WO2018196534A1 - 控制资源集合配置的发送方法、控制信息的接收方法、网络侧设备及终端 - Google Patents

控制资源集合配置的发送方法、控制信息的接收方法、网络侧设备及终端 Download PDF

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Publication number
WO2018196534A1
WO2018196534A1 PCT/CN2018/080682 CN2018080682W WO2018196534A1 WO 2018196534 A1 WO2018196534 A1 WO 2018196534A1 CN 2018080682 W CN2018080682 W CN 2018080682W WO 2018196534 A1 WO2018196534 A1 WO 2018196534A1
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Prior art keywords
resource set
control resource
common control
information
control
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PCT/CN2018/080682
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English (en)
French (fr)
Inventor
倪吉庆
周伟
韩双锋
崔春风
李祁
Original Assignee
中国移动通信有限公司研究院
中国移动通信集团有限公司
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Publication of WO2018196534A1 publication Critical patent/WO2018196534A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0053Allocation of signaling, i.e. of overhead other than pilot signals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/0001Systems modifying transmission characteristics according to link quality, e.g. power backoff
    • H04L1/0036Systems modifying transmission characteristics according to link quality, e.g. power backoff arrangements specific to the receiver
    • H04L1/0038Blind format detection
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path

Definitions

  • the present disclosure relates to the field of communications technologies, and in particular, to a method for transmitting a control resource set configuration, a method for receiving control information, a network side device, and a terminal.
  • control channel In a mobile communication system, the control channel needs to occupy the entire system bandwidth, as shown in Figure 1. When the user detects the control channel to obtain control information, it needs to detect the entire system bandwidth.
  • one method is to divide the available bandwidth of the control channel in the N available OFDM symbols into M control subbands or Control Resource Sets, so that the terminal only needs to control information in one control resource set.
  • the detection inside can effectively reduce the complexity of terminal detection, as shown in Figure 2.
  • the bandwidth of the next-generation communication system (5G) will be larger.
  • the terminal detects the bandwidth of the entire system, the blind detection complexity is high.
  • the present disclosure provides a method for transmitting a control resource set configuration, a method for receiving control information, a network side device, and a terminal.
  • the terminal obtains the control information, it only needs to detect the control resource set, and does not need to detect the entire system bandwidth, which can effectively reduce the control blind detection complexity.
  • an embodiment of the present disclosure provides the following solution:
  • a method for transmitting a control resource collection configuration includes:
  • the configuration information of the common control resource set is sent through the PBCH.
  • the configuration information of the common control resource set includes one or more of the following: a bandwidth of a common control resource set, a number of occupied control symbols, and an occupied time-frequency resource location.
  • the transmitting the configuration information of the common control resource set by using the PBCH includes: semi-statically explicitly configuring, by the broadcast channel NR-PBCH, the bandwidth of the common control resource set and/or the number of control symbols occupied by the common control resource set. .
  • the transmitting, by the PBCH, the configuration information of the common control resource set includes: semi-static explicit configuration through a broadcast channel NR-PBCH or implicitly determining a time-frequency resource location occupied by the common control resource set.
  • An embodiment of the present disclosure further provides a method for receiving control information, including:
  • the common control resource set is a control resource set used for initial user access and system information transmission;
  • the common control resource set is detected according to the configuration information, and control information is obtained.
  • the configuration information of the common control resource set includes one or more of the following: a bandwidth of a common control resource set, a number of occupied control symbols, and an occupied time-frequency resource location.
  • the step of detecting the common control resource set according to the configuration information, and obtaining the control information includes:
  • the terminal group control information includes control information of multiple terminals.
  • An embodiment of the present disclosure further provides a network side device, including:
  • a sending module configured to determine a common control resource set, configured for initial user access, system information transmission, and sending configuration information of the common control resource set by using a PBCH.
  • the transmitting the configuration information of the common control resource set by using the PBCH includes: semi-statically explicitly transmitting, by the broadcast channel NR-PBCH, the bandwidth of the common control resource set and/or the number of control symbols occupied by the common control resource set. .
  • the transmitting, by the PBCH, the configuration information of the common control resource set includes: semi-static explicit configuration through a broadcast channel NR-PBCH or implicitly determining a time-frequency resource location occupied by the common control resource set.
  • An embodiment of the present disclosure further provides a terminal, including:
  • An acquiring module configured to acquire configuration information of a common control resource set;
  • the common control resource set is a control resource set used for initial user access and system information transmission;
  • the receiving module detects the common control resource set according to the configuration information, and obtains control information.
  • Embodiments of the present disclosure also provide a network side device, including: a processor, a memory, and a computer program stored on the memory and executable on the processor, when the computer program is executed by the processor The steps in the method for transmitting the above control resource set configuration are implemented.
  • Embodiments of the present disclosure also provide a terminal, including: a processor, a memory, and a computer program stored on the memory and executable on the processor, the computer program being implemented by the processor to implement the above The steps in the method of receiving control information.
  • Embodiments of the present disclosure also provide a computer readable storage medium having stored thereon a computer program that, when executed by a processor, implements the steps of the method of transmitting a control resource set configuration described above.
  • Embodiments of the present disclosure also provide a computer readable storage medium having stored thereon a computer program, the computer program being executed by a processor to implement the steps in the method of receiving control information.
  • the above solution of the present disclosure by determining a common control resource set for initial access and system information transmission of a user, and transmitting configuration information of the common control resource set through the PBCH, so that the terminal only needs to control when obtaining control information.
  • the collection of resources is detected, and the bandwidth of the entire system does not need to be detected, which can effectively reduce the complexity of controlling blind detection.
  • FIG. 1 is a schematic diagram of a control channel occupying an entire system bandwidth
  • FIG. 2 is a schematic diagram of dividing a control channel into a plurality of control subbands
  • FIG. 3 is a schematic flowchart of a method for transmitting control information according to an embodiment of the present disclosure
  • FIG. 5 is a schematic diagram of centralized mapping of two control resource sets
  • 6A is a schematic diagram of controlling CCE distributed mapping interval 2 CCE bandwidths in a resource set
  • 6B is a schematic diagram of controlling four CCE bandwidths of a CCE distributed mapping interval in a resource set
  • FIG. 7 is a schematic diagram of a plurality of CCE centralized mappings in a control resource set
  • FIG. 8 is a schematic diagram of a design embodiment of a control resource set based on a control symbol
  • FIG. 9 is a schematic diagram of a design embodiment of a control resource set based on two control symbols
  • 10 and 11 are schematic diagrams showing a design embodiment of a two-cell control resource set
  • 12 and 13 are schematic diagrams showing a design embodiment of a two-cell control resource set
  • 14 and 15 are schematic diagrams showing a design embodiment of a common control channel for a two-cell user group
  • 16 is a schematic flowchart of a method for receiving control information on a terminal side
  • FIG. 17 is a schematic flowchart diagram of a method for transmitting a control resource set configuration according to an embodiment of the present disclosure
  • 18 is a flow chart showing a method of receiving control information on the terminal side.
