WO2022028192A1 - 资源集合配置、检测方法、服务节点、终端及存储介质 - Google Patents

资源集合配置、检测方法、服务节点、终端及存储介质 Download PDF

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Publication number
WO2022028192A1
WO2022028192A1 PCT/CN2021/104945 CN2021104945W WO2022028192A1 WO 2022028192 A1 WO2022028192 A1 WO 2022028192A1 CN 2021104945 W CN2021104945 W CN 2021104945W WO 2022028192 A1 WO2022028192 A1 WO 2022028192A1
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WIPO (PCT)
Prior art keywords
resource set
control resource
ssb
period
time slot
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PCT/CN2021/104945
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English (en)
French (fr)
Inventor
刘锟
戴博
方惠英
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中兴通讯股份有限公司
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Application filed by 中兴通讯股份有限公司 filed Critical 中兴通讯股份有限公司
Priority to US18/019,896 priority Critical patent/US20230292336A1/en
Priority to EP21853324.8A priority patent/EP4195564A1/en
Publication of WO2022028192A1 publication Critical patent/WO2022028192A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/23Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
    • H04W72/232Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal the control data signalling from the physical layer, e.g. DCI signalling
    • 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
    • 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
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W56/00Synchronisation arrangements
    • H04W56/001Synchronization between nodes
    • H04W56/0015Synchronization between nodes one node acting as a reference for the others
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/12Wireless traffic scheduling
    • H04W72/1263Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows
    • H04W72/1273Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows of downlink data flows
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/23Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/08Arrangements for detecting or preventing errors in the information received by repeating transmission, e.g. Verdan system

Definitions

  • the present application relates to wireless communication networks, for example, to a resource set configuration, detection method, service node, terminal and storage medium.
  • a New Radio (New Radio, NR) system has higher configuration flexibility and a larger bandwidth range, and also puts forward higher requirements on the capability of a terminal (User Equipment, UE).
  • UE User Equipment
  • the capabilities of the UE can be simplified, such as enabling the UE to have a smaller bandwidth capability and a smaller number of antennas and so on, thereby reducing the production cost and complexity of the UE, and also reducing the energy consumption in the working process of the UE.
  • the present application provides a resource set configuration, a detection method, a service node, a terminal and a storage medium, so as to improve the flexibility and reliability of controlling the resource set configuration.
  • the embodiment of the present application provides a resource set configuration method, including:
  • a physical downlink control channel (Physical Downlink Control Channel, PDCCH) is sent in the control resource set.
  • PDCCH Physical Downlink Control Channel
  • the embodiment of the present application also provides a detection method, comprising:
  • the PDCCH is detected in the set of control resources.
  • the embodiment of the present application also provides a service node, including:
  • processors one or more processors
  • storage means arranged to store one or more programs
  • the one or more processors When the one or more programs are executed by the one or more processors, the one or more processors implement the above-mentioned resource set configuration method.
  • the embodiment of the present application also provides a terminal, including:
  • processors one or more processors
  • storage means arranged to store one or more programs
  • the one or more processors When the one or more programs are executed by the one or more processors, the one or more processors implement the above-mentioned detection method.
  • Embodiments of the present application further provide a computer-readable storage medium, where a computer program is stored on the computer-readable storage medium, and when the program is executed by a processor, the foregoing resource set configuration method or detection method is implemented.
  • FIG. 1 is a flowchart of a method for configuring a resource set provided by an embodiment
  • FIG. 2 is a schematic diagram of determining a control resource set corresponding to a target type terminal when a second SSB is configured according to an embodiment
  • FIG. 3 is a schematic diagram of determining a control resource set corresponding to a target type terminal when a second SSB is configured according to another embodiment
  • FIG. 4 is a schematic diagram of configuring a second control resource set according to an embodiment
  • FIG. 5 is a schematic diagram of configuring symbols of a second control resource set according to an embodiment
  • FIG. 6 is a flowchart of a detection method provided by an embodiment
  • FIG. 7 is a schematic structural diagram of an apparatus for configuring a resource set according to an embodiment
  • FIG. 8 is a schematic structural diagram of a detection device according to an embodiment
  • FIG. 9 is a schematic diagram of a hardware structure of a service node provided by an embodiment
  • FIG. 10 is a schematic diagram of a hardware structure of a terminal according to an embodiment.
  • the terminal In the initial access process of the NR system, the terminal first receives the synchronization signal/physical broadcast channel block (Synchronization Signal Block/Physical Broadcast Channel, SSB or SS/PBCH Block), and the SSB includes the primary synchronization signal (Primary Synchronization Signal, PSS) , Secondary Synchronization Signal (SSS), and Physical Broadcast Channel (PBCH), wherein the master information block (Master Information Block, MIB) carried in the PBCH includes Control Resource Set 0 (Control Resource Set 0). zero, CORESET0) configuration information.
  • CORESET0 includes at least one resource sent by the PDCCH, and the PDCCH is used to carry the scheduling information of the System Information Block 1 (System Information Block 1, SIB1).
  • the terminal After receiving the SSB, the terminal obtains the configuration information of CORESET0 by decoding the MIB, then obtains the scheduling information of SIB1 by decoding the PDCCH in CORESET0, and finally decodes the corresponding SIB1 information to determine the Physical Downlink Shared Channel (PDSCH) .
  • PDSCH Physical Downlink Shared Channel
  • RedCap UE since its reception performance will be weaker than that of NR UE, in the process of decoding PDCCH in CORESET0, RedCap UE may not be able to detect PDCCH correctly, thus causing RedCap UE to fail to complete the initial access process.
  • the method provided by the embodiment of the present application is applicable to the scenario of detecting the PDCCH in the control resource set.
  • the protocol specifies that there are three multiplexing patterns (Pattern) for the control resource set and SSB.
  • pattern 1 Policy for pattern 1
  • the period of CORESET0 defaults to 20ms, which will not change due to the change of the period of SSB.
  • the CORESET0 resources corresponding to different SSBs can use Frequency Division Multiplexing (FDM) in the frequency domain.
  • FDM Frequency Division Multiplexing
  • Which physical resource blocks (Physical Resource Blocks, PRBs) the CORESET0 corresponding to each SSB occupies in the frequency domain can be determined by Service node configuration. In some scenarios, the CORESET0 corresponding to each SSB occupies 2 time slots (Slots), and does not share the same time slot with the CORESET0 corresponding to other SSBs.
  • a resource set configuration method which configures a corresponding control resource set for a target type terminal, improves the flexibility and reliability of the control resource set configuration, and enables the target type terminal to effectively detect the corresponding control resource set And accurately obtain the control information of the downlink channel, and then complete the initial access process.
  • FIG. 1 is a flowchart of a method for configuring a resource set according to an embodiment. This method can be applied to service nodes. As shown in FIG. 1 , the method provided in this embodiment includes step 110 and step 120 .
  • step 110 in a period or a time period, configure at least one control resource set corresponding to the target type terminal.
  • step 120 a physical downlink control channel PDCCH is sent in the control resource set.
  • the target type terminal refers to the RedCap UE, the capability of the target type terminal is simplified, and its reception performance is weaker than that of the non-target type terminal (which can be understood as NR UE, or Legacy UE) in the NR system.
  • the same configuration of the terminal cannot guarantee that the target type terminal can correctly learn the control resource set (CORESET) and obtain the control information of the downlink channel.
  • the serving node considers the capability of the target type terminal, configures a corresponding control resource set for the target type terminal, and sends the PDCCH through the configured control resource set.
  • the target type terminal can obtain the corresponding control resource set by detecting and decoding the corresponding control resource set.
  • Accurate PDCCH wherein the control resource set corresponding to the target type terminal may be independently configured for the target type terminal, or may be shared with the non-target type terminal.
  • control resource set includes at least one of the following: a first control resource set corresponding to at least one first SSB within the period or time period; and at least one second control resource set.
  • the target type terminal control resource set may include a first control resource set corresponding to at least one first SSB in a period or time period, where the first SSB refers to an SSB corresponding to a non-target type terminal in the NR system, and a
  • the first SSB can be used to indicate the corresponding first control resource set for the non-target type terminal
  • the first control resource set includes the PDCCH corresponding to the non-target type terminal, on the other hand, at least one first SSB in a period or time period
  • the indicated first control resource set can also be used by the target type terminal, that is, it can be determined by the target type terminal as its corresponding control resource set.
  • the number of the first SSB is at least 1. For example, if the number of the first SSB is 4, the index i of the first SSB is 0 or 1 or 2 or 3, respectively. All the first SSBs are either
  • the first control resource set corresponding to some of the first SSBs (for example, the first SSB with index 0 and index 1) can be configured as a control resource set corresponding to a target type terminal, and the target type terminal can detect this type of corresponding control resource set by detecting The PDCCH can be accurately detected.
  • control resource set corresponding to the target type terminal may also include at least one second control resource set.
  • the second control resource set refers to the control resource set independently configured for the target type terminal, and the non-target type terminal cannot identify the second control resource set.
  • the second set of control resources is resources other than the first SSB and the first set of control resources within the period or time period.
  • it also includes:
  • Step 101 Within the period or time period, configure a second SSB corresponding to the terminal of the target type, and the second SSB has an association relationship with the second control resource set.
  • a second SSB (Additional SSB) is independently configured for the target type terminal, the second SSB is used to indicate the corresponding second control resource set for the target type terminal, and the non-target type terminal cannot identify the second SSB.
  • the control resource set corresponding to the target type terminal may be determined according to the first control resource set corresponding to at least one first SSB in the period or time period, or according to the second The second control resource set corresponding to the SSB is determined, or jointly determined according to the first control resource set corresponding to at least one first SSB and the second control resource set corresponding to the independently configured second SSB in the period or time period, according to the target
  • the control resource set corresponding to the type terminal can further transmit the PDCCH.
  • FIG. 2 is a schematic diagram of determining a control resource set corresponding to a terminal of a target type when a second SSB is configured according to an embodiment.
  • the actual transmission period of the first SSB may be 5ms, 10ms, 20ms, 40ms, 80ms or 160ms, but the terminal does not determine the transmission period of the first SSB during the initial access process.
  • the default period of the first SSB is 20ms
  • the first SSB includes SSB0 to SSB3.
  • the first control resource set (marked with the same horizontal line as SSB0) can be determined according to SSB0.
  • the set of control resources may determine the first PDSCH (shown as the black filled area).
  • the second SSB includes SSB a to SSB d, and the period of the second SSB can be configured to be relatively small, such as 10ms, so that there are two second SSBs used by target type terminals within 20ms, and one of the second SSB resources Same as the first SSB, another second SSB is specially configured for the target type terminal.
  • the position of the first control resource set can be accurately determined, and then the remaining minimum corresponding to the non-target type terminal can be obtained by decoding the first control resource set.
  • System Information Remaining Minimum System Information, RMSI
  • the position of the control resource set corresponding to the target type terminal can be obtained by detecting the first SSB or the second SSB, and the second PDSCH can be obtained by decoding (as shown in the bold area in the ellipse); Combining the detected first control resource set and second control resource set (shown as four black bold arrows) is implemented.
  • the period of the second SSB is smaller than the period of the first SSB, so as to ensure that the target type terminal can definitely detect at least one second SSB within the period of each first SSB, so as to determine the first SSB according to the second SSB. 2. Control the resource set, and then accurately detect the PDCCH.
  • the number of second SSBs is less than or equal to the number of first SSBs.
  • the number of second SSBs may be equal to the number of first SSBs, that is, for all SSBs, corresponding second SSBs are configured for terminals of the target type; the number of second SSBs may also be smaller than the number of first SSBs, For example, in the case of insufficient time domain resources, a corresponding second SSB may be configured for the target type terminal for part of the SSBs.
  • the indices of the second SSBs are 0 to N2-1, where N2 is the number of the second SSBs.
  • the number of the first SSB is N1
  • the number of the second SSB is N2, and N2 ⁇ N1.
  • the index of the second SSB is 0 to N2-1.
  • the time domain position of the second control resource set is a set offset value added based on the time domain position of the first control resource set.
  • This embodiment is directed to pattern 1, that is, a scenario in which the period of the first control resource set is 20 ms by default, and the time domain position of the second control resource set is the time domain position of the first control resource set.
  • the shift value is 5ms or 10ms.
  • the target type terminal It should be noted that if the set offset value is small, causing the conflict between the first control resource set corresponding to the first SSB in the previous cycle and the first control resource set corresponding to the first SSB in the current cycle, the target type terminal It is necessary to select a first control resource set among them, as the basis for determining the corresponding control resource set, otherwise, the target type terminal will cause detection due to mixing the first control resource set of the conflicting first SSB in the process of combining detection. The performance is degraded, and the PDCCH cannot be obtained accurately. In some embodiments, when the serving node configures and sets the offset value, it should be greater than a certain value, so as to avoid the conflict of the first control resource sets in different periods.
  • the number of repetitions of PDSCH is indicated by the first downlink control information (Downlink Control Information, DCI); or, the number of repetitions of PDSCH is indicated by the second DCI;
  • the number of first control resource set configurations in the period or time period is the same; or, the number of repetitions of PDSCH is the same as the number of second control resource set configurations in the period or time period; or, the number of repetitions of PDSCH and
  • the sum of the number of the first control resource set configuration and the number of the second control resource set configuration in the period or time period is the same; or, in the case where the corresponding second SSB is configured for the target type terminal, the number of repetitions of the PDSCH It is the same as the number of repetitions of the second SSB in the period or time period; or, in the case of configuring a corresponding second SSB for the target type terminal, the number of repetitions of the PDSCH is the same as the number of repetitions of the first SSB and the first
  • the first DCI is configured for the non-target type terminal, and the reserved (Reserved) bit in the first DCI can be used to indicate the number of repetitions of the PDSCH of the target type terminal;
  • the second DCI is configured for the target type terminal, It can be used to indicate the number of repetitions of the PDSCH of the target type terminal, which cannot be interpreted by the non-target type terminal;
  • the number of repetitions of the PDSCH of the target type terminal can also be the same as the number of the first control resource set configuration in the period or time period; it can also be the same as the period Or the sum of the configured quantity of the first control resource set and the second control resource set configuration in the time period is the same;
  • the number is the same; if the second SSB is independently configured for the target type terminal, the number of repetitions of the PDSCH of the target type terminal can also be the same as the number of repetitions of the second SSB in the period or time period, where the number of repetitions of the second SSB refers to the
  • the information carried in the first DCI for scheduling non-target type terminals and the second DCI for scheduling target type terminals are the same.
  • the target type terminal can combine the detection of the first control resource The set PDCCH and the PDCCH of the second control resource set to obtain the corresponding PDSCH.
  • the number of repetitions of the use of the corresponding control resource set in the target type terminal detection may be a default value, for example, the number of control resource sets within 20ms.
  • the PDSCH start time slot of the target type terminal is the same as the time slot where the last control resource set is located in the case of combined detection of the first control resource set and the second control resource set.
  • the first master information block (Master Information Block, MIB) information in the first SSB is consistent with the second MIB information in the second SSB. .
  • MIB Master Information Block
  • the resource configuration information of the first control resource set and the second control resource set are consistent, that is, the information carried by the first MIB and the second MIB are consistent, so that the non-target type terminal directly interprets the second SSB as the first In the case of one SSB, after decoding the second SSB, the position of the first control resource set can be accurately determined.
  • FIG. 3 is a schematic diagram of determining a control resource set corresponding to a target type terminal in the case of configuring a second SSB according to another embodiment.
  • the location of the first control resource set can only be determined by detecting the first SSB (SSB0), and then the RMSI (that is, the RMSI (that is, the RMSI) corresponding to the non-target type terminal can be obtained by decoding the first control resource set.
  • SIB1 resources; for the target type terminal, the location of the control resource set corresponding to the target type terminal can only be obtained by detecting the first SSB or the second SSB, and the second PDSCH can be obtained by decoding the corresponding control resource set (such as inside the ellipse). shown in bold).
  • the first SSB and the second SSB satisfy at least one of the following: the sequence used by the synchronization signal in the first SSB is the same as the sequence used in the second SSB.
  • the sequences used for the synchronization signals are different; the relative position between the primary synchronization signal and the secondary synchronization signal in the first SSB is different from the relative position between the primary synchronization signal and the secondary synchronization signal in the second SSB;
  • the physical The broadcast channel is scrambled using a specific scrambling code for the terminal of the target type.
  • the non-target type terminal detects the PDCCH in the first control resource set according to the first SSB, and then determines the first RMSI corresponding to the non-target type terminal; the target type terminal determines whether the detected SSB is the first SSB or the second SSB The SSB accordingly determines whether to continue detecting the first set of control resources or the second set of control resources.
  • the first SSB and the second SSB can be distinguished in the following centralized manner: 1) The sequence used by the synchronization signal in the first SSB is the same as the The sequences used for the synchronization signals in the second SSB are different; 2) the relative position between the primary synchronization signal and the secondary synchronization signal in the first SSB is different from the relative position between the primary synchronization signal and the secondary synchronization signal in the second SSB 3) The scrambling operation is performed using the dedicated scrambling code of the target type terminal for the physical broadcast channel in the second SSB. Improve the flexibility of control resource set configuration and the reliability of detection of different types of terminals.
  • the index of the starting time slot of the PDSCH is: the index of the last time slot in the time slot where the second control resource set is located plus N, where N is an integer greater than or equal to 0; wherein , the value of N is configured by the service node or the default value.
  • the last time slot where the second control resource set is located refers to: after the target type terminal successfully decodes an SSB of an index (which may be the first SSB or the second SSB), the SSB of the index corresponds to at least one SSB of the index. One controls the position of the last slot in the resource set.
  • the second control resource set is configured by the first SSB; the start time slot of the second control resource set is determined according to a predetermined rule, or is indicated by the first SSB.
  • FIG. 4 is a schematic diagram of configuring a second control resource set according to an embodiment.
  • the first SSB includes SSBs 0 to SSB7, and the second SSB is not independently configured for the target type terminal.
  • the starting time slot of the second set of control resources is determined according to a predetermined rule or indicated by the first SSB.
  • the first control resource set corresponds to two time slots
  • the second control resource set is configured on the time slot before or after the two time slots, which is equivalent to adding the control resource set corresponding to the target type terminal number of repetitions.
  • the time slot in which the second control resource set is located includes time slots in the period or time period, but does not include at least one of the following time slots: a time slot occupied by the first SSB; a time slot occupied by the first SSB time slot, and the first control resource set exists in the time slot; the time slot where the first control resource set is located.
  • the time slot where the second control resource set is located is determined according to the following principle: within a period or time period, the time slot where the second control resource set is located cannot be the time slot occupied by the first SSB, or cannot be the time slot occupied by the first SSB.
  • An SSB occupies a time slot in which the first control resource set exists, or it cannot be the time slot in which the first control resource set is located, or it cannot be a plurality of time slots among the above three time slots.
  • the time slot where the second control resource set is located cannot be the time slot occupied by the first SSB and the first control resource set exists, and cannot be the time slot where the first control resource set is located, so as to distinguish the first control resource set.
  • a set of resources and a second set of control resources are a set of resources and a second set of control resources.
  • the time slot where the second control resource set is located includes a time slot in a period or a time period, and the starting time slot index is the index of the last time slot in the time slot where the first control resource set is located plus G1.
  • slots, G1 is greater than or equal to 0.
  • the time slot where the second control resource set is located is determined according to the following principle: within a period or time period, the actual time slot of the time slot where the second control resource set is located is the time slot where the first control resource set is located.
  • the last time slot in +G1 time slots, wherein the time slot where the first control resource set is located refers to the practice where all the first control resource sets corresponding to all the first SSBs are located.
  • the time slots whose index is Offset+i*K(i) to Offset+(i+1)*K(i)-1 in the set of time slots where the second control resource set is located are the time slots whose index is i The time slot where the second control resource set corresponding to the first SSB is located; wherein, in the time slot set where the second control resource set is located, the index of the time slot is numbered from 0, and K(i) is the index of i The number of time slots occupied by the second control resource set corresponding to the first SSB; Offset is an offset, and the value of the offset is configured by the serving node or is a default value.
  • the time slot where the second control resource set corresponding to the first SSB with index 0 is located is: time slot Offset to time slot Offset+K ( 1) 1; the time slot where the second control resource set corresponding to the first SSB with index 1 (ie SSB1) is located is: time slot Offset+K(1) to time slot Offset+2*K(2)-1.
  • it also includes:
  • Step 102 configure the time slot where the second control resource set corresponding to the first SSB with index i is located;
  • the second control resource set is not configured for the first SSB with the index i.
  • the time slot index of the time slot where the second control resource set corresponding to the first SSB with index i is located does not belong to the time slot range where the second control resource set is located, then for the first SSB whose index is i
  • the SSB is not configured with the second control resource set, that is, the target type terminal cannot determine the second control resource set according to the first SSB whose index is i, but can only determine the second control resource set according to the first SSB whose corresponding slot index belongs to the time slot range A second set of control resources.
