WO2020098656A1 - 确定准共址参考信号的方法和装置 - Google Patents

确定准共址参考信号的方法和装置 Download PDF

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Publication number
WO2020098656A1
WO2020098656A1 PCT/CN2019/117599 CN2019117599W WO2020098656A1 WO 2020098656 A1 WO2020098656 A1 WO 2020098656A1 CN 2019117599 W CN2019117599 W CN 2019117599W WO 2020098656 A1 WO2020098656 A1 WO 2020098656A1
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WIPO (PCT)
Prior art keywords
reference signal
quasi
control channel
frequency domain
channel element
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PCT/CN2019/117599
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English (en)
French (fr)
Inventor
张淑娟
李儒岳
高波
鲁照华
蒋创新
何震
Original Assignee
中兴通讯股份有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
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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 KR1020217018160A priority Critical patent/KR20210087538A/ko
Priority to US17/293,417 priority patent/US11949614B2/en
Priority to CA3119893A priority patent/CA3119893C/en
Priority to EP19883434.3A priority patent/EP3883313A4/en
Priority to JP2021524995A priority patent/JP7382403B2/ja
Publication of WO2020098656A1 publication Critical patent/WO2020098656A1/zh
Priority to US18/605,651 priority patent/US20240223330A1/en

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0048Allocation of pilot signals, i.e. of signals known to the receiver
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B17/00Monitoring; Testing
    • H04B17/30Monitoring; Testing of propagation channels
    • H04B17/373Predicting channel quality or other radio frequency [RF] parameters
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0053Allocation of signaling, i.e. of overhead other than pilot signals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0091Signaling for the administration of the divided path
    • H04L5/0094Indication of how sub-channels of the path are allocated
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W64/00Locating users or terminals or network equipment for network management purposes, e.g. mobility management
    • H04W64/003Locating users or terminals or network equipment for network management purposes, e.g. mobility management locating network equipment
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management

Definitions

  • the present disclosure relates to the field of communications, for example, to a method and apparatus for determining a quasi-co-location reference signal.
  • New Radio introduces the concept of control channel resource set (Control Reset, Set, CORESET), where a CORESET configures the frequency domain resources of the control channel, quasi co-located reference signal information, resource mapping method and other information .
  • the base station configures a CORESET for the terminal through a system message, which is called CORESET0.
  • the terminal performs at least one of the following in this CORESET0: listening to the physical random access channel (Physical Random Access Channel, PRACH) response Information and listening to public messages.
  • PRACH Physical Random Access Channel
  • the quasi-co-location reference signal of CORESET0 may be a single sideband (Single SideBand, SSB) selected based on the PRACH terminal. Since the SSB selected by the terminal is not very suitable after the terminal enters the Radio Resource Control (RRC) link, and the quasi-co-location reference signal for CORESET0 will not be configured in the relevant NR signaling architecture, in order to increase the flexibility of CORESET0 You can even send a dedicated control channel on CORESET0's resources. You need to configure a quasi-co-location reference signal for CORESET0.
  • RRC Radio Resource Control
  • Embodiments of the present invention provide a method and apparatus for determining a quasi-co-located reference signal, which can configure a quasi-co-located reference signal for a control channel element, for example, a quasi-co-located reference signal for CORESET0, thereby increasing the flexibility of CORESET0 Send a dedicated control channel on CORESET0's resources.
  • An embodiment of the present invention provides a method for determining a quasi-co-located reference signal, including:
  • the quasi-co-location reference signal activated by the first control channel element is determined according to the index information and the first transmission configuration information list.
  • An embodiment of the present invention provides an apparatus for determining a quasi-co-location reference signal, including:
  • a transmission configuration information list determination module configured to determine a first transmission configuration information list corresponding to the first control channel element
  • a transmission configuration information index information determination module configured to determine the index information in the first transmission configuration information list of the transmission configuration information activated for the first control channel element
  • the first quasi-co-location reference signal determination module is configured to determine the quasi-co-location reference signal activated by the first control channel element according to the index information and the first transmission configuration information list.