  • an embodiment of the present disclosure provides a method for sending control information, including:
  • Step 11 Map multiple control resource sets to multiple resource blocks PRB according to the first mapping manner, and map a preset number of CCEs in each control resource set to multiple resource blocks PRB according to the second mapping manner. ;
  • Step 12 Determine, from a plurality of control resource sets, a set of common control resources used for initial user access and system information transmission;
  • Step 13 Send the first mapping mode and the second mapping mode and the configuration information of the common control resource set to the terminal, and send the control information on multiple PRBs.
  • This embodiment of the present disclosure maps a plurality of control resource sets to a plurality of resource blocks PRB according to a first mapping manner, and maps a preset number of CCEs in each control resource set to a plurality of according to a second mapping manner.
  • a resource block PRB determining, from a plurality of control resource sets, a common control resource set for user initial access and system information transmission; transmitting a first mapping mode and a second mapping mode to the terminal, and the common control resource set
  • the configuration information and the control information are sent on multiple PRBs; when the terminal obtains the control information, only the control resource set needs to be detected, and the entire system bandwidth detection is not needed, which can effectively reduce the control blind detection complexity.
  • each control resource set is part of a control channel time-frequency resource, and each control resource set includes: a preset number of Control Channel Elements (CCEs), the preset quantity is equal to
  • the maximum aggregation level (AL) included in the control channel corresponds to an integral multiple of the number of CCEs.
  • the maximum aggregation level includes: 1, 2, 4, and 8, that is, the control channel includes 1 CCE, 2 CCEs, 4 CCEs, or 8 CCEs; the preset number is 1, 2, 4, or 8 and Integer multiple; as each control resource set includes 8 CCEs or 16 CCEs.
  • the configuration information of the common control resource set includes: a bandwidth of the common control resource set, a number of occupied control symbols, and an occupied time-frequency resource location.
  • the bandwidth of the common control resource set and/or the number of control symbols occupied by the common control resource set may be sent to the terminal by means of the semi-static explicit transmission of the broadcast channel NR-PBCH, where the explicit transmission mode refers to the available Dedicated signaling.
  • the time-frequency resource location occupied by the common control resource set is sent to the terminal in a manner of semi-static explicit transmission or implicit determination by the broadcast channel NR-PBCH, where the implicit determination manner refers to determining the display information together with the implicit information. , for example, together with the ID of the cell.
  • the first mapping manner and the second mapping manner may be sent to the terminal by using an implicit sending manner or a preset indication.
  • the first mapping mode includes multiple control resource set distributed mappings
  • CCEs in each control resource set are dispersedly arranged; wherein, when CCEs in each control resource set are dispersedly arranged, they belong to the same
  • the bandwidth of a plurality of dispersed CCEs in a control resource set is an integer multiple of a CCE bandwidth.
  • the CCEs of the first control resource set 41 are not all consecutively arranged, and the CCEs in the second control resource set 42 are not all consecutively arranged, and each CCE includes a plurality of PRBs 40.
  • the first mapping mode includes multiple control resource set centralized mapping
  • all CCEs in each control resource set are consecutively arranged.
  • all CCEs of the first control resource set 41 are consecutively arranged
  • all CCEs in the second control resource set 42 are consecutively arranged
  • each CCE includes a plurality of PRBs 40.
  • the resource block PRB groups in each CCE are dispersedly arranged, one PRB group includes one or N PRBs, and N is smaller than one CCE. Number of PRBs;
  • FIG. 6A shows a case where two CCE bandwidths are spaced apart
  • FIG. 6B shows a case where the bandwidth of four CCEs is spaced.
  • the bandwidth between the plurality of dispersed PRB groups belonging to the same CCE is an integer multiple of one CCE bandwidth.
  • the second mapping mode includes multiple CCE centralized mapping
  • all resource blocks PRB in each CCE are consecutively arranged.
  • the number of CCEs in a control resource set is n*AL*Num_PRB CCE ; where n is an integer, and Num_PRB CCE refers to the number of PRBs (Physical Resource Blocks) occupied by one CCE, and AL is a control.
  • the frequency bandwidth occupied by one CCE is 6 PRBs.
  • the bandwidth of the control resource set is 48*n*PRB.
  • the time-frequency resource locations of the common control resource sets of the two adjacent cells are different;
  • the time-frequency resource locations of the common control resource sets of the two adjacent cells are the same, and the time-frequency resource locations of the common control channel of the terminal group are different.
  • the terminal group common control channel refers to a common control channel used by the base station to send all terminals or a group of terminal control information in the cell.
  • mapping method of the control resource may further include:
  • the indication of the time-frequency resource location of the terminal group common control channel of the single cell or the neighboring cell is sent to the terminal in an implicit manner.
  • the indication is bound to the ID of the cell and sent to the terminal.
  • the time-frequency resource of the terminal group common control channel of the first cell in the neighboring cell is located at the first time-frequency resource location, and the time-frequency resource of the terminal group common control channel of the second cell is located at the second time-frequency resource location;
  • the time-frequency resource start positions of the time-frequency resources of the terminal group common control channel of the first cell and the second cell are respectively a function of the cell ID, and the first cell ID and the second cell ID are different.
  • the time-frequency resources of the common control channel of the terminal group of the two adjacent cells are respectively located in the common control resource set of the cell.
  • Embodiment 1 Single cell, one control symbol, and the specific control channel is designed as follows, as shown in FIG. 8:
  • a PDCCH includes a CCE aggregation level including 1, 2, 4, 8; each control resource set includes 8 CCEs; and each CCE has 6 PRBs;
  • Each of the CCEs in the control resource set 1 adopts a distributed mapping
  • the specific process includes:
  • Step 1 The base station broadcasts the common control resource set configuration information in the PBCH, including: bandwidth, time-frequency resource location, number of control symbols, and mapping manner of resources;
  • information such as semi-static indication bandwidth and number of control symbols can be displayed;
  • the time-frequency location of the public control resource set may be semi-static or implicitly indicated
  • the resource mapping mode can be indicated implicitly or presetly;
  • Step 2 The terminal obtains related configuration information of the common control resource set by using the broadcast information and the preset relationship, including: bandwidth, physical resource location, control symbol, and mapping manner; and determining the common control resource set as the control resource set 1.