  • the number of time slots occupied by the second control resource set corresponding to the first SSB with index i in the second control resource set, and the time slots occupied by the first control resource set corresponding to the first SSB with the same index The same amount.
  • the first SSB with index 0 that is, the number of time slots occupied by the second control resource set corresponding to SSB0, is the same as the number of time slots occupied by the first control resource set corresponding to SSB0.
  • the method further includes: Step 103: Indicate at least one of the following through the first SSB:
  • the frequency domain position of the second control resource set is located at between the frequency domain resource position of the first SSB and the frequency domain position of the first control resource set.
  • the second control resource set may be configured between the first SSB and the frequency domain position of the first control resource set , so as to reduce the interference between the independently configured second control resource set and the first SSB or the first control resource set.
  • the set value is determined by at least one of the following: configured by the serving node; a default value; determined according to the subcarrier spacing of the second control resource set.
  • each subcarrier interval corresponds to one or more Gap values.
  • the Gap can be determined directly through the subcarrier interval; in the case that each subcarrier interval corresponds to multiple Gap values, the Gap can be determined first through the subcarrier interval.
  • Optional set and further indicate the specific value of Gap in the optional set through specific signaling.
  • the subcarrier spacing of the second control resource set is the same as the subcarrier spacing of the first control resource set.
  • the frequency domain position of the second control resource set is adjacent to the frequency domain position of the first control resource set.
  • adjacent means that the frequency domain position of the second control resource set is connected end to end with the frequency domain position of the first control resource set, or the second control resource set and the first control resource set are on frequency domain resources There are guard bandwidths, and the second control resource set is connected end to end with the frequency domain resources occupied by the guard bandwidth of the first control resource set.
  • the size of the frequency domain resources occupied by the second control resource set is: the maximum value of the configurable frequency domain resources of the second control resource set that satisfies a value less than or equal to the interval.
  • the frequency domain resource occupied by the second control resource set is less than or equal to the interval between the frequency domain resource position of the first SSB and the frequency domain position of the first control resource set, and its value is configured as large as possible,
  • the target type terminal is made to detect the second control resource set more efficiently.
  • the (index) of the starting time slot of the second control resource set may be indicated by the first SSB, or may be determined according to a default rule, eg, the first time slot after the end of the first control resource set resource.
  • the time slot where the second control resource set corresponding to each first SSB is located may be indicated by the first SSB, or may be indicated jointly with the start time slot index.
  • Each first SSB may correspond to a default number of second control resource sets.
  • first SSB will have a corresponding second control resource set.
  • first SSB of an index if the distance between the time slot in which the corresponding second control resource set is located and the first control resource set corresponding to the first SSB corresponding to the first SSB exceeds a threshold (far distance), the index The first SSB does not correspond to the second control resource set; for another example, the second control resource set within the time window within 20ms from the first SSB is valid, and the second control resource is not configured within the scope beyond the time window. gather.
  • the symbols (Symbols) corresponding to the second control resource set are located in the time slot where the first control resource set is located.
  • some symbols are configured in the 2 time slots where the first control resource set is located to transmit the second control resource set.
  • FIG. 5 is a schematic diagram of configuring symbols of the second control resource set according to an embodiment.
  • the second control resource set may be configured in an area other than the symbols occupied by the first control resource set.
  • the symbol distribution of 2 time slots is shown in FIG.
  • Time Domain Resource Allocation, TDRA time domain resource allocation
  • TDRA index is used to indicate a PDSCH resource allocation scheme, which can be indicated by the DCI in the PDCCH in the control resource set ;
  • Demodulation Reference Signal (De Modulation Reference Signal, DMRS) Type A position indicates the symbol position of the first DMRS (Front DMRS) in the PDSCH of Type A, which can be indicated by the MIB in the SSB ; S0, S1, ... are the indices of the symbols.
  • the resource allocation scheme of Type A PDSCH can be determined by combining the TDRA index and DMRS-TypeA-Position.
  • the first control resource set configuration information exists in the first SSB, occupies 8 bits, and can be expressed as PDCCH-configSIB1.
  • PDCCH-configSIB1 a region of the second control resource set can be mapped for a target type terminal within 2 time slots.
  • the time domain region corresponding to the first control resource set does not overlap with the time domain region corresponding to the second control resource set; the time domain region of the PDSCH associated with the first control resource set does not overlap with the time domain region corresponding to the second control resource set, This can be achieved through the scheduling of service nodes.
  • the reserved bits in the second MIB are used to independently configure the second control resource set for the target type terminal. It is only necessary to indicate the start symbol of the second control resource set in the two MIBs.
  • the symbol corresponding to the second control resource set is indicated by the second control resource set configuration information in the first SSB;
  • the second control resource set configuration information in the first SSB is further used to indicate at least one of the following: whether the second control resource set is configured; at least one start symbol index information of the second control resource set; where the first control resource set is located In the case that the number of timeslots is greater than 1, the timeslot where the second control resource set is located is indicated.
  • the symbol corresponding to the second control resource set is indicated by the second control resource set configuration information (PDCCH-configSIB2) in the first SSB.
  • the second control resource set configuration information can also be used to indicate whether the target type terminal is attached to the second control resource set, to indicate the index of the start symbol of at least one second control resource set, and to indicate the time slot where the second control resource set is located. Wait.
  • the start symbol index of the second control resource set is one of the following: the symbol index occupied by the first control resource set is increased by 1; A symbol index occupied by a control resource set is incremented by 2.
  • the second control resource set occupies 1 symbol.
  • the starting symbol index of the second control resource set is: the number of symbols in the time slot minus the product of n and the number of symbols occupied by the second control resource set, and then minus an offset value; wherein, The value of n is an integer greater than or equal to 1, and the value of the offset value is configured by the service node or is a default value.
  • the number of symbols occupied by the second control resource set is greater than or equal to two.
  • the second control resource set satisfies at least one of the following: the number of symbols occupied by the second control resource set is the same as the number of symbols occupied by the first control resource set; the frequency domain resource positions occupied by the second control resource set and The frequency domain resource positions occupied by the first control resource set are the same.
  • the payload (Payload) of the PBCH channel in the first SSB mainly includes the first MIB information and the 8-bit information of the physical layer (Physical Layer) (that is, in value of 8). Among them, there is a reserved bit (Reserved bit) of 1 bit in the first MIB information.
  • the 8-bit information of the physical layer of the PBCH is reserved bits. Therefore, there can be up to 3 bits of reserved bits in the payload of the PBCH.
  • the maximum number L of SSBs supported by the NR system in a period of 20ms is 64
  • the physical layer 8bit information of the PBCH contains is occupied, so there can be at most 1 bit of reserved bits in the payload of the PBCH.
  • the maximum value of the number of SSBs (that is, the sum of the numbers of SSBs with different indices) can be selected from ⁇ 4, 8, 64 ⁇ .
  • the reserved bits of up to 3 bits in the PBCH of the first SSB may be used to indicate the corresponding control resource set configured for the target type terminal.
  • At least one of the following may be indicated by reserved bits in the PBCH payload:
  • the second control resource set of the target type terminal is configured on adjacent symbols after the first control resource set configured for the non-target type terminal.
  • the second control resource set when the number of symbols occupied by the first control resource set is equal to 1, the second control resource set is configured on one or two symbols after the first control resource set.
  • the number of symbols and the size of the frequency domain resources used for the second control resource set are the same as those of the first control resource set.
  • the position of the start symbol of the second control resource set is indicated, wherein the position of the start symbol of the second control resource set may include one or more .
  • the second control resource set is only configured in the first time slot
  • the second control resource set is only configured in the second time slot
  • the second control resource set is configured in both time slots.
  • the set of control resources corresponding to the target type terminal can be indicated through the reserved bits of 3 bits in the PBCH load and the method of looking up a table.
  • Table 1 is the first configuration table of the control resource set corresponding to the target type terminal. Exemplarily, there are 14 symbols in a time slot, the number of the first symbol is 0, and the number of the last symbol is 13.
  • Table 1 The first configuration table of the control resource set corresponding to the target type terminal
  • the indexes 1 and 2 are for the second control resource set with a length of 1 symbol; the indexes 3 and 4 are for the second control resource set with a length of 2 symbols; the indexes 5, 6 and 7 are for is the second control resource set of 3 symbols in length.
  • the set of control resources corresponding to the target type terminal can be indicated through the 2-bit reserved bits in the PBCH load and the method of looking up a table.
  • Table 2 is a second configuration table of the control resource set corresponding to another target type terminal. Exemplarily, there are 14 symbols in a time slot, the number of the first symbol is 0, and the number of the last symbol is 13.
  • Table 2 The second configuration table of the control resource set corresponding to another target type terminal
  • PDSCH is used to carry RMSI.
  • the method further includes: Step 104: Indicate the configuration scheme of the second control resource set through the first SSB.
  • the configuration scheme of the second control resource set includes at least one of the following:
  • the target type terminal can detect the first control resource set corresponding to the first SSB and/or the second control resource set corresponding to the second SSB);
  • the second control resource set is configured by the first SSB (as shown in FIG. 4 , the service node configures the second control resource set for the target type terminal, and the target type terminal can determine the second control resource set according to the first SSB) ;
  • the symbol corresponding to the second control resource set is located in the time slot where the first control resource set is located (as shown in FIG. 5 , the service node configures the second control resource set for the target type terminal, and the target type terminal can
  • the first SSB determines a second set of control resources, and the second set of control resources is located in the same time slot as the first set of control resources).
  • a detection method is also provided.
  • the target type terminal detects the corresponding control resource set, accurately determines the control resource set and obtains the control information of the downlink channel, and then completes the initial access process and improves the control resources. Reliability of ensemble detection.
  • the detection method in this embodiment and the resource set configuration method in the above-mentioned embodiment belong to the same concept, and the operation performed by the target type terminal in this embodiment corresponds to the operation performed by the service node in the above-mentioned embodiment.
  • the operation performed by the target type terminal in this embodiment corresponds to the operation performed by the service node in the above-mentioned embodiment.
  • FIG. 6 is a flowchart of a detection method provided by an embodiment. As shown in FIG. 6 , the method provided by this embodiment includes step 210 and step 220 .
  • step 210 within a period or a time period, at least one control resource set corresponding to the target type terminal is obtained.
  • step 220 a PDCCH is detected in the control resource set.
  • the serving node configures a corresponding control resource set for the target type terminal considering the capability of the target type terminal, and the target type terminal can detect the PDCCH in the control resource set by detecting the corresponding control resource set.
  • the target type terminal is configured with a corresponding second SSB
  • the second SSB is associated with the second control resource set.
  • control resource set includes at least one of the following: a first control resource set corresponding to at least one first SSB in the period or time period; and at least one second control resource set.
  • the indices of the second SSBs are 0 to N2-1, where N2 is the number of the second SSBs.
  • the time domain position of the second control resource set is a set offset value added based on the time domain position of the first control resource set corresponding to the first SSB.
  • the number of repetitions of the PDSCH is indicated by the first DCI; or,
  • the number of repetitions of the PDSCH is indicated by the second DCI; or,
  • the number of repetitions of the PDSCH is the same as the number configured in the first control resource set in the period or time period; or,
  • the number of repetitions of the PDSCH is the same as the number configured in the second control resource set within the period or time period; or,
  • the number of repetitions of the PDSCH is the same as the sum of the number of first control resource set configurations and the number of second control resource set configurations in the period or time period; or,
  • the number of repetitions of the PDSCH is the same as the number of repetitions of the second SSB in the period or time period; or,
  • the number of repetitions of the PDSCH is the same as the sum of the number of repetitions of the first SSB and the second SSB in the period or time period.
  • control resource set corresponding to the target type terminal includes a first control resource set corresponding to at least one first SSB and at least one second control resource set in a period or time period, at least one of the following is satisfied: :
  • the information carried in the first DCI for scheduling non-target type terminals and the second DCI for scheduling target type terminals is the same;
  • the first MIB information in the first SSB is consistent with the second MIB information in the second SSB.
  • the PDCCH detection opportunity satisfies the following: at least one of:
  • the PDCCH detection opportunity (PDCCH Candidate) is located in the first control resource set corresponding to the first SSB;
  • the PDCCH detection opportunity is located in the PDCCH in the second control resource set;
  • the PDCCH detection opportunity is located in a set consisting of a first control resource set and a second control resource set corresponding to the first SSB.
  • the PDCCH detection opportunity is located in the PDCCH in the second control resource set
  • the j+1 th PDCCH detection opportunity is located in the P1 second control resource sets with indices from j*P1/J to (j+1)*P1/J-
  • the second control resource set of 1 wherein, the value of J is at least one of 2, 4, 6, 8, 16 and 24; j is greater than or equal to 0 and j is less than or equal to J-1.
  • the numbers of the P1 second control resource sets start from 0 and go to P1-1. It can be numbered in the order of time domain priority. "*" means multiplication and "/" means division.
  • P1/J if P1 is not divisible by J, that is, P1/J is not an integer, this P1/J can be replaced by: rounding down or rounding up P1/J.
  • the PDCCH detection opportunity is located in a set consisting of a first control resource set and a second control resource set corresponding to the first SSB;
  • the (j+1)th PDCCH detection opportunity is located in the P2 control resource set
  • J is at least one of 2, 4, 6, 8, 16, and 24; j is greater than or equal to 0, and j is less than or equal to J-1.
  • the numbers of the P2 control resource sets start from 0 and go to P2-1. It can be numbered in the order of time domain priority. "*" means multiplication and "/" means division.
  • this P2/J can be replaced by: rounding down or rounding up P2/J.
  • the first SSB and the second SSB satisfy at least one of the following:
  • the sequence used by the synchronization signal in the first SSB is different from the sequence used by the synchronization signal in the second SSB;
  • the relative position between the primary synchronization signal and the secondary synchronization signal in the first SSB is different from the relative position between the primary synchronization signal and the secondary synchronization signal in the second SSB;
  • the physical broadcast channel in the second SSB is scrambled using a dedicated scrambling code for the target type of terminal.
  • the starting time slot index of the PDSCH is: the index of the last time slot in the time slot where the second control resource set is located plus N, where N is an integer greater than or equal to 0;
  • the value of N is configured by the service node or is a default value.
  • the second control resource set satisfies at least one of the following:
  • the second control resource set is configured by the first SSB
  • the starting time slot of the second control resource set is determined according to a predetermined rule or indicated by the first SSB.
  • the time slot in which the second control resource set is located includes time slots in the period or time period, but does not include at least one of the following time slots: the time slot occupied by the first SSB; the first time slot occupied by the first SSB; The time slot occupied by the SSB, and the first control resource set exists in the time slot; the time slot where the first control resource set is located.
  • the time slot in which the second control resource set is located includes time slots in the period or time period, and the index of the starting time slot is the last time slot in the time slot in which the first control resource set is located. Slot index plus G1, G1 is greater than or equal to 0.
  • the time slots whose index is Offset+i*K(i) to Offset+(i+1)*K(i)-1 in the set of time slots where the second control resource set is located are the time slots whose index is i The time slot where the second control resource set corresponding to the first SSB is located; wherein, in the time slot set where the second control resource set is located, the index of the time slot is numbered from 0, and K(i) is the index of i The number of time slots occupied by the second control resource set corresponding to the first SSB; Offset is an offset, and the value of the offset is configured by the serving node or is a default value.
  • the second control resource set is not configured for the first SSB whose index is i.
  • the number of time slots occupied by the second control resource set corresponding to the first SSB with index i in the second control resource set is the number of time slots occupied by the first control resource set corresponding to the first SSB with the same index.
  • the number of time slots is the same.
  • the first SSB is used to indicate at least one of the following: whether the first SSB is configured with a second control resource set; the number of time slots occupied by the second control resource set corresponding to the first SSB; A slot position occupied by the second control resource set corresponding to an SSB.
  • the frequency domain of the second control resource set is The domain location is between the frequency domain resource location of the first SSB and the frequency domain location of the first control resource set.
  • the set value is determined by at least one of the following: configured by the serving node; a default value; determined according to the subcarrier spacing of the second control resource set.
  • the subcarrier spacing of the second control resource set is the same as the subcarrier spacing of the first control resource set.
  • the frequency domain position of the second control resource set is adjacent to the frequency domain position of the first control resource set.
  • the size of the frequency domain resources occupied by the second control resource set is: a maximum value of the frequency domain resources configurable by the second control resource set that satisfies a value less than or equal to the interval.
  • the symbol corresponding to the second control resource set is located in the time slot where the first control resource set is located.
  • the symbol corresponding to the second control resource set is indicated by the second control resource set configuration information in the first SSB;
  • the second control resource set configuration information is further used to indicate at least one of the following:
  • the start symbol index of the second control resource set is one of the following: the symbol index occupied by the first control resource set is increased by 1; A symbol index occupied by a control resource set is incremented by 2.
  • the second control resource set occupies 1 symbol.
  • the starting symbol index of the second control resource set is: the number of symbols in the time slot minus the product of n and the number of symbols occupied by the second control resource set, and then minus an offset value;
  • the value of n is an integer greater than or equal to 1, and the value of the bias value is configured by the service node or is a default value.
  • the number of symbols occupied by the second control resource set is greater than or equal to 2.
  • the second control resource set satisfies at least one of the following:
  • the number of symbols occupied by the second control resource set is the same as the number of symbols occupied by the first control resource set;
  • the frequency domain resource positions occupied by the second control resource set are the same as the frequency domain resource positions occupied by the first control resource set.
  • the first SSB is used to indicate a configuration scheme of the second control resource set
  • the configuration scheme of the second control resource set includes at least one of the following:
  • the second control resource set is configured by the first SSB
  • the symbol corresponding to the second control resource set is located in the time slot where the first control resource set is located.
  • FIG. 7 is a schematic structural diagram of an apparatus for configuring a resource set according to an embodiment.
  • the resource set configuration apparatus includes: a configuration module 11 and a sending module 12 .
  • the configuration module 11 is configured to configure at least one control resource set corresponding to the target type terminal within a period or a time period;
  • the sending module 12 is configured to send the PDCCH in the control resource set.
  • the resource set configuration device of this embodiment improves the flexibility and reliability of the configuration of the control resource set by configuring the corresponding control resource set for the target type terminal, so that the target type terminal can effectively detect the corresponding control resource set and accurately obtain the downlink channel control information, and then complete the initial access process.
  • control resource set includes at least one of the following:
  • a first control resource set corresponding to at least one first synchronization signal/physical broadcast channel block SSB within the period or time period;
  • At least one second set of control resources At least one second set of control resources.
  • the configuration module 11 is further set to:
  • a second SSB corresponding to the target type terminal is configured; the second SSB is associated with the second control resource set.
  • the number of the second SSBs is less than or equal to the number of the first SSBs.
  • the index of the second SSB is 0 to N2-1, where N2 is the number of the second SSB .
  • the time domain position of the second control resource set is a set offset value added based on the time domain position of the first control resource set.
  • the number of repetitions of PDSCH for the target type terminal is indicated by the first downlink control information DCI; or, the number of repetitions of PDSCH is indicated by the second DCI; or, the number of repetitions of PDSCH is related to the period or time.
  • the number of first control resource set configurations in the segment is the same; or, the number of PDSCH repetitions is the same as the number of second control resource set configurations in the period or time period; or, the number of PDSCH repetitions is the same as the period or time period.
  • the sum of the number of the first control resource set configuration in the segment and the number of the second control resource set configuration is the same; or, in the case where the corresponding second SSB is configured for the target type terminal, the number of repetitions of the PDSCH is the same as that of the The number of repetitions of the second SSB in the period or time period is the same; or, in the case where a corresponding second SSB is configured for the target type terminal, the number of repetitions of the PDSCH is the same as the number of repetitions of the first SSB in the period or time period
  • the sum of the repetition times of the SSB and the second SSB is the same.
  • the information carried in the first DCI for scheduling non-target type terminals and the second DCI for scheduling the target type terminals are the same.
  • the first MIB information in the first SSB is consistent with the second MIB information in the second SSB.
  • the first SSB and the second SSB satisfy at least one of the following:
  • the sequence used by the synchronization signal in the first SSB is different from the sequence used by the synchronization signal in the second SSB;
  • the relative position between the primary synchronization signal and the secondary synchronization signal in the first SSB is different from the relative position between the primary synchronization signal and the secondary synchronization signal in the second SSB;
  • the physical broadcast channel in the second SSB is scrambled using the dedicated scrambling code for the target type terminal.
  • the index of the initial time slot of the PDSCH is: the index of the last time slot in the time slot where the second control resource set is located plus N, where N is greater than or equal to 0 the integer;
  • the value of N is configured by the service node or is a default value.
  • the second set of control resources is configured through the first SSB
  • the starting time slot of the second control resource set is determined according to a predetermined rule or indicated by the first SSB.
  • the time slot in which the second control resource set is located includes time slots in the period or time period, but does not include at least one of the following time slots: the time slot occupied by the first SSB; the first time slot occupied by the first SSB; The time slot occupied by the SSB, and the first control resource set exists in the time slot; the time slot where the first control resource set is located.
