WO2015147569A1 - Fdr 전송을 지원하는 무선접속시스템에서 자원 할당 방법 및 장치 - Google Patents
Fdr 전송을 지원하는 무선접속시스템에서 자원 할당 방법 및 장치 Download PDFInfo
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0058—Allocation criteria
- H04L5/006—Quality of the received signal, e.g. BER, SNR, water filling
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L25/00—Baseband systems
- H04L25/02—Details ; arrangements for supplying electrical power along data transmission lines
- H04L25/0202—Channel estimation
- H04L25/0224—Channel estimation using sounding signals
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
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- H04L43/16—Threshold monitoring
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- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0091—Signaling for the administration of the divided path
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- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/14—Two-way operation using the same type of signal, i.e. duplex
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W4/00—Services specially adapted for wireless communication networks; Facilities therefor
- H04W4/06—Selective distribution of broadcast services, e.g. multimedia broadcast multicast service [MBMS]; Services to user groups; One-way selective calling services
- H04W4/08—User group management
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- H04W88/00—Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
- H04W88/08—Access point devices
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- H—ELECTRICITY
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- H04L5/0032—Distributed allocation, i.e. involving a plurality of allocating devices, each making partial allocation
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- H04L5/0048—Allocation of pilot signals, i.e. of signals known to the receiver
Definitions
- the present invention relates to a radio access system that supports a full duplex radio (FDR) transmission environment, and to a resource allocation method for efficiently receiving a signal when applying the FDR and an apparatus supporting the same.
- FDR full duplex radio
- Wireless access systems are widely deployed to provide various kinds of communication services such as voice and data.
- a wireless access system is a multiple access system capable of supporting communication with multiple users by sharing available system resources (bandwidth, transmission power, etc.).
- multiple access systems include code division multiple access (CDMA) systems, frequency division multiple access (FDMA) systems, time division multiple access (TDMA) systems, orthogonal frequency division multiple access (0FDMA) systems, and SC—FDMA. (single carrier frequency division multiple access) system.
- An object of the present invention is to provide a resource allocation method for efficiently transmitting and receiving data in a wireless access system supporting FDR transmission.
- Another object of the present invention is to provide an apparatus supporting these methods.
- a resource allocation method of a base station in a wireless access system supporting Full Duplex Radio (FDR) according to an embodiment of the present invention Selecting a candidate terminal to be set as a group among terminals of the terminal; Transmitting information on group setting to the candidate terminal; Receiving interference information on interference between terminals from the candidate terminal; Setting a plurality of terminals into one or more groups based on the interference information; And allocating resources to the plurality of terminals based on the group.
- FDR Full Duplex Radio
- the group is set to include a plurality of terminals having high interference with each other, and the allocating of the resource may include allocating resources to use different resources for each terminal included in the group, and different from each other.
- Groups can be allocated to operate in FDC multiple duplex (FDC) mode on the same resource.
- the group may be configured to include a terminal whose value according to the interference information is greater than or equal to a threshold for setting a worst relat ion group.
- the group is set to include a plurality of terminals having low interference with each other, and the allocating of the resource may include allocating resources so that each terminal included in the group operates in the FD mode on the same resource, and different from each other. Resources can be allocated between groups to use different resources.
- the group may be configured to include a terminal whose value according to the interference information is equal to or less than a threshold for setting a best relat ion group.
- the interference information may include a value obtained by detecting interference measurements measured by the candidate terminal with respect to a plurality of neighboring terminals in order of magnitude.
- the selecting of the candidate terminal includes first information on whether the terminal is capable of operating a full duplex (FD) on the same resource, and supports the FD operation of another device although the FD operation is not possible on the same resource. And receiving second information about the third party and third information about whether to request participation in the grouping.
- FD full duplex
- a base station for allocating resources in a radio access system supporting FDR (Ful Duplex Radio) comprising: a radio frequency (RF) unit; And a processor, wherein the processor selects a candidate terminal to be set as a group among a plurality of terminals, transmits information on group setting to the candidate terminal, and receives interference information about interference between terminals from the candidate terminal.
- the terminal may be configured to receive, set a plurality of terminals into one or more groups based on the interference information, and allocate resources to the plurality of terminals based on the groups.
- the group is set to include a plurality of terminals having high interference with each other, and the processor allocates resources to use different resources for each terminal included in the group, and the same resource is used between different groups. You can allocate resources to operate in FEKful duplex mode.
- the group may be set to include a terminal whose value according to the interference information is greater than or equal to a threshold for setting a worst relat ion group.
- the group is configured to include a plurality of terminals having low interference with each other, and the processor allocates resources so that each terminal included in the group operates in the FD mode on the same resource, and the groups are different from each other. Resources can be allocated to use other resources.
- the group may be configured to include a terminal whose value according to the interference information is equal to or less than a threshold for setting a best relat ion group.
- the interference information may include a value obtained by indexing interference measurements measured by the candidate terminal with respect to a plurality of neighboring terminals in order of magnitude.
- the processor may provide first information on whether the UE can operate FEKFul Duplex on the same resource, and FD operation on the same resource may not be performed.
- 1 shows a structure of a radio frame in 3GPP LTE.
- FIG. 2 shows an example of frame setting in the radio frame structure of FIG.
- 3 is a diagram illustrating a structure of a downlink subframe.
- FIG. 5 is a configuration diagram of a wireless communication system having multiple antennas.
- FIG. 6 is a diagram illustrating an example of a pattern of CRS and DRS on one resource block.
- FIG. 7 is a diagram illustrating an example of a DM RS pattern defined in an LTE-A system.
- FIG. 8 is a diagram illustrating examples of a CSI-RS pattern defined in an LTE-A system.
- FIG. 9 is a diagram illustrating an example of a zero power (ZP) CSI-RS pattern defined in an LTE-A system.
- ZP zero power
- FIG. 10 shows an example of a system supporting FDR.
- FIG. 12 shows an example of FDMA and TDMA operations when the base station operates in FEKfull du lex) mode in the same resource and the remaining terminals have multiple accesses.
- FIG. 13 is a flowchart illustrating a method for setting initial grouping according to a first embodiment of the present invention.
- FIG. 15 shows an example of a base station and terminal arrangement and group configuration for a sal specific grouping.
- FIG. 16 shows that IDIs are arranged in ascending order for each UE based on the IDI measured by each UE.
- Figure 18 illustrates selection of a terminal for setting the first group '
- 19 illustrates a target terminal for the remaining terminals except for the a, d, and g terminals in which the group is determined.
- FIG. 21 shows that after the b and c terminals are set as a group, the target terminal is selected as in FIG. 20 except for the b and c terminals to set the second group.
- FIG. 22 illustrates selection of a target terminal after FIG. 21.
- Figure 23 is an example of a group set on the basis of the best relationship.
- 24 is a flowchart showing a second embodiment for updating a group #.
- FIG. 25 illustrates an example of identifying a grouping candidate object by using a grouping participation request and whether the group is included in a group.
- 26 shows an example of allocating a frequency for IDI measurement to grouping candidate terminals.
- each component or feature may be considered optional unless stated otherwise.
- Each component or feature may be embodied in a form that is not combined with other components or features.
- some components and / or features may be combined to form an embodiment of the present invention.
- the order of the operations described in the embodiments of the present invention may be changed. Some configurations or features of one embodiment may be included in another embodiment or may be substituted for components or features of another embodiment.
- the base station has a meaning as a terminal node of the network that directly communicates with the terminal. Certain operations described as performed by the base station in this document may be performed by an upper node of the base station in some cases.
- BS Self-explanatory A 'base station (BS)' may be replaced by terms such as a fixed station, a Node B, an eNode B (eNB), and an access point (AP).
- the repeater may be replaced by terms such as Relay Node (R) and Relay Station (RS).
- terminal may be replaced with terms such as a user equipment (UE), a mobile station (MS), a mobile subscriber station (MSS), and an SSCSubscriber Station (MSS).