  • An embodiment of the present invention provides an apparatus for determining a quasi-co-located reference signal, including a processor and a computer-readable storage medium.
  • the computer-readable storage medium stores instructions, and when the instructions are executed by the processor To implement any of the above methods for determining quasi-co-located reference signals.
  • An embodiment of the present invention provides a computer-readable storage medium on which a computer program is stored, and when the computer program is executed by a processor, any of the steps of the above method for determining a quasi-co-located reference signal is implemented.
  • An embodiment of the present invention provides a method for determining a quasi-co-located reference signal, including:
  • the second Five predetermined characteristics of the quasi-co-located reference signal of the control channel element determine the quasi-co-located reference signal of the reference signal.
  • An embodiment of the present invention provides an apparatus for determining a quasi-co-location reference signal, including:
  • a second quasi-co-located reference signal determination module configured to determine the second closest to at least one of the channel and the signal corresponding to the reference signal in the set of the first time unit including the control channel element satisfying the fourth predetermined characteristic In the time unit, the quasi-co-location reference signal of the control channel element satisfying the fifth predetermined characteristic determines the quasi-co-location reference signal of the reference signal.
  • An embodiment of the present invention provides an apparatus for determining a quasi-co-located reference signal, including a processor and a computer-readable storage medium.
  • the computer-readable storage medium stores instructions, and when the instructions are executed by the processor To implement any of the above methods for determining quasi-co-located reference signals.
  • An embodiment of the present invention provides a computer-readable storage medium on which a computer program is stored, and when the computer program is executed by a processor, any of the steps of the above method for determining a quasi-co-located reference signal is implemented.
  • An embodiment of the present invention provides a reference signal transmission method, including:
  • the reference signal information port needs to satisfy the second predetermined rule
  • the reference signal information at least one of the following is transmitted: the reference signal, the channel corresponding to the reference signal, and the signal corresponding to the reference signal.
  • An embodiment of the present invention provides a reference signal transmission device, including:
  • the determining module is configured to determine the reference signal information according to at least one of the signaling information and the first predetermined rule, and the reference signal information port needs to satisfy the second predetermined rule;
  • the second transmission module is configured to transmit at least one of the following according to the reference signal information: the reference signal, the channel corresponding to the reference signal, and the signal corresponding to the reference signal.
  • An embodiment of the present invention provides a reference signal transmission device, which includes a processor and a computer-readable storage medium.
  • the computer-readable storage medium stores instructions, and when the instructions are executed by the processor, the foregoing Any kind of reference signal transmission method.
  • An embodiment of the present invention provides a computer-readable storage medium on which a computer program is stored, and when the computer program is executed by a processor, the steps of any of the above reference signal transmission methods are implemented.
  • the embodiment of the present invention includes: determining a first transmission configuration information list corresponding to the first control channel element, determining index information of the transmission configuration information activated for the first control channel element in the first transmission configuration information list, according to The index information and the first transmission configuration information list determine a quasi co-located reference signal activated by the first control channel element.
  • the first transmission configuration information list and the index information in the first transmission configuration information list are used to configure the quasi-co-location reference signal for the control channel element, for example, the quasi-co-location reference signal is configured for CORESET0, thereby increasing CORESET0.
  • the flexibility can even send a dedicated control channel on CORESET0's resources.
  • FIG. 1 is a schematic diagram of frequency domain resources where at least one of a channel and a signal is located in an embodiment of the present invention
  • FIG. 2 is a flowchart of a method for determining a quasi-co-location reference signal according to an embodiment of the present invention
  • FIG. 3 is a schematic structural composition diagram of an apparatus for determining a quasi-co-location reference signal according to another embodiment of the present invention.
  • FIG. 4 is a flowchart of a method for determining a quasi-co-location reference signal according to another embodiment of the present invention.
  • FIG. 5 is a schematic diagram of calculating a time interval according to an embodiment of the present invention.
  • FIG. 6 is a schematic structural composition diagram of an apparatus for determining a quasi-co-location reference signal according to another embodiment of the present invention.
