This application claims the benefit under 35 U.S.C. §119(a) of a Korean Patent Application filed in the Korean Intellectual Property Office on Feb. 22, 2006 and assigned Serial No. 2006-17230, the contents of which are incorporated herein by reference.
1. Field of the Invention
The present invention relates generally to a system and method for controlling a reverse channel rate in a cellular mobile communication system, and in particular, to a system and method for controlling a reverse channel rate in a cellular mobile communication system supporting a multimedia service.
2. Description of the Related Art
Generally, in cellular mobile communication systems, a base station (or Access Network (AN)) measures interference in its service region and transmits information on the measured interference to a terminal (or Access Terminal (AT)) in order to control a reverse channel rate. Based on the received interference information, the terminal sets transmission power or channel rate. In this manner, the base station improves throughput in its service region. Herein, the terms ‘controlling transmission power’ and ‘controlling channel rate’ have the same meaning, the terms ‘transmission power’ and ‘channel rate’ have the same meaning, a transmission direction from a base station to a terminal is referred to as a ‘forward direction’ and a transmission direction from a terminal to a base station is referred to as a ‘reverse direction.’
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If each base station transmits the IAB, all terminals located in the corresponding sector and its neighbor sectors can receive the IAB. In an Orthogonal Frequency Division Multiple Access (OFDMA) system, because interference between terminals in a sector is not considered, the terminals in the corresponding sector have no need to receive the IAB in the corresponding sector. However, in a Code Division Multiple Access (CDMA) system, because interference occurs even between terminals in a sector, all terminals located in the corresponding sector and its neighbor sectors need to receive the IAB in the corresponding sector.
A terminal receiving the IAB restricts its transmission power based on the received IAB. For example, the terminal increases the transmission power for IAB with ‘UP’ command, and decreases the transmission power for IAB with ‘DOWN’ command. The terminal can increase/decrease the transmission power directly in this manner, or can adjust the transmission power based on probability.
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In this system, if interference received from a sector increases, a base station of each sector decreases transmission power of terminals using the IAB, thereby restricting the interference. However, even when a small number of terminals cause interference in a specific area, the base station may reduce the transmission power of all the terminals using the IAB, causing a reduction in the entire reverse throughput of the sector.
An aspect of the present invention is to address at least the problems and/or disadvantages and to provide at least the advantages described below. Accordingly, an aspect of the present invention is to provide a reverse channel rate control system and method for improving throughput using a multi-input/output antenna in a cellular mobile communication system.
Another aspect of the present invention is to provide a system and method for controlling a reverse channel rate by controlling only the interference caused by the terminals located in a specific area using multiple antenna techniques in a cellular mobile communication system.
According to the present invention, there is provided a base station apparatus for controlling reverse transmission power in a cellular mobile communication system, including an interference measurer for measuring interference in a cell which is under the control of the base station apparatus, an, IAB, determiner for determining an IAB of a specific area included in a plurality of beamforming areas divided from the cell which is under the control of the base station apparatus, wherein the measured interference is less or greater than a threshold in the specific area, and a beamforming block for forming a beam so as to transmit the determined IAB to any one of the beamforming areas divided from the cell which is under the control of the base station apparatus, including the corresponding specific area.
The beamforming block includes a multiplexer for generating symbols by inserting the IAB determined for the at least one specific area and a pilot for demodulation of the IAB into their associated subcarriers; and a beamformer for forming a beam in a specific direction by setting weights for the subcarriers corresponding to the symbols.
The beamforming block further includes an Inverse Fast Fourier Transform (IFFT) block for performing IFFT on the beamformed signal received from the beamformer and transmitting the IFFT-processed signal to the corresponding beamforming area.
The pilot is beamformed with a weight applied to the corresponding subcarrier.
According to the present invention, there is provided a cellular mobile communication system for controlling reverse transmission power, including a base station for measuring interference in a cell divided into a plurality of beamforming areas, determining an IAB of a specific area where the measured interference is less or greater than a threshold, and forming a beam so as to transmit the determined IAB to a beamforming area including the specific area, and a terminal for receiving the IAB and controlling reverse transmission power according thereto.
The terminal includes a receiver for receiving beamformed signals from the at least one base station, a pilot receiver for receiving pilot signals of the received signals, a channel estimator for extracting an IAB based on the pilot signal and a controller for controlling transmission power of the terminal based on the IAB.
If the pilot signals of the received signals are common pilots which means that pilots are not beamformed, the pilot receiver estimates channel responses of the beamformed signals by applying to the received pilot signals a beamforming coefficient predetermined with the base station.
The channel estimator extracts an IAB that is transmitted with a beam for which the received strength is greater than or equal to a threshold.
If there are a plurality of the extracted IABs, the controller controls transmission power of the terminal by applying to each IAB a weight that is determined considering an influence given to each sector.
According to the present invention, there is provided a method for controlling reverse transmission power in a base station of a cellular mobile communication system, including measuring interference in a cell that is under the control of the base station, determining an IAB of a specific area included in a plurality of beamforming areas divided from the cell which is under the control of the base station, wherein the measured interference is less or greater than a threshold in the specific area, and forming a beam so as to transmit the determined IAB to any one of the beamforming areas divided from the cell which is under the control of the base station, including the corresponding specific area.