- UE user equipment
- MS mobile station
- MSS mobile subscriber station
- MSS SSCSubscriber Station
- Embodiments of the present invention may be supported by standard documents disclosed in at least one of the IEEE 802 system, the 3GPP system, the 3GPP LTE and the LTE-Advanced (LTE-A) system, and the 3GPP2 system, which are wireless access systems. That is, the present invention among the embodiments of the present invention Steps or portions not described in order to clearly reveal the technical idea of the title may be supported by the above documents. In addition, all terms disclosed in this document can be described by the above standard document.
- CI code division multiple access
- FDMA frequency division multiple access
- TDMA time division multiple access
- OFDMA orthogonal frequency division multiple access
- SC to FDMA single carrier frequency
- Division Multiple Access can be used in a variety of wireless access systems.
- CDMA can be implemented with radio technologies such as UTRAOJniversal Terrestrial Radio Access) or CDMA2000.
- TDMA may be implemented in a wireless technology such as Global System for Mobile Communications (GSM) / General Packet Radio Service (GPRS) / Enhanced Data Rates for GSM Evolution (EDGE).
- GSM Global System for Mobile Communications
- GPRS General Packet Radio Service
- EDGE Enhanced Data Rates for GSM Evolution
- 0FDMA may be implemented in a wireless technology such as IEEE 802.11 (Wi-Fi), IEEE 802.16 (WiMAX), IEEE 802-20, Evolved UTRA (E-UTRA), and the like.
- UTRA is part of UMTSOJniversal Mobile Telecommunications System.
- 3GPP LTEdong term evolution (3GPP) is part of Evolved UMTS (EHJMTS) using E-UTRA, which employs 0FDMA in downlink and SC-FDMA in uplink, LTE-A (Advanced) 3GPP LTE is an evolution.
- WiMAX can be described by the IEEE 802.16e standard (WirelessMAN-OFDMA Reference System) and the advanced IEEE 802.16m standard (WirelessMAN-OFDMA Advanced system).
- IEEE 802.16e WiMA-OFDMA Reference System
- advanced IEEE 802.16m WiMA-OFDMA Advanced system
- 1 shows the structure of a radio frame in 3GPP LTE.
- Type 2 frame structure is applied to the TDD system.
- One radio frame radio frame
- the type 2 frame includes a special subframe consisting of three fields: a downlink pilot time slot (DwPTS), a guard period (GP), and an uplink pilot time slot (UpPTS).
- DwPTS is used for initial cell discovery, synchronization, or channel estimation in the terminal.
- UpPTS is used for channel estimation at the base station and synchronization of uplink transmission of the terminal.
- the guard period is a section for removing interference from uplink due to the multipath delay of the downlink signal between the uplink and the downlink.
- DwPTS, GP, and UpPTS are included in the special subframe of Table 1.
- FIG. 2 shows an example of frame setting in the radio frame structure of FIG. 1.
- D is a subframe for downlink transmission
- U is a subframe for uplink transmission
- S is a special subframe for guard time.
- All terminals in each cell commonly have one frame setting in the configuration of FIG. 2. That is, since the frame setting varies depending on the cell, it may be called a cell-specific configuration.
- FIG. 3 is a diagram illustrating a structure of a downlink subframe.
- Up to three OFDM symbols in the front part of the first slot in one subframe correspond to a control region to which a control channel is allocated.
- the remaining OFDM symbols correspond to a data region to which a Physical Downlink Shared Chancel (PDSCH) is allocated.
- the basic unit of transmission is one subframe. That is, PDCCH and PDSCH are allocated over two slots.
- Downlink control channels used in the 3GPP LTE system include, for example, a Physical Control Format Indicator Channel (PCFICH), a Physical Downlink Control Channel (PDCCH), and a physical HARQ indicator.
- PCFICH Physical Control Format Indicator Channel
- PDCCH Physical Downlink Control Channel
- Channel Physical Hybrid automat ic repeat request Indicator Channel
- the PCFICH is transmitted in the first OFDM symbol of a subframe and includes information on the number of OFDM symbols used for control channel transmission in the subframe.
- the PHICH includes a HARQ ACK / NACK signal as a response of uplink transmission.
- Control information transmitted through the PDCCH is referred to as downlink control information (DCI).
- DCI includes uplink or downlink scheduling information or an uplink transmit power control command for a certain terminal group.
- PDCCH is resource allocation and transmission format of downlink shared channel (DL-SCH) and resource of uplink shared channel (UL-SCH).
- a plurality of PDCCHs may be transmitted in the control region.
- the UE may monitor the plurality of PDCCHs.
- the PDCCH is transmitted in a combination of one or more consecutive Control Channel Elements (CCEs).
- CCE is a logical allocation unit used to provide a PDCCH with a coding rate based on the state of a radio channel. CCE responds to multiple resource element groups.
- the format of the PDCCH and the number of available bits are determined according to the correlation between the number of CCEs and the coding rate provided by the CCEs.
- the base station determines the PDCCH format according to the DCI transmitted to the terminal, and adds a Cyclic Redundancy Check (CRC) to the control information.
- CRC Cyclic Redundancy Check
- the CRC is masked with an identifier called Radio Network Temporary Ident if ier (RNTI), depending on the owner or purpose of the PDCCH. If the PDCCH is for a specific UE, the cel 1-RNTKC-RNTI) identifier of the UE may be masked to the CRC.
- a paging indicator identifier may be masked to the CRC.
- the PDCCH is for system information (more specifically, system information block (SIB)
- SI-RNTI system information RNTI
- SI-RNTI Random Access -RNTI
- RA-RNTI may be masked to the CRC to indicate a random access answer that is a response to transmission of the random access preamble of the UE.
- the uplink subframe may be divided into a control region and a data region in the frequency domain.
- a physical uplink ink control channel (PUCCH) including uplink control information is allocated to the control region.
- a physical uplink ink shared channel (PUSCH) including user data is allocated to the data area.
- PUCCH physical uplink ink control channel
- PUSCH physical uplink ink shared channel
- PUCCH for one UE is allocated to an RB pair in a subframe. Resource blocks belonging to a resource block pair occupy different subcarriers for two slots. The resource block pair allocated to the PUCCH is said to be frequency-hopped at the slot boundary.
- MIM0 Modeling of Multiple Antenna
- MIM0 is a system that improves the transmission and reception efficiency of data by using multiple transmit antennas and multiple receive antennas. MIM0 technology does not rely on a single antenna path to receive an entire message. In addition, the entire data can be received by combining a plurality of data pieces received through a plurality of antennas.
- the MIM0 technology includes a spatial diversity method and a spatial multiplexing method.
- the spatial diversity method can increase transmission reliability or wide a radius through diversity gain, and is suitable for data transmission for a mobile terminal moving at high speed.
- Spatial multiplexing can increase the data rate without increasing the bandwidth of the system by simultaneously transmitting different data.
- FIG. 5 is a configuration diagram of a wireless communication system having multiple antennas.
- the number of transmit antennas is increased to NT and the number of receive antennas is increased to NR
- theoretical channel transmission is proportional to the number of antennas, unlike when the transmitter or receiver uses multiple antennas only. Dose is increased. Therefore, the transmission rate can be improved and the frequency efficiency can be significantly improved.
- the transmission rate may theoretically increase as the rate of increase rate Ri multiplied by the maximum transmission rate Ro when using a single antenna.
- the transmission signal when there are NT transmission antennas, the maximum information that can be transmitted is NT.
- the transmission information may be expressed as follows.
- Each transmission information, 3 ⁇ 4, may have a different transmission power.
- Each transmit power ,... If, ⁇ , the transmission information adjusted the transmission power can be expressed as follows.
- S may be expressed as follows using the diagonal matrix P of the transmission power.
- r 3 ⁇ 4 ' means a weight between the i th transmit antenna and the j th information.
