Patent classifications
H04B7/15514
Reconfigurable and modular active repeater device
A device includes a primary sector and secondary sectors communicatively coupled to the primary sector. The processor included in the primary sector is configured to down convert a Radio Frequency (RF) signals with a first frequency to an analog baseband (IQ) signal with a second frequency, and receive a second digital baseband signal that comprises a first digital baseband signal and a digital echo signal. The first digital baseband signal comprises a training sequence signal. Further, the processor estimates a plurality of filter taps of the FIR filter based on the digital echo signal and estimate the digital echo signal in the received second digital baseband signal based on the first digital baseband signal and the plurality of filter taps of the FIR filter. The estimated digital echo signal is removed from at least one current digital baseband signal based on the down conversion of the RF signals.
TERMINAL AND RADIO COMMUNICATION METHOD
A terminal according to an aspect of the present disclosure includes: a receiving section that receives at least part of DL transmission transmitted from a network, via a relay apparatus; and a control section that controls reception of the DL transmission, based on at least one of information related to the relay apparatus transmitted from the network and reception qualities of a plurality of periods. According to an aspect of the present disclosure, it is possible to appropriately control a terminal and a network even in a case of using a relay apparatus.
UPLINK BEAM MANAGEMENT USING A CONFIGURABLE DEFLECTOR
Methods, systems, and devices for wireless communications are described. Generally, the described techniques allow a channel engineering device (CED) to identify a suitable configuration for deflecting uplink transmissions from a user equipment (UE) to a base station. The base station may transmit control signaling to the CED indicating multiple configurations for deflecting uplink reference signals. The UE may then transmit the uplink reference signals to the CED, and the CED may deflect the uplink reference signals using the indicated configurations. The base station may receive the uplink reference signals from the UE via the CED, and the base station may perform measurements on the uplink reference signals. The base station may then identify a configuration for the CED to use to deflect subsequent transmissions from the UE to the base station based on the measurements, and the base station may transmit an indication of the configuration to the CED.
REPEATER-BASED ARCHITECTURE FOR INTELLIGENT REFLECTIVE SURFACE DEPLOYMENT
A node including an RU and a control entity is disclosed. The node may receive, from a base station at a control entity of the node, an indication of at least one obstruction for communication via at least one reflective surface. The indication may indicate to the control entity to utilize an RU of the node and the at least one reflective surface for communication. The node may configure, upon receiving the indication of the at least one obstruction, the RU and the at least one reflective surface for communication with the base station. The node may forward communication received from, or forward communication to, the base station via the RU and the at least one reflective surface based on the at least one obstruction for communication.
RELAYING COMMUNICATIONS BETWEEN RADIO NODES
An apparatus configured to generate a relay transmission to a second radio node based on observing a transmission attempt from a first radio node. The apparatus includes a radio interface configured to receive data comprising radio channel observations of the environment and to generate data comprising radio transmissions for transmission into the environment, a monitoring interface configured to receive data characterising the physical state of the environment, and a processor communicatively coupled to the radio interface and the monitoring interface. The processor is configured to: update a model characterising the environment occupied by the first radio node and the second radio node; observe an indication of an attempt of the first radio node to communicate with the second radio node; initiate the relaying of the attempt of the first radio node to communicate with the second radio node.
Uplink beam management using a configurable deflector
Methods, systems, and devices for wireless communications are described. Generally, the described techniques allow a channel engineering device (CED) to identify a suitable configuration for deflecting uplink transmissions from a user equipment (UE) to a base station. The base station may transmit control signaling to the CED indicating multiple configurations for deflecting uplink reference signals. The UE may then transmit the uplink reference signals to the CED, and the CED may deflect the uplink reference signals using the indicated configurations. The base station may receive the uplink reference signals from the UE via the CED, and the base station may perform measurements on the uplink reference signals. The base station may then identify a configuration for the CED to use to deflect subsequent transmissions from the UE to the base station based on the measurements, and the base station may transmit an indication of the configuration to the CED.
RECONFIGURABLE AND MODULAR ACTIVE REPEATER DEVICE
A device includes a primary sector and secondary sectors communicatively coupled to the primary sector. The processor included in the primary sector is configured to down convert a Radio Frequency (RF) signals with a first frequency to an analog baseband (IQ) signal with a second frequency, and receive a second digital baseband signal that comprises a first digital baseband signal and a digital echo signal. The first digital baseband signal comprises a training sequence signal. Further, the processor estimates a plurality of filter taps of the FIR filter based on the digital echo signal and estimate the digital echo signal in the received second digital baseband signal based on the first digital baseband signal and the plurality of filter taps of the FIR filter. The estimated digital echo signal is removed from at least one current digital baseband signal based on the down conversion of the RF signals.
Frequency translation in a virtualized distributed antenna system
A method for communicating with wireless user devices includes receiving a signal at a DAU, the signal residing within a first frequency band and processing the signal at the DAU. The method also includes transmitting the processed signal from the DAU and receiving the transmitted signal at a DRU. The method further includes converting the signal to a second frequency band different than the first frequency band.
Wireless data service delivery over wireless repeaters
A wireless communication network serves a wireless User Equipment (UE) with a wireless data service over wireless repeaters. A serving access node wirelessly receives UE signaling that indicates signal strengths for the wireless repeaters. The serving access node determines amounts of the wireless repeaters between the wireless UE and individual target access nodes. The serving access node selects a primary access node from the target access nodes based on the signal strengths and the wireless repeater amounts. The serving access node responsively transfers network signaling to the primary access node. The primary access node receives the network signaling and responsively serves the wireless UE with the wireless data service. The primary access node transfers additional network signaling to a secondary access node. The secondary access node receives the additional network signaling and responsively serves the wireless UE with the wireless data service.
METHOD FOR PROVIDING MOBILE RADIO CONNECTIVITY IN A CONFINED SPACE BY MEANS OF AN EXTERNAL AERIAL AND ASSOCIATED SYSTEM
On the downlink, a mobile radio signal transmitted by a base station and a television signal may be received over the downlink by an external television aerial located on a building roof After reception, these signals may be transmitted via a wired communication link to a processing module located in a confined space in which the terminal is located. The mobile radio signal may be extracted, amplified and sent by the processing module so as to be received by the terminal. On the downlink, the terminal may transmit a mobile radio signal to a base station. Alternatively, the terminal may transmit a radiofrequency signal received by the processing module which amplifies it and transmits it to a base station, with or without frequency transposition, and with or without format conversion.