  • the two reference signals satisfy the quasi-co-location relationship, which means that the two reference signals satisfy the quasi-co-location relationship with respect to at least one quasi-co-location parameter, that is, the quasi-co-location parameters of one reference signal can be based on another reference Acquire the quasi-co-location parameters of the signal.
  • the quasi-co-location parameters include at least one of the following: Doppler shift (Doppler shift), Doppler spread (Doppler spread), average delay (average delay), delay spread (delay spread), spatial reception parameters (Spatial Rx parameter), average gain (average gain).
  • a quasi-co-location parameter can only be associated with one reference signal in a quasi-co-location reference signal set
  • the difference set of the quasi-co-location parameter sets associated with different quasi-co-location reference signal sets is empty
  • a quasi-co-located reference signal set can only include at most two reference signals.
  • the predetermined quasi-co-location parameter set belongs to a union of the quasi-co-location parameter sets associated with each reference signal in a quasi-co-location reference signal set.
  • a quasi-co-located reference signal of at least one of a channel and a signal indicates that at least one of the channel and the signal and the quasi-co-located reference signal satisfy about a class of quasi-co-located parameters Quasi-co-location relationship.
  • a quasi-co-location reference signal of a channel element indicates that the channel element and the quasi-co-location reference signal satisfy a quasi-co-location relationship with respect to a class of quasi-co-location parameters.
  • At least one of the demodulation reference signal and the signal port and the quasi-co-location reference signal satisfy a quasi-co-location relationship with respect to a class of quasi-co-location parameters.
  • one transmission configuration information corresponds to one or more quasi-co-located reference signal sets, where the transmission configuration information may also be referred to as quasi-co-located reference signal indication information, or other names.
  • CORESET0 is a common control channel resource configured in a system message. Part of the information of CORESET0 is configured in the system message. Of course, some information of CORESET0 may also be notified in UE-specific signaling.
  • the first node (such as the terminal) can obtain the control information sent by the second node (such as the base station) through the common control channel sent in CORESET0 in the Idle state or before the RRC link is established.
  • the first node and the second After the node establishes the RRC link it can listen to the dedicated control channel in COERSET0.
  • control channel element is one of the following: control channel resource set (CORESET), search space set, search space, candidate control channel, search space set time domain (occasion), search space time domain (occasion).
  • CORESET control channel resource set
  • search space set search space
  • search space time domain search space time domain
  • one frequency domain bandwidth corresponds to at least one of the following:
  • Component Carrier CC
  • BWP Bandwidth Part, frequency domain bandwidth
  • continuous frequency domain bandwidth in one BWP.
  • a frequency domain resource belongs to another frequency domain bandwidth including frequency domain resources included in one frequency domain bandwidth belongs to frequency domain resources included in another frequency domain bandwidth.
  • a frequency domain resource is a physical resource block (Physical Resource Block, PRB), or an absolute frequency domain resource.
  • PRB Physical Resource Block
  • the absolute frequency domain resource includes a section of frequency domain resources obtained at a predetermined subcarrier interval and a predetermined carrier reference point.
  • the association between the two pieces of information includes any of the following:
  • the value of one message is obtained according to the value of another message
  • the value range of one message is obtained according to the value or value range of another message
  • the transmission parameters of elements corresponding to one message are obtained based on another message.
  • the frequency domain resource where at least one of the one channel and the one signal includes at least one of the following:
  • the component carrier where at least one of the channel and the signal is located, as shown in FIG. 1 is the PDSCH (Physical Downlink Shared Channel, Physical Downlink Shared Channel) / CC where the CORESET is located;
  • the bandwidth part where at least one of the channel and the signal is located as shown in the BWP where the PDSCH / CORESET described in FIG. 1 is located;
  • the frequency domain span corresponding to the set of frequency domain resource blocks occupied by at least one of the channels and signals is the highest PRB index and the lowest PRB index of the set of frequency domain resource blocks occupied by at least one of the channels and signals
  • the PRBs in between form a set, as shown in Figure 1, where one frequency domain resource block is a PRB.
