Abstract:
A signal detection system can trigger virtual resource allocation based on detected signals. The signal detection system can detect network devices and perform a lookup to determine whether a UID of a respective network device is associated with a particular item. Such items may include individuals, locations, and various other items, such as virtual resources, in connection with a task-oriented application. As an example, virtual resources may be collected based on such detection events and utilized by a user during task-oriented operations, such as gameplay.
Abstract:
A method is disclosed for operating a mobile computing device. The method may include a communication link between the mobile computing device and a second computing device. The second computing device may provide a virtual environment for the mobile computing device. Furthermore, the mobile computing device may allow a user to control a self-propelled device, which may be rendered as a virtual entity upon the virtual environment.
Abstract:
A modular sensing device and method of operating a smart home device includes initiating a control mode from a plurality of modes on the modular sensing device, where the control mode determines a manner in which user gestures are interpreted. Based on initiating the control mode, a connection with the smart home device can be established. Furthermore, the modular sensing device and method can further include receiving sensor data corresponding to the user gestures, translating the sensor data into a corresponding control command, and transmitting the control command to the smart home device. The corresponding control command can be executable to control the smart home device in accordance with the user gesture.
Abstract:
Aspects of the present disclosure relate to magnetic robot calibration. As an example, a robot may engage in a calibration process based at least in part on data samples from a magnetometer. The robot may use the data samples to determine a reference point, with which the robot may process movement instructions accordingly. In some examples, a user device may be used to control the robot, and may comprise a magnetometer for determining a reference point similar to that of the robot. As a result, the user device may communicate with the robot using movement instructions that are based on the reference point determined at the user device, such that the robot may perform the movement instructions using the reference point determined at the robot.
Abstract:
A method is disclosed for operating a mobile computing device. The method may include a communication link between the mobile computing device and a second computing device. The second computing device may provide a virtual environment for the mobile computing device. Furthermore, the mobile computing device may allow a user to control a self-propelled device, which may be rendered as a virtual entity upon the virtual environment.
Abstract:
Aspects of the present disclosure relate to systems and method for providing a managed user experience for consumer products. A base station may detect a tag associated with a consumer product, which may be used to retrieve a managed user experience cached locally, or stored at a remote device associated with an experience provider. The managed user experience may include gameplay, content, and/or instructions to perform specified functionality. In an example, content and/or instructions may be transmitted to the consumer product and/or one or more intermediary devices in order to generate the managed user experience. In some examples, information may be received from the consumer product by way of the tag and used to provide the managed user experience. In other examples, the tag may be retrieve and/or provide aspects of a managed user experience from an experience provider without use of the base station or intermediary device.
Abstract:
A wearable device can be worn by a user, and can include a mode selector, one or more sensors, a signal detector to detect wireless signals, a feedback mechanism comprising at least one of a haptic system, an audio system, or a visual system and providing feedback outputs. The wearable device can also include a controller that can initiate a selected mode from a plurality of modes on the wearable device, where the selected mode causing the controller to execute a real-world game. In accordance with the selected mode, the controller can interpret sensor data from the one or more sensors and inputs from the signal detector, where the sensor data corresponds to a series of actions performed by the user utilizing the wearable device. Based the interpretations, the controller can generate feedback responses via a feedback mechanism.