious, et al., “An inkjet printed meandered dipole antenna for RF passive sensing applications”, In Proceedings of 10th European Conference on Antennas and Propagation, Apr., 2016, 4 pages. |
“Non-Final Office Action”, U.S. Appl. No. 14/086,866, dated Oct. 17, 2016, 7 pages. |
“Final Office Action”, U.S. Appl. No. 13/918,846, Oct. 26, 2016, 25 pages. |
“Non-Final Office Action”, U.S. Appl. No. 14/987,964, dated Nov. 30, 2016, 8 pages. |
First Office Action and Search Report Issued in Chinese Patent Application No. 201480031132.9, dated Nov. 2, 2016, 10 pages. |
First Office Action Issued in Chinese Patent Application No. 201480033869.4, dated Dec. 19, 2016, 6 pages. |
International Preliminary Examining Authority, International Preliminary Report on Patentability for PCT/US2015/037563, dated Sep. 13, 2016, 11 pages. |
International Preliminary Examining Authority, International Preliminary Report on Patentability for PCT/US2015/052769, dated Sep. 29, 2016, 16 pages. |
“Second Written Opinion Issued in PCT Application No. PCT/US2015/062851”, dated Oct. 28, 2016, 8 pages. |
Standing, et al., “Radiofrequency-Wave-Transparent Capacitive Sensor Pad”, U.S. Appl. No. 15/384,742, Filed Date: Dec. 20, 2016, 26 pages. |
Harper et al., “Active Proximity Sensor With Adaptive Electric Field Control”, U.S. Appl. No. 15/413,196, Filed Date: Jan. 23, 2016, 35 pages. |
Harper, “Loop Antenna With Integrated Proximity Sensing”, U.S. Appl. No. 15/412,997, Filed Date: Jan. 23, 2016, 32 pages. |
Monebhurrun, et al., “A Novel Measurement Procedure for the Specific Absorption Rate Conformity Assessment of WiFi Devices”, In Proceedings of Asia Pacific Microwave Conference, Dec. 1, 2009, pp. 401-404. |
“Second Office Action Issued in Chinese Patent Application No. 201380055749.X”, dated Jan. 25, 2017, 10 pages. |
International Preliminary Examining Authority, International Preliminary Report on Patentability for PCT/US2015/062851, dated Feb. 22, 2017, 19 pages. |
International Searching Authority, U.S. Patent and Trademark Office, International Search Report and Written Opinion for PCT/US2016/069056, dated Mar. 31, 2017, 17 pages. |
Office Action and Search Report Issued in Chinese Patent Application No. 201480063903.02, dated Apr. 19, 2017, 11 pages. |
Number | Date | Country | |
---|---|---|---|
20160098053 A1 | Apr 2016 | US |