  • the time slot in which the second control resource set is located includes a time slot in the period or time period, and the starting time slot index is the last time slot in the time slot in which the first control resource set is located.
  • the index of the slot is added with G1 slots, and G1 is greater than or equal to 0.
  • the time slots whose index is Offset+i*K(i) to Offset+(i+1)*K(i)-1 in the set of time slots where the second control resource set is located are the time slots whose index is i The time slot where the second control resource set corresponding to the first SSB is located;
  • the indices of the time slots are numbered from 0, and K(i) is the number of time slots occupied by the second control resource set corresponding to the first SSB with index i. quantity;
  • Offset is an offset, and the value of the offset is configured by the service node or is a default value.
  • the configuration module 11 is further configured to: configure a time slot for the second control resource set corresponding to the first SSB whose index is i;
  • the second control resource set is not configured for the first SSB with the index i.
  • the number of time slots occupied by the second control resource set corresponding to the first SSB with index i in the second control resource set, and the time slots occupied by the first control resource set corresponding to the first SSB with the same index The same amount.
  • it further includes: an indication module configured to indicate at least one of the following through the first SSB: whether the first SSB is configured with a second control resource set; the second control resource set corresponding to the first SSB is occupied the number of time slots; the time slot position occupied by the second control resource set corresponding to the first SSB.
  • the frequency domain of the second control resource set is The domain location is between the frequency domain resource location of the first SSB and the frequency domain location of the first control resource set.
  • the set value is determined by at least one of the following: configured by the serving node; a default value; determined according to the subcarrier spacing of the second control resource set.
  • the subcarrier spacing of the second control resource set is the same as the subcarrier spacing of the first control resource set.
  • the frequency domain position of the second control resource set is adjacent to the frequency domain position of the first control resource set.
  • the size of the frequency domain resources occupied by the second control resource set is: a maximum value of the frequency domain resources configurable by the second control resource set that satisfies a value less than or equal to the interval.
  • the symbol corresponding to the second control resource set is located in the time slot where the first control resource set is located.
  • the symbol corresponding to the second control resource set is indicated by the first control resource set configuration information of the first SSB.
  • the symbol corresponding to the second control resource set is indicated by the second control resource set configuration information in the second SSB.
  • the symbol corresponding to the second control resource set passes through the second control resource set in the second MIB of the second SSB.
  • the second control resource set configuration information is used to indicate a start symbol corresponding to the second control resource set.
  • the second control resource set satisfies at least one of the following:
  • the number of symbols occupied by the second control resource set is the same as the number of symbols occupied by the first control resource set;
  • the frequency domain resource positions occupied by the second control resource set are the same as the frequency domain resource positions occupied by the first control resource set.
  • the PDSCH is used to carry the remaining RMSI.
  • the resource set configuration device proposed in this embodiment belongs to the same inventive concept as the resource set configuration method applied to a terminal proposed in the above embodiment.
  • FIG. 8 is a schematic structural diagram of a detection apparatus according to an embodiment. As shown in FIG. 8 , the detection device includes: a detection module 21 and a receiving module 22 .
  • the detection module 21 is configured to acquire at least one control resource set corresponding to the target type terminal within a period or a time period;
  • the receiving module 22 is configured to detect the PDCCH in the control resource set.
  • the detection apparatus of this embodiment accurately detects the PDCCH by knowing the control resource set corresponding to the target type terminal, obtains the control information of the downlink channel, and then completes the initial access process, thereby improving the reliability of the control resource set detection.
  • control resource set includes at least one of the following: a first control resource set corresponding to at least one first SSB in the period or time period; and at least one second control resource set.
  • the target type terminal is configured with a corresponding second SSB
  • the second SSB is associated with the second control resource set.
  • the index of the second SSB is 0 to N2-1, where N2 is the number of the second SSB.
  • the time domain position of the second control resource set is a set offset value added based on the time domain position of the first control resource set corresponding to the first SSB.
  • the number of repetitions of the PDSCH is indicated by the first DCI; or,
  • the number of repetitions of the PDSCH is indicated by the second DCI; or,
  • the number of repetitions of the PDSCH is the same as the number configured in the first control resource set in the period or time period; or,
  • the number of repetitions of the PDSCH is the same as the number configured in the second control resource set within the period or time period; or,
  • the number of repetitions of the PDSCH is the same as the sum of the number of first control resource set configurations and the number of second control resource set configurations in the period or time period; or,
  • the number of repetitions of the PDSCH is the same as the number of repetitions of the second SSB in the period or time period; or,
  • the number of repetitions of the PDSCH is the same as the sum of the number of repetitions of the first SSB and the second SSB in the period or time period.
  • control resource set corresponding to the target type terminal includes a first control resource set corresponding to at least one first SSB and at least one second control resource set within the period or time period, it satisfies: At least one of the following:
  • the information carried in the first DCI for scheduling non-target type terminals and the second DCI for scheduling the target type terminals are the same;
  • the first MIB information in the first SSB is consistent with the second MIB information in the second SSB.
  • the PDCCH when the control resource set corresponding to the target type terminal includes a first control resource set corresponding to at least one first SSB and at least one second control resource set within the period or time period, the PDCCH
  • the detection opportunity meets at least one of the following:
  • the PDCCH detection opportunity is located in the first control resource set corresponding to the first SSB;
  • the PDCCH detection opportunity is located in the PDCCH in the second control resource set;
  • the PDCCH detection opportunity is located in a set consisting of a first control resource set and a second control resource set corresponding to the first SSB.
  • the PDCCH detection opportunity is located in the PDCCH in the second control resource set
  • the j+1 th PDCCH detection opportunity is located in the P1 second control resource sets with indices from j*P1/J to (j+1)*P1/ The second control resource set of J-1;
  • J is at least one of 2, 4, 6, 8, 16 and 24; j is greater than or equal to 0 and j is less than or equal to J-1.
  • the PDCCH detection opportunity is located in a set consisting of a first control resource set and a second control resource set corresponding to the first SSB;
  • the (j+1)th PDCCH detection opportunity is located in the P2 control resource
  • the set of control resources whose index is j*P2/J to (j+1)*P2/J-1 in the set;
  • J is at least one of 2, 4, 6, 8, 16, and 24; j is greater than or equal to 0, and j is less than or equal to J-1.
  • the first SSB and the second SSB satisfy at least the following: one:
  • the sequence used by the synchronization signal in the first SSB is different from the sequence used by the synchronization signal in the second SSB;
  • the relative position between the primary synchronization signal and the secondary synchronization signal in the first SSB is different from the relative position between the primary synchronization signal and the secondary synchronization signal in the second SSB;
  • the physical broadcast channel in the second SSB is scrambled using the dedicated scrambling code for the target type terminal.
  • the starting time slot index of the PDSCH is: the index of the last time slot in the time slot where the second control resource set is located plus N, where N is an integer greater than or equal to 0;
  • the value of N is configured by the service node or is a default value.
  • the second control resource set satisfies at least one of the following:
  • the second control resource set is configured by the first SSB
  • the starting time slot of the second control resource set is determined according to a predetermined rule or indicated by the first SSB.
  • the time slot in which the second control resource set is located includes time slots in the period or time period, but does not include at least one of the following time slots: the time slot occupied by the first SSB; the first time slot occupied by the first SSB; The time slot occupied by the SSB, and the first control resource set exists in the time slot; the time slot where the first control resource set is located.
  • the time slot in which the second control resource set is located includes time slots in the period or time period, and the index of the starting time slot is the last time slot in the time slot in which the first control resource set is located. Slot index plus G1, G1 is greater than or equal to 0.
  • the time slots whose index is Offset+i*K(i) to Offset+(i+1)*K(i)-1 in the set of time slots where the second control resource set is located are the time slots whose index is i The time slot where the second control resource set corresponding to the first SSB is located; wherein, in the time slot set where the second control resource set is located, the index of the time slot is numbered from 0, and K(i) is the index of i The number of time slots occupied by the second control resource set corresponding to the first SSB; Offset is an offset, and the value of the offset is configured by the serving node or is a default value.
  • the second control resource set is not configured for the first SSB whose index is i.
  • the number of time slots occupied by the second control resource set corresponding to the first SSB with index i in the second control resource set is the number of time slots occupied by the first control resource set corresponding to the first SSB with the same index.
  • the number of time slots is the same.
  • the first SSB is used to indicate at least one of the following: whether the first SSB is configured with a second control resource set; the number of time slots occupied by the second control resource set corresponding to the first SSB; A slot position occupied by the second control resource set corresponding to an SSB.
  • the frequency domain of the second control resource set is The domain location is between the frequency domain resource location of the first SSB and the frequency domain location of the first control resource set.
  • the set value is determined by at least one of the following: configured by the serving node; a default value; determined according to the subcarrier spacing of the second control resource set.
  • the subcarrier spacing of the second control resource set is the same as the subcarrier spacing of the first control resource set.
  • the frequency domain position of the second control resource set is adjacent to the frequency domain position of the first control resource set.
  • the size of the frequency domain resources occupied by the second control resource set is: a maximum value of the frequency domain resources configurable by the second control resource set that satisfies a value less than or equal to the interval.
  • the symbol corresponding to the second control resource set is located in the time slot where the first control resource set is located.
  • the symbol corresponding to the second control resource set is indicated by the second control resource set configuration information in the first SSB;
  • the second control resource set configuration information is further used to indicate at least one of the following:
  • the start symbol index of the second control resource set is one of the following: the symbol index occupied by the first control resource set is increased by 1; A symbol index occupied by a control resource set is incremented by 2.
  • the second control resource set occupies 1 symbol.
  • the starting symbol index of the second control resource set is: the number of symbols in the time slot minus the product of n and the number of symbols occupied by the second control resource set, and then minus an offset value;
  • the value of n is an integer greater than or equal to 1, and the value of the bias value is configured by the service node or is a default value.
  • the number of symbols occupied by the second control resource set is greater than or equal to 2.
  • the second control resource set satisfies at least one of the following:
  • the number of symbols occupied by the second control resource set is the same as the number of symbols occupied by the first control resource set;
  • the frequency domain resource positions occupied by the second control resource set are the same as the frequency domain resource positions occupied by the first control resource set.
  • the first SSB is used to indicate a configuration scheme of the second control resource set
  • the configuration scheme of the second control resource set includes at least one of the following:
  • the second control resource set is configured by the first SSB
  • the symbol corresponding to the second control resource set is located in the time slot where the first control resource set is located.
  • the detection device proposed in this embodiment and the detection method applied to a terminal proposed in the above-mentioned embodiments belong to the same inventive concept.
  • the embodiment of the present application also provides a service node.
  • the above-mentioned resource set configuration method applied to a service node may be executed by a resource set configuration device, and the resource set configuration device may be implemented in software and/or hardware and integrated in the service node.
  • FIG. 9 is a schematic diagram of a hardware structure of a service node according to an embodiment.
  • a service node provided by this embodiment includes: a processor 510 and a storage device 520 .
  • the number of processors in the service node may be one or more.
  • a processor 510 is used as an example.
  • the processor 510 and the storage device 520 in the device may be connected through a bus or in other ways. Take bus connection as an example.
  • the one or more programs are executed by the one or more processors 510, so that the one or more processors implement the resource set configuration method applied to a serving node described in any of the foregoing embodiments.
  • the storage device 520 in the service node may be used to store one or more programs, and the programs may be software programs, computer-executable programs, and modules, such as those applied to services in the embodiments of the present invention.
  • Program instructions/modules corresponding to the resource set configuration method of the node include: a configuration module 11 and a sending module 12).
  • the processor 510 executes various functional applications and data processing of the service node by running the software programs, instructions and modules stored in the storage device 520, ie, implements the resource set configuration method in the above method embodiments.
  • the storage device 520 mainly includes a storage program area and a storage data area, wherein the storage program area can store the operating system and the application program required by at least one function; the storage data area can store data created according to the use of the device, etc. example control resource set, target type terminal, etc.). Additionally, storage device 520 may include high-speed random access memory, and may also include non-volatile memory, such as at least one magnetic disk storage device, flash memory device, or other non-volatile solid-state storage device. In some examples, storage device 520 may further include memory located remotely from processor 510, which remote memory may be connected to the service node through a network. Examples of such networks include, but are not limited to, the Internet, an intranet, a local area network, a mobile communication network, and combinations thereof.
  • the one or more programs included in the above service node are executed by the one or more processors 510, the following operations are implemented: in a period or a time period, configure at least one control resource corresponding to the target type terminal set; send the PDCCH in the control resource set.
  • the service node proposed in this embodiment and the resource set configuration method or query method applied to the service node proposed in the above embodiment belong to the same inventive concept.
  • the embodiment has the same beneficial effects as executing the resource set configuration method or the query method.
  • the embodiment of the present application also provides a terminal.
  • the foregoing detection method applied to a terminal may be executed by a detection apparatus, and the resource set configuration apparatus may be implemented in software and/or hardware, and integrated in the terminal.
  • FIG. 10 is a schematic diagram of a hardware structure of a terminal according to an embodiment.
  • a terminal provided in this embodiment includes: a processor 610 and a storage device 620 .
  • the number of processors in the terminal may be one or more.
  • one processor 610 is used as an example.
  • the processor 610 and the storage device 620 in the device may be connected by a bus or in other ways. Connect as an example.
  • the one or more programs are executed by the one or more processors 610, so that the one or more processors implement the detection method applied to a terminal described in any of the foregoing embodiments.
  • the storage device 620 in the terminal may be used to store one or more programs, and the programs may be software programs, computer-executable programs, and modules, such as those applied to the terminal in the embodiments of the present invention.
  • Program instructions/modules corresponding to the detection method include: a detection module 21 and a receiving module 22 ).
  • the processor 610 executes various functional applications and data processing of the terminal by running the software programs, instructions and modules stored in the storage device 620 , that is, implements the detection method applied to the terminal in the above method embodiments.
  • the storage device 620 mainly includes a storage program area and a storage data area, wherein the storage program area can store an operating system, an application program required by at least one function; the storage data area can store data created according to the use of the device, etc. (as described above) example control resource set, target type terminal, etc.).
  • storage device 620 may include high-speed random access memory, and may also include non-volatile memory, such as at least one magnetic disk storage device, flash memory device, or other non-volatile solid-state storage device.
  • the storage device 620 may further include memory located remotely from the processor 610, and these remote memories may be connected to the terminal through a network. Examples of such networks include, but are not limited to, the Internet, an intranet, a local area network, a mobile communication network, and combinations thereof.
  • the terminal proposed in this embodiment belongs to the same inventive concept as the detection method or notification method applied to the terminal proposed in the above-mentioned embodiment.
  • the detection method or notification method applied to the terminal belongs to the same inventive concept as the detection method or notification method applied to the terminal proposed in the above-mentioned embodiment.
  • Embodiments of the present application also provide a storage medium containing computer-executable instructions, where the computer-executable instructions are used to execute a resource set configuration method or detection method when executed by a computer processor.
  • the resource set configuration method includes: configuring at least one control resource set corresponding to a target type terminal within a period or a time period; and sending a PDCCH in the control resource set.
  • the detection method includes: within a period or a time period, acquiring at least one control resource set corresponding to a target type terminal; and detecting the PDCCH in the control resource set.
  • the present application can be implemented by means of software and general hardware, and can also be implemented by hardware. Based on this understanding, the technical solution of the present application can be embodied in the form of a software product, and the computer software product can be stored in a computer-readable storage medium, such as a floppy disk of a computer, a read-only memory (Read-Only Memory, ROM), Random access memory (Random Access Memory, RAM), flash memory (FLASH), hard disk or optical disk, etc., including multiple instructions to enable a computer device (which may be a personal computer, server, or network device, etc.) to execute any methods described in the examples.
  • a computer-readable storage medium such as a floppy disk of a computer, a read-only memory (Read-Only Memory, ROM), Random access memory (Random Access Memory, RAM), flash memory (FLASH), hard disk or optical disk, etc.
  • the block diagrams of any logic flow in the figures of this application may represent program steps, or may represent interconnected logic circuits, modules and functions, or may represent a combination of program steps and logic circuits, modules and functions.
  • Computer programs can be stored on memory.
  • the memory may be of any type suitable for the local technical environment and may be implemented using any suitable data storage technology such as, but not limited to, read only memory (ROM), random access memory (RAM), optical memory devices and systems (Digital Versatile Discs). DVD or CD disc) etc.
  • Computer-readable media may include non-transitory storage media.
  • the data processor may be of any type suitable for the local technical environment, such as, but not limited to, a general purpose computer, special purpose computer, microprocessor, digital signal processor (DSP), application specific integrated circuit (ASIC), programmable logic device (FGPA) and processors based on multi-core processor architectures.
  • DSP digital signal processor
  • ASIC application specific integrated circuit
  • FGPA programmable logic device
  • the embodiment of the present application provides a resource collection configuration method, including:
  • Item 1 in a period or a time period, configure at least one control resource set corresponding to the target type terminal;
  • the physical downlink control channel PDCCH is sent in the control resource set.
  • control resource set includes at least one of the following:
  • the first control resource set corresponding to at least one first synchronization signal/physical broadcast channel block SSB in the period or time period;
  • At least one second set of control resources At least one second set of control resources.
  • the second SSB is associated with the second control resource set.
  • the index of the second SSB ranges from 0 to N2-1, where N2 is the The number of the second SSB.
  • the time domain position of the second control resource set is a set offset value added on the basis of the time domain position of the first control resource set.
  • the number of repetitions of the physical downlink shared channel PDSCH is indicated by the first downlink control information DCI; or,
  • the number of repetitions of the PDSCH is indicated by the second DCI; or,
  • the number of repetitions of the PDSCH is the same as the number configured in the first control resource set in the period or time period; or,
  • the number of repetitions of the PDSCH is the same as the number configured in the second control resource set within the period or time period; or,
  • the number of repetitions of the PDSCH is the same as the sum of the number of the first control resource set configuration and the second control resource set configuration in the period or time period;
  • the number of repetitions of the PDSCH is the same as the number of repetitions of the second SSB in the period or time period; or,
  • the number of repetitions of the PDSCH is the same as the sum of the number of repetitions of the first SSB and the second SSB in the period or time period.
  • Item 8 According to the method of item 2, in the case where a corresponding second SSB is configured for the target type terminal, the MIB information of the first main information block in the first SSB and the MIB information in the second SSB The second MIB information is consistent.
  • the first SSB and the second SSB satisfy at least one of the following:
  • the sequence used by the synchronization signal in the first SSB is different from the sequence used by the synchronization signal in the second SSB;
  • the relative position between the primary synchronization signal and the secondary synchronization signal in the first SSB is different from the relative position between the primary synchronization signal and the secondary synchronization signal in the second SSB;
  • the physical broadcast channel in the second SSB is scrambled using the dedicated scrambling code for the target type terminal.
  • the index of the starting time slot of the PDSCH is: the index of the last time slot in the time slot where the second control resource set is located plus N, where N is an integer greater than or equal to 0;
  • the value of N is configured by the service node or is a default value.
  • the starting time slot of the second control resource set is determined according to a predetermined rule or indicated by the first SSB.
  • the time slot in which the second control resource set is located includes time slots in the period or time period, but does not include at least one of the following time slots:
  • the time slot where the first control resource set is located is located.
  • the time slot where the second control resource set is located includes a time slot in the period or time period, and the index of the starting time slot is where the first control resource set is located Add G1 to the index of the last slot in the slot, and G1 is greater than or equal to 0.
  • the indices in the set of time slots where the second control resource set is located are Offset+i*K(i) to Offset+(i+1)*K(i)-
  • the time slot of 1 is the time slot where the second control resource set corresponding to the first SSB with index i is located;
  • the indices of the time slots are numbered from 0, and K(i) is the number of time slots occupied by the second control resource set corresponding to the first SSB with index i. quantity;
  • Offset is an offset, and the value of the offset is configured by the service node or is a default value.
  • the second control resource set is not configured for the first SSB with the index i.
  • the number of time slots occupied by the second control resource set corresponding to the first SSB whose index is i in the second control resource set is the number of time slots occupied by the second control resource set corresponding to the first SSB with the same index.
  • the number of time slots occupied by the control resource set is the same.
  • the set value is determined by at least one of the following:
  • the subcarrier spacing of the second control resource set is the same as the subcarrier spacing of the first control resource set.
  • the frequency domain position of the second control resource set is adjacent to the frequency domain position of the first control resource set.
  • the size of the frequency domain resources occupied by the second control resource set is: a frequency domain configurable by the second control resource set that satisfies a value less than or equal to the interval The maximum value of the resource.
  • the symbol corresponding to the second control resource set is located in the time slot where the first control resource set is located.
  • the symbol corresponding to the second control resource set is indicated by the second control resource set configuration information in the first SSB;
  • the second control resource set configuration information is further used to indicate at least one of the following:
  • the start symbol index of the second control resource set is one of the following:
  • the symbol index occupied by the first control resource set is incremented by 1;
  • the symbol index occupied by the first control resource set is incremented by 2.
  • the start symbol index of the second control resource set is:
  • n is an integer greater than or equal to 1;
  • the value of the offset value is configured by the service node or is a default value.