- W is also called a precoding matrix.
- the transmission signal X may be considered in different ways depending on two cases (for example, spatial diversity and spatial multiplexing).
- spatial multiplexing different signals are multiplexed and the multiplexed signal is transmitted to the occasional side, so that the elements of the information vector (s) have different values.
- spatial diversity the same signal is repeatedly transmitted through a plurality of channel paths, so that the elements of the information vector (s) have the same value.
- a combination of spatial multiplexing and spatial diversity methods can also be considered. That is, the same signal may be transmitted according to the spatial diversity method through three transmission antennas, for example, and the remaining signals may be spatially multiplexed and transmitted to the receiver side.
- the reception signals ⁇ , ⁇ ⁇ and ⁇ of each antenna may be expressed as vectors as follows.
- channels may be classified according to transmit / receive antenna indexes.
- the channel passing through the receiving antenna i from the transmitting antenna j is denoted by:. Note that in the order of the index, the receiving antenna index is first, and the index of the transmitting antenna is later.
- FIG. 5 (b) shows a channel from NT transmit antennas to receive antenna i.
- the channels may be bundled and displayed in the form of a vector and a matrix.
- a channel arriving from a total of NT transmit antennas to a receive antenna i may be represented as follows.
- all channels arriving from the NT transmit antennas to the NR receive antennas may be expressed as follows.
- White noise added to each of NR receive antennas 1, 3 ⁇ 4 old ', 3 ⁇ 4 it may be expressed as: eu
- the received signal may be expressed as follows.
- the number of rows and columns of the channel matrix H indicating the channel state is determined by the number of transmit / receive antennas.
- the number of rows in the channel matrix H is equal to the number NR of receive antennas, and the number of columns is equal to the number NT of transmit antennas. That is, the channel matrix H is NRXNT matrix.
- a rank of a matrix is defined as the minimum number of rows or columns that are independent of each other.
- the tank of a matrix cannot be larger than the number of rows or columns.
- the tank (H) of the channel matrix H is limited as follows.
- 'Rank' represents the number of paths that can independently transmit a signal
- 'Number of layers' represents the number of signal streams transmitted through each path.
- the transmitting end transmits a number of layers corresponding to the number of tanks used for signal transmission, unless otherwise specified, a tank has the same meaning as the number of layers.
- signal transmission may occur during the transmission process because the transmitted packet is transmitted through a wireless channel.
- the distortion In order to receive the distorted signal correctly, the distortion must be corrected in the received signal using the channel information.
- a signal known to both the transmitting side and the receiving side is transmitted, and a method of finding the channel information with a distortion degree when the signal is received through the channel is mainly used. Pilot signal to the signal
- RSs can be classified into two types according to their purpose.
- One is RS used for channel information acquisition, and the other is RS used for data demodulation. Since the former is an RS for allowing the terminal to acquire downlink channel information, the former should be transmitted over a wide band, and a terminal that does not receive downlink data in a specific subframe should be able to receive and measure the corresponding RS.
- Such RS is also used for measurement such as handover.
- the latter is an RS that the base station sends along with the corresponding resource when the base station transmits a downlink, and the terminal can estimate the channel by receiving the corresponding RS, and thus can demodulate the data. This RS should be transmitted in the area where data is transmitted.
- 3GPP LTE Long Term Evolution
- DRS dedicated RS
- CRS is a cell-specific RS and is transmitted every subframe for a wideband.
- the CRS may be transmitted for up to four antenna ports according to the number of transmit antennas of the base station. For example, if the number of transmit antennas of the base station is two, CRSs for antenna ports 0 and 1 are transmitted, and if four, CRSs for antenna ports 0-3 are transmitted.
- FIG. 6 shows patterns of CRS and DRS on one resource block (12 subcarriers on 14 OFDM symbols X frequencies in time in case of a normal CP) in a system in which a base station supports four transmit antennas.
- resource elements RE denoted by 'R0', '1', 'R2', and 'R3' indicate positions of CRSs with respect to antenna port indexes 0, 1, 2, and 3, respectively.
- the resource element denoted as 'D' in FIG. 6 indicates the position of the DRS defined in the LTE system.
- RS for up to eight transmit antennas should also be supported. Since the downlink RS in the LTE system is defined for up to four antenna ports only, if the base station has 4 or more and up to 8 downlink transmission antennas in the LTE-A system, the RS for these antenna ports is additionally added. Should be defined. As RS for up to eight transmit antenna ports, both RS for channel measurement and RS for data demodulation shall be considered.
- Backward compatibility means that existing LTE terminals can operate properly in LTE-A system. Means that. From the point of view of RS transmission, if the CRS defined in the LTE standard adds RS for up to eight transmit antenna ports in the time-frequency domain transmitted every subframe over the entire band, the RS overhead is excessive. It becomes bigger. Therefore, in designing RS for up to 8 antenna ports, consideration should be given to reducing RS overhead.
- RS newly introduced in the LTE-A system can be classified into two types. One of them is RS, which is a RS for channel measurement for selection of a transmission tank, modulation and coding scheme (MCS), precoding matrix index (PMI), etc. Channel State Informat ion RS; CSI-RS, The other is a demodulation-reference signal (DM RS), which is an RS for demodulating data transmitted through up to eight transmit antennas.
- MCS modulation and coding scheme
- PMI precoding matrix index
- CSI-RS Channel State Informat ion RS
- CSI-RS Channel State Informat ion RS
- DM RS demodulation-reference signal
- CSI-RS for channel measurement purposes is designed for channel measurement-oriented purposes, whereas CRS in the existing LTE system is used for data demodulation at the same time as channel measurement, handover, etc. There is a characteristic to become.
- CSI-RS can also be used for the purpose of measuring the handover. Since the CSI-RS is transmitted only for the purpose of obtaining information about the channel state, unlike the CRS in the existing LTE system, the CSI-RS does not need to be transmitted every subframe. Therefore, to reduce the overhead of the CSI-RS, the CSI-RS may be designed to be transmitted intermittently (eg, periodically) on the time axis.
- a DM RS is transmitted to the terminal for which data transmission is scheduled (dedi cated).
- the DM RS dedicated to a specific terminal may be designed to be transmitted only in a resource region where the terminal is scheduled, that is, in a time-frequency region in which data for the terminal is transmitted.
- FIG. 7 is a diagram illustrating an example of a DM RS pattern defined in an LTE-A system.
- a position of a resource element for transmitting a DM RS on one resource block in which downlink data is transmitted (12 subcarriers on 14 OFDM symbols X frequencies in time in the case of a general CP) is shown.
- the DM RS may be transmitted for four antenna ports (antenna port indexes 7, 8, 9, and 10) which are additionally defined in the LTE-A system.
- DM RSs for different antenna ports may be divided into being located in different frequency resources (subcarriers) and / or different time resources (OFDM symbols) (ie, may be multiplexed in FDM and / or TDM schemes).
- DM RSs for different antenna ports located on the same time frequency resource may be distinguished from each other by orthogonal codes (ie, may be multiplexed by CDM).
- CDM code that specifies the number of antenna ports located on the same time frequency resource.
- DM RSs for antenna ports 7 and 8 may be located in resource elements (REs) indicated as DM RS CDM group 1, which may be multiplexed by an orthogonal code.
- DM RSs for antenna ports 9 and 10 may be located in resource elements indicated as DM RS group 2 in the example of FIG. 7, and they may be multiplexed by orthogonal codes.
- FIG. 8 is a diagram illustrating examples of a CSI-RS pattern defined in an LTE-A system.
- one resource block in which downlink data is transmitted (for general CP) In other words, it indicates the position of the resource element in which the CSI-RS is transmitted on 14 OFDM symbols X in frequency and 12 subcarriers on frequency).
- one of the CSI-RS patterns of FIGS. 8 (a) to 8 (e) may be used.