  • the indication information that does not include transmission configuration information in the channel corresponding to at least one of scheduling the reference signal and the signal includes the following two cases:
  • control channel set in the control resource set where the control channel is located does not include TCI (Transmission, Configuration, Indication, transmission configuration indication) information in the control channel included in the control resource set;
  • TCI Transmission, Configuration, Indication, transmission configuration indication
  • control information included in the control channel belongs to a predetermined format.
  • PDCCH Physical Downlink Control Channel
  • TCI information including the following two cases:
  • DCI (Downlink Control Information) format (format) 1_1 is not configured in the CORESET where tci-PresentInDCI is configured, that is, the DCI in this CORESET does not include TCI information;
  • the PDCCH includes DCI format1_0, and the TCI information is not included in the DCI format1_0 at any time.
  • the PDCCH is a PDCCH scheduling PDSCH / PDCCH.
  • an embodiment of the present invention provides a method for determining a quasi-co-located reference signal, including:
  • Step 200 Determine a first transmission configuration information list corresponding to the first control channel element.
  • Step 201 Determine index information in the first transmission configuration information list of the transmission configuration information activated for the first control channel element.
  • Step 202 Determine a quasi-co-located reference signal activated by the first control channel element according to the index information and the first transmission configuration information list.
  • the first transmission configuration information list and the index information in the first transmission configuration information list are used to configure the quasi-co-location reference signal for the control channel element, for example, the quasi-co-location reference signal is configured for CORESET0, thereby increasing CORESET0.
  • the flexibility can even send a dedicated control channel on CORESET0's resources.
  • one transmission configuration information in the first transmission configuration information list corresponds to at least one quasi-co-located reference signal set.
  • a quasi-co-location parameter can only be associated with one reference signal in a quasi-co-location reference signal set
  • the difference set of the quasi-co-location parameter sets associated with different quasi-co-location reference signal sets is empty
  • a quasi-co-located reference signal set can only include at most two reference signals.
  • the first transmission configuration information list may be a transmission configuration indication state list (TCI state list).
  • TCI state transmission configuration indication state list
  • One TCI state (TCI state) in the TCI state list is one transmission configuration information, and one TCI state corresponds to at least one quasi-co-location reference signal. set.
  • determining that the first transmission configuration information list corresponding to the first control channel element includes at least one of the following:
  • the first transmission configuration information list is determined according to the information of the number of bandwidth parts configured except the initial bandwidth part, for example, when the number of bandwidth parts configured except the initial bandwidth part is less than a predetermined threshold, The information list belongs to the transmission configuration information list corresponding to the channel element in the initial bandwidth part. When the number of bandwidth parts configured except the initial bandwidth part is greater than or equal to a predetermined threshold, the first transmission configuration information list belongs to the part other than the initial bandwidth part A list of transmission configuration information corresponding to channel elements in the bandwidth part with the lowest bandwidth part index in the bandwidth part set of
  • the first transmission configuration information list is determined according to a judgment result of whether the transmission configuration information list configured in the predetermined channel element satisfies the third predetermined characteristic.
  • the first control signaling carries first transmission configuration information list information
  • the first control signaling carries bandwidth part index information
  • the first transmission configuration information list belongs to the second transmission configuration information configured in the configuration information of the first channel element in the bandwidth part corresponding to the bandwidth part index information List
  • the first control signaling carries at least one of the following: bandwidth part index information, channel element index information, and the first control channel element index information, where the first transmission configuration information list belongs to the bandwidth part index
  • the third transmission configuration information list configured in the configuration information of the second channel element corresponding to the information and the channel element index information.
  • the second channel element is the channel element corresponding to the channel element index information in the bandwidth part corresponding to the bandwidth part index information.
  • the first transmission configuration information list belonging to the third transmission configuration information list includes:
  • the quasi-co-location reference signal and the synchronization signal corresponding to the transmission configuration information in the third transmission configuration information list corresponding to the transmission configuration information in the first transmission configuration information list satisfy a quasi-co-location relationship.