  • the number of symbols occupied by the second control resource set is greater than or equal to 2.
  • Item 29 The method according to any one of Item 2, wherein the second control resource set satisfies at least one of the following:
  • the number of symbols occupied by the second control resource set is the same as the number of symbols occupied by the first control resource set;
  • the frequency domain resource positions occupied by the second control resource set are the same as the frequency domain resource positions occupied by the first control resource set.
  • the PDSCH is used to carry the remaining minimum system information RMSI.
  • the configuration scheme of the second control resource set includes at least one of the following:
  • the second control resource set is configured by the first SSB
  • the symbol corresponding to the second control resource set is located in the time slot where the first control resource set is located.
  • the configuration scheme of the second control resource set includes the first scheme
  • the first solution includes: in the period or time period, the target type terminal is configured with a corresponding second SSB, and the second SSB has an association relationship with the second control resource set;
  • any of the items 1-10 or the item 31 may be adopted.
  • the configuration scheme of the second control resource set includes a second scheme
  • the second solution includes: in the period or time period, the second control resource set is configured by the first SSB;
  • any of the items 1, 2, and 11-22 can be adopted.
  • the configuration scheme of the second control resource set includes a third scheme
  • the third solution includes: the symbol corresponding to the second control resource set is located in the time slot where the first control resource set is located;
  • any of the items 1, 2, and 23-29 may be adopted.
  • Item 35 a detection method, comprising:
  • the PDCCH is detected in the set of control resources.
  • control resource set includes at least one of the following:
  • At least one second set of control resources At least one second set of control resources.
  • the target type terminal is configured with a corresponding second SSB;
  • the second SSB is associated with the second control resource set.
  • the index of the second SSB is 0 to N2-1, where N2 is the the number of the second SSB.
  • the time domain position of the second control resource set is a set offset value added based on the time domain position of the first control resource set corresponding to the first SSB.
  • the number of repetitions of the PDSCH is indicated by the first DCI; or,
  • the number of repetitions of the PDSCH is indicated by the second DCI; or,
  • the number of repetitions of the PDSCH is the same as the number configured in the first control resource set in the period or time period; or,
  • the number of repetitions of the PDSCH is the same as the number configured in the second control resource set within the period or time period; or,
  • the number of repetitions of the PDSCH is the same as the sum of the number of first control resource set configurations and the number of second control resource set configurations in the period or time period; or,
  • the number of repetitions of the PDSCH is the same as the number of repetitions of the second SSB in the period or time period; or,
  • the number of repetitions of the PDSCH is the same as the sum of the number of repetitions of the first SSB and the second SSB in the period or time period.
  • the control resource set corresponding to the target type terminal includes a first control resource set corresponding to at least one first SSB and at least one second control resource within the period or time period In the case of a collection, at least one of the following is satisfied:
  • the information carried in the first DCI for scheduling non-target type terminals and the second DCI for scheduling the target type terminals are the same;
  • the first MIB information in the first SSB is consistent with the second MIB information in the second SSB.
  • the control resource set corresponding to the target type terminal includes a first control resource set corresponding to at least one first SSB and at least one second control resource set within the period or time period , the PDCCH detection opportunity satisfies at least one of the following:
  • the PDCCH detection opportunity is located in the first control resource set corresponding to the first SSB;
  • the PDCCH detection opportunity is located in the PDCCH in the second control resource set;
  • the PDCCH detection opportunity is located in a set consisting of a first control resource set and a second control resource set corresponding to the first SSB.
  • the PDCCH detection opportunity is located in the PDCCH in the second control resource set;
  • the j+1 th PDCCH detection opportunity is located in the P1 second control resource sets with indices from j*P1/J to (j+1)*P1/ The second control resource set of J-1;
  • J is at least one of 2, 4, 6, 8, 16 and 24; j is greater than or equal to 0 and j is less than or equal to J-1.
  • the PDCCH detection opportunity is located in a set consisting of a first control resource set and a second control resource set corresponding to the first SSB;
  • the (j+1)th PDCCH detection opportunity is located in the P2 control resource
  • the set of control resources whose index is j*P2/J to (j+1)*P2/J-1 in the set;
  • J is at least one of 2, 4, 6, 8, 16, and 24; j is greater than or equal to 0, and j is less than or equal to J-1.
  • the control resource set corresponding to the target type terminal includes at least one second control resource set in the period or time period
  • the first SSB and the The second SSB satisfies at least one of the following:
  • the sequence used by the synchronization signal in the first SSB is different from the sequence used by the synchronization signal in the second SSB;
  • the relative position between the primary synchronization signal and the secondary synchronization signal in the first SSB is different from the relative position between the primary synchronization signal and the secondary synchronization signal in the second SSB;
  • the physical broadcast channel in the second SSB is scrambled using the dedicated scrambling code for the target type terminal.
  • the starting time slot index of the PDSCH is: the index of the last time slot in the time slot where the second control resource set is located plus N, where N is an integer greater than or equal to 0;
  • the value of N is configured by the service node or is a default value.
  • the second control resource set satisfies at least one of the following:
  • the second control resource set is configured by the first SSB
  • the starting time slot of the second control resource set is determined according to a predetermined rule or indicated by the first SSB.
  • the time slot in which the second control resource set is located includes time slots in the period or time period, but does not include at least one of the following time slots:
  • the time slot where the first control resource set is located is located.
  • the time slot where the second control resource set is located includes a time slot in the period or time period, and the index of the starting time slot is where the first control resource set is located Add G1 to the index of the last slot in the slot, and G1 is greater than or equal to 0.
  • the indices in the set of time slots where the second control resource set is located are Offset+i*K(i) to Offset+(i+1)*K(i)
  • the time slot of -1 is the time slot where the second control resource set corresponding to the first SSB with index i is located;
  • the indices of the time slots are numbered from 0, and K(i) is the number of time slots occupied by the second control resource set corresponding to the first SSB with index i. quantity;
  • Offset is an offset, and the value of the offset is configured by the service node or is a default value.
  • the index of the time slot configured for the second control resource set corresponding to the first SSB with index i exceeds the time slot in the set of the time slot where the second control resource set is located In the case of the index range of , the second control resource set is not configured for the first SSB whose index is i.
  • the number of time slots occupied by the second control resource set corresponding to the first SSB with index i in the second control resource set is the number of time slots occupied by the second control resource set corresponding to the first SSB with the same index.
  • the number of time slots occupied by the control resource set is the same.
  • Item 53 the method of item 36, the first SSB indicating at least one of the following:
  • the second The frequency domain position of the control resource set is located between the frequency domain resource position of the first SSB and the frequency domain position of the first control resource set.
  • the set value is determined by at least one of the following:
  • Item 56 The method of item 54, wherein the subcarrier spacing of the second set of control resources is the same as the subcarrier spacing of the first set of control resources.
  • the frequency domain position of the second control resource set is adjacent to the frequency domain position of the first control resource set.
  • the size of the frequency domain resources occupied by the second control resource set is: a frequency domain configurable by the second control resource set that satisfies a value less than or equal to the interval The maximum value of the resource.
  • the symbol corresponding to the second control resource set is located in the time slot where the first control resource set is located.
  • the symbol corresponding to the second control resource set is indicated by the second control resource set configuration information in the first SSB;
  • the second control resource set configuration information is further used to indicate at least one of the following:
  • the start symbol index of the second control resource set is one of the following:
  • the symbol index occupied by the first control resource set is incremented by 1;
  • the symbol index occupied by the first control resource set is incremented by 2.
  • the index of the starting symbol of the second control resource set is: the number of symbols in the time slot minus the product of n and the number of symbols occupied by the second control resource set, and then minus A bias value, where n is an integer greater than or equal to 1, and the value of the bias value is configured by the service node or is the default value.