- the CSI-RS may be transmitted for eight antenna ports (antenna port indexes 15, 16, 17, 18, 19, 20, 21, and 22) which are additionally defined in the LTE-A system.
- CSI-RSs for different antenna ports can be divided into being located in different frequency resources (subcarriers) and / or different time resources (OFDM symbols) (ie, can be multiplexed in FDM and / or TDM schemes). .
- CSI-RSs for different antenna ports located on the same time-frequency resource may be distinguished from each other by orthogonal codes (i.e., may be multiplexed by the CDM scheme).
- CSI-RSs for antenna ports 15 and 16 may be located in resource elements (REs) indicated as CSI-RS CDM group 1, and they may be multiplexed by an orthogonal code.
- REs resource elements
- CSI-RSs for antenna ports 17 and 18 may be located in resource elements indicated as CSI-RS CDM group 2, which may be multiplexed by an orthogonal code.
- CSI-RSs for antenna ports 19 and 20 may be located in resource elements indicated as CSI-RS CDM group 3, which may be multiplexed by an orthogonal code.
- CSI-RSs for antenna ports 21 and 22 may be located in resource elements indicated as CSI-RS CDM group 4, which may be multiplexed by an orthogonal code.
- ZP CSI-RS Zero Power
- Full duplex radio refers to a system that can simultaneously support transmission and reception using the same resources in a transmission device.
- a base station or a terminal supporting FDR can transmit the uplink / downlink by dividing the frequency / time without duplexing.
- FIG. 10 shows an example of a system supporting FDR.
- the first is intra-device interference, in which a signal transmitted by a transmitting antenna in an FDR device is received by its receiving antenna and acts as interference.
- a self-interference signal is received more strongly than a desired signal. Therefore, it is important to eliminate them completely through interference cancellation.
- the second is inter-device interference (IDI), in which an uplink signal transmitted from a base station or a terminal is received by an adjacent base station or a terminal and acts as an interference.
- IDI inter-device interference
- inter-device interference is interference occurring only in FDR due to the use of the same resource in a cell.
- an uplink signal transmitted from UE 1 to a base station may act as interference to UE 2.
- 11 is a simple illustration showing two UEs for the convenience of IDI description, and features of the present invention are not limited to the number of UEs.
- FIG. 12 illustrates an example of FDMA and TDMA operations when the base station operates in the full duplex (FD) mode in the same resource and the remaining terminals have multiple accesses.
- FD full duplex
- a total of two groups performing FD operations in the same resource may be set.
- One is a group including UEl and UE2, and the other is a group including UE3 and UE4. Since IDI is generated in each group using the same resource, it is preferable to form UEs with less IDI as a group.
- UE1 and UE2 may be grouped as shown in FIG. 12.
- UE2 and UE1 may be configured not to use the same resource.
- a total of three frequency bands may be allocated such that UE3 and UE4 groups use the same frequency domain, and UE1 and UE2 use different frequency domains. This increases resource consumption but may enable more efficient transmission in terms of overall performance, eg throughput.
- a technique of measuring interference between cells (cell l) or selecting a cell according to the interference has been used in the field of CoM Coordinated Mul-Point.
- CoMP a terminal located at a cell boundary determines a base station by measuring interference of neighboring cells.
- the interference in this case means a signal of several cells to one terminal, and since the terminals do not share resources between terminals, the IDI for the neighboring terminals is not considered.
- the multi-user MIM0 or virtual MIM0 method is a configuration of a virtual MIM0 system with a base station having a plurality of antennas by tying terminals having one antenna.
- terminals receive DL transmission information for other terminals, thereby causing IDI.
- the base station schedules the terminals of each terminal and the channel between the base station and the orthogonal relationship to avoid IDI.
- the present invention is not only for DL transmission, but also for IDI in FD in which DL and UL transmission are performed at the same time.
- an apparatus eg, a base station or a terminal
- FD full duplex
- the FDR device may include a self-interference canceller, and the FDR device including the same may operate / support the FD mode in the same resource.
- An FDR device that does not include a magnetic interference canceller may not operate in an FD mode in the same resource, but may transmit information with an FDR device operating in an FD mode in the same resource, thereby supporting the FD mode. That is, an FDR device that does not include a magnetic interference canceller may also perform IDI measurement and reporting.
- a base station is an FDR device including a magnetic interference canceller, and UE1 and UE2 show an example of an FDR device without a magnetic interference canceller.
- grouping refers to grouping a plurality of terminals by a specific criterion.
- the base station sets the group based on the IDI information reported by the terminal.
- this method may be referred to as base station centric grouping.
- the present invention can be applied to a situation in which the UE performs the FD mode operation in the same resource, or a situation in which the UE performs the FD mode operation in the same resource in a situation where there is no relay of the base station such as D2D.
- This will be described after explaining the situation in which the FD mode operation in the same resource is performed in the base station.
- Such a situation may occur simultaneously in a cell, and the present invention will be described separately for ease of description, but may be simultaneously applied.
- a first embodiment of the present invention relates to an initial setting method for a group sharing a same resource in a cell in a situation where an FD operation within the same resource can be performed.
- FIG. 13 is a flowchart illustrating a method for setting initial grouping according to a first embodiment of the present invention.
- FIG. Initial grouping indicates grouping for initially applying the FD mode in the same resource in a cell.
- the base station determines the terminal to participate in the grouping (S131). At this time, the base station may select the candidate terminal in consideration of the ability to operate the FD mode in the same resource. If candidate terminals are selected, the base station transmits necessary information or indication to the candidate terminals for grouping (S132). The candidate terminals measure IDI (S133) and report information on IDI to the base station (S134). The base station groups the terminals based on the reported information (S135), and transmits information set as a group to the corresponding terminals (S136).
- step S131 the base station identifies candidate terminals to be set as a group.
- the base station may request information on whether the terminal participates in grouping to all terminals connected to the base station.
- the request information may be transmitted through the DCI format of the PDCCH or the E-PDCCH or the PDSCH.
- the terminal may respond whether or not to participate in the grouping.
- the response information may be transmitted through the UCI format of the PUCCH or the PUSCH.
- each terminal transmits a participation request.
- Each terminal may transmit a request to participate in the FD mode in the same resource in consideration of characteristics of data to be transmitted. This information may be transmitted to the base station through the UCI format of the PUCCH or PUSCH.
- the third method relates to a case in which the base station knows information on the terminal in advance, such as knowing the characteristics of data to be transmitted by the terminal, or recognizing the terminal friendly to FD participation in the same resource.
- the UE may be ready to participate in grouping, but may not currently participate in FD mode in the same resource.
- the base station may transmit the participation information request information to the corresponding terminals.
- Such information may be transmitted through the DCI format of the PDCCH or the E-PDCCH or the PDSCH.
- the information on whether or not to participate in grouping is distinguished from the FDR device (including a self-interference canceller) capable of operating in the FD mode in the same resource, but cannot operate in the FD mode in the same resource, but the same resource.
- an FDR device may contain information about the distinction of whether to request to participate in a grouping.
- the FDR device may include a self-interference canceller, and the FDR device including the same may operate / support the FD mode in the same resource.
- An FDR device that does not include a magnetic interference canceller may not operate in an FD mode in the same resource, but may support information with an FDR device operating in an FD mode in the same resource, thereby supporting the FD mode. That is, an FDR device that does not include a magnetic interference canceller may also support IDI measurement and reporting.
- These three pieces of information may be allocated to the UCI format. For example, a total of three bits may be allocated to the UCI format, one bit per three distinctions. Each bit may be assigned '1' to indicate positive, '0' to indicate negative, or vice versa.
- '011' when '011' is allocated, it is not possible to operate in the same resource FD mode as the terminals of FIG. 11, but it indicates that the device supports the FD mode in the same resource and is currently participating in grouping. .
- a terminal that does not participate in grouping may be assigned '000' to support operation in an existing legacy system.
