METHOD AND DEVICE FOR SELECTING TERMINAL CAPABLE OF USING VAMOS
20170374540 ยท 2017-12-28
Inventors
Cpc classification
H04W24/10
ELECTRICITY
H04L27/18
ELECTRICITY
International classification
H04W24/10
ELECTRICITY
Abstract
Since a current GSM base station determines whether a terminal can remove interference using only a DARP information report of the terminal, the base station itself needs to determine whether the terminal is a VAMOS-executable terminal that can perform an interference removal function. The base station transmits a signal, together with a signal acting as interference, using an A-QPSK method, in order to determine whether the terminal can use a VAMOS function, and determines whether the terminal can receive an A-QPSK symbol, in consideration of a reception quality signal of a signal transmitted by the terminal.
Claims
1) A method of a base station for selecting a terminal capable of supporting voice services over adaptive multiuser channels on one slot (VAMOS), the method comprising: determining whether to transmit an adaptive quadrature phase shift keying (A-QPSK) signal to a terminal; transmitting, if a determination is made to transmit the A-QPSK signal, the A-QPSK signal in an A-QPSK symbol to the terminal; receiving received signal quality information corresponding to the A-QPSK signal from the terminal; and determining whether the terminal is a VAMOS-capable terminal based on the received signal quality information.
2) The method of claim 1, wherein transmitting the A-QPSK signal comprises modulating control information or data and an interference signal to generate the A-QPSK symbol in which the control information or data addressed to the terminal is mapped to a symbol on one of an in-phase (I) axis and quadrature-phase (Q) axis and the interference signal is mapped to a symbol on the other.
3) The method of claim 2, wherein transmitting the A-QPSK signal comprises adjusting a transmit power for the symbol carrying the interference signal to adjust an interference amount affecting the terminal.
4) The method of claim 1, wherein determining whether to transmit the A-QPSK signal comprises determining to transmit the A-QPSK signal along with system information-5 (SI-5) and system information-6 (SI-6) or discontinuous transmission silence description (DTX-SID) signaling.
5) The method of claim 4, wherein the received signal quality information comprises RX_REV_SUB or RX_QUAL_SUB contained in a measurement report transmitted from the terminal to the base station.
6) A method of a terminal for receiving an adaptive quadrature phase shift keying (A-QPSK) signal, the method comprising: receiving an A-QPSK signal contained in an A-QPSK symbol transmitted by a base station; and transmitting received signal quality information corresponding to the A-QPSK signal to the base station.
7) The method of claim 6, wherein the A-QPSK signal is transmitted along with system information-5 (SI-5) and system information-6 (SI-6) or discontinuous transmission silence description (DTX-SID) signaling.
8) The method of claim 7, wherein the received signal quality information comprises RX_REV_SUB or RX_QUAL_SUB contained in a measurement report transmitted from the terminal to the base station.
9) A base station for selecting a terminal capable of supporting voice services over adaptive multiuser channels on one slot (VAMOS), the base station comprising: a transceiver to transmit and receive signals; and a controller coupled with the transceiver and configured to determine whether to transmit an adaptive quadrature phase shift keying (A-QPSK) signal to a terminal, transmit, if a determination is made to transmit the A-QPSK signal, the A-QPSK signal in an A-QPSK symbol to the terminal, receive received signal quality information corresponding to the A-QPSK signal from the terminal, and determine whether the terminal is a VAMOS-capable terminal based on the received signal quality information.
10) The base station of claim 9, wherein the controller controls modulating control information or data and an interference signal to generate the A-QPSK symbol in which the control information or data addressed to the terminal is mapped to a symbol on one of an in-phase (I) axis and quadrature-phase (Q) axis and the interference signal is mapped to a symbol on the other.
11) The base station of claim 10, wherein the controller controls a transmit power for the symbol carrying the interference signal to adjust an interference amount affecting the terminal.
12) The base station of claim 9, wherein the controller determines to transmit the A-QPSK signal along with system information-5 (SI-5) and system information-6 (SI-6) or discontinuous transmission silence description (DTX-SID) signaling.
13) The base station of claim 12, wherein the received signal quality information comprises RX_REV_SUB or RX_QUAL_SUB contained in a measurement report transmitted from the terminal to the base station.
14) A terminal for receiving an adaptive quadrature phase shift keying (A-QPSK) signal, the terminal comprising: a transceiver transmit and receive signals; and a controller coupled with the transceiver and configured to receive an A-QPSK signal contained in an A-QPSK symbol transmitted by a base station and transmit received signal quality information corresponding to the A-QPSK signal to the base station.
15) The terminal of claim 14, wherein the A-QPSK signal is transmitted along with system information-5 (SI-5) and system information-6 (SI-6) or discontinuous transmission silence description (DTX-SID) signaling.
16) The terminal of claim 15, wherein the received signal quality information comprises RX_REV_SUB or RX_QUAL_SUB contained in a measurement report transmitted from the terminal to the base station.