  • the number of symbols occupied by the second control resource set is greater than or equal to 2.
  • the second control resource set satisfies at least one of the following:
  • the number of symbols occupied by the second control resource set is the same as the number of symbols occupied by the first control resource set;
  • the frequency domain resource positions occupied by the second control resource set are the same as the frequency domain resource positions occupied by the first control resource set.
  • the PDSCH is used to carry the remaining minimum system information RMSI.
  • Item 67 the method according to item 36, wherein the first SSB is used to indicate a configuration scheme of the second control resource set;
  • the configuration scheme of the second control resource set includes at least one of the following:
  • the second control resource set is configured by the first SSB
  • the symbol corresponding to the second control resource set is located in the time slot where the first control resource set is located.
  • the configuration scheme of the second control resource set includes the first scheme
  • the first solution includes: in the period or time period, the target type terminal is configured with a corresponding second SSB, and the second SSB has an association relationship with the second control resource set;
  • any of the items 35-46 or the item 67 may be used.
  • the configuration scheme of the second control resource set includes a second scheme
  • the second solution includes: in the period or time period, the second control resource set is configured by the first SSB;
  • any of the items 35, 36, 47-58, and 67 may be adopted.
  • the configuration scheme of the second control resource set includes a third scheme
  • the third solution includes: the symbol corresponding to the second control resource set is located in the time slot where the first control resource set is located;
  • any of the items 35, 36, and 59-67 may be adopted.
  • Item 71 a service node, comprising:
  • processors one or more processors
  • storage means arranged to store one or more programs
  • the one or more processors When the one or more programs are executed by the one or more processors, the one or more processors implement the resource set configuration method as described in any one of items 1-34.
  • a terminal comprising:
  • processors one or more processors
  • storage means arranged to store one or more programs
  • the one or more programs when executed by the one or more processors, cause the one or more processors to implement the detection method of any of items 35-70.
  • Item 73 a computer-readable storage medium having stored thereon a computer program that, when executed by a processor, implements the resource collection configuration method as described in any one of items 1-34 or as described in any of items 35-70 One of the detection methods described.

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Abstract

本申请提供一种资源集合配置、检测方法、服务节点、终端及存储介质。该方法在一个周期或一个时间段内,配置目标类型终端对应的至少一个控制资源集合;在所述控制资源集合中发送物理下行控制信道。

Description

资源集合配置、检测方法、服务节点、终端及存储介质 技术领域
本申请涉及无线通信网络,例如涉及一种资源集合配置、检测方法、服务节点、终端及存储介质。
背景技术
新空口(New Radio,NR)系统具有较高的配置灵活性和更大的带宽范围,对终端(User Equipment,UE)的能力也提出了更高的要求。然而,在NR系统所支持的各种场景中,并非所有场景都要求如此高的UE能力。例如,对于智能可穿戴设备(Wearable)、视频监控(Video Surveillance)、工业无线传感器(Industrial Wireless Sensors)等场景,可以简化UE的能力,例如使UE具备较小的带宽能力、较少的天线数量等,从而降低UE的生产成本和复杂度,也降低UE工作过程中的能耗。由于控制资源集合(Control-Resource Set,CORESET)的配置模式是固定的,而这类简化能力的终端(Reduced Capability User Equipment,RedCap UE)的接收性能弱于NR系统中的非简化能力的UE,基于与非简化能力的UE同样的配置,无法保证RedCap UE通过解码控制资源集合正确地检测出下行信道的控制信息,进而影响初始接入过程。
发明内容
以下是对本文详细描述的主题的概述。本概述并非是为了限制权利要求的保护范围。
本申请提供一种资源集合配置、检测方法、服务节点、终端及存储介质,以提高控制资源集合配置的灵活性和可靠性。
本申请实施例提供一种资源集合配置方法,包括:
在一个周期或一个时间段内,配置目标类型终端对应的控制资源集合;
在所述控制资源集合中发送物理下行控制信道(Physical Downlink Control Channel,PDCCH)。
本申请实施例还提供了一种检测方法,包括:
在一个周期或一个时间段内,获知目标类型终端对应的至少一个控制资源集合;
在所述控制资源集合中检测PDCCH。
本申请实施例还提供了一种服务节点,包括:
一个或多个处理器;
存储装置,设置为存储一个或多个程序;
当所述一个或多个程序被所述一个或多个处理器执行,使得所述一个或多个处理器实现上述的资源集合配置方法。
本申请实施例还提供了一种终端,包括:
一个或多个处理器;
存储装置,设置为存储一个或多个程序;
当所述一个或多个程序被所述一个或多个处理器执行,使得所述一个或多个处理器实现上述的检测方法。
本申请实施例还提供了一种计算机可读存储介质,计算机可读存储介质上存储有计算机程序,该程序被处理器执行时实现上述的资源集合配置方法或检测方法。
在阅读并理解了附图和详细描述后,可以明白其他方面。
附图说明
图1为一实施例提供的一种资源集合配置方法的流程图;
图2为一实施例提供的在配置第二SSB的情况下确定目标类型终端对应的控制资源集合的示意图;
图3为另一实施例提供的在配置第二SSB的情况下确定目标类型终端对应的控制资源集合的示意图;
图4为一实施例提供的配置第二控制资源集合的示意图;
图5为一实施例提供的配置第二控制资源集合的符号的示意图;
图6为一实施例提供的一种检测方法的流程图;
图7为一实施例提供的一种资源集合配置装置的结构示意图;
图8为一实施例提供的一种检测装置的结构示意图;
图9为一实施例提供的一种服务节点的硬件结构示意图;
图10为一实施例提供的一种终端的硬件结构示意图。
具体实施方式
下面结合附图和实施例对本申请进行说明。可以理解的是,此处所描述的具体实施例仅仅用于解释本申请,而非对本申请的限定。需要说明的是,在不冲突的情况下,本申请中的实施例及实施例中的特征可以相互任意组合。另外还需要说明的是,为了便于描述,附图中仅示出了与本申请相关的部分而非全部结构。
在NR系统的初始接入过程中,终端首先接收同步信号/物理广播信道块(Synchronization Signal Block/Physical Broadcast Channel,SSB或SS/PBCH Block),SSB中包括主同步信号(Primary Synchronization Signal,PSS)、辅同步信号(Secondary Synchronization Signal,SSS)以及物理广播信道(Physical Broadcast Channel,PBCH),其中,在PBCH内承载的主信息块(Master Information Block,MIB)中包含控制资源集合0(Control Resource Set zero,CORESET0)的配置信息。CORESET0中包括至少一个PDCCH发送的资源,PDCCH用来承载系统信息块1(System Information Block 1,SIB1)的调度信息。终端接收SSB后,通过解码MIB进而获取CORESET0的配置信息,然后通过解码CORESET0中的PDCCH进而获知SIB1的调度信息,最后可以解码相应的SIB1信息,确定物理下行共享信道(Physical Downlink Shared Channel,PDSCH)。针对RedCap UE,由于其接收性能上会弱于NR UE,在RedCap UE解码CORESET0中的PDCCH过程中,可能PDCCH无法正确检测出来,进而导致RedCap UE无法完成初始接入过程。本申请实施例提供的方法,适用于对控制资源集合中的PDCCH进行检测的场景。
协议中规定控制资源集合和SSB有三种复用图样(Pattern),其中,对于图样1(Pattern1),CORESET0的周期默认20ms,不会因为SSB的周期改变而改变。不同SSB对应的CORESET0资源在频域上可以采用频分复用(Frequency Division Multiplexing,FDM)的方式,每个SSB对应的CORESET0在频域上占用哪些物理资源块(Physical Resource Block,PRB)可以由服务节点配置。在一些场景中,每个SSB对应的CORESET0占用2个时隙(Slot),并且不和其他SSB对应的CORESET0共用相同的时隙。
在本申请实施例中,提供一种资源集合配置方法,针对目标类型终端配置对应的控制资源集合,提高控制资源集合配置的灵活性和可靠性,使目标类型终端能够有效检测对应的控制资源集合并准确得到下行信道的控制信息,进而完成初始接入过程。
图1为一实施例提供的一种资源集合配置方法的流程图。该方法可应用于服务节点。如图1所示,本实施例提供的方法包括步骤110和步骤120。
在步骤110中,在一个周期或一个时间段内,配置目标类型终端对应的至少一个控制资 源集合。
在步骤120中,在所述控制资源集合中发送物理下行控制信道PDCCH。
本实施例中,目标类型终端指RedCap UE,目标类型终端的能力被简化,其接收性能弱于NR系统中的非目标类型终端(可以理解为NR UE,或Legacy UE),基于与非目标类型终端同样的配置无法保证目标类型终端能够正确获知控制资源集合(CORESET)并获取下行信道的控制信息。本实施例中,服务节点考虑目标类型终端的能力,针对目标类型终端配置了对应的控制资源集合,并通过配置的控制资源集合发送PDCCH,目标类型终端可以通过检测对应的控制资源集合并解码得到准确的PDCCH,其中,目标类型终端对应的控制资源集合可以是独立为目标类型终端配置的,也可以是和非目标类型终端共享的。
在一实施例中,控制资源集合包括以下至少之一:所述周期或时间段内至少一个第一SSB所对应的第一控制资源集合;至少一个第二控制资源集合。
本实施例中,目标类型终端控制资源集合可以包括周期或时间段内至少一个第一SSB对应的第一控制资源集合,其中,第一SSB是指NR系统中非目标类型终端对应的SSB,一方面,第一SSB可用于为非目标类型终端指示对应的第一控制资源集合,第一控制资源集合中包含非目标类型终端对应的PDCCH,另一方面,周期或时间段内至少一个第一SSB所指示的第一控制资源集合也可供目标类型终端使用,即,可以被目标类型终端确定为其对应的控制资源集合。
在一个周期或者一个时间段内,第一SSB的数量至少为1,例如,第一SSB的数量为4,则第一SSB的索引i分别为0或1或2或3,全部第一SSB或者部分第一SSB(例如索引为0和索引为1的第一SSB)对应的第一控制资源集合可以被配置为目标类型终端对应的控制资源集合,目标类型终端通过检测这类对应的控制资源集合即可准确检测PDCCH。
本实施例中,目标类型终端对应的控制资源集合也可以包括至少一个第二控制资源集合,第二控制资源集合是指针对目标类型终端独立配置的控制资源集合,非目标类型终端无法识别第二控制资源集合。第二控制资源集合为在所述周期或时间段内,除第一SSB和第一控制资源集合以外的资源。
在一实施例中,还包括:
步骤101:在所述周期或时间段内,配置目标类型终端对应的第二SSB,第二SSB与第二控制资源集合具有关联关系。
本实施例中,为目标类型终端独立配置第二SSB(Additional SSB),第二SSB用于为目标类型终端指示对应的第二控制资源集合,非目标类型终端无法识别第二SSB。
在为目标类型终端独立配置第二SSB的情况下,目标类型终端对应的控制资源集合,可以根据所述周期或时间段内至少一个第一SSB对应的第一控制资源集合确定,或者根据第二SSB对应的第二控制资源集合确定,或者根据所述周期或时间段内至少一个第一SSB对应的第一控制资源集合以及独立配置的第二SSB对应的第二控制资源集合联合确定,根据目标类型终端对应的控制资源集合可进一步传输PDCCH。
图2为一实施例提供的在配置第二SSB的情况下确定目标类型终端对应的控制资源集合的示意图。第一SSB的实际发送周期可以是5ms、10ms、20ms、40ms、80ms或160ms,但在初始接入过程中终端并不确定第一SSB的发送周期。针对图样1,如图2所示,第一SSB默认的周期为20ms,第一SSB包括SSB0~SSB3,根据SSB0可以确定第一控制资源集合(与SSB0采用相同的横线标示),根据第一控制资源集合可以确定第一PDSCH(如黑色填充区域所示)。第二SSB包括SSB a~SSB d,第二SSB的周期可以配置得相对较小,例如为10ms,从而在20ms内存在2个目标类型终端使用的第二SSB,且其中一个的第二SSB资源和第一SSB相同,另一个第二SSB则是专门为目标类型终端配置的。对于非目标类型终端,通过检测第一SSB(SSB0)或者第二控制资源集合,都可以准确确定第一控制资源集合的位置,进 而通过解码第一控制资源集合获知非目标类型终端对应的剩余最小系统信息(Remaining Minimum System Information,RMSI),也就是SIB1的资源。而对于目标类型终端,可通过检测第一SSB或第二SSB获知目标类型终端对应的控制资源集合的位置,并通过解码得到第二PDSCH(如椭圆内的加粗区域所示);也可以根据合并检测到的第一控制资源集合和第二控制资源集合(如四个黑色加粗箭头所示)实现。
在一实施例中,第二SSB的周期小于第一SSB的周期,以保证在每个第一SSB的周期内,目标类型终端一定可以检测到至少一个第二SSB,从而根据第二SSB确定第二控制资源集合,进而准确检测PDCCH。
在一实施例中,第二SSB的数量小于或等于第一SSB的数量。
本实施例中,第二SSB的数量可以等于第一SSB的数量,即针对全部SSB,都为目标类型终端配置了相应的第二SSB;第二SSB的数量也可以小于第一SSB的数量,例如在时域资源不充足的情况下,可以针对部分SSB为目标类型终端配置相应的第二SSB。
在一实施例中,在第二SSB的数量小于第一SSB的数量的情况下,所述第二SSB的索引为0至N2-1,其中N2为第二SSB的数量。
例如,第一SSB的数量为N1,第二SSB的数量为N2,N2<N1,这种情况下,第二SSB的索引采用0至N2-1。
在一实施例中,第二控制资源集合的时域位置为在第一控制资源集合的时域位置的基础上增加设定偏移值。
本实施例针对图样1,即第一控制资源集合的周期默认为20ms的场景,第二控制资源集合的时域位置为第一控制资源集合的时域位置增加设定偏移值,设定偏移值为5ms或者10ms。
需要说明的是,如果设定偏移值较小,导致上一个周期内的第一SSB对应的第一控制资源集合与当前周期内第一SSB对应的第一控制资源集合冲突,则目标类型终端需要从中选择一个第一控制资源集合,作为确定对应的控制资源集合的依据,否则,会导致目标类型终端在做合并检测的过程中,由于混入冲突的第一SSB的第一控制资源集合导致检测性能下降,无法准确获得PDCCH。在一些实施例中,服务节点在配置设定偏移值时应大于一定的数值,从而避免不同周期内的第一控制资源集合的冲突。
在一实施例中,对于目标类型终端,PDSCH的重复次数通过第一下行控制信息(Downlink Control Information,DCI)指示;或者,PDSCH的重复次数通过第二DCI指示;或者,PDSCH的重复次数与所述周期或者时间段内的第一控制资源集合配置的数量相同;或者,PDSCH的重复次数与所述周期或者时间段内的第二控制资源集合配置的数量相同;或者,PDSCH的重复次数与所述周期或者时间段内的第一控制资源集合配置的数量和第二控制资源集合配置的数量之和相同;或者,在为目标类型终端配置对应的第二SSB的情况下,PDSCH的重复次数与所述周期或者时间段内第二SSB的重复次数相同;或者,在为目标类型终端配置对应的第二SSB的情况下,PDSCH的重复次数与所述周期或者时间段内第一SSB以及第二SSB的重复次数之和相同。
本实施例中,第一DCI是为非目标类型终端配置的,可以使用第一DCI中的保留(Reserved)比特指示目标类型终端的PDSCH的重复次数;第二DCI是为目标类型终端配置的,可用于指示目标类型终端的PDSCH的重复次数,非目标类型终端无法解读;目标类型终端的PDSCH的重复次数也可以与周期或者时间段内的第一控制资源集合配置的数量相同;也可以与周期或者时间段内的第一控制资源集合配置的数量和第二控制资源集合配置的数量之和相同;目标类型终端的PDSCH的重复次数也可以与周期或者时间段内的第二控制资源集合配置的数量相同;如果为目标类型终端独立配置了第二SSB,目标类型终端的PDSCH的重复次数也可以与周期或者时间段内第二SSB的重复次数相同,其中,第二SSB的重复次数是指相同索引的第二SSB的重复次数;或者,与周期或者时间段内第一SSB以及 第二SSB的重复次数之和相同,其中,第一SSB的重复次数指相同索引的第一SSB的重复次数,第二SSB的重复次数是指相同索引的第二SSB的重复次数。
在一实施例中,调度非目标类型终端的第一DCI和调度目标类型终端的第二DCI中携带的信息相同。
本实施例中,第一控制资源集合的PDCCH承载的第一DCI与第二控制资源集合的PDCCH承载的第二DCI携带的信息相同,这种情况下,目标类型终端可合并检测第一控制资源集合的PDCCH以及第二控制资源集合的PDCCH,以得到相应的PDSCH。
在一实施例中,目标类型终端检测对应的控制资源集合使用的重复次数,也就是合并检测的次数,可以为默认值,例如为20ms内的控制资源集合的数量。
在一实施例中,目标类型终端的PDSCH起始时隙与在合并检测第一控制资源集合和第二控制资源集合的情况下,最后一个控制资源集合所在的时隙相同。
在一实施例中,在为目标类型终端配置对应的第二SSB的情况下,第一SSB中的第一主信息块(Master Information Block,MIB)信息和第二SSB中的第二MIB信息一致。
本实施例中,第一控制资源集合和第二控制资源集合的资源配置信息保持一致,即第一MIB和第二MIB携带的信息一致,从而在非目标类型终端直接将第二SSB解读为第一SSB的情况下,在解码第二SSB之后,能够准确确定第一控制资源集合的位置。
图3为另一实施例提供的在配置第二SSB的情况下确定目标类型终端对应的控制资源集合的示意图。如图3所示,对于非目标类型终端,只能通过检测第一SSB(SSB0)确定第一控制资源集合的位置,进而通过解码第一控制资源集合获知非目标类型终端对应的RMSI(也就是SIB1)的资源;而对于目标类型终端,只能通过检测第一SSB或第二SSB获知目标类型终端对应的控制资源集合的位置,并通过解码对应的控制资源集合得到第二PDSCH(如椭圆内的加粗区域所示)。
在一实施例中,在为目标类型终端配置对应的第二SSB的情况下,第一SSB和第二SSB满足以下至少之一:第一SSB中的同步信号使用的序列与第二SSB中的同步信号使用的序列不同;第一SSB中的主同步信号与辅同步信号之间的相对位置与所二SSB中的主同步信号与辅同步信号之间的相对位置不同;第二SSB中的物理广播信道使用目标类型终端的专用扰码进行加扰操作。
本实施例中,非目标类型终端根据第一SSB检测第一控制资源集合中的PDCCH,进而确定非目标类型终端对应的第一RMSI;目标类型终端根据检测到的SSB是第一SSB还是第二SSB,相应地确定应继续检测第一控制资源集合还是第二控制资源集合。为了避免非目标类型终端对SSB的误检(将第二SSB解读为第一SSB),可以采用以下集中方式区分第一SSB和第二SSB:1)第一SSB中的同步信号使用的序列与第二SSB中的同步信号使用的序列不同;2)第一SSB中的主同步信号与辅同步信号之间的相对位置与所二SSB中的主同步信号与辅同步信号之间的相对位置不同;3)对于第二SSB中的物理广播信道使用目标类型终端的专用扰码进行加扰操作。提高控制资源集合配置的灵活性以及不同类型终端检测的可靠性。
在一实施例中,对于目标类型终端,PDSCH的起始时隙索引为:第二控制资源集合所在时隙中最后一个时隙的索引加N,其中,N为大于或等于0的整数;其中,N的取值由服务节点配置或者为默认值。
本实施例中,第二控制资源集合所在的最后一个时隙是指:在目标类型终端成功解码一个索引的SSB(可以是第一SSB或者是第二SSB)后,该索引的SSB对应的至少一个控制资源集合中的最后一个时隙的位置。