- the FDR device transmits data characteristics, the remaining power profile, and the buffer.
- the grouping participation request bit may be changed in consideration of the (buffer) state.
- the base station may be configured not to use the FD mode operation and support to reduce the time to determine the bit allocated to the terminal.
- the bit for FD mode operation and support is preferably transmitted only when the group first participates in the grouping, or when the group is excluded from the group after group setting and then participates in the grouping again.
- the base station may manage the terminal capable of supporting only the FD mode together with the corresponding UELID ' ⁇ ', and set the terminal capable of operating the FD mode to '1'.
- the UE capable of operating the FD mode may additionally allocate a bit indicating the operation method in the FD mode to the UCI format. For example, if the corresponding bit is '0', it indicates FD mode support, and if T, FD mode operation can be indicated to indicate an operation method.
- the base station can grasp the bits operating in the FD mode and use them for resource allocation.
- step S132 the base station transmits grouping information to candidate terminals selected based on step S131.
- Examples of the information for grouping include whether to select a candidate terminal, a frequency to be used equally, and the total number N of grouping candidate terminals.
- the base station may transmit information for grouping by allocating bits to the DCI format or the PDSCH of the PDCCH.
- the base station may limit the operation terminal due to the number of terminals that can be operated. In addition, it may be informed whether the terminal notified that the group can participate in the step S131 is selected as a secondary terminal after the grouping. At this time, it is preferable that the terminal not selected by the base station as the candidate terminal operates in a fallback mode.
- the fallback mode indicates that it operates in half-duplex or FD mode in another frequency as conventionally.
- step S133 the grouping candidate terminal measures IDIs by the remaining (N-1) neighboring terminals except for its own terminal.
- the IDI measurement of the neighboring terminal may be performed by the following method.
- one UE transmits an uplink signal in each subframe during the N subframes, and the other (N-1) UEs receive a downlink signal.
- RSR Reference Signal Received Power (RSR) or Reference Signal Received Quality (RSRQ) can be measured.
- the size of the IDI for each target terminal may be defined as a function of the distance between the measurement terminal and the target terminal, the transmission power of the target terminal, and the transmission direction of the target terminal.
- all N terminals included in the grouping candidate may be measurement subject terminals.
- a signature signal for distinguishing terminals may be used.
- N terminals may transmit information on the IDI or index and the IDI measured to the base station.
- the transmission of information on the measured IDI can be done in the following ways.
- the first method is to send an approximate IDI information, and each terminal sorts the IDI values measured for the neighboring terminals in ascending or descending order, and sorts the sorted order (index value) and the UE_ID of the corresponding neighboring terminal.
- UCI format of PUCCH or PUSCH to base station Can be sent via
- the amount of transmission can be reduced rather than transmitting specific information by transmitting the sorted order.
- the second method is to transmit specific information.
- Each UE may transmit quantized information about UE_ID and measured IDI value corresponding to UE_ID for the neighboring UE to the base station through the PUCCH or the UCI format of the PUSCH. .
- a form in which the first method and the second method are common may be used at the request of the base station. For example, while transmitting the sorted order and the UE_ID as in the first method, quantized information can be transmitted as in the second method with respect to some UE_ID. In addition, for all UE_IDs, the information of the second method may be transmitted in a long period and the information of the first method may be transmitted in a short period.
- quantized information about the IDI processing capability of the UE may be transmitted (via a PUCCH or a UCI format of a PUSCH).
- the CSI channel fed back by the terminal may transmit the best frequency band (remain power power) of the terminal (through PUCCH or UCI format of PUSCH), and the like.
- step S135 the base station performs grouping based on the information received in step S134, and sets a group ID for each terminal.
- the grouping may be performed based on the size of the IDI or the order in which the IDIs are arranged in size. In addition, if additional information other than the IDI measurement value is received, grouping may be performed using this information.
- the base station may set a group in consideration of a specific threshold for the IDI of each terminal or the size of each preset group. At this time, the threshold may be determined according to the performance of the IDI mitigation or removal algorithm.
- the size (number of terminals included in the group) of each group may be determined in advance in consideration of available resources.
- the IDI value may be included in the group only when the IDI value is more than or less than a certain threshold, and the size of the group may be set accordingly.
- the minimum group size is 1, the IDI value is outside the threshold, etc., and indicates that a specific resource is allocated only to the corresponding UE. In other words, it is the same as operating in fallback mode.
- a group of UEs that generate a lot of IDIs may be configured. For example, a group of terminals having an IDI value above a certain threshold may be set. This grouping can be defined as a wors t relation based grouping. That is, groups with large IDI interference are grouped into one group.
- a group of UEs with less IDI may be configured. For example, a group of terminals whose IDI value is below a certain threshold may be set. Such grouping may be defined as best relation based grouping. That is, UEs with small interference (IDI) are grouped into one group.
- IDI small interference
- resource allocation in the group may be performed in the following manner.
- an IDI avoidance technique (eg, a panforming technique) may be used when the same resource is used between terminals in the group.
- interference can be avoided by multiplexing terminals in a group by FDM, and terminals between groups can be configured to operate / support in an FD mode in the same resource.
- FD mode operation / support in the same resource of UEs between groups is advantageous to use the SC (Successive Cancellation) method of interference cancellation technology. This is because the SC method exhibits better cancellation performance as the difference in signal strength between interferences increases.
- UEs in the group may be configured to operate / support in the FD mode in the same resource, and UEs between the groups may be multiplexed with FDM to avoid interference.
- FIG. 15 (a) shows an example in which 8 base stations and 8 terminals for sal specific grouping are arranged
- FIG. 15 (b) shows an example of group configuration when the worst relationship based grouping is completed.
- the arrangement is illustrated under the assumption that IDI is proportional to the distance between terminals.
- FIG. 16 illustrates that IDIs are sorted in ascending order for each UE based on the IDI measured by each UE of FIG. 15 (a).
- the first column represents a terminal for measuring IDI
- the first row represents an IDI measurement object.
- the second row of FIG. 16 shows that IDI is largely measured in the order of d, g, b, e, f, h, and c when a measures IDI of another terminal.
- This method corresponds to the first method in the IDI information reporting method of 1.4. Specifically, a method in which IDI has a large value has a low index value.
- grouping is performed based on a large IDI having a low index value, but grouping may be performed based on a large IDI having a large index value.
- An average value of each column of FIG. 16 is the same as that of FIG.
- the average value of each column may relatively indicate the degree to which the measurement terminal is far from the center of all the terminals.
- the low number of indexes (index values) in the table indicates that the degree (IDI) of the target terminal affects the measurement terminal is large. Therefore, the target terminal having a large influence on each measurement terminal is selected.
- the top three values (three values with low values) having a large influence are selected for each column. In this case, the upper three are selected at random and may vary according to the total number of groups. In this example, all of the same values are selected, but the present invention is not limited thereto.
- the lowest value 2 is selected in the first column of FIG. 18. 2 is selected from (da) and (ga) when expressed as (row-column). Since we decided to select the top three values, we select the next value, 7, and select all the same values, so all of them are selected in the first column. [202] Referring to the second column of FIG. 18, the lowest value in the second column is 1 and
- the lowest value in the third column is 1 and two of (f-c) and (h-c) are selected.
- the next lower value is 4 and one (e-c) is chosen, for a total of three values.
- the average of each row is obtained for the selected target terminal.
- the rightmost column of Fig. 18 represents the average value.
- the low average value may determine that the number of target terminals affecting the measurement terminal is small. This is because three low target terminals are selected.
- a low average value may mean that the measurement terminal is biased to either side.
- FIG. 15A it can be seen that the average value of the terminals a, d, and g biased to one side is low. On the contrary, if the average value is large, it may mean that a large influence is received from many terminals.
- the terminal a, d, g having the lowest average value is set as the first group.
