Abstract:
A method, a device, and a non-transitory storage medium are provided to provide an active coordinator service in a sensor network, analyze maintenance information that indicates a battery level of a device, determine whether the device can continue to provide the active coordinator service; request maintenance information from another network device in the sensor network when the battery level does not satisfy a threshold level, determine whether the other network device can provide the active coordinator service based on its maintenance information, cease providing the active coordinator service when the other network device can provide the active coordinator service, in which a long-range wireless communication interface is turned off, and enable an IoT service that includes turning on a sensor, generating sensor information, and transmitting the sensor information to the other network device.
Abstract:
A charger and a mobile device exchange messages indicating that high wattage charging is supported over a bidirectional communication channel. After the message exchange, the charger sends a controlled output voltage and current to the mobile device over a cable connected between the charger and the mobile device. The mobile device takes an input voltage measurement that corresponds to the controlled output voltage after being passed through the cable. The charger or mobile device may then calculate a resistance of the cable based on a difference between the controlled output voltage and the input voltage measurement. Based on the resistance of the cable, the controlled voltage and current used to charge a battery of the mobile device is adjusted in order to avoid exceeding capacity of the cable.
Abstract:
Examples of power conservation management for user equipment based on the operating state of the user equipment are provided. A user equipment may implement a power managing application that monitors the activity of the user equipment, such as the number of applications open on the user equipment, the data usage requirements for each open application, data delay tolerances for each application and/or a level of user interaction with the device at a given moment. Based on the level of activity and the data requirements, the managing application on the user equipment is able to make a discontinuous reception profile setting recommendation selected from more than two discontinuous reception profiles to the mobile communications network entity. In response to the discontinuous reception profile setting recommendation, the network entity may modify the connection status with the user equipment.
Abstract:
An improved cellular network communications scheme enables synchronization of end-to-end session parameters between a radio access network and user equipment. In one embodiment, a method is disclosed comprising receiving, at an access point, a first notification from user equipment (UE), the first notification including data representing a capability of the UE; receiving, at the access point, a second notification from the UE, the second notification including data representing a negotiated session parameter; detecting, by the access point, a change in quality of a network link associated with the UE; and disabling, by the access point, a transmission of a recommendation to the UE based on the negotiated session parameter.
Abstract:
An Internet of Things (IoT) device may receive a network configuration profile including one or more parameters relating to a scan interval and a mode priority of the IoT device indicating a priority for a first IoT network over a second IoT network. The IoT device may scan for an availability of the first IoT network. Based on determining that the first IoT network is unavailable, the IoT device may scan for an availability of the second IoT network. Based on determining that the second IoT network is available, the IoT device may initiate a network connection with the second IoT network. While connected to the second IoT network, the IoT device may scan for the availability of the first IoT network. Based on determining that the first IoT network is available, the IoT device may initiate a network connection with the first IoT network.
Abstract:
A system described herein may provide a technique for the selection of On Durations, Off Durations, and associated timers for monitoring of downlink traffic for a User Equipment (“UE”). For example, the UE may monitor a Physical Downlink Control Channel (“PDCCH”) according to a first set of On and Off Durations associated with a particular profile selected for the UE, and monitor the PDCCH according to a second set of On and Off Durations associated with the particular profile upon expiration of a timer associated with the first set of On and Off Durations. Machine learning or other suitable techniques may be used to refine the selection of On/Off Durations and associated timers in an ongoing process.
Abstract:
A user equipment transmits user equipment information, associated with a communication of the user equipment, to permit a base station to select a first bandwidth part, a second bandwidth part, or a third bandwidth part. The user equipment is configured to communicate by the first bandwidth part, the second bandwidth part, and the third bandwidth part. The user equipment receives, from the base station, an instruction to monitor the first bandwidth part, the second bandwidth part, or the third bandwidth part. The instruction is selected based on the user equipment information. The user equipment monitors, based on the instruction, the first bandwidth part, the second bandwidth part, or the third bandwidth part.
Abstract:
A device, configured as a coordinator for a wireless IoT network, may include a memory configured to store instructions and a processor configured to execute the instructions to identify Internet of Things (IoT) devices associated with the wireless IoT network; determine a clock error rate for the wireless IoT network; determine a last synchronization time; determine a data time period during which one or more of the IoT devices are expected to send data to the device; and set a wakeup time period for the device based on the determined clock error rate, last synchronization time, and data time period. The processor may be further configured to enter a sleep mode; exit the sleep mode when the wakeup time period begins; and perform a clock synchronization between the device and the plurality of IoT devices during the wakeup time period.
Abstract:
A mobile device, having a smart card within the mobile device, stores a Mobile Network Operator (MNO) profile for the mobile device in the smart card, where the MNO profile includes one or more network access credentials for accessing a wireless mobile network. The mobile device receives a customer request to delete the MNO profile, and sends, from the mobile device to a network node in the wireless mobile network, a request for profile deletion. The mobile device receives, responsive to the request from the network node, a deletion code; extracts, from the received deletion code, a deletion code signature and a public key of the network node. The mobile device validates the deletion code signature and the public key, and deletes, upon successful validation of the deletion code signature and the public key, the MNO profile from the smart card.
Abstract:
A device receives a request from a user to manage a Mobile Network Operator (MNO) profile stored in a smart card within the device, wherein the MNO profile includes one or more network access credentials for accessing a wireless network. The device performs a Completely Automated Public Turing Test to tell Computers and Humans Apart (CAPTCHA), wherein the CAPTCHA includes receiving input from the user, and authenticates the user as a human, and not a bot or other automated activity, based on the CAPTCHA and the input from the user. The device receives, from a network node external to the device responsive to the authenticating, a MNO profile management code, and manages the MNO profile based on the received MNO profile management code.