在一实施例中,第二控制资源集合通过第一SSB配置;第二控制资源集合的起始时隙根据预定规则确定,或者由第一SSB指示。
图4为一实施例提供的配置第二控制资源集合的示意图。如图4所示,第一SSB包括SSB 0~SSB7,没有为目标类型终端独立配置第二SSB。第二控制资源集合的起始时隙根据预定规则确定,或者由所述第一SSB指示。例如,第一控制资源集合对应于2个时隙,在这2个时隙之前或者之后的时隙上配置第二控制资源集合,这种情况等效于增加了目标类型终端对应的控制资源集合的重复次数。
在一实施例中,第二控制资源集合所在的时隙包括所述周期或时间段内的时隙,但不包括以下时隙中至少之一:第一SSB占用的时隙;第一SSB占用的时隙,且该时隙中存在第一控制资源集合;第一控制资源集合所在的时隙。
本实施例中,根据以下原则确定第二控制资源集合所在的时隙:在一个周期或时间段内,第二控制资源集合所在的时隙不能为第一SSB占用的时隙,或者不能为第一SSB占用且存在第一控制资源集合的时隙,或者不能为第一控制资源集合所在的时隙,或者不能为上述三种时隙中的多种时隙。
在一实施例中,第二控制资源集合所在的时隙不能为第一SSB占用且存在第一控制资源集合的时隙,且不能为第一控制资源集合所在的时隙,从而区分第一控制资源集合和第二控制资源集合。
在一实施例中,第二控制资源集合所在的时隙包括周期或时间段内的时隙,且起始时隙索引为第一控制资源集合所在的时隙中最后的时隙的索引加G1个时隙,G1大于或等于0。
本实施例中,根据以下原则确定第二控制资源集合所在的时隙:在一个周期或时间段内,第二控制资源集合所在的时隙的其实时隙为第一控制资源集合所在的时隙中最后的时隙+G1个时隙,其中,第一控制资源集合所在的时隙是指全部第一SSB对应的全部第一控制资源集合所在的实习。
在一实施例中,第二控制资源集合所在的时隙的集合中索引为Offset+i*K(i)至Offset+(i+1)*K(i)-1的时隙,为索引为i的第一SSB对应的第二控制资源集合所在的时隙;其中,所述第二控制资源集合所在的时隙的集合中,时隙的索引从0开始编号,K(i)为索引为i的第一SSB对应的第二控制资源集合占用的时隙的数量;Offset为一个偏置量,所述偏置量的取值由服务节点配置或者为默认值。
例如,在第二控制资源集合所在的时隙的集合中,索引为0的第一SSB(即SSB0)对应的第二控制资源集合所在的时隙为:时隙Offset至时隙Offset+K(1)1;索引为1的第一SSB(即SSB1)对应的第二控制资源集合所在的时隙为:时隙Offset+K(1)至时隙Offset+2*K(2)-1。
在一实施例中,还包括:
步骤102:为索引为i的第一SSB对应的第二控制资源集合配置所在的时隙;
在配置的时隙的索引超过所述第二控制资源集合所在的时隙的集合中时隙的索引范围的情况下,对于所述索引为i的第一SSB不配置第二控制资源集合。
本实施例中,如果索引为i的第一SSB对应的第二控制资源集合所在的时隙的时隙索引不属于第二控制资源集合所在的时隙范围,则对于该索引为i的第一SSB不配置第二控制资源集合,即,目标类型终端无法根据该索引为i的第一SSB确定第二控制资源集合,而只能根据对应的时隙索引属于时隙范围内的第一SSB确定第二控制资源集合。
在一实施例中,第二控制资源集合中索引为i的第一SSB对应的第二控制资源集合占用的时隙数量,与相同索引的第一SSB对应的第一控制资源集合占用的时隙数量相同。
例如,第二控制资源集合中,索引为0的第一SSB,即SSB0对应的第二控制资源集合占用的时隙数量,与SSB0对应的第一控制资源集合占用的时隙数量相同。
在一实施例中,还包括:步骤103:通过第一SSB指示以下至少之一:
该第一SSB是否配置第二控制资源集合;
该第一SSB对应的第二控制资源集合占用的时隙数量;
该第一SSB对应的第二控制资源集合占用的时隙位置。
在一实施例中,在第一SSB的频域资源位置与第一控制资源集合的频域位置之间的间隔(Gap)大于设定值的情况下,第二控制资源集合的频域位置位于第一SSB的频域资源位置与第一控制资源集合的频域位置之间。
本实施例中,如果第一SSB与第一控制资源集合的频域位置之间的间隔足够大,则可以在第一SSB与第一控制资源集合的频域位置之间配置第二控制资源集合,以降低独立配置的第二控制资源集合与第一SSB或第一控制资源集合之间的干扰。
在一实施例中,设定值通过以下至少之一确定:由服务节点配置;默认值;根据第二控制资源集合的子载波间隔确定。
例如,每个子载波间隔都对应一个或者多个Gap的取值。在每个子载波间隔对应于一个Gap取值的情况下,直接通过子载波间隔就能确定Gap;在每个子载波间隔对应于多个Gap取值的情况下,可以通过子载波间隔首先确定Gap的可选集合,进而通过具体信令指示Gap在该可选集合中的具体取值。
在一实施例中,第二控制资源集合的子载波间隔与第一控制资源集合的子载波间隔相同。
在一实施例中,第二控制资源集合的频域位置与第一控制资源集合的频域位置相邻。
本实施例中,相邻是指,第二控制资源集合的频域位置与第一控制资源集合的频域位置首尾相连,或者,第二控制资源集合与第一控制资源集合在频域资源上都存在保护带宽,第二控制资源集合与第一控制资源集合的保护带宽占用的频域资源首尾相连。
在一实施例中,第二控制资源集合占用的频域资源的大小为:满足小于或等于所述间隔的取值的所述第二控制资源集合可配置的频域资源的最大值。
本实施例中,第二控制资源集合占用的频域资源小于或等于第一SSB的频域资源位置与第一控制资源集合的频域位置之间的间隔,且其值配置得尽可能大,使目标类型终端更有效地检测到第二控制资源集合。
在一实施例中,第二控制资源集合的起始时隙(的索引)可以通过第一SSB指示,也可以根据默认规则确定,例如从第一控制资源集合资源结束之后第一个时隙。
每个第一SSB对应的第二控制资源集合位于的时隙可以通过第一SSB指示,也可以结合起始时隙索引进行联合指示。每个第一SSB可对应于默认数量的第二控制资源集合。
需要说明的是,并不是每个第一SSB都会存在对应的第二控制资源集合。例如,对于一个索引的第一SSB,其对应的第二控制资源集合所在的时隙与其对应的第一SSB对应的第一控制资源集合的距离超过阈值(距离较远)的情况下,该索引的第一SSB不对应于第二控制资源集合;又如,从第一SSB开始的20ms之内的时间窗内的第二控制资源集合有效,超出该时间窗的范围内不配置第二控制资源集合。
在一实施例中,第二控制资源集合对应的符号(Symbols)位于第一控制资源集合所在时隙内。
例如,在第一控制资源集合所在的2个时隙内配置一些符号,用于发送第二控制资源集合。
图5为一实施例提供的配置第二控制资源集合的符号的示意图。如图5所示,本实施例中,第二控制资源集合可配置在第一控制资源集合占用的符号以外的区域。图5中示出2个时隙的符号分布,时域资源分配(Time Domain Resource Allocation,TDRA)索引用于指示一种PDSCH的资源分配方案,可通过控制资源集合中的PDCCH中的DCI中指示;解调参考信号(De Modulation Reference Signal,DMRS)类型A位置(DMRS-TypeA-Position)指示的是TypeA的PDSCH中第一DMRS(Front DMRS)所在的符号位置,可通过SSB中的MIB中指示;S0,S1,…是符号的索引。结合TDRA索引和DMRS-TypeA-Position就可以确定Type A PDSCH的资源分配方案。
本实施例中,本实施例中,第一控制资源集合配置信息存在于第一SSB中,占用8个比特,可表示为PDCCH-configSIB1。通过重用PDCCH-configSIB1的8比特,可为目标类型终端在2个时隙内映射一个第二控制资源集合的区域。第一控制资源集合对应的时域区域与第二控制资源集合对应的时域区域不重叠;第一控制资源集合关联的PDSCH的时域区域与第二控制资源集合对应的时域区域不重叠,可以通过服务节点的调度实现。
本实施例中,利用第二MIB中的保留比特为目标类型终端独立配置第二控制资源集合,例如,配置第二控制资源集合默认占用的符号数量、PRB数量与第一控制资源集合一致,第二MIB中只要指示第二控制资源集合的起始符号即可。
在一实施例中,第二控制资源集合对应的符号通过第一SSB中的第二控制资源集合配置信息指示;
第一SSB中的第二控制资源集合配置信息还用于指示以下至少之一:第二控制资源集合是否配置;至少一个第二控制资源集合的起始符号索引信息;在第一控制资源集合所在的时隙数量大于1的情况下,指示第二控制资源集合所在的时隙。
本实施例中,第二控制资源集合对应的符号通过第一SSB中的第二控制资源集合配置信息(PDCCH-configSIB2)指示。第二控制资源集合配置信息还可用于指示是否为目标类型终端诶之了第二控制资源集合,指示至少一个第二控制资源集合的起始符号的索引,指示第二控制资源集合所在的时隙等。
在一实施例中,在第一控制资源集合占用的符号数量为1的情况下,第二控制资源集合的起始符号索引为以下之一:第一控制资源集合占用的符号索引加1;第一控制资源集合占用的符号索引加2。
在一实施例中,第二控制资源集合占用1个符号。
在一实施例中,第二控制资源集合的起始符号索引为:时隙中符号的数量减去n与第二控制资源集合占用的符号数量的乘积,再减去一个偏置值;其中,n的取值为大于或等于1的整数,偏置值的取值由服务节点配置或者为默认值。
需要说明的是,时隙中符号的索引从0开始计数。
在一实施例中,第二控制资源集合占用的符号数量大于或等于2。
在一实施例中,第二控制资源集合满足以下至少之一:第二控制资源集合占用的符号数量和第一控制资源集合占用的符号数量相同;第二控制资源集合占用的频域资源位置和第一控制资源集合占用的频域资源位置相同。
在一实施例中,NR系统中,第一SSB中的PBCH信道的负载(Payload)主要包括,第一MIB信息和物理层(Physical Layer)的8bit信息(即
Figure PCTCN2021104945-appb-000001
其中
Figure PCTCN2021104945-appb-000002
的取值为8)。其中,第一MIB信息中有1比特的保留比特(Reserved bit)。
在NR系统在20ms的周期内支持的SSB数量的最大值L(即不同索引的SSB的数量之和)为4或者8的情况下,PBCH的物理层8bit信息中
Figure PCTCN2021104945-appb-000003
是保留比特。因此PBCH的负载中最多可以有3bit的保留比特。
在NR系统在20ms的周期内支持的SSB数量的最大值L为64的情况下,PBCH的物理层8bit信息中
Figure PCTCN2021104945-appb-000004
是被占用的,因此PBCH的负载中最多可以有1bit的保留比特。其中,SSB数量(即不同索引的SSB的数量之和)最大值为可以从{4,8,64}中选择。
在NR系统中支持目标类型终端的情况下,可使用第一SSB的PBCH中最多3bit的保留比特用来指示为目标类型终端配置的对应的控制资源集合。
在一实施例中,通过PBCH负载中的保留比特可以指示以下至少之一:
是否配置目标类型终端的第二控制资源集合;
在为非目标类型终端配置的第一控制资源集合之后的相邻符号上是否配置目标类型终端的第二控制资源集合。
在一实施例中,在第一控制资源集合占用的符号数量等于1的情况下,第一控制资源集合之后的1个或者2个符号上配置第二控制资源集合。
在一实施例中,在配置了第二控制资源集合的情况下,第二控制资源集合用的符号数量、频域资源大小与第一控制资源集合相同。
在一实施例中,在配置了第二控制资源集合的情况下,指示第二控制资源集合的起始符号的位置,其中,第二控制资源集合的起始符号的位置可以包括一个或者多个。
针对SSB和CORESET0的复用Pattern 1,在配置了第二控制资源集合的情况下,第二控制资源集合是否需要和第一控制资源集合一样在2个时隙中都配置,可以有以下3种:
第二控制资源集合只在第1个时隙中配置;
第二控制资源集合只在第2个时隙中配置;
第二控制资源集合在2个时隙中都配置。
针对L=4或者8的情况,可以通过PBCH负载中3bit的保留比特并且通过查表的方法指示目标类型终端对应的控制资源集合。
表1为目标类型终端对应的控制资源集合第一配置表。示例性的,一个时隙内有14个符号,第一个符号的编号为0,最后一个符号的编号为13。
表1目标类型终端对应的控制资源集合第一配置表
Figure PCTCN2021104945-appb-000005
在一实施例中,索引1、2针对的是1个符号长度的第二控制资源集合;索引3、4针对的是2个符号长度的第二控制资源集合;索引5、6、7针对的是3个符号长度的第二控制资源集合。
针对L=4或者8的情况,可以通过PBCH负载中2bit的保留比特并且通过查表的方法指示目标类型终端对应的控制资源集合。
表2为另一种目标类型终端对应的控制资源集合第二配置表。示例性的,一个时隙内有14个符号,第一个符号的编号为0,最后一个符号的编号为13。
表2另一种目标类型终端对应的控制资源集合第二配置表
Figure PCTCN2021104945-appb-000006
在一实施例中,PDSCH用于承载RMSI。
在一实施例中,还包括:步骤104:通过所述第一SSB指示第二控制资源集合的配置方 案。
本实施例中,第二控制资源集合的配置方案包括以下至少之一:
1)在所述周期或时间段内,配置目标类型终端对应的第二SSB,第二SSB与第二控制资源集合具有关联关系(如图2或图3所示,服务节点为目标类型终端配置了第二SSB和第二控制资源集合,目标类型终端可以检测第一SSB对应的第一控制资源集合和/或第二SSB对应的第二控制资源集合);
2)第二控制资源集合通过所述第一SSB配置(如图4所示,服务节点为目标类型终端配置了第二控制资源集合,目标类型终端可以根据第一SSB确定第二控制资源集合);
3)所述第二控制资源集合对应的符号位于所述第一控制资源集合所在时隙内(如图5所示,服务节点为目标类型终端配置了第二控制资源集合,目标类型终端可以根据第一SSB确定第二控制资源集合,第二控制资源集合与第一控制资源集合位于相同时隙内)。
在本申请实施例中,还提供一种检测方法,目标类型终端通过检测与其对应的控制资源集合,准确确定控制资源集合并得到下行信道的控制信息,进而完成初始接入过程,提高了控制资源集合检测的可靠性。
需要说明的是,本实施例中的检测方法与上述实施例中的资源集合配置方法属于同一构思,本实施例中目标类型终端执行的操作与上述实施例中服务节点执行的操作相对应,未在本实施例中详尽描述的技术细节可参见上述任意实施例。
图6为一实施例提供的一种检测方法的流程图,如图6所示,本实施例提供的方法包括步骤210和步骤220。
在步骤210中,在一个周期或一个时间段内,获知目标类型终端对应的至少一个控制资源集合。
在步骤220中,在所述控制资源集合中检测PDCCH。
本实施例中,服务节点考虑目标类型终端的能力,针对目标类型终端配置了对应的控制资源集合,目标类型终端可以通过检测对应的控制资源集合,在所述控制资源集合中检测PDCCH。
在一实施例中,在所述周期或时间段内,所述目标类型终端被配置对应的第二SSB;
所述第二SSB与所述第二控制资源集合具有关联关系。
在一实施例中,控制资源集合包括以下至少之一:所述周期或时间段内至少一个第一SSB对应的第一控制资源集合;至少一个第二控制资源集合。
在一实施例中,在第二SSB的数量小于所述第一SSB的数量的情况下,所述第二SSB的索引为0至N2-1,其中,N2为所述第二SSB的数量。
在一实施例中,所述第二控制资源集合的时域位置为在所述第一SSB对应的第一控制资源集合的时域位置的基础上增加设定偏移值。
在一实施例中,对于所述目标类型终端,PDSCH的重复次数通过第一DCI指示;或者,
PDSCH的重复次数通过第二DCI指示;或者,
PDSCH的重复次数与所述周期或者时间段内的第一控制资源集合配置的数量相同;或者,
PDSCH的重复次数与所述周期或者时间段内的第二控制资源集合配置的数量相同;或者,
PDSCH的重复次数与所述周期或者时间段内的第一控制资源集合配置的数量和第二控制资源集合配置的数量之和相同;或者,
在为所述目标类型终端配置对应的第二SSB的情况下,PDSCH的重复次数与所述周期或者时间段内第二SSB的重复次数相同;或者,
在为所述目标类型终端配置对应的第二SSB的情况下,PDSCH的重复次数与所述周期或者时间段内第一SSB以及第二SSB的重复次数之和相同。
在一实施例中,在目标类型终端对应的控制资源集合包括周期或时间段内至少一个第一SSB对应的第一控制资源集合以及至少一个第二控制资源集合的情况下,满足以下至少之一:
调度非目标类型终端的第一DCI和调度目标类型终端的第二DCI中携带的信息相同;
第一SSB中的第一MIB信息和第二SSB中的第二MIB信息一致。
在一实施例中,在目标类型终端对应的控制资源集合包括周期或时间段内至少一个第一SSB对应的第一控制资源集合以及至少一个第二控制资源集合的情况下,PDCCH检测机会满足以下至少之一:
PDCCH检测机会(PDCCH Candidate)位于第一SSB对应的第一控制资源集合中;
PDCCH检测机会位于第二控制资源集合中的PDCCH;
PDCCH检测机会位于第一SSB对应的第一控制资源集合和第二控制资源集合组成的集合中。
在一实施例中,PDCCH检测机会位于第二控制资源集合中的PDCCH;
在第二控制资源集合的数量P1大于1的情况下,第j+1个PDCCH检测机会位于P1个第二控制资源集合中索引为j*P1/J至(j+1)*P1/J-1的第二控制资源集合;其中,J的取值为2、4、6、8、16和24中至少之一;j大于或等于0且j小于或等于J-1。
本实施例中,P1个第二控制资源集合的编号,从0开始,到P1-1。可以按照时域优先的顺序进行编号。“*”表示乘法运算,“/”表示除法运算。
在一实施例中,如果P1不能被J整除,即P1/J非整数,则此P1/J可以替换为:对P1/J向下取整或者向上取整。
在一实施例中,PDCCH检测机会位于第一SSB对应的第一控制资源集合和第二控制资源集合组成的集合中;
在第一SSB对应的第一控制资源集合和第二控制资源集合组成的集合中控制资源集合的数量P2大于1的情况下,第(j+1)个PDCCH检测机会位于P2个控制资源集合中索引为j*P2/J至(j+1)*P2/J-1的控制资源集合;
其中,J的取值为2、4、6、8、16和24中至少之一;j大于或等于0,且j小于或等于J-1。
本实施例中,P2个控制资源集合的编号,从0开始,到P2-1。可以按照时域优先的顺序进行编号。“*”表示乘法运算,“/”表示除法运算。
在一实施例中,如果P2不能被J整除,即P2/J非整数,则此P2/J可以替换为:对P2/J向下取整或者向上取整。
在一实施例中,在目标类型终端对应的控制资源集合包括周期或时间段内至少一个第二控制资源集合的情况下,第一SSB和第二SSB满足以下至少之一:
第一SSB中的同步信号使用的序列与第二SSB中的同步信号使用的序列不同;
第一SSB中的主同步信号与辅同步信号之间的相对位置与第二SSB中的主同步信号与辅同步信号之间的相对位置不同;
第二SSB中的物理广播信道使用目标类型终端的专用扰码进行加扰操作。
在一实施例中,对于所述目标类型终端,
PDSCH的起始时隙索引为:所述第二控制资源集合所在时隙中最后一个时隙的索引加N,其中,N为大于或等于0的整数;
其中,N的取值由服务节点配置或者为默认值。
在一实施例中,第二控制资源集合满足以下至少之一:
所述第二控制资源集合通过所述第一SSB配置;
所述第二控制资源集合的起始时隙根据预定规则确定,或者由所述第一SSB指示。
在一实施例中,所述第二控制资源集合所在的时隙包括所述周期或时间段内的时隙,但 不包括以下时隙中至少之一:第一SSB占用的时隙;第一SSB占用的时隙,且该时隙中存在第一控制资源集合;第一控制资源集合所在的时隙。
在一实施例中,第二控制资源集合所在的时隙包括所述周期或时间段内的时隙,且起始时隙的索引为所述第一控制资源集合所在的时隙中最后的时隙的索引加G1,G1大于或等于0。
在一实施例中,第二控制资源集合所在的时隙的集合中索引为Offset+i*K(i)至Offset+(i+1)*K(i)-1的时隙,为索引为i的第一SSB对应的第二控制资源集合所在的时隙;其中,所述第二控制资源集合所在的时隙的集合中,时隙的索引从0开始编号,K(i)为索引为i的第一SSB对应的第二控制资源集合占用的时隙的数量;Offset为一个偏置量,所述偏置量的取值由服务节点配置或者为默认值。
在一实施例中,在为索引为i的第一SSB对应的第二控制资源集合配置的时隙的索引超过所述第二控制资源集合所在的时隙的集合中时隙的索引范围的情况下,对于所述索引为i的第一SSB不配置第二控制资源集合。
在一实施例中,所述第二控制资源集合中索引为i的第一SSB对应的第二控制资源集合占用的时隙数量,与相同索引的第一SSB对应的第一控制资源集合占用的时隙数量相同。
在一实施例中,所述第一SSB用于指示以下至少之一:该第一SSB是否配置第二控制资源集合;该第一SSB对应的第二控制资源集合占用的时隙数量;该第一SSB对应的第二控制资源集合占用的时隙位置。
在一实施例中,在所述第一SSB的频域资源位置与所述第一控制资源集合的频域位置之间的间隔大于设定值的情况下,所述第二控制资源集合的频域位置位于所述第一SSB的频域资源位置与所述第一控制资源集合的频域位置之间。
在一实施例中,所述设定值通过以下至少之一确定:由服务节点配置;默认值;根据第二控制资源集合的子载波间隔确定。
在一实施例中,所述第二控制资源集合的子载波间隔与所述第一控制资源集合的子载波间隔相同。
在一实施例中,所述第二控制资源集合的频域位置与所述第一控制资源集合的频域位置相邻。
在一实施例中,所述第二控制资源集合占用的频域资源的大小为:满足小于或等于所述间隔的取值的所述第二控制资源集合可配置的频域资源的最大值。
在一实施例中,所述第二控制资源集合对应的符号位于所述第一控制资源集合所在时隙内。
在一实施例中,所述第二控制资源集合对应的符号通过所述第一SSB中的第二控制资源集合配置信息指示;
所述第二控制资源集合配置信息还用于指示以下至少之一:
所述第二控制资源集合是否配置;
至少一个第二控制资源集合的起始符号索引信息;
当第一控制资源集合所在的时隙数量大于1时,指示第二控制资源集合所在的时隙。
在一实施例中,在第一控制资源集合占用的符号数量为1的情况下,第二控制资源集合的起始符号索引为以下之一:第一控制资源集合占用的符号索引加1;第一控制资源集合占用的符号索引加2。
在一实施例中,所述第二控制资源集合占用1个符号。
在一实施例中,所述第二控制资源集合的起始符号索引为:时隙中符号的数量减去n与第二控制资源集合占用的符号数量的乘积,再减去一个偏置值;其中,n的取值为大于或等于1的整数,偏置值的取值由服务节点配置或者为默认值。
在一实施例中,所述第二控制资源集合占用的符号数量大于或等于2。
在一实施例中,所述第二控制资源集合满足以下至少之一:
第二控制资源集合占用的符号数量和第一控制资源集合占用的符号数量相同;
第二控制资源集合占用的频域资源位置和第一控制资源集合占用的频域资源位置相同。
在一实施例中,所述第一SSB用于指示所述第二控制资源集合的配置方案;
所述第二控制资源集合的配置方案包括以下至少之一:
在所述周期或时间段内,配置所述目标类型终端对应的第二SSB,所述第二SSB与所述第二控制资源集合具有关联关系;
所述第二控制资源集合通过所述第一SSB配置;
所述第二控制资源集合对应的符号位于所述第一控制资源集合所在时隙内。
本申请实施例还提供一种资源集合配置装置。图7为一实施例提供的一种资源集合配置装置的结构示意图。如图7所示,所述资源集合配置装置包括:配置模块11和发送模块12。
配置模块11,设置为在一个周期或一个时间段内,配置目标类型终端对应的至少一个控制资源集合;
发送模块12,设置为在所述控制资源集合中发送PDCCH。
本实施例的资源集合配置装置,通过针对目标类型终端配置对应的控制资源集合,提高控制资源集合配置的灵活性和可靠性,使目标类型终端能够有效检测对应的控制资源集合并准确得到下行信道的控制信息,进而完成初始接入过程。
在一实施例中,所述控制资源集合包括以下至少之一:
所述周期或时间段内至少一个第一同步信号/物理广播信道块SSB所对应的第一控制资源集合;
至少一个第二控制资源集合。
在一实施例中,配置模块11,还设置为:
在所述周期或时间段内,配置所述目标类型终端对应的第二SSB;所述第二SSB与所述第二控制资源集合具有关联关系。
在一实施例中,所述第二SSB的数量小于或等于所述第一SSB的数量。
在一实施例中,在所述第二SSB的数量小于所述第一SSB的数量的情况下,所述第二SSB的索引为0至N2-1,其中N2为所述第二SSB的数量。
在一实施例中,所述第二控制资源集合的时域位置为在所述第一控制资源集合的时域位置的基础上增加设定偏移值。