Forming the beam includes generating symbols by inserting the IAB determined for the at least one specific area and a pilot for demodulation of the IAB into their associated subcarriers, and forming a beam in a specific direction by setting weights for the subcarriers corresponding to the symbols.
Forming the beam further includes performing IFFT on the beamformed signal and transmitting the IFFT-processed signal to the corresponding beamforming area.
Forming the beam also includes beamforming the pilot with a weight corresponding to the subcarrier.
According to the present invention, there is provided a method for controlling reverse transmission power in a cellular mobile communication system, including (a) a base station measuring interference in a cell divided into a plurality of beamforming areas, determining an IAB of a specific area where the measured interference is less or greater than a threshold, and forming a beam so as to transmit the determined IAB to a beamforming area including the specific area, and (b) a terminal receiving the formed beam, receiving the IAB, and controlling reverse transmission power according to the received IAB.
Step (a) further includes generating symbols by inserting the IAB determined for the at least one specific area and a pilot for demodulation of the IAB into their associated subcarriers, and forming a beam in a specific direction by setting weights for the subcarriers corresponding to the symbols.
Step (a) also includes performing IFFT on the beamformed signal and transmitting the IFFT-processed signal to the corresponding beamforming area.
Forming the beam includes beamforming the pilot with a weight corresponding to the subcarrier.
Step (b) further includes receiving beamformed signals from the at least one base station, receiving pilot signals of the received signals, extracting an IAB based on the pilot signal, and controlling transmission power of the terminal based on the IAB.
The reception of pilot signals includes, if the pilot signals of the received signals are common pilots, estimating channel responses of the beamformed signals by applying to the received pilot signals a beamforming coefficient predetermined with the base station.
The extraction of an IAB includes extracting an IAB that is transmitted with the received beam, if received strength of the received beam is greater than or equal to a threshold.
Controlling the transmission power includes, if there are a plurality of the extracted IABs, controlling transmission power of the terminal by applying a weight that is determined considering an influence given to each sector, to each IAB.
The above and other objects, features and advantages of the present invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings in which:
Preferred embodiments of the present invention will now be described in detail with reference to the annexed drawings. In the drawings, the same or similar elements are denoted by the same reference numerals even though they are depicted in different drawings. In the following description, a detailed description of known functions and configurations incorporated herein has been omitted for the sake of clarity and conciseness.
According to the present invention, a base station controls only the interference caused by the terminals located in a specific area using multiple antenna techniques in order to improve throughput in each sector.
The multiple antenna techniques included in the base station is a beamforming, which beamforms a specific signal in a desired direction by controlling phases of arranged antennas and transmits the beamformed signal.
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The MUX 407 generates symbols by inserting the input IAB1401, IAB2403 and Pilot 405 into subcarriers and multiplexes the symbols according to a transmission scheme of the present invention. Thereafter, the MUX 407 delivers the multiplexed symbol(s) to a beamformer 409. The MUX 407 can support both time multiplexing and frequency multiplexing. If the MUX 407 is a frequency multiplexer, the IAB1401, IAB2403 and Pilot 405 are transmitted through one OFDM symbol, and if the MUX 407 is a time multiplexer, the IAB1401, IAB2403 and Pilot 405 are transmitted through a plurality of OFDM symbols. Alternatively, the IAB1401, IAB2403 and Pilot 405 can simultaneously undergo time multiplexing and frequency multiplexing. The MUX 407 sets a plurality of subcarriers according to the transmission scheme of the present invention.
The beamformer 409 forms a corresponding beam using a subcarrier including the IAB1 and IAB2 from the MUX 407, and sets a weight thereof.
An IFFT block 407 performs IFFT on a received beamformed signal and finally transmits the IFFT-processed signal to a terminal.
FIG. illustrates a terminal for performing a reverse channel control method according to an embodiment of the present invention.
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In the terminal 500, the FFT block 501 performs FFT on a beamformed signal received from a corresponding base station. The pilot receiver 503 receives a pilot to determine a beam that it will monitor. Herein, the pilot can be a common pilot or a beamformed pilot. A transmission scheme of the pilot will be described below.
The channel estimator 505 receives an IAB using a received pilot. The controller 507 receives the IAB from the channel estimator 505. If the received pilot is a beamformed pilot, the channel estimator 505 receives the IAB through an estimated channel response. If the received pilot is a common pilot, the channel estimator 505 receives the IAB through a channel response using a beamforming coefficient. Upon receipt of the IAB from the channel estimator 505, the controller 507 controls transmission power based on the received IAB.
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Similarly, even in the common pilot scheme, the beamformed pilot can be used instead of the common pilot. In
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As can be understood from the foregoing description, according to the present invention, a base station with a multi-input/output antenna generates an IAB considering only the interference in a specific area, performs beamforming thereon, and provides the resulting information to a terminal, thereby efficiently controlling a reverse channel rate and thus contributing to an increase in throughput in the sector.
While the invention has been shown and described with reference to a certain preferred embodiment thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the invention as defined by the appended claims.
Number | Date | Country | Kind |
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17230/2006 | Feb 2006 | KR | national |