  • Step 3 The user monitors the public control resource set and receives the public control information
  • Step 4 The user determines the start position of the time-frequency resource of the common group control channel by using the cell ID, and detects the common control channel of the user group.
  • Embodiment 2 Single cell, the specific control channel design is as shown in FIG.
  • a PDCCH includes a CCE aggregation level including 1, 2, 4, 8; a bandwidth of 8 CCEs; and a control resource set includes 16 CCEs;
  • the two control resource sets adopt distributed mapping, with 4 CCEs (24 PRBs);
  • Centralized mapping is used for each CCE in the control resource set 1;
  • a distributed mapping is used for each CCE in the control resource set 2;
  • Embodiment 3 a common resource collection design embodiment of two adjacent cells
  • the cell-common control resource set is located in the control resource set 1, and the control resource set is a centralized mapping, and the specific design inside each control resource set is as shown in FIG. 8;
  • the cell 2 common control resource set is located in the control resource set 2, and the control resource set is a distributed map, and the specific design inside each control resource set is shown in FIG. 9;
  • the time-frequency resource location of the common resource set of the neighboring cell and the mapping manner between the control resource sets may have different configurations.
  • two neighboring cells have the same common resource set configuration mode, and the common control resource set is located on the same time-frequency physical resource, as shown in FIG. 12 and FIG. 13;
  • the user group common control channel is located in the common control resource set, and the user group common control channel of the cell may be located on different physical time-frequency resources, as shown in FIG. 14 and FIG.
  • control channel available bandwidth in the N available OFDM symbols is divided into M control resource sets, and the bandwidth of each control resource set is an integer multiple of the maximum convergence level of the Control Channel Element (CCE);
  • CCE Control Channel Element
  • the two control resource sets may be centralized multiplexed or distributed multiplexed in the frequency domain, wherein the distributed multiplex interval is an integer multiple of one CCE bandwidth.
  • Each cell has a control resource set for user initial access, broadcast system information, etc., and is named as a common control resource set.
  • the common control resource set of the neighboring cell may have different configurations; specifically, the neighboring cell common control resource set
  • the control resource set may be located on different physical time-frequency resources, and each control resource set has a different number of control symbols or a mapping manner;
  • the configuration information of the public control resource set may be sent through the PBCH, including: bandwidth, physical resource location, number of control symbols, mapping mode, and the like, where the mapping mode or other configuration may also be implemented by using a preset configuration related manner;
  • the user group common control channel is located in the common control resource set, and the physical time-frequency resource location of the user group may be different in different cells; the specific location information may be bound to the cell ID and implicitly implemented.
  • control resource set does not need to occupy the system bandwidth, and the control blind detection complexity can be effectively reduced; the distributed mapping between the control resource sets can provide higher frequency diversity gain;
  • the common control resource set of the neighboring cell may be located in different time-frequency resources, which may reduce inter-cell interference and improve the robustness of the control channel; the user group common control channel in each cell may be located in different time-frequency resources. Inter-cell interference can be reduced; the specific indication is bound to the cell ID, and the implementation is invisible, which can reduce signaling overhead.
  • an embodiment of the present disclosure further provides a method for receiving control information, including:
  • Step 161 Acquire a first mapping manner in which multiple control resource sets are mapped to multiple resource blocks PRB, and a second mapping manner in which a preset number of CCEs in each control resource set are mapped to multiple resource blocks PRB; a configuration information of a public control resource set; the common control resource set is one of a plurality of control resource sets, and is used for a user control resource set for initial access and system information transmission;
  • Step 162 Detect the common control resource set according to the configuration information, and detect multiple PRBs to obtain control information.
  • the step of detecting the common control resource set according to the configuration information, and detecting multiple PRBs, and obtaining the control information includes:
  • the terminal group control information includes control information of multiple terminals.
  • the first mapping manner includes multiple control resource set distributed mapping
  • CCEs in each control resource set are dispersedly arranged
  • the first mapping mode includes multiple control resource set centralized mapping
  • all CCEs in each control resource set are consecutively arranged.
  • the resource block PRB groups in each CCE are dispersedly arranged, and one PRB group includes one or N PRBs, and N is smaller than the number of PRBs included in one CCE;
  • the second mapping mode includes multiple CCE centralized mapping
  • all resource blocks PRB in each CCE are consecutively arranged.
  • An embodiment of the present disclosure further provides a network side device, including:
  • mapping module configured to map multiple control resource sets to multiple resource blocks PRB according to a first mapping manner, and map a preset number of CCEs in each control resource set to multiple resource blocks according to a second mapping manner On the PRB;
  • a sending module configured to determine, from a plurality of control resource sets, a common control resource set for user initial access and system information transmission; and send a first mapping manner and a second mapping manner to the terminal, and the common control resource set Configuration information and sending control information on multiple PRBs.
  • the device on the network side is the device corresponding to the method on the network side shown in FIG. 3, and all implementations of the method on the network side are applicable to the embodiment of the network device, and the same technical effects can be achieved.
  • the network side device may be a base station, and the mapping module of the base station may be implemented by a processor of the base station, and the sending module may be implemented by a transmitter of the base station.
  • the base station may further include storing the related information. Memory, etc.
  • An embodiment of the present disclosure further provides a terminal, including:
  • An acquiring module configured to acquire a first mapping manner that multiple control resource sets are mapped to multiple resource blocks PRB, and a second mapping manner that is mapped to a plurality of resource blocks PRB by a preset number of CCEs in each control resource set And a configuration information of the common control resource set;
  • the common control resource set is a control resource set for the user initial access and system information transmission in the plurality of control resource sets;
  • the receiving module detects the common control resource set according to the configuration information, and detects multiple PRBs to obtain control information.
  • the terminal is a device corresponding to the method shown in FIG. 16 above, and all implementations of the method on the terminal side are applicable to the embodiment of the terminal, and the same technical effects can be achieved.
  • the terminal may be a user equipment, and the acquiring module and the receiving module may be implemented by a receiver of the terminal, and the related processing procedure may be implemented by a processor of the terminal, and the terminal may further include storing the foregoing.