Description
BRIEF DESCRIPTION OF DRAWINGS
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MODE FOR THE INVENTION
[0019] Exemplary embodiments of the present invention are described in detail with reference to the accompanying drawings. Detailed descriptions of well-known functions and structures incorporated herein may be omitted to avoid obscuring the subject matter of the present invention. Further, the following terms are defined in consideration of the functionality in the present invention, and they may vary according to the intention of a user or an operator, usage, etc. Therefore, the definition should be made on the basis of the overall content of the present specification.
[0020] Although the description is directed to wireless communication systems, particularly a GSM and a 3.sup.rd generation partnership project (3GPP) evolved terrestrial radio access network (E-UTRAN), it will be understood by those skilled in the art that the present invention can be applied even to other communication systems having a similar technical background and channel format, with a slight modification, without departing from the spirit and scope of the present invention.
[0021] Advantages and features of the present invention and methods of accomplishing the same may be understood more readily by reference to the following detailed description of exemplary embodiments and the accompanying drawings. The present invention may, however, be embodied in many different forms and should not be construed as being limited to the exemplary embodiments set forth herein. Rather, these exemplary embodiments are provided so that this disclosure will be thorough and complete and will fully convey the concept of the invention to those skilled in the art, and the present invention will only be defined by the appended claims. Like reference numerals refer to like elements throughout the specification.
[0022] The GSM VAMOS is a technique for multiplexing two users on the same physical resources and requires pairing two terminals, which are capable of receiving A-QPSK symbols, of the two users. There are many A-QPSK symbol reception algorithms. For VAMOS pairing, the base station determines that the terminal that has reported the DARP information set to 1 in a Class mark for use in reporting terminal capability is a VAMOS-capable terminal.
[0023] In order to report the DARP information set to 1, it is necessary to meet the standard requirements; thus, there may be a terminal which reports the DARP information set to 0 because of a failure to meet the standard requirements even though it has an interference cancellation capability. Although most typical terminals that have a single antenna interference cancellation (SAIC) function as an algorithm for improving the signal reception capability by cancelling interference from the signal received with one antenna can receive A-QPSK symbols, only the latest models of terminals with enhanced signal reception capability can report the DARP information set to 1.
[0024] The present invention aims to make it possible for a base station to determine whether a terminal has the interference cancellation capability and VAMOS capability regardless of DARP information and to extend the pool of users capable of being allocated on VAMOS resources, thereby improving resource utilization efficiency and providing VAMOS services to more users.
[0025] The base station transmits to the terminal the information on the signals as potential interference along with the information addressed to the terminal in the A-QPSK mode and determines whether the terminal has the VAMOS capability to receive A-QPSK symbols in consideration of the reception quality signal which is transmitted by the terminal.
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[0028] If it is determined to transmit the A-QPSK signal, the base station generates A-QPSK information at step 110. The A-QPSK information may be an arbitrarily generated random number or predetermined data known to both the base station and terminal and transmitted along with the control information or data. If there is no control signal or data to be transmitted to the terminal, the base station may transmit only the arbitrarily generated random number or predetermined data.
[0029] The base station modulates the A-QPSK information to generate an A-QPSK symbol at step 120. The base station transmits to the terminal the control signal or data addressed using a symbol on one of an in-phase (I) axis and a quadrature-phase (Q) axis and an A-QPSK signal using a symbol on the other as a potential interference to the terminal. If there is no control signal or data addressed to the terminal, the base station may transmit only the arbitrarily generated random number or predetermined data using the symbols on the I and Q axes. The base station may transmit the A-QPSK symbol conveying the A-QPSK signal to the terminal at step 130.
[0030] Here, the base station may adjust the size of the A-QPSK symbol as a potential interferer to the terminal to adjust the size of the interference to the terminal. If the size of the signal as a potential interferer is large, the terminal assumes that the interference to the desired signal is large. The base station adjusts the size of the A-QPSK symbol as a potential interferer to the terminal in the form of a strength of the interference power (this may be expressed as specification of maximum subchannel power imbalance ratio (SCPIR)) and stores this value.
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[0035] The terminal's interference cancellation capability identified as described above may be used in power control for the case of providing the service to two terminals in the VAMOS mode. In the case that one of the VAMOS-paired terminals moves away from the base station, the base station increases the transmit powers for both the two terminals to provide the service. Particularly in the case that the other terminal moves close to the base station, the base station increases the transmit power for the corresponding terminal, resulting in waste of power. However, in the case that the base station knows the interference cancellation capabilities of each of the terminals, if the terminal moving close to the base station has a high interference cancellation capability, can cancel a large interference even when the base station provides the terminal moving away therefrom with the service at a high transmit power level, and this makes it possible to provide the service at a low power level, resulting in improvement of power utilization efficiency.
[0036] The base station may also select a VAMOS-capable terminal based on the feedback information including the received signal quality information corresponding to another downlink signal as well as the RX_REV_SUB and RX_QUAL_SUB information included in the aforementioned measurement report.
[0037] This method may also be applied to LTE.
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[0040] Even with the received signal quality degradation probability, this method can be used to manage candidate precoding matrices applicable for the users of services with a long session such as a voice over internet protocol (VoIP) service or a video on demand (VOD) service in MU-MIMO LTE systems.
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