在一实施例中,对于所述目标类型终端PDSCH的重复次数通过第一下行控制信息DCI指示;或者,PDSCH的重复次数通过第二DCI指示;或者,PDSCH的重复次数与所述周期或者时间段内的第一控制资源集合配置的数量相同;或者,PDSCH的重复次数与所述周期或者时间段内的第二控制资源集合配置的数量相同;或者,PDSCH的重复次数与所述周期或者时间段内的第一控制资源集合配置的数量和第二控制资源集合配置的数量之和相同;或者,在为所述目标类型终端配置对应的第二SSB的情况下,PDSCH的重复次数与所述周期或者时间段内所述第二SSB的重复次数相同;或者,在为所述目标类型终端配置对应的第二SSB的情况下,PDSCH的重复次数与所述周期或者时间段内所述第一SSB以及所述第二SSB的重复次数之和相同。
在一实施例中,调度非目标类型终端的第一DCI和调度所述目标类型终端的第二DCI中携带的信息相同。
在一实施例中,在为所述目标类型终端配置对应的第二SSB的情况下,所述第一SSB中的第一MIB信息和所述第二SSB中的第二MIB信息一致。
在一实施例中,在为所述目标类型终端配置对应的第二SSB的情况下,所述第一SSB和所述第二SSB满足以下至少之一:
所述第一SSB中的同步信号使用的序列与所述第二SSB中的同步信号使用的序列不同;
所述第一SSB中的主同步信号与辅同步信号之间的相对位置与所述第二SSB中的主同步信号与辅同步信号之间的相对位置不同;
所述第二SSB中的物理广播信道使用所述目标类型终端的专用扰码进行加扰操作。
在一实施例中,对于所述目标类型终端,PDSCH的起始时隙索引为:所述第二控制资源集合所在时隙中最后一个时隙的索引加N,其中,N为大于或等于0的整数;
其中,N的取值由服务节点配置或者为默认值。
在一实施例中,所述第二控制资源集合通过所述第一SSB配置;
所述第二控制资源集合的起始时隙根据预定规则确定,或者由所述第一SSB指示。
在一实施例中,所述第二控制资源集合所在的时隙包括所述周期或时间段内的时隙,但不包括以下时隙中至少之一:第一SSB占用的时隙;第一SSB占用的时隙,且该时隙中存在第一控制资源集合;第一控制资源集合所在的时隙。
在一实施例中,所述第二控制资源集合所在的时隙包括所述周期或时间段内的时隙,且起始时隙索引为所述第一控制资源集合所在的时隙中最后的时隙的索引加G1个时隙,G1大于或等于0。
在一实施例中,第二控制资源集合所在的时隙的集合中索引为Offset+i*K(i)至Offset+(i+1)*K(i)-1的时隙,为索引为i的第一SSB对应的第二控制资源集合所在的时隙;
其中,所述第二控制资源集合所在的时隙的集合中,时隙的索引从0开始编号,K(i)为索引为i的第一SSB对应的第二控制资源集合占用的时隙的数量;
Offset为一个偏置量,所述偏置量的取值由服务节点配置或者为默认值。
在一实施例中,配置模块11还设置为:为索引为i的第一SSB对应的第二控制资源集合配置时隙;
在配置的时隙的索引超过所述第二控制资源集合所在的时隙的集合中时隙的索引范围的情况下,对于所述索引为i的第一SSB不配置第二控制资源集合。
在一实施例中,第二控制资源集合中索引为i的第一SSB对应的第二控制资源集合占用的时隙数量,与相同索引的第一SSB对应的第一控制资源集合占用的时隙数量相同。
在一实施例中,还包括:指示模块,设置为通过所述第一SSB指示以下至少之一:该第一SSB是否配置第二控制资源集合;该第一SSB对应的第二控制资源集合占用的时隙数量;该第一SSB对应的第二控制资源集合占用的时隙位置。
在一实施例中,在所述第一SSB的频域资源位置与所述第一控制资源集合的频域位置之间的间隔大于设定值的情况下,所述第二控制资源集合的频域位置位于所述第一SSB的频域资源位置与所述第一控制资源集合的频域位置之间。
在一实施例中,设定值通过以下至少之一确定:由服务节点配置;默认值;根据第二控制资源集合的子载波间隔确定。
在一实施例中,所述第二控制资源集合的子载波间隔与所述第一控制资源集合的子载波间隔相同。
在一实施例中,所述第二控制资源集合的频域位置与所述第一控制资源集合的频域位置相邻。
在一实施例中,所述第二控制资源集合占用的频域资源的大小为:满足小于或等于所述间隔的取值的所述第二控制资源集合可配置的频域资源的最大值。
在一实施例中,所述第二控制资源集合对应的符号位于所述第一控制资源集合所在时隙内。
在一实施例中,所述第二控制资源集合对应的符号通过所述第一SSB的第一控制资源集合配置信息指示。
在一实施例中,在为所述目标类型终端配置对应的第二SSB的情况下,所述第二控制资源集合对应的符号通过所述第二SSB中的第二控制资源集合配置信息指示。
在一实施例中,在为所述目标类型终端配置对应的第二SSB的情况下,所述第二控制资源集合对应的符号通过所述第二SSB的第二MIB中的第二控制资源集合配置信息指示;
其中,所述第二控制资源集合配置信息用于指示所述第二控制资源集合对应的起始符号。
在一实施例中,所述第二控制资源集合满足以下至少之一:
第二控制资源集合占用的符号数量和第一控制资源集合占用的符号数量相同;
第二控制资源集合占用的频域资源位置和第一控制资源集合占用的频域资源位置相同。
在一实施例中,所述PDSCH用于承载剩余RMSI。
本实施例提出的资源集合配置装置与上述实施例提出的应用于终端的资源集合配置方法属于同一发明构思,未在本实施例中详尽描述的技术细节可参见上述任意实施例,并且本实施例具备与执行应用于终端的资源集合配置方法相同的有益效果。
本申请实施例还提供一种检测装置。图8为一实施例提供的一种检测装置的结构示意图。如图8所示,所述检测装置包括:检测模块21和接收模块22。
检测模块21,设置为在一个周期或一个时间段内,获知目标类型终端对应的至少一个控制资源集合;
接收模块22,设置为在所述控制资源集合中检测PDCCH。
本实施例的检测装置,通过获知目标类型终端对应的控制资源集合,准确检测PDCCH,得到下行信道的控制信息,进而完成初始接入过程,提高了控制资源集合检测的可靠性。
在一实施例中,控制资源集合包括以下至少之一:所述周期或时间段内至少一个第一SSB对应的第一控制资源集合;至少一个第二控制资源集合。
在一实施例中,在所述周期或时间段内,所述目标类型终端被配置对应的第二SSB;
所述第二SSB与所述第二控制资源集合具有关联关系。
在一实施例中,在为所述目标类型终端配置对应的第二SSB,且所述第二SSB的数量小于所述第一SSB的数量的情况下,所述第二SSB的索引为0至N2-1,其中,N2为所述第二SSB的数量。
在一实施例中,所述第二控制资源集合的时域位置为在所述第一SSB对应的第一控制资源集合的时域位置的基础上增加设定偏移值。
在一实施例中,对于所述目标类型终端,PDSCH的重复次数通过第一DCI指示;或者,
PDSCH的重复次数通过第二DCI指示;或者,
PDSCH的重复次数与所述周期或者时间段内的第一控制资源集合配置的数量相同;或者,
PDSCH的重复次数与所述周期或者时间段内的第二控制资源集合配置的数量相同;或者,
PDSCH的重复次数与所述周期或者时间段内的第一控制资源集合配置的数量和第二控制资源集合配置的数量之和相同;或者,
在为所述目标类型终端配置对应的第二SSB的情况下,PDSCH的重复次数与所述周期或者时间段内第二SSB的重复次数相同;或者,
在为所述目标类型终端配置对应的第二SSB的情况下,PDSCH的重复次数与所述周期或者时间段内第一SSB以及第二SSB的重复次数之和相同。
在一实施例中,在所述目标类型终端对应的控制资源集合包括所述周期或时间段内至少一个第一SSB对应的第一控制资源集合以及至少一个第二控制资源集合的情况下,满足以下 至少之一:
调度非目标类型终端的第一DCI和调度所述目标类型终端的第二DCI中携带的信息相同;
所述第一SSB中的第一MIB信息和所述第二SSB中的第二MIB信息一致。
在一实施例中,在所述目标类型终端对应的控制资源集合包括所述周期或时间段内至少一个第一SSB对应的第一控制资源集合以及至少一个第二控制资源集合的情况下,PDCCH检测机会满足以下至少之一:
PDCCH检测机会位于第一SSB对应的第一控制资源集合中;
PDCCH检测机会位于第二控制资源集合中的PDCCH;
PDCCH检测机会位于第一SSB对应的第一控制资源集合和第二控制资源集合组成的集合中。
在一实施例中,PDCCH检测机会位于第二控制资源集合中的PDCCH;
在所述第二控制资源集合的数量P1大于1的情况下,第j+1个PDCCH检测机会位于P1个第二控制资源集合中索引为j*P1/J至(j+1)*P1/J-1的第二控制资源集合;
其中,J的取值为2、4、6、8、16和24中至少之一;j大于或等于0且j小于或等于J-1。
在一实施例中,PDCCH检测机会位于第一SSB对应的第一控制资源集合和第二控制资源集合组成的集合中;
在所述第一SSB对应的第一控制资源集合和第二控制资源集合组成的集合中控制资源集合的数量P2大于1的情况下,第(j+1)个PDCCH检测机会位于P2个控制资源集合中索引为j*P2/J至(j+1)*P2/J-1的控制资源集合;
其中,J的取值为2、4、6、8、16和24中至少之一;j大于或等于0,且j小于或等于J-1。
在一实施例中,在所述目标类型终端对应的控制资源集合包括所述周期或时间段内至少一个第二控制资源集合的情况下,所述第一SSB和所述第二SSB满足以下至少之一:
所述第一SSB中的同步信号使用的序列与所述第二SSB中的同步信号使用的序列不同;
所述第一SSB中的主同步信号与辅同步信号之间的相对位置与所述第二SSB中的主同步信号与辅同步信号之间的相对位置不同;
所述第二SSB中的物理广播信道使用所述目标类型终端的专用扰码进行加扰操作。
在一实施例中,对于所述目标类型终端,
PDSCH的起始时隙索引为:所述第二控制资源集合所在时隙中最后一个时隙的索引加N,其中,N为大于或等于0的整数;
其中,N的取值由服务节点配置或者为默认值。
在一实施例中,所述第二控制资源集合满足以下至少之一:
所述第二控制资源集合通过所述第一SSB配置;
所述第二控制资源集合的起始时隙根据预定规则确定,或者由所述第一SSB指示。
在一实施例中,所述第二控制资源集合所在的时隙包括所述周期或时间段内的时隙,但不包括以下时隙中至少之一:第一SSB占用的时隙;第一SSB占用的时隙,且该时隙中存在第一控制资源集合;第一控制资源集合所在的时隙。
在一实施例中,第二控制资源集合所在的时隙包括所述周期或时间段内的时隙,且起始时隙的索引为所述第一控制资源集合所在的时隙中最后的时隙的索引加G1,G1大于或等于0。
在一实施例中,第二控制资源集合所在的时隙的集合中索引为Offset+i*K(i)至Offset+(i+1)*K(i)-1的时隙,为索引为i的第一SSB对应的第二控制资源集合所在的时隙;其中,所述第二控制资源集合所在的时隙的集合中,时隙的索引从0开始编号,K(i)为索引为i的第一SSB对应的第二控制资源集合占用的时隙的数量;Offset为一个偏置量,所述偏置量 的取值由服务节点配置或者为默认值。
在一实施例中,在为索引为i的第一SSB对应的第二控制资源集合配置的时隙的索引超过所述第二控制资源集合所在的时隙的集合中时隙的索引范围的情况下,对于所述索引为i的第一SSB不配置第二控制资源集合。
在一实施例中,所述第二控制资源集合中索引为i的第一SSB对应的第二控制资源集合占用的时隙数量,与相同索引的第一SSB对应的第一控制资源集合占用的时隙数量相同。
在一实施例中,所述第一SSB用于指示以下至少之一:该第一SSB是否配置第二控制资源集合;该第一SSB对应的第二控制资源集合占用的时隙数量;该第一SSB对应的第二控制资源集合占用的时隙位置。
在一实施例中,在所述第一SSB的频域资源位置与所述第一控制资源集合的频域位置之间的间隔大于设定值的情况下,所述第二控制资源集合的频域位置位于所述第一SSB的频域资源位置与所述第一控制资源集合的频域位置之间。
在一实施例中,所述设定值通过以下至少之一确定:由服务节点配置;默认值;根据第二控制资源集合的子载波间隔确定。
在一实施例中,所述第二控制资源集合的子载波间隔与所述第一控制资源集合的子载波间隔相同。
在一实施例中,所述第二控制资源集合的频域位置与所述第一控制资源集合的频域位置相邻。
在一实施例中,所述第二控制资源集合占用的频域资源的大小为:满足小于或等于所述间隔的取值的所述第二控制资源集合可配置的频域资源的最大值。
在一实施例中,所述第二控制资源集合对应的符号位于所述第一控制资源集合所在时隙内。
在一实施例中,所述第二控制资源集合对应的符号通过所述第一SSB中的第二控制资源集合配置信息指示;
所述第二控制资源集合配置信息还用于指示以下至少之一:
所述第二控制资源集合是否配置;
至少一个第二控制资源集合的起始符号索引信息;
当第一控制资源集合所在的时隙数量大于1时,指示第二控制资源集合所在的时隙。
在一实施例中,在第一控制资源集合占用的符号数量为1的情况下,第二控制资源集合的起始符号索引为以下之一:第一控制资源集合占用的符号索引加1;第一控制资源集合占用的符号索引加2。
在一实施例中,所述第二控制资源集合占用1个符号。
在一实施例中,所述第二控制资源集合的起始符号索引为:时隙中符号的数量减去n与第二控制资源集合占用的符号数量的乘积,再减去一个偏置值;其中,n的取值为大于或等于1的整数,偏置值的取值由服务节点配置或者为默认值。
在一实施例中,所述第二控制资源集合占用的符号数量大于或等于2。
在一实施例中,所述第二控制资源集合满足以下至少之一:
第二控制资源集合占用的符号数量和第一控制资源集合占用的符号数量相同;
第二控制资源集合占用的频域资源位置和第一控制资源集合占用的频域资源位置相同。
在一实施例中,所述第一SSB用于指示所述第二控制资源集合的配置方案;
所述第二控制资源集合的配置方案包括以下至少之一:
在所述周期或时间段内,配置所述目标类型终端对应的第二SSB,所述第二SSB与所述第二控制资源集合具有关联关系;
所述第二控制资源集合通过所述第一SSB配置;
所述第二控制资源集合对应的符号位于所述第一控制资源集合所在时隙内。
本实施例提出的检测装置与上述实施例提出的应用于终端的检测方法属于同一发明构思,未在本实施例中详尽描述的技术细节可参见上述任意实施例,并且本实施例具备与执行应用于终端的检测方法相同的有益效果。
本申请实施例还提供一种服务节点。上述应用于服务节点的资源集合配置方法可以由资源集合配置装置执行,该资源集合配置装置可以通过软件和/或硬件的方式实现,并集成在所述服务节点中。
图9为一实施例提供的一种服务节点的硬件结构示意图。如图9所示,本实施例提供的一种服务节点,包括:处理器510和存储装置520。该服务节点中的处理器可以是一个或多个,图9中以一个处理器510为例,所述设备中的处理器510和存储装置520可以通过总线或其他方式连接,图9中以通过总线连接为例。
所述一个或多个程序被所述一个或多个处理器510执行,使得所述一个或多个处理器实现上述任一实施例所述的应用于服务节点的资源集合配置方法。
该服务节点中的存储装置520作为一种计算机可读存储介质,可用于存储一个或多个程序,所述程序可以是软件程序、计算机可执行程序以及模块,如本发明实施例中应用于服务节点的资源集合配置方法对应的程序指令/模块(例如,附图7所示的资源集合配置装置中的模块,包括:配置模块11和发送模块12)。处理器510通过运行存储在存储装置520中的软件程序、指令以及模块,从而执行服务节点的各种功能应用以及数据处理,即实现上述方法实施例中的资源集合配置方法。
存储装置520主要包括存储程序区和存储数据区,其中,存储程序区可存储操作系统、至少一个功能所需的应用程序;存储数据区可存储根据设备的使用所创建的数据等(如上述实施例中的控制资源集合、目标类型终端等)。此外,存储装置520可以包括高速随机存取存储器,还可以包括非易失性存储器,例如至少一个磁盘存储器件、闪存器件、或其他非易失性固态存储器件。在一些实例中,存储装置520可进一步包括相对于处理器510远程设置的存储器,这些远程存储器可以通过网络连接至服务节点。上述网络的实例包括但不限于互联网、企业内部网、局域网、移动通信网及其组合。
并且,当上述服务节点中所包括一个或者多个程序被所述一个或者多个处理器510执行时,实现如下操作:在一个周期或一个时间段内,配置目标类型终端对应的至少一个控制资源集合;在所述控制资源集合中发送PDCCH。
本实施例提出的服务节点与上述实施例提出的应用于服务节点的资源集合配置方法或者查询方法属于同一发明构思,未在本实施例中详尽描述的技术细节可参见上述任意实施例,并且本实施例具备与执行资源集合配置方法或查询方法相同的有益效果。
本申请实施例还提供一种终端。上述应用于终端的检测方法可以由检测装置执行,该资源集合配置装置可以通过软件和/或硬件的方式实现,并集成在所述终端中。
图10为一实施例提供的一种终端的硬件结构示意图。如图10所示,本实施例提供的一种终端,包括:处理器610和存储装置620。该终端中的处理器可以是一个或多个,图10中以一个处理器610为例,所述设备中的处理器610和存储装置620可以通过总线或其他方式连接,图10中以通过总线连接为例。
所述一个或多个程序被所述一个或多个处理器610执行,使得所述一个或多个处理器实现上述任一实施例所述的应用于终端的检测方法。
该终端中的存储装置620作为一种计算机可读存储介质,可用于存储一个或多个程序,所述程序可以是软件程序、计算机可执行程序以及模块,如本发明实施例中应用于终端的检 测方法对应的程序指令/模块(例如,附图8所示的检测装置中的模块,包括:检测模块21和接收模块22)。处理器610通过运行存储在存储装置620中的软件程序、指令以及模块,从而执行终端的各种功能应用以及数据处理,即实现上述方法实施例中的应用于终端的检测方法。
存储装置620主要包括存储程序区和存储数据区,其中,存储程序区可存储操作系统、至少一个功能所需的应用程序;存储数据区可存储根据设备的使用所创建的数据等(如上述实施例中的控制资源集合、目标类型终端等)。此外,存储装置620可以包括高速随机存取存储器,还可以包括非易失性存储器,例如至少一个磁盘存储器件、闪存器件、或其他非易失性固态存储器件。在一些实例中,存储装置620可进一步包括相对于处理器610远程设置的存储器,这些远程存储器可以通过网络连接至终端。上述网络的实例包括但不限于互联网、企业内部网、局域网、移动通信网及其组合。
并且,当上述终端中所包括一个或者多个程序被所述一个或者多个处理器610执行时,实现如下操作:在一个周期或一个时间段内,获知目标类型终端对应的至少一个控制资源集合;在所述控制资源集合中检测PDCCH。
本实施例提出的终端与上述实施例提出的应用于终端的检测方法或通知方法属于同一发明构思,未在本实施例中详尽描述的技术细节可参见上述任意实施例,并且本实施例具备与执行应用于终端的检测方法或通知方法相同的有益效果。
本申请实施例还提供一种包含计算机可执行指令的存储介质,计算机可执行指令在由计算机处理器执行时用于执行一种资源集合配置方法或检测方法。
该资源集合配置方法包括:在一个周期或一个时间段内,配置目标类型终端对应的至少一个控制资源集合;在所述控制资源集合中发送PDCCH。
该检测方法包括:在一个周期或一个时间段内,获知目标类型终端对应的至少一个控制资源集合;在所述控制资源集合中检测PDCCH。
通过以上关于实施方式的描述,所属领域的技术人员可以了解到,本申请可借助软件及通用硬件来实现,也可以通过硬件实现。基于这样的理解,本申请的技术方案可以以软件产品的形式体现出来,该计算机软件产品可以存储在计算机可读存储介质中,如计算机的软盘、只读存储器(Read-Only Memory,ROM)、随机存取存储器(Random Access Memory,RAM)、闪存(FLASH)、硬盘或光盘等,包括多个指令用以使得一台计算机设备(可以是个人计算机,服务器,或者网络设备等)执行本申请任意实施例所述的方法。
以上所述,仅为本申请的示例性实施例而已,并非用于限定本申请的保护范围。
本申请附图中的任何逻辑流程的框图可以表示程序步骤,或者可以表示相互连接的逻辑电路、模块和功能,或者可以表示程序步骤与逻辑电路、模块和功能的组合。计算机程序可以存储在存储器上。存储器可以具有任何适合于本地技术环境的类型并且可以使用任何适合的数据存储技术实现,例如但不限于只读存储器(ROM)、随机访问存储器(RAM)、光存储器装置和系统(数码多功能光碟DVD或CD光盘)等。计算机可读介质可以包括非瞬时性存储介质。数据处理器可以是任何适合于本地技术环境的类型,例如但不限于通用计算机、专用计算机、微处理器、数字信号处理器(DSP)、专用集成电路(ASIC)、可编程逻辑器件(FGPA)以及基于多核处理器架构的处理器。
本申请实施例中提供一种资源集合配置方法,包括:
项目1,在一个周期或一个时间段内,配置目标类型终端对应的至少一个控制资源集合;
在所述控制资源集合中发送物理下行控制信道PDCCH。
项目2,根据项目1所述的方法,所述控制资源集合包括以下至少之一:
所述周期或时间段内至少一个第一同步信号/物理广播信道块SSB所对应的第一控制资 源集合;
至少一个第二控制资源集合。
项目3,根据项目2所述的方法,还包括:
在所述周期或时间段内,配置所述目标类型终端对应的第二SSB;
所述第二SSB与所述第二控制资源集合具有关联关系。
项目4,根据项目3所述的方法,在所述第二SSB的数量小于所述第一SSB的数量的情况下,所述第二SSB的索引为0至N2-1,其中N2为所述第二SSB的数量。
项目5,根据项目2所述的方法,所述第二控制资源集合的时域位置为在所述第一控制资源集合的时域位置的基础上增加设定偏移值。
项目6,根据项目2所述的方法,对于所述目标类型终端,
物理下行共享信道PDSCH的重复次数通过第一下行控制信息DCI指示;或者,
PDSCH的重复次数通过第二DCI指示;或者,
PDSCH的重复次数与所述周期或者时间段内的第一控制资源集合配置的数量相同;或者,
PDSCH的重复次数与所述周期或者时间段内的第二控制资源集合配置的数量相同;或者,
PDSCH的重复次数与所述周期或者时间段内的第一控制资源集合配置的数量和第二控制资源集合配置的数量之和相同;
在为所述目标类型终端配置对应的第二SSB的情况下,PDSCH的重复次数与所述周期或者时间段内所述第二SSB的重复次数相同;或者,
在为所述目标类型终端配置对应的第二SSB的情况下,PDSCH的重复次数与所述周期或者时间段内所述第一SSB以及所述第二SSB的重复次数之和相同。
项目7,根据项目2所述的方法,,调度非目标类型终端的第一DCI和调度所述目标类型终端的第二DCI中携带的信息相同。
项目8,根据项目2所述的方法,在为所述目标类型终端配置对应的第二SSB的情况下,所述第一SSB中的第一主信息块MIB信息和所述第二SSB中的第二MIB信息一致。
项目9,根据项目2所述的方法,,在为所述目标类型终端配置对应的第二SSB的情况下,所述第一SSB和所述第二SSB满足以下至少之一:
所述第一SSB中的同步信号使用的序列与所述第二SSB中的同步信号使用的序列不同;
所述第一SSB中的主同步信号与辅同步信号之间的相对位置与所述第二SSB中的主同步信号与辅同步信号之间的相对位置不同;
所述第二SSB中的物理广播信道使用所述目标类型终端的专用扰码进行加扰操作。
项目10,根据项目2所述的方法,对于所述目标类型终端,PDSCH的起始时隙索引为:所述第二控制资源集合所在时隙中最后一个时隙的索引加N,其中,N为大于或等于0的整数;
其中,N的取值由服务节点配置或者为默认值。
项目11,根据项目2所述的方法,,所述第二控制资源集合通过所述第一SSB配置;
所述第二控制资源集合的起始时隙根据预定规则确定,或者由所述第一SSB指示。
项目12,根据项目2所述的方法,所述第二控制资源集合所在的时隙包括所述周期或时间段内的时隙,但不包括以下时隙中至少之一:
第一SSB占用的时隙;
第一SSB占用的时隙,且该时隙中存在第一控制资源集合;
第一控制资源集合所在的时隙。
项目13,根据项目2所述的方法,所述第二控制资源集合所在的时隙包括所述周期或时间段内的时隙,且起始时隙的索引为所述第一控制资源集合所在的时隙中最后的时隙的索引加G1,G1大于或等于0。
项目14,根据项目12或13所述的方法,所述第二控制资源集合所在的时隙的集合中索引为Offset+i*K(i)至Offset+(i+1)*K(i)-1的时隙,为索引为i的第一SSB对应的第二控制资源集合所在的时隙;
其中,所述第二控制资源集合所在的时隙的集合中,时隙的索引从0开始编号,K(i)为索引为i的第一SSB对应的第二控制资源集合占用的时隙的数量;
Offset为一个偏置量,所述偏置量的取值由服务节点配置或者为默认值。
项目15,根据项目14所述的方法,还包括:
为索引为i的第一SSB对应的第二控制资源集合配置所在的时隙;
在配置的时隙的索引超过所述第二控制资源集合所在的时隙的集合中时隙的索引范围的情况下,对于所述索引为i的第一SSB不配置第二控制资源集合。
项目16,根据项目2所述的方法,所述第二控制资源集合中索引为i的第一SSB对应的第二控制资源集合占用的时隙数量,与相同索引的第一SSB对应的第一控制资源集合占用的时隙数量相同。