- FIG. 19 illustrates a target terminal as shown in FIG. 18 for the remaining terminals except for the a, d, and g terminals in which the group is determined.
- the average of each row is obtained for the selected target terminal.
- the last column of Fig. 19 shows the average value.
- the low mean value means that the number of target terminals affecting the measurement terminal is small. Therefore, when the size of the second group is set to two, the terminal b and e having the lowest average value are set as the second group.
- Grouping may be repeatedly performed for the remaining terminals, and the embodiment of FIG. 15 illustrates a total of three group settings.
- 1.5 the worst relationship-based grouping is described based on the fact that the large IDI has a low index value. However, the worst relationship-based grouping can be performed based on the fact that the large IDI has a high index value. It may be. In this case, the method described above may be equally applied based on a high number of high index values selected in FIG. 16 and the like, and a high average of each row.
- a low IDI has a low index value.
- grouping is performed based on a small IDI having a low index value.
- grouping may be performed based on a small IDI having a large index value.
- a low value in the table indicates that the target terminal affects the measurement terminal small.
- a target terminal having a small influence is selected for each measurement terminal.
- the size of each group is set to 2, and two values are selected in the order of decreasing value for each column.
- the setting of the group size and the upper selection value to 2 is an arbitrary value and may vary depending on the total number of groups.
- all of the same values are selected but are not limited thereto.
- the target terminal may not be selected according to the threshold.
- different frequencies / times may be allocated to the corresponding terminals.
- a large number of terminals selected in each column indicates that the target terminal is far from the measurement terminals.
- the target terminal a has five selections, but it can be seen that the edge is located in FIG. 15 (a).
- the number of terminals selected in each column is small, and the IDI influence is greatest, in order to reduce the degree of IDI to be the largest.
- Selects a terminal For example, the smallest number of values selected in each column is b and h, and the smallest number of selected values in each column is two. Subsequently, the terminal having the greatest IDI influence means that the corresponding value is large.
- b is selected because the value selected in the column of terminal b is 4, which is greater than 2 in the column of terminal h. That is, in FIG. 20, c or f measurement terminals may be grouped with respect to b target terminal.
- FIG. 21 shows that after the b and c terminals are set as a group, the target terminal is selected as in FIG. 20 except for the b and c terminals to set the second group.
- FIG. 22A illustrates a third group
- FIG. 22B illustrates a target terminal selection for setting a fourth group.
- the group may be set as shown in FIG. 23. That is, b and c terminals, d and f terminals, g and e terminals, a and h terminals are set to one group.
- the worst case relationship-based grouping is described based on the fact that the IDI has a low index value, but the IDI has a low index value. You can also perform best relationship based grouping as a basis. In this case, as shown in FIG. 20 or the like, a high number of index values may be selected and the above-described method may be applied in the same manner.
- grouping may be performed using IDI measurement values that are directly quantized.
- the base station may directly group terminals satisfying a threshold using an IDI value.
- a threshold For example, in case of worst relationship based grouping, one having IDI value above a certain threshold may be grouped into one group, and in case of best relationship based grouping, one having IDI value below a certain threshold may be grouped into one group.
- the size of each group should be able to satisfy the predetermined group size and the threshold at the same time. For example, if the size of a group is preset to 3 and there are only 2 terminals that meet the threshold, the size of this group should be 2.
- step S136 the base station may transmit information on the configuration group to the terminals.
- the information on the configuration group may be made in the following method according to the downlink transmission amount.
- the group ID information may be transmitted by allocating bits through the DCI format of the PDCCH or the PDSCH. Using this, each terminal can measure IDI for terminals other than terminals in the group to which it belongs.
- a group ID to which all the terminals belong and a neighboring group ID may be transmitted to all terminals.
- the group ID to which the UE belongs and the neighbor group ID may be transmitted through the PDCCH or the PDSCH.
- the base station selects and transmits a group ID that satisfies a certain threshold value / lower value as a neighboring group ID by using the reported IDI information. Then, each terminal in the group ID can reduce the load on the IDI measurement by measuring the IDI only for the terminals belonging to the received peripheral group ID.
- all group IDs and UELIDs belonging to a corresponding group may be transmitted to all terminals.
- such information may be transmitted through PDCCH or PDSCH.
- each terminal measures IDI of one terminal per group ID when IDI is measured, and then measures IDI by measuring IDI only for terminals belonging to a group that meets or exceeds a specific threshold. Reduce the load on
- the information transmitted to the terminal may also include measurement / report period information, and may transmit this information through high layer signaling such as RRC.
- the second embodiment of the present invention relates to a method for group ping update after initial grouping of the first embodiment is performed.
- Grouping update means that the group setting can be maintained or updated by IDI re-measurement and reporting when the group is set up and operated in the FD mode in the same resource.
- a change in a group may occur due to participation of a new candidate terminal or withdrawal of a group of existing candidate terminals.
- the base station determines whether there is a candidate to participate in the grouping or whether there is a terminal to stop participating in the FD mode in the same resource (S2401). If there is a new UE candidate, the UE additionally informs all the candidate UEs of the IDI measurement target, and informs the UEs of the UEs to stop participating in the FD mode in the UEs measuring the UE (S2403). If there is no terminal to be changed, the UE identification period, IDI measurement period, and IDI reporting period may be changed (S2404).
- the IDI measurement in the terminal may be performed according to the set period (S2406) or according to the instruction of the base station (S2407).
- the IDI measurement terminal may report the IDI information to the base station according to the set period (S2409) or according to the instructions of the base station (S2410).
- the base station updates the group information of the terminals based on the reported information (S2411), and transmits the updated group information to the corresponding terminals (S2412).
- step S2401 the base station determines whether there is a new candidate terminal to participate in grouping or a terminal to stop participating in the FD mode in the same resource.
- the FD mode participant discontinuity terminal is operated in the fal lback mode.
- the base station may identify the FD mode participating UE in the same resource as follows.
- the FDR apparatus allocates a bit indicating whether a corresponding UE is included in a group to 1 bit in the UCI format of a PUCCH or PUSCH, and simultaneously uses this bit and a bit for a grouping participation request in FIG. 14.
- FIG. 25 illustrates an example of identifying a grouping candidate object using a grouping participation request and whether the group is included in a group.
- the base station identifies the candidate candidate for grouping / removal of grouping using the bits for the grouping participation request in FIG. 14. If the base station stores the group ID and the UELID included in the group for the set group, it is possible to replace the allocation bit for inclusion in the group. For example, if the group join request bit is set to '1' If there is no UELID of the corresponding UE in the stored UE_ID, it can be identified as a new UE to participate in the grouping.
- the UE transmits a grouping participation request bit in consideration of a state (eg, receiving a corresponding group ID) included in a group.
- a state eg, receiving a corresponding group ID
- the allocation bits for inclusion in the group can be substituted.
- the base station may be identified as a terminal to stop participating in the FD mode when the grouping participation request bit is '0', and may be identified as a new terminal to participate in the grouping.
- the base station may perform grouping update at regular intervals.
- the grouping update may be performed to the UE participating in the FD mode through S2403 and S2405.
- the timing and operation of grouping candidate terminal identification may be performed as follows.
- the base station identifies the post terminal after the grouping whenever the grouping update is performed.
- the base station periodically identifies the grouping candidate terminal according to the candidate terminal identification period.
- the candidate terminal identification period may be fixed, or the period may be gradually changed in an environment where the group does not change frequently. At this time, when the group is changed or the grouping candidate terminal is identified, the longer period may be set to the first set period.
- the candidate terminal identification period may be determined in the following manner relative to the grouping update period.
- the candidate terminal may be identified by a period smaller than the grouping update period. It can be used to identify the FD mode participant stop terminal in advance for some groups in every UE terminal identification cycle.
- the candidate terminal may be identified by a period larger than the grouping update period. In this case, there is an advantage that can reduce the load on the candidate terminal identification. If the grouping update is performed in a period of not identifying the candidate terminal, it can be determined that there is no grouping target terminal change in step S2402.