  • control channel available bandwidth in the N available OFDM symbols is divided into M control resource sets, and the bandwidth of each control resource set is an integer multiple of the maximum convergence level of the Control Channel Element (CCE);
  • the set of control resources may be centralized or distributed in the frequency domain, wherein the distributed multiplexing interval is an integer multiple of a CCE bandwidth.
  • Each cell has a control resource set for user initial access, broadcast system information, etc., and is named as a common control resource set.
  • the common control resource set of the neighboring cell may have different configurations; specifically, the neighboring cell common control resource set
  • the control resource set may be located on different physical time-frequency resources, and each control resource set has a different number of control symbols or a mapping manner;
  • the configuration information of the public control resource set may be sent through the PBCH, including: bandwidth, physical resource location, number of control symbols, mapping mode, and the like, where the mapping mode or other configuration may also be implemented by using a preset configuration related manner;
  • the user group common control channel is located in the common control resource set, and the physical time-frequency resource location of the user group may be different in different cells; the specific location information may be bound to the cell ID and implemented implicitly.
  • control resource set does not need to occupy the system bandwidth, and the control blind detection complexity can be effectively reduced; the distributed mapping between the control resource sets can provide higher frequency diversity gain;
  • the common control resource set of the neighboring cell may be located in different time-frequency resources, which may reduce inter-cell interference and improve the robustness of the control channel; the common control channel of the user group in each cell may be located in different time-frequency resources, which may be reduced. Small interval interference; the specific indication is bound to the cell ID, and the implementation is invisible, which can reduce the signaling overhead.
  • an embodiment of the present disclosure further provides a sending method for controlling a resource set configuration, including:
  • Step 1701 Determine a common control resource set for initial user access and system information transmission.
  • Step 1703 Send configuration information of the common control resource set by using a PBCH.
  • the embodiment of the present disclosure determines a public control resource set for user initial access and system information transmission, and the configuration information of the common control resource set is sent through the PBCH, so that when the terminal obtains the control information, only the The control resource set is detected, and the entire system bandwidth detection is not required, which can effectively reduce the control blind detection complexity.
  • the configuration information of the common control resource set includes one or more of the following: a bandwidth of a common control resource set, a number of occupied control symbols, and an occupied time-frequency resource location.
  • the bandwidth of the common control resource set and/or the number of control symbols occupied by the common control resource set may be explicitly configured by the broadcast channel NR-PBCH.
