Abstract:
Disclosed are a method for inter-beam interference reduction using cross polarization and a method for transmitting/receiving a signal. A transmitting method of a base station in a wireless communication system, includes: configuring a first parameter for forming a first beam having first polarization with respect to a terminal located in a first sub-sector, and configuring a second parameter for forming a second beam having second polarization with respect to a terminal located in a second sub-sector; and transmitting a signal to each terminal by forming the first beam using at least one antenna based on the configured first parameter and forming the second beam using the at least one antenna based on the configured second parameter, wherein a frequency band equal to a frequency band of the first sub-sector is allocated to the second sub-sector in a cell in the base station.
Abstract:
A spatial modulation method using a polarization and an apparatus using the same are provided. A spatial modulation method by a transmitting apparatus in a wireless communication system may comprise selecting an antenna to send data among transmit antennas arranged to have different polarization angles using a predetermined bit of input data based on indexes of the transmit antenna and mapping remaining bits of the input data to a preset constellation and transmitting the remaining bits of the mapped input data through the selected antenna.
Abstract:
A line of sight (LOS) multiple-input and multiple-output (MIMO) system and a method of designing the system are provided, wherein a MIMO transmitter may include N transmission antennas, and an output transfer function of the MIMO transmitter may be adjusted based on phase difference between a direct path from each of the N transmission antennas to each of the M reception antennas and a delay path from each of the N transmission antennas to each of the M reception antennas.
Abstract:
A method includes matching a basic mode frequency signal and a higher order mode frequency signal to a multi-band frequency signal with respect to a signal in the form of the square wave, transferring the matched basic mode frequency signal and higher order mode frequency signal simultaneously to a multi-resonance reception resonator, converting output impedance of the basic mode frequency and the higher order mode frequency which are received through the reception resonator into a conjugate value of input impedance of the basic mode frequency and the higher order mode frequency of a receiver, and converting the converted multi-band frequency signal into an electric power that is required in a load and transferring the electric power to the load.
Abstract:
Provided is a method for handover for wireless communication of a high-speed mobile. The method may include receiving, from a candidate communication base station able to communicate with the high-speed mobile, location information of the candidate communication base station and location information of a neighboring communication base station near the candidate communication base station, obtaining current location information and speed information of the high-speed mobile based on global positioning system (GPS) satellite information of the high-speed mobile and topographic information around the high-speed mobile, determining an optimal communication base station among the candidate communication base station and the neighboring communication base station, based on the location information of the candidate communication base station, the location information of the neighboring communication base station, the current location information of the high-speed mobile, and the speed information of the high-speed mobile, and executing handover to the optimal communication base station.
Abstract:
Provided is a wireless link system using a multiband, the system including: a common baseband module to operate in a first frequency band and a second frequency band higher than the first frequency band; at least one low radio frequency (RF) module to process a signal output from the common baseband module in the first frequency band; at least one high RF module to process a signal output from the common baseband module in the second frequency band; a plurality of antennas electrically connected to the at least one low RF module and the at least one high RF module; and a control unit to adaptively allocate a control signal and data to the at least one low RF module and the at least one high RF module based on state information of a wireless channel.