- the base station may determine the grouping candidate terminal as a response. For example, a terminal newly participating in the grouping may be requested by the terminal powering on or activating the user's FDR device. Or off the terminal The terminal requesting to stop the FD mode may be requested due to the load, the user's deactivation of the FDR device, and the battery remaining below the reference level.
- the candidate terminal identification period may be determined immediately or may be determined by a predetermined setting period. Alternatively, the terminal may request a grouping update even when a terminal movement between groups occurs.
- the period can be increased by using the second method and the third method at the same time. In this case, there is an advantage that can reduce the load for identifying the candidate terminal.
- the grouping update may be required not only for the new candidate terminal to participate in the grouping or the terminal to stop participating in the FD mode in the same resource, but also when the existing group setting terminals move between groups. .
- the operation may be performed as follows.
- every grouping update or grouping update for all terminals is performed in a certain period.
- the terminal when the state of the terminal changes by more than a predetermined reference, for example, in case of fast movement of the terminal, the terminal may operate in a fallback mode. This may be eliminated during the grouping update process in the form of stopping FD mode participation, and may operate as a new candidate terminal to participate in the grouping at the next grouping update time.
- a new candidate terminal to participate in grouping may directly transmit a request.
- the UE may transmit a grouping participation request bit and assigning a bit included in the group to '0'.
- the base station searches for the corresponding UE_ID in the IDI measurement target list or whether there is a set group ID. If there is a set group ID but the bit included in the group is '0', the grouping update may be performed.
- the base station may allocate a frequency for IDI measurement to the grouping candidate terminals as shown in FIG. 26.
- FIG. 26 (a) shows an example of allocating a common frequency fco for IDI measurement to all terminals.
- all UEs use time for N subframes for a total of N UEs to measure IDI as in S1303.
- FIG. 26 (b) shows an example of different IDI measurement frequency allocations in the first time domain and the second time domain.
- an exclusive frequency fl, f2, f3
- Terminals in each group commonly use the frequency allocated to the group.
- the number of UEs included in three groups is A and the number of UEs to be newly joined is B
- an exclusive frequency is allocated for a total of A subframe times, and B common frequencies are used. Allocates during subframe time.
- the B terminals transmit an uplink signal during the B subframes, and the remaining 3 * A + (B-1) terminals receive the downlink signal at the same time to perform IDI measurement.
- a time for IDI measurement takes a total of (3 * A + B) subframe time in the method of FIG. 26 (a), and a total of (A + B) subframe time in the method of (b).
- the base station may transmit information about the terminal to be changed in the following manner.
- UE_ID is newly assigned to a UE to newly join a grouping to UEs for grouping update (all other UEs in the current group except for another new UE to participate in grouping and UE to stop FD mode participation).
- the IDI measurement target list including the corresponding UE_ID or the corresponding UE.ID may be informed. Such information may be transmitted through a PDCCH or PDSCH channel.
- the IDI measurement target list may include UE_IDs for grouping update target terminals or UE_IDs of terminals belonging to some groups.
- the base station may transmit the UE ID or IDI measurement target list to all the terminals in the current group or the group to which the changed terminal belongs except the FD mode participation termination terminal. It can be transmitted through PDCCH or PDSCH.
- the base station may transmit the IDI measurement target list through the PDCCH or the PDSCH.
- a bit indicating to reuse the previous IDI measurement target list may be allocated and transmitted through the PDCCH or the PDSCH.
- the previous list may be reused.
- the measurement value does not appear because there is no corresponding UE_ID during IDI measurement.
- the terminal that has not received the list does not receive the UE_ID for the terminal to be added to the grouping, it can determine that there is an IDI exceeding the measured total IDI size and inform the base station. Or, if the IDI measurement target list is not received, the base station may request retransmission.
- step S2404 the base station determines a period such as a terminal identification period, an IDI measurement period, an IDI reporting period, and the like, if there is no terminal to be changed or if the terminal to be changed is not within a predetermined time, increase the corresponding period Can be.
- the base station may increase the period by checking if the group setting is not changed additionally, if the IDI sorting order within the group is not changed, or if an IDI size change occurs below a specific value within the group.
- the base station may instruct the group update target terminals IDI. Instructed terminals can immediately measure IDI. Alternatively, the base station may instruct the IDI measurement for some groups including interruption of the FD mode participation. Even when there is a measurement period as in step S2406, the base station may instruct the IDI measurement. For example, when the measurement period is long and the grouping target UE does not frequently change, the base station may instruct IDI measurement when the grouping target UE changes.
- the IDI may be periodically measured by using a measurement / report period included in information transmitted from the base station to the terminal or by using a period set as a system parameter. Periodic measurement of IDI at the UE may be performed in the following manner.
- IDI measurement is performed for all UEs by setting an X time or a TTKTransmit Time Interval) period as a system parameter.
- IDI measurement is performed only for some groups including the FD mode participating UE by setting an X time or a TTI period different from the X time or the TTI as a system parameter.
- Y> X may occur according to the frequency of grouping target terminals.
- the above two methods can be used simultaneously, and in this case, the load on IDI measurement can be reduced.
- step S2401 the UE measures IDI using a frequency allocated for IDI measurement.
- the terminal may reject the IDI measurement due to the remaining battery amount.
- the base station may instruct the grouping update target terminals of the measured IDI information report. Instructed terminals can immediately report the measured IDI information.
- the measured IDI information may be reported only for a group in which IDI sorting order of the measurement terminals is changed or an IDI size change of a specific value or more occurs. Even if there is a reporting period as in step S2409, when the base station instructs IDI measurement only for some groups including the participation in the FD mode in S2405, the base station may instruct the terminals of the corresponding groups to report the measured IDI information. Can be.
- step S2409 in step S136 and step S2412, information about the UE index and IDI in the form of S134 is obtained by using a measurement / reporting period included in the information transmitted from the base station to the UE or using a period set as a system parameter. Report periodically. Periodic interference information reporting in the terminal may be performed in the following manner. In the first method, the measured IDI and the UE index for all UEs can be reported by setting an X time or a TTKTransmit Time Interval) period as a system parameter.
- IDI and UE indexes measured for only some groups including the FD mode participation termination UE may be reported by setting a Y time or a TTI period different from X time or ⁇ as a system parameter. Depending on the frequency of the terminal to be grouped, it may also occur when ⁇ »(.
- step S2409 and S2410 when the IDI sorting order is not changed or when an IDI size change of a specific value or less occurs, the UE may not report the information. Instead, an indicator to refer to the previous report is sent to the base station through the PUCCH or the PUSCH. Transmission is possible. In this case, steps S2411 and S2412 can be omitted. As in step S134, as well as information about the IDI, information other than the IDI measurement value based on the grouping may be additionally transmitted to the base station.
- the base station may perform the processes S2411 and S2412 with reference to the previous report. Alternatively, steps S2411 and S2412 may be omitted.
- the terminal may reject the IDI measurement due to the remaining battery amount. That is, the terminal may not perform the method for transmitting the distinction signal between the terminal and the listening attempt.
- a bit indicating that IDI measurement is rejected may be allocated and transmitted through PUCCH or PUSCH.
- the base station waits to perform the other terminal can identify the terminal significantly lower IDI measurement value. Through this, the base station can know that the identified terminal is the IDI measurement rejection terminal.
- step S2411 grouping may be performed in the same manner as in step S135.
- the base station can store the previous group ID assigned for each terminal. Through this, the base station can identify a terminal whose group ID is frequently changed, and can perform the following operations. First, when several group IDs are allocated to one terminal, the base station may know that the terminal is at a group boundary. The IDI measurement value in such a terminal can be used as a threshold referenced in the grouping.