  • the time-frequency resource location occupied by the common control resource set may be semi-statically explicitly configured or implicitly determined by the broadcast channel NR-PBCH.
  • an embodiment of the present disclosure further provides a method for receiving control information, including:
  • Step 1801 Acquire configuration information of a common control resource set;
  • the common control resource set is a control resource set used for initial user access and system information transmission;
  • Step 1803 Perform detection on the common control resource set according to the configuration information, and obtain control information.
  • the configuration information of the common control resource set includes one or more of the following: a bandwidth of a common control resource set, a number of occupied control symbols, and an occupied time-frequency resource location.
  • the step of detecting the common control resource set according to the configuration information, and obtaining the control information includes:
  • the terminal group control information includes control information of multiple terminals.
  • An embodiment of the present disclosure further provides a network side device, including:
  • a sending module configured to determine a common control resource set, configured for initial user access, system information transmission, and sending configuration information of the common control resource set by using a PBCH.
  • the device on the network side is the device corresponding to the method on the network side shown in FIG. 17, and all the implementation manners of the method on the network side are applicable to the embodiment of the network side device, and the same technical effects can be achieved.
  • the network side device may be a base station, and the sending module of the base station may be implemented by a transmitter of the base station.
  • the base station may further include a memory and the like for storing the related information.
  • An embodiment of the present disclosure further provides a terminal, including:
  • An acquiring module configured to acquire configuration information of a common control resource set;
  • the common control resource set is a control resource set used for initial user access and system information transmission;
  • the receiving module detects the common control resource set according to the configuration information, and obtains control information.
  • the terminal is a device corresponding to the method shown in FIG. 18 above, and all implementations of the method on the terminal side are applicable to the embodiment of the terminal, and the same technical effects can be achieved.
  • the terminal may be a user equipment, and the acquiring module and the receiving module may be implemented by a receiver of the terminal, and the related processing procedure may be implemented by a processor of the terminal, and the terminal may further include storing the foregoing.

Abstract

本公开的实施例提供一种控制资源集合配置的发送方法、控制信息的接收方法、网络侧设备及终端,其中发送方法包括:确定一个公共控制资源集合,用于用户初始接入、系统信息传输;及将所述公共控制资源集合的配置信息通过PBCH发送。

Description

控制资源集合配置的发送方法、控制信息的接收方法、网络侧设备及终端
相关申请的交叉引用
本申请主张在2017年4月24日在中国提交的中国专利申请号No.201710270978.3的优先权,其全部内容通过引用包含于此。
技术领域
本公开涉及通信技术领域,特别是指一种控制资源集合配置的发送方法、控制信息的接收方法、网络侧设备及终端。
背景技术
移动通信系统中,控制信道需要占用整个系统带宽,如图1所示。用户在检测控制信道以获取控制信息时,需要对整个系统带宽进行检测。
这样主要引起:1)终端需要检测整个系统带宽,如果带宽较大,终端检测控制信息的复杂度会急剧上升;2)终端需要匹配大带宽,用于接收控制信息,这样不利于终端带宽灵活配置,及小带宽终端的接入。
为了解决上述问题,一种方法是将N个可用OFDM符号内的控制信道可用带宽划分为M个控制子带或控制资源集合(Control Resource Set),这样终端只需要在一个控制资源集合对控制信息里面进行检测,可以有效地降低终端检测复杂度,如图2所示。
下一代通信系统(5G)面向的系统带宽会较大,目前的方案,终端若对整个系统带宽检测,盲检测复杂度较高。