  • the first control channel element or the first channel element or the second channel element satisfies at least one of the following:
  • the first control channel element and the control channel element included in the first channel element are two different control channel elements
  • control channel elements included in the first control channel element and the second channel element are two different control channel elements
  • the first control channel element or the control channel element included in the first channel element or the control channel element included in the second channel element is a downlink control channel element
  • the first control channel element or the control channel element included in the first channel element or the control channel element included in the second channel element include at least one of the following: control channel resource set, search space set, search space, candidate Control channel
  • the frequency domain bandwidth corresponding to the bandwidth part index information includes resources occupied by the first control channel element
  • the first channel element includes at least one of the following: a data channel element and a control channel element;
  • the frequency domain bandwidth where the first channel element and the first control channel element are located is different;
  • the second channel element includes at least one of the following: a data channel element and a control channel element;
  • the frequency domain bandwidth where the second channel element and the first control channel element are located is different.
  • determining the first transmission configuration indication information list according to a judgment result of whether the first control channel element belongs to a predetermined set of control channel elements includes at least one of the following:
  • the first transmission configuration information list is the transmission configuration information list configured for the first control channel element in the third control signaling, where , The third control signaling carries the first control channel element index;
  • the first transmission configuration information list belongs to the transmission configuration information list configured for the third channel element in the fourth control signaling, wherein the first Four control signaling does not carry the first control channel index;
  • the predetermined control channel element set includes at least one of the following:
  • Control channel resource set 0, search space set 0.
  • the third channel element satisfies at least one of the following characteristics:
  • the bandwidth part where the third channel element is located meets the first predetermined characteristic at a predetermined time
  • the third channel element satisfies the second predetermined characteristic at a predetermined moment
  • the list of transmission configuration information configured in the third channel element satisfies the third predetermined characteristic
  • intersection of the set of control channel elements included in the third channel element and the predetermined set of control channel elements is empty;
  • the third channel element includes at least one of the following: a data channel element and a control channel element.
  • the first predetermined feature includes at least one of the following:
  • the bandwidth part is in an activated state
  • the bandwidth part is the initial bandwidth part (Initial BWP);
  • the bandwidth part is the default bandwidth part (default BWP);
  • the bandwidth part and the bandwidth part where the first control channel element is located belong to one component carrier
  • the bandwidth portion includes resources occupied by the first control channel element
  • the bandwidth part is the bandwidth part with the lowest bandwidth part index in the bandwidth part set
  • the bandwidth portion includes at least one predetermined channel element, and the first control channel element is not included in the predetermined channel element.
  • the second predetermined feature includes at least one of the following:
  • the third channel element is a channel element transmitted in the time unit closest to the predetermined time
  • the third channel element is a control channel element with a predetermined control channel element index in a control channel element set other than the first control channel element in the time unit closest to the predetermined time;
  • the third channel element is a control channel element having a predetermined control channel element index in a set of control channel elements other than the first control channel element in the bandwidth portion that satisfies the first predetermined characteristic at the predetermined time ;
  • the third channel element is a control channel element with a predetermined control channel element index in a control channel element set other than the first control channel element in the time unit closest to the predetermined time;
  • the third channel element is a control channel element having a predetermined control channel element index in a bandwidth portion that satisfies the first predetermined characteristic at a predetermined time;
  • the predetermined control channel element index includes any one of the following: the lowest control channel element index and the highest control channel element index.
  • the predetermined time includes one of the following:
  • the transmission configuration information carried in the second control signaling may be used for the start time of receiving the first control channel element or the time unit in which the start time is located;
  • the predetermined time is associated with the second control signaling information
  • the detection time of the first control channel element or the time unit where the detection time is located is located.
  • the second control signaling satisfies at least one of the following characteristics:
  • the serving cell index information and the first transmission configuration information list information in the second control signaling are jointly encoded;
  • the second control signaling carries first transmission configuration information list information
  • the serving cell index information in the second control signaling is used to indicate the first transmission configuration information list
  • the second control signaling is MAC-CE (Medium Access Control-Control Element) control signaling
  • the first predetermined condition includes at least one of the following: the first control channel element belongs to a predetermined set of control channel elements, the number of serving cells is less than the first predetermined value, and the serving cell configured with the predetermined set of control channel elements The number is less than the second predetermined value;
  • the first transmission configuration information list information includes at least one of the following information: bandwidth part index information, first control channel element index information, channel element index information, and transmission configuration information list index information.
