Abstract:
Provided is a package structure, including a substrate, a chip on the substrate in a flip-chip manner, the chip including a circuit layer, and a side heat dissipator on a side of the chip, the side heat dissipator comprising a heat conduction material, wherein the side heat dissipator is electrically connected to the circuit layer.
Abstract:
The present disclosure relates to a communication method and system for converging a 5th-Generation (5G) communication system for supporting higher data rates beyond a 4th-Generation (4G) system with a technology for Internet of Things (IoT). The present disclosure may be applied to intelligent services based on the 5G communication technology and the IoT-related technology, such as smart home, smart building, smart city, smart car, connected car, health care, digital education, smart retail, security and safety services. Specifically, the present disclosure relates to an O-RAN based network system.
Abstract:
The present disclosure relates to a communication method and system for converging a 5th-Generation (5G) communication system for supporting higher data rates beyond a 4th-Generation (4G) system with a technology for Internet of Things (IoT). The present disclosure may be applied to intelligent services based on the 5G communication technology and the IoT-related technology, such as smart home, smart building, smart city, smart car, connected car, health care, digital education, smart retail, security and safety services. Specifically, the present disclosure relates to an O-RAN based network system.
Abstract:
Methods and apparatus of a base station (BS) or a user equipment (UE) that communicate with each other via one or more directional beams. The BS sends and the UE receives a timing advance (TA). The BS receives information sent by the UE via a receive beam of the one or more directional beams of the BS and via an uplink (UL) control region of an UL control channel. The UL control region of the UL control channel identified via the TA and the receive beam.
Abstract:
An example method performed by a network node may include obtaining measurement information of interference cell(s) of at least one UE and/or traffic information of the interference cell(s); adjusting a target block error rate (BLER) for a target UE in the at least one UE according to the measurement information of the interference cell(s) and/or the traffic information of the interference cell(s); and transmitting data to the target UE based on the adjusted target BLER.
Abstract:
Embodiments of the disclosure provide a method performed by a base station, a base station and a computer readable storage medium. The method includes: instructing a user equipment (UE) to perform a beam measurement at a first beam level; determining, based on at least one of information on transmission capacity, mobility information and traffic information of the UE, whether to instruct the UE to perform a beam measurement at a second beam level; and receiving beam measurement results of the UE and performing beam scheduling, and wherein, a scheduled beam includes a beam at the first beam level or a beam at the second beam level; and serving cells of the base station are covered by each of the beam levels, and beams at different beam levels have different attributes. Part of the the implementation process of the scheme can be achieved by artificial intelligence. The disclosure saves measurement overhead while ensuring communication quality, and achieves the effects of improving cell throughput and user experience.