Abstract:
This disclosure describes methods for communicating simultaneously on multiple frequencies. In various implementations, if a wireless terminal receives a first set of data and a second set of data simultaneously on different frequencies, then it sends signals responsive to the first and second sets of data on different slots of a single uplink subframe and on different frequencies.
Abstract:
Methods for performing handovers and addition of carriers during carrier aggregation operation are described. A mobile station can indicate failure to perform downlink synchronization to some but not all cells of a target eNB, in response to a handover command. The mobile station can activate carriers based on various combinations of transmission of random access preambles, reception of random access response messages and transmission of handover complete messages. A base station can activate carriers based on various combinations of reception of random access preambles, transmission of random access response messages and reception of handover complete messages.
Abstract:
Various methods and apparatuses for receiving a control channel involve a communication device monitoring a first control and receiving information from a network regarding the configuration of a second control channel. The communication device receives an uplink grant from the network; transmits a message to the network, in which the message indicates to the network that the communication device is capable of monitoring the second control channel. The communication device monitors the second control channel based on the configuration information receiving via the first control channel.
Abstract:
A first user equipment (UE) and a second UE communicate with a network element (e.g., an eNB) over a carrier (e.g., an uplink or downlink cellular carrier). The first and second UEs also engage in D2D communication using resources of the carrier that have been allocated to them by the network entity. Using the allocated resources, the first and second UEs communicate using a subframe that has a first set of symbols in during which the first UE transmits, a second set of symbols during which the second UE transmits, and a guard interval between the first and second UEs.
Abstract:
A first user equipment (UE) receives information regarding a signal configuration from a network entity on a first carrier, and a reference signal from a second UE on a second carrier. The second carrier is associated with a transmission bandwidth configuration and a channel bandwidth. The transmission bandwidth configuration of the second carrier is contained within the channel bandwidth of the second carrier. The reference signal is within the channel bandwidth of the second carrier and in proximity to an edge of the transmission bandwidth configuration of the second carrier.
Abstract:
A set of information can be transmitted via a physical downlink control channel (PDCCH). First information of the set of information can schedule at least one transmission on a physical downlink shared channel (PDSCH) and during at least one slot. Second information of the set of information can indicate at least one orthogonal frequency division multiplexing (OFDM) symbol during the at least one slot and a set of frequency resources associated with the at least one OFDM symbol. The at least one transmission can be transmitted on the PDSCH. The at least one transmission on the PDSCH can be rate-matched around the set of frequency resources.
Abstract:
Apparatuses, methods, and systems are disclosed for communicating scalar information that indicates frequency locations. One apparatus includes a processor that determines a first frequency location, determines a second frequency location, and determines a first scalar and a second scalar based on the first and second frequency locations. The apparatus includes a transceiver that transmits information of the first scalar and the second scalar.
Abstract:
A method and apparatus provide for low latency transmissions. A higher layer configuration can be received at a device. The higher layer configuration can be higher than a physical layer configuration. The higher layer configuration can indicate configuring the device with a low latency configuration for a low latency transmission mode in addition to a regular latency configuration for a regular latency transmission mode. The low latency transmission mode can have a shorter latency than the regular latency transmission mode. A packet can be received based on one of the low latency configuration and the regular latency transmission mode in a subframe n. A feedback packet can be transmitted in a following subframe n+p, where p
Abstract:
A configuration can be received that configures a UE with a single configured CSI process for a serving cell. A highest CQI index value can be derived for which a single PDSCH TB with a combination of corresponding modulation scheme and TB size is received with a TB error probability not exceeding a target TB BLER value. The single PDSCH transport block can occupy a CSI reference resource. A CSI request can be received in either a subslot or a subframe. The CSI reference resource can be defined by the subslot in which the CSI request is received if the CSI request is received in the subslot. The CSI reference resource can be defined by the subframe in which the CSI is received if the CSI request is received in the subframe.
Abstract:
An apparatus can include an antenna. The apparatus can include a transceiver coupled to the antenna, the transceiver configured to receive a resource assignment indicating a first set of time-frequency resources associated with a first subframe, the transceiver configured to receive a marker signal from higher layer signaling in a second subframe immediately following the first subframe, where the higher layer signaling indicates a set of orthogonal frequency multiplexed symbols including time-frequency resources used for a second latency data transmission. The apparatus can include a controller coupled to the transceiver, the controller configured to determine the first set of time-frequency resources in the first subframe from the resource assignment, the controller configured to determine a second set of time-frequency resources in the first subframe, and the controller configured to decode a first latency data transmission in the first subframe based on the determined first and second set of time-frequency resources.