Passively determining a position of a user equipment (UE)

    公开(公告)号:US11368573B1

    公开(公告)日:2022-06-21

    申请号:US17317416

    申请日:2021-05-11

    Abstract: In some aspects, a user equipment (UE) determines, using an inertial measurement unit, an orientation of the UE and determines, using ambient light sensors, an ambient light condition of the UE. The UE determines, using a machine learning module and based on the orientation and the ambient light condition, a position of the UE. If the position comprises an on-body position, the UE uses the machine learning module and touch data received by a touchscreen of the UE to determine whether the position comprises an in-hand position. If the position comprises the in-hand position, the UE determines, using the machine learning module and based on the orientation and the touch data, a grip mode. If the position comprises an off-body position, the UE determines, using the machine learning module and at least one of the inertial measurement unit or the ambient light sensors, a user presence or a user absence.

    SENSOR STATISTICS FOR RANKING USERS IN MATCHMAKING SYSTEMS

    公开(公告)号:US20210138350A1

    公开(公告)日:2021-05-13

    申请号:US16680642

    申请日:2019-11-12

    Abstract: Methods, systems, and devices for game matchmaking are described. The methods, systems, and devices for game matchmaking may include determining a ranking of a first user of a set of users in a game environment, monitoring, via a sensor, a performance attribute of the first user while the first user plays a game in the game environment, modifying the ranking of the first user in the game environment based on the monitored performance attribute of the first user, and, in some examples, matching the first user with a second user of the set of users based on the modified ranking of the first user.

    Sensor-based image verification
    4.
    发明授权

    公开(公告)号:US11877059B2

    公开(公告)日:2024-01-16

    申请号:US17196516

    申请日:2021-03-09

    CPC classification number: H04N23/6811 H04N23/683

    Abstract: In some aspects, a device may receive measured camera motion information associated with an image. The device may generate a shared image based on the image. The device may apply, based on the measured camera motion information, an image stabilization process to the image to generate a true image. The device may store the true image in a memory associated with the device. The device may provide the shared image and the measured camera motion information to another device. Numerous other aspects are described.

    Systems and methods to control spatial audio rendering

    公开(公告)号:US11564053B1

    公开(公告)日:2023-01-24

    申请号:US17447717

    申请日:2021-09-15

    Abstract: A method of controlling spatial audio rendering includes comparing a first heartbeat pattern to a second heartbeat pattern to generate a comparison result. The first heartbeat pattern is based on sensor information associated with a first sensor of a first sensor type, and the second heartbeat pattern is based on sensor information associated with a second sensor of a second sensor type. The method also includes, based on the comparison result, controlling a spatial audio rendering function associated with media playback.

    Sensor calibration
    7.
    发明授权

    公开(公告)号:US11821754B2

    公开(公告)日:2023-11-21

    申请号:US17675725

    申请日:2022-02-18

    CPC classification number: G01C25/00 G01P21/00

    Abstract: Systems and techniques are described herein. For example, a process can include obtaining first sensor measurement data associated with a and second sensor measurement from one or more sensors. In some cases, the first measurement data can be associated with a first time and the second sensor measurement data can be associated with a second time occurring after the first time. In some aspects, the process includes determining that the first sensor measurement data and the second sensor measurement data satisfy at least one batching condition. In some examples, the process includes, based on determining that the first sensor measurement data and the second sensor measurement data satisfy the at least one batching condition, generating a sensor measurement data batch including the first sensor measurement data, the second sensor measurement data, and at least one target sensor measurement data. Ins examples the process includes outputting the sensor measurement data batch.

    Weakly supervised learning for improving multimodal sensing platform

    公开(公告)号:US11580421B2

    公开(公告)日:2023-02-14

    申请号:US16655031

    申请日:2019-10-16

    Abstract: A machine learning model is trained for user activity detection and context detection on a mobile device. The machine learning model is configured to learn a statistical relationship between an always-on sensing modality of the mobile device and actual user context. Rather than user annotations, the machine learning model is enhanced and personalized for the always-on sensing modality by automated annotations obtained from non-always-on sensing modalities. The non-always-on sensing modality opportunistically provides an imperfect label of user context, where the imperfect label has a known associated probability of error.

    Key press detection
    9.
    发明授权

    公开(公告)号:US11314337B1

    公开(公告)日:2022-04-26

    申请号:US17302612

    申请日:2021-05-07

    Abstract: Various aspects of the present disclosure generally relate to object detection. In some aspects, a device may include a housing; an input device adjoined to the housing, the input device configured to receive an input associated with a press of a key of a plurality of keys; one or more transmitters disposed in the housing, the one or more transmitters configured to transmit one or more signals toward the plurality of keys; one or more receivers disposed in the housing, the one or more receivers configured to receive one or more return signals corresponding to the one or more signals; and a processor configured to determine a location of the key based at least in part on the one or more return signals.

    WEAKLY SUPERVISED LEARNING FOR IMPROVING MULTIMODAL SENSING PLATFORM

    公开(公告)号:US20210117818A1

    公开(公告)日:2021-04-22

    申请号:US16655031

    申请日:2019-10-16

    Abstract: A machine learning model is trained for user activity detection and context detection on a mobile device. The machine learning model is configured to learn a statistical relationship between an always-on sensing modality of the mobile device and actual user context. Rather than user annotations, the machine learning model is enhanced and personalized for the always-on sensing modality by automated annotations obtained from non-always-on sensing modalities. The non-always-on sensing modality opportunistically provides an imperfect label of user context, where the imperfect label has a known associated probability of error.

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