项目17,根据项目2所述的方法,还包括:通过所述第一SSB指示以下至少之一:
该第一SSB是否配置第二控制资源集合;
该第一SSB对应的第二控制资源集合占用的时隙数量;
该第一SSB对应的第二控制资源集合占用的时隙位置。
项目18,项目2所述的方法,在所述第一SSB的频域资源位置与所述第一控制资源集合的频域位置之间的间隔大于设定值的情况下,所述第二控制资源集合的频域位置位于所述第一SSB的频域资源位置与所述第一控制资源集合的频域位置之间。
项目19,根据项目18所述的方法,所述设定值通过以下至少之一确定:
由服务节点配置;
默认值;
根据第二控制资源集合的子载波间隔确定。
项目20,根据项目18所述的方法,所述第二控制资源集合的子载波间隔与所述第一控制资源集合的子载波间隔相同。
项目21,根据项目18所述的方法,所述第二控制资源集合的频域位置与所述第一控制资源集合的频域位置相邻。
项目22,根据项目18所述的方法,所述第二控制资源集合占用的频域资源的大小为:满足小于或等于所述间隔的取值的所述第二控制资源集合可配置的频域资源的最大值。
项目23,根据项目2所述的方法,所述第二控制资源集合对应的符号位于所述第一控制资源集合所在时隙内。
项目24,根据项目23所述的方法,所述第二控制资源集合对应的符号通过所述第一SSB中的第二控制资源集合配置信息指示;
所述第二控制资源集合配置信息还用于指示以下至少之一:
第二控制资源集合是否配置;
至少一个第二控制资源集合的起始符号索引信息;
在第一控制资源集合所在的时隙数量大于1的情况下,指示第二控制资源集合所在的时隙。
项目25,根据项目24所述的方法,在第一控制资源集合占用的符号数量为1的情况下,第二控制资源集合的起始符号索引为以下之一:
第一控制资源集合占用的符号索引加1;
第一控制资源集合占用的符号索引加2。
项目26,根据项目25所述的方法,所述第二控制资源集合占用1个符号。
项目27,根据项目24所述的方法,所述第二控制资源集合的起始符号索引为:
时隙中符号的数量减去n与第二控制资源集合占用的符号数量的乘积,再减去一个偏置值,其中,n的取值为大于或等于1的整数;
所述偏置值的取值由服务节点配置或者为默认值。
项目28,根据项目27所述的方法,所述第二控制资源集合占用的符号数量大于或等于2。
项目29,根据项目2任一项所述的方法,所述第二控制资源集合满足以下至少之一:
第二控制资源集合占用的符号数量和第一控制资源集合占用的符号数量相同;
第二控制资源集合占用的频域资源位置和第一控制资源集合占用的频域资源位置相同。
项目30,根据项目6或10所述的方法,所述PDSCH用于承载剩余最小系统信息RMSI。
项目31,根据项目2所述的方法,还包括:
通过所述第一SSB指示所述第二控制资源集合的配置方案;
其中,所述第二控制资源集合的配置方案包括以下至少之一:
在所述周期或时间段内,配置所述目标类型终端对应的第二SSB,所述第二SSB与所述第二控制资源集合具有关联关系;
所述第二控制资源集合通过所述第一SSB配置;
所述第二控制资源集合对应的符号位于所述第一控制资源集合所在时隙内。
项目32,根据项目1-10或项目31任一项所述的方法,所述第二控制资源集合的配置方案包括第一方案;
所述第一方案包括:在所述周期或时间段内,所述目标类型终端被配置对应的第二SSB,所述第二SSB与所述第二控制资源集合具有关联关系;
在采用第一方案的情况下,可以采用项目1-10或项目31中任意的项目。
项目33,根据项目1、2、11-22或31任一项所述的方法,所述第二控制资源集合的配置方案包括第二方案;
所述第二方案包括:在所述周期或时间段内,所述第二控制资源集合通过所述第一SSB配置;
在采用第二方案的情况下,可以采用项目1、2、11-22中任意的项目。
项目34,根据项目1、2、23-29或31任一项所述的方法,所述第二控制资源集合的配置方案包括第三方案;
所述第三方案包括:所述第二控制资源集合对应的符号位于所述第一控制资源集合所在时隙内;
在采用第二方案的情况下,可以采用项目1、2、23-29中任意的项目。
项目35,一种检测方法,包括:
在一个周期或一个时间段内,获知目标类型终端对应的至少一个控制资源集合;
在所述控制资源集合中检测PDCCH。
项目36,根据项目35所述的方法,所述控制资源集合包括以下至少之一:
所述周期或时间段内至少一个第一SSB对应的第一控制资源集合;
至少一个第二控制资源集合。
项目37,根据项目35所述的方法,在所述周期或时间段内,所述目标类型终端被配置对应的第二SSB;
所述第二SSB与所述第二控制资源集合具有关联关系。
项目38,根据项目36所述的方法,在所述第二SSB的数量小于所述第一SSB的数量的情况下,所述第二SSB的索引为0至N2-1,其中,N2为所述第二SSB的数量。
项目39,根据项目36所述的方法,所述第二控制资源集合的时域位置为在所述第一SSB对应的第一控制资源集合的时域位置的基础上增加设定偏移值。
项目40,根据项目36所述的方法,对于所述目标类型终端,
PDSCH的重复次数通过第一DCI指示;或者,
PDSCH的重复次数通过第二DCI指示;或者,
PDSCH的重复次数与所述周期或者时间段内的第一控制资源集合配置的数量相同;或者,
PDSCH的重复次数与所述周期或者时间段内的第二控制资源集合配置的数量相同;或者,
PDSCH的重复次数与所述周期或者时间段内的第一控制资源集合配置的数量和第二控制资源集合配置的数量之和相同;或者,
在为所述目标类型终端配置对应的第二SSB的情况下,PDSCH的重复次数与所述周期或者时间段内第二SSB的重复次数相同;或者,
在为所述目标类型终端配置对应的第二SSB的情况下,PDSCH的重复次数与所述周期或者时间段内第一SSB以及第二SSB的重复次数之和相同。
项目41,根据项目36所述的方法,,在所述目标类型终端对应的控制资源集合包括所述周期或时间段内至少一个第一SSB对应的第一控制资源集合以及至少一个第二控制资源集合的情况下,满足以下至少之一:
调度非目标类型终端的第一DCI和调度所述目标类型终端的第二DCI中携带的信息相同;
所述第一SSB中的第一MIB信息和所述第二SSB中的第二MIB信息一致。
项目42,根据项目36所述的方法,在所述目标类型终端对应的控制资源集合包括所述周期或时间段内至少一个第一SSB对应的第一控制资源集合以及至少一个第二控制资源集合的情况下,PDCCH检测机会满足以下至少之一:
PDCCH检测机会位于第一SSB对应的第一控制资源集合中;
PDCCH检测机会位于第二控制资源集合中的PDCCH;
PDCCH检测机会位于第一SSB对应的第一控制资源集合和第二控制资源集合组成的集合中。
项目43,根据项目42所述的方法,,PDCCH检测机会位于第二控制资源集合中的PDCCH;
在所述第二控制资源集合的数量P1大于1的情况下,第j+1个PDCCH检测机会位于P1个第二控制资源集合中索引为j*P1/J至(j+1)*P1/J-1的第二控制资源集合;
其中,J的取值为2、4、6、8、16和24中至少之一;j大于或等于0且j小于或等于J-1。
项目44,根据项目42所述的方法,PDCCH检测机会位于第一SSB对应的第一控制资源集合和第二控制资源集合组成的集合中;
在所述第一SSB对应的第一控制资源集合和第二控制资源集合组成的集合中控制资源集合的数量P2大于1的情况下,第(j+1)个PDCCH检测机会位于P2个控制资源集合中索引为j*P2/J至(j+1)*P2/J-1的控制资源集合;
其中,J的取值为2、4、6、8、16和24中至少之一;j大于或等于0,且j小于或等于J-1。
项目45,根据项目36所述的方法,,在所述目标类型终端对应的控制资源集合包括所述周期或时间段内至少一个第二控制资源集合的情况下,所述第一SSB和所述第二SSB满足以下至少之一:
所述第一SSB中的同步信号使用的序列与所述第二SSB中的同步信号使用的序列不同;
所述第一SSB中的主同步信号与辅同步信号之间的相对位置与所述第二SSB中的主同步信号与辅同步信号之间的相对位置不同;
所述第二SSB中的物理广播信道使用所述目标类型终端的专用扰码进行加扰操作。
项目46,根据项目36所述的方法,对于所述目标类型终端,
PDSCH的起始时隙索引为:所述第二控制资源集合所在时隙中最后一个时隙的索引加N,其中,N为大于或等于0的整数;
其中,N的取值由服务节点配置或者为默认值。
项目47,根据项目36所述的方法,所述第二控制资源集合满足以下至少之一:
所述第二控制资源集合通过所述第一SSB配置;
所述第二控制资源集合的起始时隙根据预定规则确定,或者由所述第一SSB指示。
项目48,根据项目36所述的方法,
所述第二控制资源集合所在的时隙包括所述周期或时间段内的时隙,但不包括以下时隙中至少之一:
第一SSB占用的时隙;
第一SSB占用的时隙,且该时隙中存在第一控制资源集合;
第一控制资源集合所在的时隙。
项目49,根据项目36所述的方法,所述第二控制资源集合所在的时隙包括所述周期或时间段内的时隙,且起始时隙的索引为所述第一控制资源集合所在的时隙中最后的时隙的索引加G1,G1大于或等于0。
项目50,根据项目48或项目49所述的方法,所述第二控制资源集合所在的时隙的集合中索引为Offset+i*K(i)至Offset+(i+1)*K(i)-1的时隙,为索引为i的第一SSB对应的第二控制资源集合所在的时隙;
其中,所述第二控制资源集合所在的时隙的集合中,时隙的索引从0开始编号,K(i)为索引为i的第一SSB对应的第二控制资源集合占用的时隙的数量;
Offset为一个偏置量,所述偏置量的取值由服务节点配置或者为默认值。
项目51,根据项目50所述的方法,在为索引为i的第一SSB对应的第二控制资源集合配置的时隙的索引超过所述第二控制资源集合所在的时隙的集合中时隙的索引范围的情况下,对于所述索引为i的第一SSB不配置第二控制资源集合。
项目52,根据项目36所述的方法,所述第二控制资源集合中索引为i的第一SSB对应的第二控制资源集合占用的时隙数量,与相同索引的第一SSB对应的第一控制资源集合占用的时隙数量相同。
项目53,根据项目36所述的方法,所述第一SSB指示以下至少之一:
该第一SSB是否配置第二控制资源集合;
该第一SSB对应的第二控制资源集合占用的时隙数量;
该第一SSB对应的第二控制资源集合占用的时隙位置。
项目54,根据项目36所述的方法,在所述第一SSB的频域资源位置与所述第一控制资源集合的频域位置之间的间隔大于设定值的情况下,所述第二控制资源集合的频域位置位于所述第一SSB的频域资源位置与所述第一控制资源集合的频域位置之间。
项目55,根据项目54所述的方法,所述设定值通过以下至少之一确定:
由服务节点配置;
默认值;
根据第二控制资源集合的子载波间隔确定。
项目56,根据项目54所述的方法,所述第二控制资源集合的子载波间隔与所述第一控制资源集合的子载波间隔相同。
项目57,根据项目54所述的方法,所述第二控制资源集合的频域位置与所述第一控制资源集合的频域位置相邻。
项目58,根据项目54所述的方法,所述第二控制资源集合占用的频域资源的大小为:满足小于或等于所述间隔的取值的所述第二控制资源集合可配置的频域资源的最大值。
项目59,根据项目36所述的方法,所述第二控制资源集合对应的符号位于所述第一控制资源集合所在时隙内。
项目60,根据项目36所述的方法,所述第二控制资源集合对应的符号通过所述第一SSB中的第二控制资源集合配置信息指示;
所述第二控制资源集合配置信息还用于指示以下至少之一:
所述第二控制资源集合是否配置;
至少一个第二控制资源集合的起始符号索引信息;
当第一控制资源集合所在的时隙数量大于1时,指示第二控制资源集合所在的时隙。
项目61,根据项目60所述的方法,在第一控制资源集合占用的符号数量为1的情况下,第二控制资源集合的起始符号索引为以下之一:
第一控制资源集合占用的符号索引加1;
第一控制资源集合占用的符号索引加2。
项目62,根据项目61所述的方法,所述第二控制资源集合占用1个符号。
项目63,根据项目60所述的方法,所述第二控制资源集合的起始符号索引为:时隙中符号的数量减去n与第二控制资源集合占用的符号数量的乘积,再减去一个偏置值;其中,n的取值为大于或等于1的整数,偏置值的取值由服务节点配置或者为默认值。
项目64,根据项目60所述的方法,所述第二控制资源集合占用的符号数量大于或等于2。
项目65,根据项目59所述的方法,所述第二控制资源集合满足以下至少之一:
第二控制资源集合占用的符号数量和第一控制资源集合占用的符号数量相同;
第二控制资源集合占用的频域资源位置和第一控制资源集合占用的频域资源位置相同。
项目66,根据项目40或46所述的方法,所述PDSCH用于承载剩余最小系统信息RMSI。
项目67,根据项目36所述的方法,所述第一SSB用于指示所述第二控制资源集合的配置方案;
所述第二控制资源集合的配置方案包括以下至少之一:
在所述周期或时间段内,配置所述目标类型终端对应的第二SSB,所述第二SSB与所述第二控制资源集合具有关联关系;
所述第二控制资源集合通过所述第一SSB配置;
所述第二控制资源集合对应的符号位于所述第一控制资源集合所在时隙内。
项目68,根据项目35-46或项目67任一项所述的方法,所述第二控制资源集合的配置方案包括第一方案;
所述第一方案包括:在所述周期或时间段内,所述目标类型终端被配置对应的第二SSB,所述第二SSB与所述第二控制资源集合具有关联关系;
在采用第一方案的情况下,可以采用项目35-46或项目67中任意的项目。
项目69,根据项目35、36、47-58、67任一项所述的方法,所述第二控制资源集合的配置方案包括第二方案;
所述第二方案包括:在所述周期或时间段内,所述第二控制资源集合通过所述第一SSB配置;
在采用第二方案的情况下,可以采用项目35、36、47-58、67中任意的项目。
项目70,根据项目35、36、59-67任一项所述的方法,所述第二控制资源集合的配置方案包括第三方案;
所述第三方案包括:所述第二控制资源集合对应的符号位于所述第一控制资源集合所在时隙内;
在采用第二方案的情况下,可以采用项目35、36、59-67中任意的项目。
项目71,一种服务节点,包括:
一个或多个处理器;
存储装置,设置为存储一个或多个程序;
当所述一个或多个程序被所述一个或多个处理器执行,使得所述一个或多个处理器实现如项目1-34中任一项所述的资源集合配置方法。
项目72,一种终端,包括:
一个或多个处理器;
存储装置,设置为存储一个或多个程序;
当所述一个或多个程序被所述一个或多个处理器执行,使得所述一个或多个处理器实现如项目35-70中任一项所述的检测方法。
项目73,一种计算机可读存储介质,其上存储有计算机程序,该程序被处理器执行时实现如项目1-34中任一项所述的资源集合配置方法或如项目35-70中任一项所述的检测方法。
通过示范性和非限制性的示例,上文已提供了对本申请的示范实施例的详细描述。但结合附图和权利要求来考虑,对以上实施例的多种修改和调整对本领域技术人员来说是显而易见的,但不偏离本发明的范围。因此,本发明的恰当范围将根据权利要求确定。

Claims (32)

  1. 一种资源集合配置方法,包括:
    在一个周期或一个时间段内,配置目标类型终端对应的至少一个控制资源集合;
    在所述控制资源集合中发送物理下行控制信道PDCCH。
  2. 根据权利要求1所述的方法,其中,所述控制资源集合包括以下至少之一:
    所述周期或时间段内至少一个第一同步信号/物理广播信道块SSB所对应的第一控制资源集合;
    至少一个第二控制资源集合。
  3. 根据权利要求2所述的方法,还包括:
    在所述周期或时间段内,配置所述目标类型终端对应的第二SSB;
    所述第二SSB与所述第二控制资源集合具有关联关系。
  4. 根据权利要求2所述的方法,其中,对于所述目标类型终端,物理下行共享信道PDSCH的重复次数满足以下之一:
    所述PDSCH的重复次数通过第一下行控制信息DCI指示;
    所述PDSCH的重复次数通过第二DCI指示;
    所述PDSCH的重复次数与所述周期或者时间段内的第一控制资源集合配置的数量相同;
    所述PDSCH的重复次数与所述周期或者时间段内的第二控制资源集合配置的数量相同;
    所述PDSCH的重复次数与所述周期或者时间段内的第一控制资源集合配置的数量和第二控制资源集合配置的数量之和相同;
    在为所述目标类型终端配置对应的第二SSB的情况下,所述PDSCH的重复次数与所述周期或者时间段内所述第二SSB的重复次数相同;以及
    在为所述目标类型终端配置对应的第二SSB的情况下,所述PDSCH的重复次数与所述周期或者时间段内所述第一SSB以及所述第二SSB的重复次数之和相同。
  5. 根据权利要求2所述的方法,其中,调度非目标类型终端的第一DCI和调度所述目标类型终端的第二DCI中携带的信息相同。
  6. 根据权利要求2所述的方法,其中,在为所述目标类型终端配置对应的第二SSB的情况下,所述第一SSB中的第一主信息块MIB信息和所述第二SSB中的第二MIB信息相同。
  7. 根据权利要求2所述的方法,其中,在为所述目标类型终端配置对应的第二SSB的情况下,所述第一SSB和所述第二SSB满足以下至少之一:
    所述第一SSB中的同步信号使用的序列与所述第二SSB中的同步信号使用的序列不同;
    所述第一SSB中的主同步信号与辅同步信号之间的相对位置与所述第二SSB中的主同步信号与辅同步信号之间的相对位置不同;
    所述第二SSB中的物理广播信道使用所述目标类型终端的专用扰码进行加扰操作。
  8. 根据权利要求2所述的方法,其中,对于所述目标类型终端,PDSCH的起始时隙索引为:所述第二控制资源集合所在时隙中最后一个时隙的索引加N,其中,N为大于或等于0的整数;
    其中,N的取值由服务节点配置或者为默认值。
  9. 根据权利要求2所述的方法,其中,所述第二控制资源集合通过所述第一SSB配置;
    所述第二控制资源集合的起始时隙根据预定规则确定,或者由所述第一SSB指示。
  10. 根据权利要求2所述的方法,其中,所述第二控制资源集合所在的时隙包括所述周期或时间段内除以下至少之一时隙以外的时隙:
    第一SSB占用的时隙;
    第一SSB占用的时隙,且该时隙中存在第一控制资源集合;
    第一控制资源集合所在的时隙。
  11. 根据权利要求2所述的方法,其中,所述第二控制资源集合所在的时隙包括所述周 期或时间段内的时隙,且起始时隙的索引为所述第一控制资源集合所在的时隙中最后的时隙的索引加G1,G1大于或等于0。
  12. 根据权利要求10或11所述的方法,其中,所述第二控制资源集合所在的时隙的集合中索引为Offset+i*K(i)至Offset+(i+1)*K(i)-1的时隙,为索引为i的第一SSB对应的第二控制资源集合所在的时隙;
    其中,所述第二控制资源集合所在的时隙的集合中,时隙的索引从0开始编号,K(i)为索引为i的第一SSB对应的第二控制资源集合占用的时隙的数量;
    Offset为一个偏置量,所述偏置量的取值由服务节点配置或者为默认值。
  13. 根据权利要求2所述的方法,还包括:通过所述第一SSB指示以下至少之一:
    所述第一SSB是否配置第二控制资源集合;
    所述第一SSB对应的第二控制资源集合占用的时隙数量;
    所述第一SSB对应的第二控制资源集合占用的时隙位置。
  14. 权利要求2所述的方法,其中,在所述第一SSB的频域资源位置与所述第一控制资源集合的频域位置之间的间隔大于设定值的情况下,所述第二控制资源集合的频域位置位于所述第一SSB的频域资源位置与所述第一控制资源集合的频域位置之间。
  15. 根据权利要求14所述的方法,其中,所述设定值通过以下至少之一确定:
    由服务节点配置;
    设为默认值;
    根据第二控制资源集合的子载波间隔确定。
  16. 根据权利要求14所述的方法,其中,所述第二控制资源集合的子载波间隔与所述第一控制资源集合的子载波间隔相同。
  17. 根据权利要求14所述的方法,其中,所述第二控制资源集合的频域位置与所述第一控制资源集合的频域位置相邻。
  18. 根据权利要求14所述的方法,其中,所述第二控制资源集合占用的频域资源的大小为:满足小于或等于所述间隔的取值的所述第二控制资源集合可配置的频域资源的最大值。
  19. 根据权利要求2所述的方法,其中,所述第二控制资源集合对应的符号位于所述第一控制资源集合所在时隙内。
  20. 根据权利要求19所述的方法,其中,所述第二控制资源集合对应的符号通过所述第一SSB中的第二控制资源集合配置信息指示;
    所述第二控制资源集合配置信息还用于指示以下至少之一:
    所述第二控制资源集合是否配置;
    至少一个所述第二控制资源集合的起始符号索引信息;
    在所述第一控制资源集合所在的时隙数量大于1的情况下,指示所述第二控制资源集合所在的时隙。
  21. 根据权利要求20所述的方法,其中,所述第二控制资源集合的起始符号索引为:
    时隙中符号的数量减去n与所述第二控制资源集合占用的符号数量的乘积,再减去一个偏置值,其中,n的取值为大于或等于1的整数;
    所述偏置值的取值由服务节点配置或者设为默认值。
  22. 根据权利要求21所述的方法,其中,所述第二控制资源集合占用的符号数量大于或等于2。
  23. 根据权利要求19所述的方法,其中,所述第二控制资源集合满足以下至少之一:
    所述第二控制资源集合占用的符号数量和所述第一控制资源集合占用的符号数量相同;
    所述第二控制资源集合占用的频域资源位置和所述第一控制资源集合占用的频域资源位置相同。
  24. 根据权利要求4或8所述的方法,其中,所述PDSCH用于承载剩余最小系统信息RMSI。
  25. 一种检测方法,包括:
    在一个周期或一个时间段内,获知目标类型终端对应的至少一个控制资源集合;
    在所述控制资源集合中检测物理下行控制信道PDCCH。
  26. 根据权利要求25所述的方法,其中,所述控制资源集合包括以下至少之一:
    所述周期或所述时间段内至少一个第一同步信号/物理广播信道块SSB对应的第一控制资源集合;
    至少一个第二控制资源集合。
  27. 根据权利要求26所述的方法,其中,在所述目标类型终端对应的控制资源集合包括所述周期或时间段内至少一个第一SSB对应的第一控制资源集合以及至少一个第二控制资源集合的情况下,PDCCH检测机会满足以下至少之一:
    PDCCH检测机会位于所述第一SSB对应的控制资源集合中;
    PDCCH检测机会位于所述第二控制资源集合中的PDCCH;
    PDCCH检测机会位于所述第一SSB对应的第一控制资源集合和第二控制资源集合组成的集合中。
  28. 根据权利要求26所述的方法,其中,在所述目标类型终端对应的控制资源集合包括所述周期或时间段内至少一个第一SSB对应的第一控制资源集合以及至少一个第二控制资源集合的情况下,PDCCH检测机会位于第二控制资源集合中的PDCCH;
    在所述第二控制资源集合的数量P1大于1的情况下,第j+1个PDCCH检测机会位于P1个第二控制资源集合中索引为j*P1/J至(j+1)*P1/J-1的第二控制资源集合;
    其中,J的取值为2、4、6、8、16和24中至少之一;
    j大于或等于0,且j小于或等于J-1。
  29. 根据权利要求26所述的方法,其中,在所述目标类型终端对应的控制资源集合包括所述周期或时间段内至少一个第一SSB对应的第一控制资源集合以及至少一个第二控制资源集合的情况下,PDCCH检测机会位于所述第一SSB对应的第一控制资源集合和第二控制资源集合组成的集合中;
    在所述第一SSB对应的第一控制资源集合和第二控制资源集合组成的集合中控制资源集合的数量P2大于1的情况下,第j+1个PDCCH检测机会位于P2个控制资源集合中索引为j*P2/J至(j+1)*P2/J-1的控制资源集合;
    其中,J的取值为2、4、6、8、16和24中至少之一;
    j大于或等于0,且j小于或等于J-1。
  30. 一种服务节点,包括:
    一个或多个处理器;
    存储装置,设置为存储一个或多个程序;
    当所述一个或多个程序被所述一个或多个处理器执行,使得所述一个或多个处理器实现如权利要求1-24中任一项所述的资源集合配置方法。
  31. 一种终端,包括:
    一个或多个处理器;
    存储装置,设置为存储一个或多个程序;
    当所述一个或多个程序被所述一个或多个处理器执行,使得所述一个或多个处理器实现如权利要求25-29中任一项所述的检测方法。
  32. 一种计算机可读存储介质,其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1-24中任一项所述的资源集合配置方法或如权利要求25-29中任一项所述 的检测方法。
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