发明内容
本公开提供了一种控制资源集合配置的发送方法、控制信息的接收方法、网络侧设备及终端。使终端在获得控制信息时,只需要对控制资源集合进行检测,不需要对整个系统带宽检测,可以有效降低控制盲检测复杂度。
为解决上述技术问题,本公开的实施例提供如下方案:
一种控制资源集合配置的发送方法,包括:
确定一个公共控制资源集合,用于用户初始接入、系统信息传输;及
将所述公共控制资源集合的配置信息通过PBCH发送。
其中,所述公共控制资源集合的配置信息包括以下一种或者多种:公共控制资源集合的带宽、占用的控制符号个数、占用的时频资源位置等。
其中,所述将公共控制资源集合的配置信息通过PBCH发送包括:通过广播信道NR-PBCH半静态显式配置所述公共控制资源集合的带宽和/或公共控制资源集合占用的控制符号的个数。
其中,所述将公共控制资源集合的配置信息通过PBCH发送包括:通过广播信道NR-PBCH半静态显式配置或者隐式确定所述公共控制资源集合占用的时频资源位置。
本公开的实施例还提供一种控制信息的接收方法,包括:
获取公共控制资源集合的配置信息;所述公共控制资源集合是用于用户初始接入、系统信息传输的控制资源集合;
根据所述配置信息对所述公共控制资源集合进行检测,获得控制信息。
其中,所述公共控制资源集合的配置信息包括以下一种或者多种:公共控制资源集合的带宽、占用的控制符号个数、占用的时频资源位置。
其中,根据所述配置信息对所述公共控制资源集合进行检测,获得控制信息的步骤包括:
获取终端组公共控制信道的时频位置;
根据所述终端组公共控制信道的时频位置,对终端组公共控制信道进行检测,获得终端组控制信息,所述终端组控制信息包括多个终端的控制信息。
本公开的实施例还提供一种网络侧设备,包括:
发送模块,用于确定一个公共控制资源集合,用于用户初始接入、系统信息传输,并将所述公共控制资源集合的配置信息通过PBCH发送。
其中,所述将公共控制资源集合的配置信息通过PBCH发送包括:通过广播信道NR-PBCH半静态显式发送所述公共控制资源集合的带宽和/或公共控制资源集合占用的控制符号的个数。
其中,所述将公共控制资源集合的配置信息通过PBCH发送包括:通过广播信道NR-PBCH半静态显式配置或者隐式确定所述公共控制资源集合占 用的时频资源位置。
本公开的实施例还提供一种终端,包括:
获取模块,用于获取公共控制资源集合的配置信息;所述公共控制资源集合是用于用户初始接入、系统信息传输的控制资源集合;
接收模块,根据所述配置信息对所述公共控制资源集合进行检测,获得控制信息。
本公开的实施例还提供一种网络侧设备,包括:处理器、存储器及存储在所述存储器上并可在所述处理器上运行的计算机程序,所述计算机程序被所述处理器执行时实现上述控制资源集合配置的发送方法中的步骤。
本公开的实施例还提供一种终端,包括:处理器、存储器及存储在所述存储器上并可在所述处理器上运行的计算机程序,所述计算机程序被所述处理器执行时实现上述控制信息的接收方法中的步骤。
本公开的实施例还提供一种计算机可读存储介质,所述计算机可读存储介质上存储有计算机程序,所述计算机程序被处理器执行时实现上述控制资源集合配置的发送方法中的步骤。
本公开的实施例还提供一种计算机可读存储介质,所述计算机可读存储介质上存储有计算机程序,所述计算机程序被处理器执行时实现上述控制信息的接收方法中的步骤。
本公开的上述方案至少包括以下有益效果:
本公开的上述方案,通过确定一个用户初始接入、系统信息传输的公共控制资源集合,并将所述公共控制资源集合的配置信息通过PBCH发送,使终端在获得控制信息时,只需要对控制资源集合进行检测,不需要对整个系统带宽检测,可以有效降低控制盲检测复杂度。
附图说明
图1为控制信道需要占用整个系统带宽的示意图;
图2为控制信道划分为多个控制子带的示意图;
图3为本公开的实施例控制信息的发送方法的流程示意图;
图4为两个控制资源集合分布式映射示意图;
图5为两个控制资源集合集中式映射示意图;
图6A为控制资源集合内CCE分布式映射间隔2个CCE带宽的示意图;
图6B为控制资源集合内CCE分布式映射间隔4个CCE带宽的示意图;
图7为控制资源集合内多个CCE集中式映射的示意图;
图8为基于一个控制符号的控制资源集合设计实施例的示意图;
图9为基于两个控制符号的控制资源集合设计实施例的示意图;
图10、11为两小区控制资源集合设计实施例的示意图;
图12、13为两小区控制资源集合设计实施例的示意图;
图14、15为两小区用户组公共控制信道设计实施例的示意图;
图16为终端侧的控制信息的接收方法的流程示意图;
图17为本公开的实施例控制资源集合配置的发送方法的流程示意图;
图18为终端侧的控制信息的接收方法的流程示意图。
具体实施方式
下面将参照附图更详细地描述本公开的示例性实施例。虽然附图中显示了本公开的示例性实施例,然而应当理解,可以以各种形式实现本公开而不应被这里阐述的实施例所限制。相反,提供这些实施例是为了能够更透彻地理解本公开,并且能够将本公开的范围完整的传达给本领域的技术人员。
如图3所示,本公开的实施例提供一种控制信息的发送方法,包括:
步骤11,按照第一映射方式将多个控制资源集合映射到多个资源块PRB上,以及按照第二映射方式将每个控制资源集合中的预设数量的CCE映射到多个资源块PRB上;
步骤12,从多个控制资源集合中,确定一个用于用户初始接入、系统信息传输的公共控制资源集合;
步骤13,向终端发送第一映射方式和第二映射方式以及所述公共控制资源集合的配置信息,以及在多个PRB上发送控制信息。
本公开的该实施例通过按照第一映射方式将多个控制资源集合映射到多个资源块PRB上,以及按照第二映射方式将每个控制资源集合中的预设数量的CCE映射到多个资源块PRB上;从多个控制资源集合中,确定一个用于 用户初始接入、系统信息传输的公共控制资源集合;向终端发送第一映射方式和第二映射方式以及所述公共控制资源集合的配置信息以及在多个PRB上发送控制信息;使终端在获得控制信息时,只需要对控制资源集合进行检测,不需要对整个系统带宽检测,可以有效降低控制盲检测复杂度
本公开的该实施例中,每个控制资源集合是控制信道时频资源的一部分,每个控制资源集合包括:预设数量的控制信道单元(Control Channel Element,CCE),所述预设数量等于与所述控制信道包括的最大汇聚等级(Aggregation Level,AL)对应CCE数量的整数倍。比如,该最大汇聚等级包括:1、2、4、8,即控制信道包括1个CCE、2个CCE、4个CCE或者8个CCE;该预设数量是1、2、4、或8和整数倍;如每个控制资源集合包括8个CCE或者16个CCE。
该实施例中,公共控制资源集合的所述配置信息包括:公共控制资源集合的带宽、占用的控制符号个数、占用的时频资源位置。
其中,可以通过广播信道NR-PBCH半静态显式发送的方式向终端发送公共控制资源集合的带宽和/或公共控制资源集合占用的控制符号个数,这里的显式发送的方式是指可以用专用信令发送。
其中,通过广播信道NR-PBCH半静态显式发送或者隐式确定的方式向终端发送公共控制资源集合占用的时频资源位置,这里的隐式确定的方式是指显示信息和隐式信息一起确定,比如和小区的ID一起确定。
本公开的该实施例中,可以通过隐式发送的方式或者预设指示向终端发送第一映射方式和所述第二映射方式。
如图4所示,所述第一映射方式包括多个控制资源集合分布式映射时,每一个控制资源集合中的CCE分散排列;其中,每一个控制资源集合中的CCE分散排列时,属于同一个控制资源集合中的多个分散排列的CCE之间间隔的带宽是一个CCE带宽的整数倍。例如,第一控制资源集合41的CCE并没有全部连续排列,第二控制资源集合42中的CCE并没有全部连续排列,每个CCE包括多个PRB 40。
如图5所示,所述第一映射方式包括多个控制资源集合集中式映射时,每一个控制资源集合中的所有CCE连续排列。例如,第一控制资源集合41 的全部CCE连续排列,第二控制资源集合42中的全部CCE连续排列,每个CCE包括多个PRB 40。
如图6A和6B所示,所述第二映射方式包括多个CCE分布式映射时,每一个CCE中的资源块PRB组分散排列,一个PRB组包括一个或者N个PRB,N小于一个CCE包括的PRB个数;
图6A所示的是间隔2个CCE带宽的情况,图6B所示的是间隔4个CCE的带宽的情况。其中,所述每一个CCE中的资源块PRB分散排列时,属于同一个CCE中的多个分散排列的PRB组之间间隔的带宽是一个CCE带宽的整数倍。