  • the third predetermined feature includes at least one of the following:
  • the number of elements included in the transmission configuration information list configured in the predetermined channel element or the third channel element is greater than the third predetermined value
  • the number of transmission configuration information of the first type included in the transmission configuration information list configured in the predetermined channel element or the third channel element is greater than a fourth predetermined value, wherein each corresponding to the first type of transmission configuration information A quasi-co-location reference signal and a synchronization signal satisfy the quasi-co-location relationship;
  • the number of transmission configuration information of the second type included in the transmission configuration information list configured in the predetermined channel element or the third channel element is greater than a fifth predetermined value, wherein the association corresponding to the transmission configuration information of the second type
  • the quasi-co-location reference signal and synchronization signal of a class of quasi-co-location parameters satisfy the quasi-co-location relationship.
  • the determining that the first transmission configuration information list includes at least one of the following according to the information about the number of bandwidth parts configured in addition to the initial bandwidth part:
  • the first transmission configuration information list belongs to the configuration information of the fourth channel element in the initial bandwidth part
  • the first transmission configuration information list belongs to the bandwidth part set other than the initial bandwidth part having the lowest
  • the fifth transmission configuration information list configured in the configuration information of the fifth channel element in the bandwidth part of the bandwidth part index.
  • the first transmission configuration information list includes at least one of the following according to a judgment result of whether the channel element corresponding to the bandwidth portion satisfying the first predetermined characteristic is configured with the transmission configuration information list.
  • the channel element corresponding to the bandwidth part satisfying the first predetermined characteristic does not have a transmission configuration information list configured, it is determined that the first transmission configuration information list belongs to the configuration of the sixth channel element in the bandwidth part other than the initial bandwidth part
  • the sixth transmission configuration information list configured in the information
  • the channel element corresponding to the bandwidth part satisfying the first predetermined characteristic is configured with a transmission configuration information list, it is determined that the first transmission configuration information list belongs to the configuration information of the seventh channel element in the initial bandwidth part The seventh transmission configuration information list.
  • the first transmission configuration information list belongs to the Xth transmission configuration information list, where X is a value from two to seven, including:
  • the quasi-co-location reference signal and the synchronization signal corresponding to the quasi-co-location reference signal corresponding to the transmission configuration information in the first transmission configuration information list in the X-th transmission configuration information list satisfy a quasi-co-location relationship.
  • the class of quasi-co-location parameters meet at least one of the following:
  • the first-class quasi-co-location parameters include at least one of the following parameters:
  • Doppler frequency shift Doppler spread, average delay, delay spread, average gain
  • the class of quasi-common European address parameters does not include spatial reception filtering parameters.
  • control channel elements included in the first control channel element and the i-th channel element are two different control channel elements
  • control channel element included in at least one of the first control channel element and the i-th channel element includes at least one of the following: control channel resource set, search space set, search space, candidate control channel, and downlink control channel;
  • the i-th channel element includes at least one of the following: a data channel element and a control channel element;
  • the frequency domain bandwidth where the i-th channel element and the first control channel element are located is different;
  • the transmission configuration information list configured in the i-th channel element satisfies the third predetermined characteristic
  • the third predetermined feature includes at least one of the following:
  • the number of elements included in the transmission configuration information list configured in the predetermined channel element or the third channel element is greater than the third predetermined value
  • the number of transmission configuration information of the first type included in the transmission configuration information list configured in the predetermined channel element or the third channel element is greater than a fourth predetermined value, wherein each corresponding to the first type of transmission configuration information A quasi-co-location reference signal and a synchronization signal satisfy the quasi-co-location relationship;
  • the number of transmission configuration information of the second type included in the transmission configuration information list configured in the predetermined channel element or the third channel element is greater than a fifth predetermined value, wherein the association corresponding to the transmission configuration information of the second type
  • the quasi-co-location reference signal and the synchronization signal of the predetermined quasi-co-location parameter satisfy the quasi-co-location relationship.