- the base station may know that the terminal is moving. When such a terminal occurs, the IDI measurement / reporting and grouping process should be performed at all times. To reduce this, the terminal may fall back and may be removed from the FD mode in the same resource.
- Step S2412 may be performed in the same manner as step S136.
- a signal for maintaining the grouping information previously transmitted to the terminals may be transmitted to the terminals belonging to the group whose grouping result has not changed.
- Such information may be indicated by allocating 1 bit to the DCI format or PDSCH of the PDCCH.
- step S2413 if there is no more grouping request, the grouping update is terminated.
- the present invention can be applied even in a situation in which the UE performs FD mode operation in the same resource.
- 27 illustrates an example in which the UE performs an FD mode operation in the same resource.
- the present invention can be applied considering the base station as the terminal in the present invention. At this time, the IDI reporting process and the grouping result information transmission in the base station are not performed.
- the present invention can be applied to a situation in which the UE performs the FD mode operation in the same resource in a situation where there is no data relay of the base station as shown in D2D of FIG. 27 (b).
- D2D data transmission through the base station is not performed, but the terminal performs feedback to the base station for scheduling management in the base station.
- the process of the present invention can be performed in the same way.
- FIG. 28 illustrates a base station and a terminal that can be applied to an embodiment of the present invention.
- a relay When a relay is included in the wireless communication system, communication is performed between the base station and the relay in the backhaul link, and communication is performed between the relay and the terminal in the access link. Lose. Therefore, the base station or the terminal illustrated in the figure may be replaced with a relay according to the situation.
- a wireless communication system includes a base station 2810 and a terminal 2820.
- Base station 2810 includes a processor 2813, a memory 2814, and a Radio Frequency (RF) unit 2811, 2812.
- the processor 2813 may be configured to implement the procedures and / or methods proposed in the present invention.
- the memory 2814 is connected to the processor 2813 and stores various information related to the operation of the processor 2813.
- the RF unit 2816 is connected with the processor 2813 and transmits and / or receives a radio signal.
- Terminal 2820 includes a processor 2827, a memory 2824, and an RF unit 2821, 2822.
- the processor 2823 may be configured to implement the procedures and / or methods proposed in the present invention.
- the memory 2824 is connected to the processor 2823 and stores various information related to the operation of the processor 2823.
- RF units 2821 and 2822 are coupled to processor 2823 and transmit and / or receive wireless signals.
- the base station 2810 and / or the terminal 2820 may have a single antenna or multiple antennas.
- the base station may be performed by its upper node. That is, it is apparent that various operations performed for communication with a terminal in a network including a plurality of network nodes including a base station may be performed by a base station or network nodes other than the base station.
- a base station may be replaced by terms such as fixed station, Node B, eNodeB (eNB), access point, and the like.
- eNB eNodeB
- An embodiment according to the present invention may be implemented by various means, for example, hardware and firmware.
- DSPs Capac icat ion speci f ic integrated circuits
- DSPs digital tal signal processors
- DSPDs digital tal signal processing devices
- PLDs r ogr ammab 1 e logic devices
- FPGAs f ield programmable gate arrays
- the microcontroller may be implemented by a microprocessor or the like.
- an embodiment of the present invention may be implemented in the form of modules, procedures, functions, etc. that perform the functions or operations described above.
- the software code may be stored in the memory unit and driven by the processor.
- the memory unit may be located inside or outside the processor, and may exchange data with the processor by various known means.
- the present invention can be used in a wireless communication device such as a terminal, a relay 0 base station, and the like.
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- Engineering & Computer Science (AREA)
- Signal Processing (AREA)
- Computer Networks & Wireless Communication (AREA)
- Quality & Reliability (AREA)
- Multimedia (AREA)
- Power Engineering (AREA)
- Mobile Radio Communication Systems (AREA)
Abstract
Description
Claims
Priority Applications (5)
Application Number | Priority Date | Filing Date | Title |
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JP2016555602A JP6553076B2 (ja) | 2014-03-26 | 2015-03-26 | Fdr伝送をサポートする無線アクセスシステムにおけるリソース割当て方法及び装置 |
EP15767890.5A EP3125632B1 (en) | 2014-03-26 | 2015-03-26 | Method and apparatus for allocating resources in wireless access system supporting fdr transmission |
CN201580016278.0A CN106134275B (zh) | 2014-03-26 | 2015-03-26 | 支持fdr传输的无线接入系统中用于分配资源的方法和装置 |
KR1020167020304A KR20160138380A (ko) | 2014-03-26 | 2015-03-26 | Fdr 전송을 지원하는 무선접속시스템에서 자원 할당 방법 및 장치 |
US15/121,755 US20170071004A1 (en) | 2014-03-26 | 2015-03-26 | Method and apparatus for allocating resources in wireless access system supporting fdr transmission |
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PCT/KR2015/002977 WO2015147569A1 (ko) | 2014-03-26 | 2015-03-26 | Fdr 전송을 지원하는 무선접속시스템에서 자원 할당 방법 및 장치 |
PCT/KR2015/002979 WO2015147571A1 (ko) | 2014-03-26 | 2015-03-26 | Fdr 전송을 지원하는 무선접속시스템에서 자원 할당 방법 및 장치 |
PCT/KR2015/002978 WO2015147570A1 (ko) | 2014-03-26 | 2015-03-26 | Fdr 전송을 지원하는 무선접속시스템에서 자원 할당 방법 및 장치 |
PCT/KR2015/002980 WO2015147572A1 (ko) | 2014-03-26 | 2015-03-26 | Fdr 전송을 지원하는 무선접속시스템에서 자원 할당 방법 및 장치 |
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PCT/KR2015/002979 WO2015147571A1 (ko) | 2014-03-26 | 2015-03-26 | Fdr 전송을 지원하는 무선접속시스템에서 자원 할당 방법 및 장치 |
PCT/KR2015/002978 WO2015147570A1 (ko) | 2014-03-26 | 2015-03-26 | Fdr 전송을 지원하는 무선접속시스템에서 자원 할당 방법 및 장치 |
PCT/KR2015/002980 WO2015147572A1 (ko) | 2014-03-26 | 2015-03-26 | Fdr 전송을 지원하는 무선접속시스템에서 자원 할당 방법 및 장치 |
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EP (1) | EP3125632B1 (ko) |
JP (1) | JP6553076B2 (ko) |
KR (1) | KR20160138380A (ko) |
CN (1) | CN106134275B (ko) |
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KR102201479B1 (ko) * | 2015-10-26 | 2021-01-11 | 에스케이텔레콤 주식회사 | 기지국장치 및 단말 간 직접통신 무선자원 할당 방법 |
WO2019124970A1 (ko) * | 2017-12-20 | 2019-06-27 | 엘지전자 주식회사 | 무선랜 시스템에서 fdr을 기반으로 프레임을 송신하는 방법 및 장치 |
WO2019201201A1 (zh) * | 2018-04-16 | 2019-10-24 | 华为技术有限公司 | 并行传输方法和装置 |
US11832305B2 (en) | 2018-04-16 | 2023-11-28 | Huawei Technologies Co., Ltd. | Parallel transmission method and apparatus |
Also Published As
Publication number | Publication date |
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EP3125632B1 (en) | 2021-03-24 |
EP3125632A4 (en) | 2017-11-15 |
WO2015147571A1 (ko) | 2015-10-01 |
WO2015147570A1 (ko) | 2015-10-01 |
KR20160138380A (ko) | 2016-12-05 |
EP3125632A1 (en) | 2017-02-01 |
US10123338B2 (en) | 2018-11-06 |
US20170071004A1 (en) | 2017-03-09 |
JP2017514339A (ja) | 2017-06-01 |
WO2015147572A1 (ko) | 2015-10-01 |
CN106134275A (zh) | 2016-11-16 |
CN106134275B (zh) | 2019-11-29 |
US20170064721A1 (en) | 2017-03-02 |
JP6553076B2 (ja) | 2019-07-31 |
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