如图7所示,所述第二映射方式包括多个CCE集中式映射时,每一个CCE中的所有资源块PRB连续排列。
其中,一个控制资源集合的包含CCE的数量是n*AL*Num_PRB CCE;其中,n是整数,Num_PRB CCE指一个CCE所占用的PRB(Physical Resource Block,物理资源块)的数量,AL是一个控制信道的CCE最大汇聚等级个数。其中,一个CCE所占用的频带带宽为6个PRB。
例如,AL=8,BWCCE=6PRB,PRB(Physical Resource Block)指物理资源块,则控制资源集合的带宽是48*n*PRB。
本公开的实施例中,如果是两个以上的小区中,相邻的两个小区的公共控制资源集合的时频资源位置不同;或者
相邻的两个小区的公共控制资源集合的时频资源位置相同,终端组公共控制信道的时频资源位置不同。
终端组公共控制信道是指用于基站发送给小区内全部终端或一组终端控制信息的公共控制信道。
进一步的,该控制资源的映射方法,还可以包括:
以隐式发送的方式向终端发送单小区或者相邻小区的终端组公共控制信道的时频资源位置的指示。
比如,将所述指示与小区的ID绑定在一起向终端发送。
相邻小区中的第一小区的终端组公共控制信道的时频资源位于第一时频资源位置,第二小区的终端组公共控制信道的时频资源位于第二时频资源位 置;或者
所述第一小区和第二小区的终端组公共控制信道的时频资源的时频资源起始位置分别是该小区ID的一个函数,第一小区ID和第二小区ID不同。
其中,相邻的两个小区的终端组公共控制信道的时频资源均分别位于该小区的公共控制资源集合内。
本公开的上述实施例中,公共控制资源集合只作为描述用,具体可采用其他名称,但不影响本公开的使用。
本公开的上述实施例的具体实施方式如下:
实施例一:单小区,一个控制符号,具体控制信道设计如下,如图8所示:
(1)一个PDCCH包含CCE的汇聚等级包括1,2,4,8;每控制资源集合包括8个CCE;每个CCE有6个PRB;
(2)两个控制资源集合之间采用集中式映射;
(3)控制资源集合1内每CCE采用分布式映射;
(4)控制资源集合2内每CCE采用集中式映射。
具体流程包括:
步骤1,基站在PBCH中广播公共控制资源集合配置信息,包括:带宽、时频资源位置、控制符号个数、资源的映射方式等信息;
其中,可以显示半静态指示带宽、控制符号个数等信息;
可以半静态或隐式指示方式,公共控制资源集合所在时频位置;
可以隐式或预设指示资源映射方式;
步骤2,终端通过广播信息和预设关系获知公共控制资源集合的相关配置信息,包括:带宽、物理资源位置、控制符号和映射方式;确定公共控制资源集合为控制资源集合1。
步骤3,用户对公共控制资源集合进行监控,接收公共控制信息;
步骤4,用户通过小区ID确定公共组控制信道的时频资源起始位置,检测用户组公共控制信道。
实施例二:单小区,具体控制信道设计如图9所示,
一个PDCCH包含CCE的汇聚等级包括1,2,4,8;频带带宽为8个 CCE;每控制资源集合包括16个CCE;
两个控制资源集合采用分布式映射,间隔4个CCE(24个PRB);
控制资源集合1内每CCE采用集中式映射;
控制资源集合2内每CCE采用分布式映射;
具体流程和上述实施例一中步骤1-步骤4相同。
实施例三,两个相邻小区的公共资源集合设计实施例,
小区一公共控制资源集合位于控制资源集合1,控制资源集合之间为集中式映射,每控制资源集合内部的具体设计如图8所示;
小区二公共控制资源集合位于控制资源集合2,控制资源集合之间为分布式映射,每控制资源集合内部的具体设计如图9所示;
如上图10、11所示,相邻小区公共资源集合的时频资源位置,以及控制资源集合之间的映射方式可以有不同的配置方式。
实施例四,两个相邻小区有相同的公共资源集合配置方式,且公共控制资源集合位于相同的时频物理资源上,如图12、13所示;
用户组公共控制信道位于公共控制资源集合内,小区的用户组公共控制信道可以位于不同的物理时频资源上,如图14、15所示。
本公开的上述实施例中,将N个可用OFDM符号内的控制信道可用带宽划分为M个控制资源集合,每控制资源集合的频带带宽是控制信道单元(CCE)最大汇聚等级的整数倍;
两个控制资源集合可以在频域上集中式复用或分布式复用,其中,分布式复用间隔是一个CCE带宽的整数倍。
每个小区有一个控制资源集合用于用户初始接入、广播系统信息等,命名为公共控制资源集合,相邻小区的公共控制资源集合可以有不同配置;具体的,相邻小区公共控制资源集合可以位于不同的控制资源集合,即不同的物理时频资源上,且每个控制资源集合有不同的控制符号个数或映射方式;
公共控制资源集合的配置信息可以通过PBCH发送,包括:带宽、物理资源位置、控制符号个数、映射方式等;其中,映射方式或其他配置也可以通过预设配置相关方式实现;
用户组公共控制信道位于公共控制资源集合内,在不同小区其位于的物 理时频资源位置可以不同;具体的位置信息可以与小区ID绑定,隐式实现。
从而可以使控制资源集合不需要占用系统带宽,可以有效降低控制盲检测复杂度;控制资源集合之间采用分布式映射,可以提供更高的频率分集增益;
另外,相邻小区的公共控制资源集合可以位于不同的时频资源,可以降低小区间干扰,提升控制信道的鲁棒性;每个小区内的用户组公共控制信道可以位于不同的时频资源,可以降低小区间干扰;具体指示与小区ID绑定,隐形实现,可以降低信令开销。
如图16所示,本公开的实施例还提供一种控制信息的接收方法,包括:
步骤161,获取多个控制资源集合映射到多个资源块PRB上的第一映射方式以及每个控制资源集合中的预设数量的CCE映射到多个资源块PRB上的第二映射方式;以及公共控制资源集合的配置信息;所述公共控制资源集合是多个控制资源集合中的一个,用于用户初始接入、系统信息传输的控制资源集合;
步骤162,根据所述配置信息对所述公共控制资源集合进行检测,以及对多个PRB进行检测,获得控制信息。
其中,根据所述配置信息对所述公共控制资源集合进行检测,以及对多个PRB进行检测,获得控制信息的步骤包括:
根据所述配置信息中的时频资源位置,获取所述公共控制资源集合的控制信息;
获取多个PRB中,终端组公共控制信道的时频位置;
根据所述终端组公共控制信道的时频位置,对终端组公共控制信道进行检测,获得终端组控制信息,所述终端组控制信息包括多个终端的控制信息。
其中,所述第一映射方式包括多个控制资源集合分布式映射时,每一个控制资源集合中的CCE分散排列;
所述第一映射方式包括多个控制资源集合集中式映射时,每一个控制资源集合中的所有CCE连续排列。
其中,所述第二映射方式包括多个CCE分布式映射时,每一个CCE中的资源块PRB组分散排列,一个PRB组包括一个或者N个PRB,N小于一 个CCE包括的PRB个数;
所述第二映射方式包括多个CCE集中式映射时,每一个CCE中的所有资源块PRB连续排列。
本公开的上述网络侧的实施例所有实现方式均适用于该终端侧的实施例中,也能达到相同的技术效果。
本公开的实施例还提供一种网络侧设备,包括:
映射模块,用于按照第一映射方式将多个控制资源集合映射到多个资源块PRB上,以及按照第二映射方式将每个控制资源集合中的预设数量的CCE映射到多个资源块PRB上;
发送模块,用于从多个控制资源集合中,确定一个用于用户初始接入、系统信息传输的公共控制资源集合;向终端发送第一映射方式和第二映射方式以及所述公共控制资源集合的配置信息以及在多个PRB上发送控制信息。
该网络侧设备是与上述图3所示的网络侧的方法对应的设备,上述网络侧的方法的所有实现方式均适用于该网络侧设备的实施例中,也能达到相同的技术效果。且进一步的,该网络侧设备可以是基站,且该基站的映射模块可以由该基站的处理器实现,发送模块可以由基站的发射机来实现,进一步的,该基站还可以包括存储上述相关信息的存储器等。
本公开的实施例还提供一种终端,包括:
获取模块,用于获取多个控制资源集合映射到多个资源块PRB上的第一映射方式以及每个控制资源集合中的预设数量的CCE映射到多个资源块PRB上的第二映射方式;以及公共控制资源集合的配置信息;所述公共控制资源集合是多个控制资源集合中的一个用于用户初始接入、系统信息传输的控制资源集合;
接收模块,根据所述配置信息对所述公共控制资源集合进行检测,以及对多个PRB进行检测,获得控制信息。