  • the index information in the first transmission configuration information list of the transmission configuration information determined to be activated for the first control channel element includes:
  • the index information is determined according to second control signaling, where the second control signaling includes the index information.
  • the index information in the first transmission configuration information list of the transmission configuration information determined to be activated for the first control channel element includes at least one of the following:
  • the index information is determined according to second control signaling, where the second control signaling includes the index information
  • the quasi-co-location reference signal of the first control channel element is a quasi-co-location reference signal corresponding to at least one transmission configuration information index predetermined in the first transmission configuration information list;
  • the second predetermined condition includes:
  • the number of transmission configuration information included in the first transmission configuration information list is greater than a seventh predetermined value.
  • the first control signaling or the second control signaling satisfies at least one of the following features:
  • the first control signaling also carries element information of the first control channel
  • the second control signaling is Medium Access Control (Medium Access Control, MAC) -Control Element (Control Element, CE) control signaling;
  • the first control signaling and the second control signaling are the same control signaling
  • the first control signaling is radio resource control RRC signaling.
  • determining the quasi-co-location reference signal activated by the first control channel element according to the index information and the first transmission configuration information list includes:
  • the quasi-co-location reference signal activated by the first control channel element is determined according to the transmission configuration information activated by the first control channel element, where the quasi-co-location reference signal activated by the first control channel element is transmission configuration information activated by the first control channel element.
  • the quasi-co-located reference signal in the corresponding quasi-co-located reference signal set is determined according to the transmission configuration information activated by the first control channel element, where the quasi-co-location reference signal activated by the first control channel element is transmission configuration information activated by the first control channel element.
  • the quasi-co-located reference signal activated by the first control channel element corresponds to at least two synchronization signal blocks, and the method further includes:
  • the first control channel element includes at least one of the following:
  • Control channel resource set 0, search space set 0.
  • a synchronization signal block corresponds to a synchronization signal (SynchronizationSignal, SS) broadcast channel block / Physical Broadcast Channel (Physical Broadcast Channel, PBCH) block, such as a 5 millisecond (ms) half frame, including up to 64 SSB, The quasi-co-location relationship between channels and / or signals in different SSBs is not satisfied.
  • SS Synchronization Signal
  • PBCH Physical Broadcast Channel
  • RRC signaling configures a TCI state list in the configuration information of CORESET1 (that is, the first transmission configuration information list, where one TCI state is one transmission configuration information, one TCI state corresponds to at least one quasi-co-location reference signal set), MAC-CE signaling activates a TCI state for this CORESET1 in the TCI state list, and the corresponding reference signal in the TCI state is the physical downlink control channel transmitted in CORESET1 (Physical Downlink Control Channel, PDCCH) demodulation reference signal (Demodulation Reference Signal, DMRS) quasi co-location reference signal.
  • PDCCH Physical Downlink Control Channel
  • DMRS Demodulation Reference Signal
  • TCI state1 corresponds to two quasi-co-located reference signal sets: quasi-co-located reference signal set 1 (CSI-RS (Channel State Information-Reference Signal, channel state information reference signal) 1, CSI-RS2), Quasi-co-located reference signal set 2 (CSI-RS3, CSI-RS4).
  • CSI-RS Channel State Information-Reference Signal, channel state information reference signal
  • CSI-RS3 Quasi-co-located reference signal set 2
  • the quasi-co-location reference signals of DMRS port group 1 of PDSCH / CORESET are CSI-RS1 and CSI-RS2 At least one of them, the quasi co-location parameters Doppler shift, Doppler spread, average delay and delay of PDSCH / CORESET DMRS port group 1 are obtained according to CSI-RS1, and the quasi co-location parameters Spatial Rx parameters are obtained according to CSI-RS2.
  • the quasi-co-location reference signal of DMRS port group 2 of PDSCH / CORESET is at least one of CSI-RS3 and CSI-RS4, and the quasi-co-location parameters of DMRS port group 2 of PDSCH / CORESET are Doppler shift, Doppler spread, average delay and delay Spread is obtained according to CSI-RS3, and the quasi-co-location parameter Spatial Rx parameter is obtained according to CSI-RS4.