该终端是与上述图16所示的方法对应的设备,上述终端侧的方法的所有实现方式均适用于该终端的实施例中,也能达到相同的技术效果。且进一步的,该终端可以是用户设备,且该获取模块以及接收模块均可以由该终端的接收机实现,且其中的相关处理过程可以由终端的处理器来实现,该终端还 可以包括存储上述相关信息的存储器,发送相关信息的发射机等。
本公开的上述实施例中,将N个可用OFDM符号内的控制信道可用带宽划分为M个控制资源集合,每控制资源集合的频带带宽是控制信道单元(CCE)最大汇聚等级的整数倍;两个控制资源集合可以在频域上集中式复用或分布式复用,其中,分布式复用间隔是一个CCE带宽的整数倍。
每个小区有一个控制资源集合用于用户初始接入、广播系统信息等,命名为公共控制资源集合,相邻小区的公共控制资源集合可以有不同配置;具体的,相邻小区公共控制资源集合可以位于不同的控制资源集合,即不同的物理时频资源上,且每个控制资源集合有不同的控制符号个数或映射方式;
公共控制资源集合的配置信息可以通过PBCH发送,包括:带宽、物理资源位置、控制符号个数、映射方式等;其中,映射方式或其他配置也可以通过预设配置相关方式实现;
用户组公共控制信道位于公共控制资源集合内,在不同小区其位于的物理时频资源位置可以不同;具体的位置信息可以与小区ID绑定,隐式实现。
从而可以使控制资源集合不需要占用系统带宽,可以有效降低控制盲检测复杂度;控制资源集合之间采用分布式映射,可以提供更高的频率分集增益;
相邻小区的公共控制资源集合可以位于不同的时频资源,可以降低小区间干扰,提升控制信道的鲁棒性;每个小区内的用户组公共控制信道可以位于不同的时频资源,可以降低小区间干扰;具体指示与小区ID绑定,隐形实现,可以降低信令开销。
如图17所示,本公开的实施例还提供一种控制资源集合配置的发送方法,包括:
步骤1701:确定一个公共控制资源集合,用于用户初始接入、系统信息传输;及
步骤1703:将所述公共控制资源集合的配置信息通过PBCH发送。
本公开的该实施例通过确定一个用于用户初始接入、系统信息传输的公共控制资源集合,并且所述公共控制资源集合的配置信息通过PBCH发送,使终端在获得控制信息时,只需要对控制资源集合进行检测,不需要对整个 系统带宽检测,可以有效降低控制盲检测复杂度。
本公开的该实施例中,所述公共控制资源集合的配置信息包括以下一种或者多种:公共控制资源集合的带宽、占用的控制符号个数、占用的时频资源位置。
其中,可以通过广播信道NR-PBCH半静态显式配置所述公共控制资源集合的带宽和/或公共控制资源集合占用的控制符号的个数。
其中,可以通过广播信道NR-PBCH半静态显式配置或者隐式确定所述公共控制资源集合占用的时频资源位置。
如图18所示,本公开的实施例还提供一种控制信息的接收方法,包括:
步骤1801:获取公共控制资源集合的配置信息;所述公共控制资源集合是用于用户初始接入、系统信息传输的控制资源集合;
步骤1803:根据所述配置信息对所述公共控制资源集合进行检测,获得控制信息。
其中,所述公共控制资源集合的配置信息包括以下一种或者多种:公共控制资源集合的带宽、占用的控制符号个数、占用的时频资源位置。
其中,根据所述配置信息对所述公共控制资源集合进行检测,获得控制信息的步骤包括:
获取终端组公共控制信道的时频位置;
根据所述终端组公共控制信道的时频位置,对终端组公共控制信道进行检测,获得终端组控制信息,所述终端组控制信息包括多个终端的控制信息。
本公开的实施例还提供一种网络侧设备,包括:
发送模块,用于确定一个公共控制资源集合,用于用户初始接入、系统信息传输,并将所述公共控制资源集合的配置信息通过PBCH发送。
该网络侧设备是与上述图17所示的网络侧的方法对应的设备,上述网络侧的方法的所有实现方式均适用于该网络侧设备的实施例中,也能达到相同的技术效果。且进一步的,该网络侧设备可以是基站,且该基站的发送模块可以由基站的发射机来实现,进一步的,该基站还可以包括存储上述相关信息的存储器等。
本公开的实施例还提供一种终端,包括:
获取模块,用于获取公共控制资源集合的配置信息;所述公共控制资源集合是用于用户初始接入、系统信息传输的控制资源集合;
接收模块,根据所述配置信息对所述公共控制资源集合进行检测,获得控制信息。
该终端是与上述图18所示的方法对应的设备,上述终端侧的方法的所有实现方式均适用于该终端的实施例中,也能达到相同的技术效果。且进一步的,该终端可以是用户设备,且该获取模块以及接收模块均可以由该终端的接收机实现,且其中的相关处理过程可以由终端的处理器来实现,该终端还可以包括存储上述相关信息的存储器,发送相关信息的发射机等。
以上所述是本公开的可选实施方式,应当指出,对于本技术领域的普通技术人员来说,在不脱离本公开所述原理的前提下,还可以作出若干改进和润饰,这些改进和润饰也应视为本公开的保护范围。

Claims (15)

  1. 一种控制资源集合配置的发送方法,包括:
    确定一个公共控制资源集合,用于用户初始接入、系统信息传输;及
    将所述公共控制资源集合的配置信息通过PBCH发送。
  2. 根据权利要求1所述的方法,其中,所述公共控制资源集合的配置信息包括以下一种或者多种:公共控制资源集合的带宽、占用的控制符号个数、占用的时频资源位置。
  3. 根据权利要求1所述的方法,其中,所述将公共控制资源集合的配置信息通过PBCH发送包括:通过广播信道NR-PBCH半静态显式配置所述公共控制资源集合的带宽和/或公共控制资源集合占用的控制符号的个数。
  4. 根据权利要求1所述的方法,其中,所述将公共控制资源集合的配置信息通过PBCH发送包括:通过广播信道NR-PBCH半静态显式配置或者隐式确定所述公共控制资源集合占用的时频资源位置。
  5. 一种控制信息的接收方法,包括:
    获取公共控制资源集合的配置信息;所述公共控制资源集合是用于用户初始接入、系统信息传输的控制资源集合;
    根据所述配置信息对所述公共控制资源集合进行检测,获得控制信息。
  6. 根据权利要求5所述的控制信息的接收方法,其中,所述公共控制资源集合的配置信息包括以下一种或者多种:公共控制资源集合的带宽、占用的控制符号个数、占用的时频资源位置。
  7. 根据权利要求5所述的控制信息的接收方法,其中,根据所述配置信息对所述公共控制资源集合进行检测,获得控制信息的步骤包括:
    获取终端组公共控制信道的时频位置;
    根据所述终端组公共控制信道的时频位置,对终端组公共控制信道进行检测,获得终端组控制信息,所述终端组控制信息包括多个终端的控制信息。
  8. 一种网络侧设备,包括:
    发送模块,用于确定一个公共控制资源集合,用于用户初始接入、系统信息传输,并将所述公共控制资源集合的配置信息通过PBCH发送。
  9. 根据权利要求8所述的网络侧设备,其中,所述发送模块还用于通过广播信道NR-PBCH半静态显式发送所述公共控制资源集合的带宽和/或公共控制资源集合占用的控制符号的个数。
  10. 根据权利要求9所述的网络侧设备,其中,所述将公共控制资源集合的配置信息通过PBCH发送包括:通过广播信道NR-PBCH半静态显式配置或者隐式确定所述公共控制资源集合占用的时频资源位置。
  11. 一种终端,包括:
    获取模块,用于获取公共控制资源集合的配置信息;所述公共控制资源集合是用于用户初始接入、系统信息传输的控制资源集合;
    接收模块,根据所述配置信息对所述公共控制资源集合进行检测,获得控制信息。
  12. 一种网络侧设备,包括:处理器、存储器及存储在所述存储器上并可在所述处理器上运行的计算机程序,所述计算机程序被所述处理器执行时实现如权利要求1至4中任一项所述的控制资源集合配置的发送方法中的步骤。
  13. 一种终端,包括:处理器、存储器及存储在所述存储器上并可在所述处理器上运行的计算机程序,所述计算机程序被所述处理器执行时实现如权利要求5至7中任一项所述的控制信息的接收方法中的步骤。
  14. 一种计算机可读存储介质,所述计算机可读存储介质上存储有计算机程序,所述计算机程序被处理器执行时实现如权利要求1至4中任一项所述的控制资源集合配置的发送方法中的步骤。
  15. 一种计算机可读存储介质,所述计算机可读存储介质上存储有计算机程序,所述计算机程序被处理器执行时实现如权利要求5至7中任一项所述的控制信息的接收方法中的步骤。
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