  • a quasi-co-location parameter can only be associated with one quasi-co-location reference signal in a quasi-co-location reference signal set.
  • the TCI state list of CORESET0 is the TCI state list configured for PDSCH in the active bandwidth part (Band Width Part, BWP) at the scheduled time;
  • the TCI state of CORESET0 belongs to the TCI state list configured in the CORESET corresponding to the lowest CORESETID in the CORESE set except the CORESET0 in the BWP that is activated at the scheduled time;
  • the TCI state of CORESET0 belongs to the TCI state list configured for PDSCH in the default BWP at the scheduled time;
  • the TCI state list of CORESET0 belongs to the default BWP at the scheduled time.
  • the TCI state of CORESET0 belongs to the TCI state list configured for PDSCH in the Initial BWP at the scheduled time;
  • the TCI state of CORESET0 belongs to the CORESE set with the lowest CORESETID in the CORESE set except the CORESET0 in the Initial BWP of the scheduled time.
  • the TCI state list of CORESET0 belongs to the TCI state list configured for PDSCH in the BWP with the lowest BWPID in the predetermined BWP set at the scheduled time;
  • the TCI state of CORESET0 belongs to the TCI configured in the CORESET corresponding to the lowest CORESETID in the CORESE set except the CORESET0 of the BWP with the lowest BWPID in the scheduled BWP set at the scheduled time;
  • the BWPs in the predetermined BWP set in solutions 7 and 8 satisfy at least one of the following characteristics:
  • the BWP includes resources occupied by the CORESET0, for example, the BWP includes frequency domain resources occupied by CORESET0;
  • the intersection between the BWP active time resource and the detection time resource corresponding to the search space associated with CORESET0 is non-empty.
  • the TCI state of CORESET0 belongs to the time unit closest to the scheduled time (such as slot (time slot), of course, the time unit can also be other time units).
  • the PDSCH corresponding to the first node that needs to be received or cached corresponds to the TCI state list;
  • the TCI state of CORESET0 belongs to the time unit closest to the scheduled time (such as slot, of course, the time unit can also be other time units).
  • the first node needs to receive or cache or detect the CORESET set except CORESET0
  • the TCI state list of CORESET0 belongs to the TCI state list corresponding to the PDSCH in Initial BWP.
  • the first node is configured for the first node except Initial BWP
  • the TCI state of CORESET0 belongs to the TCI state list corresponding to the PDSCH in the BWP with the lowest BWPID in the BWP set except the Initial BWP;
  • the TCI in the CORESET0 state list belongs to the PDSCH in the BWP other than the Initial BWP or the TCI in the CORESET configuration other than COERSET0. list, when the TCI configured for PDSCH or CORESET other than COERSET0 in the Initial BWP, the TCI state of CORESET0 belongs to the PDSCH in the Initial BWP or the TCI configured for CORESET other than COERSET0.
  • PDSCH-config configuration
  • the TCI included in the -config state list such as the TCI included in the PDSCH-config corresponding to the lowest PDSCH-config-ID.
  • the predetermined time includes one of the following:
  • the TCI state information carried by the MAC-CE command carrying the TCI activated for CORESET0 can be used for the start time of CORESET0, for example, 3 ms after the MAC-CE is successfully received;
  • the predetermined moment is associated with the MAC-CE
  • the predetermined time is time 1
  • the predetermined time is time 2.
  • the TCI state list corresponding to CORESET0 is obtained through the agreed rules.
  • the TCI state list corresponding to CORESET0 may also be notified through explicit signaling. For this purpose, the following schemes are possible:
  • Solution B RRC signaling or MAC-CE signaling notifies the BWP index information corresponding to the TCI of the CORESET0 state, the TCI state of the CORESET0 belongs to the PDSCH in the BWP corresponding to the BWP index information or the TCI configured in the CORESET other than CORESET0 state list
  • RRC signaling or MAC-CE signaling notifies CORESET0's TCI state corresponding to (BWP index information, CORESET index information), CORESET0's TCI state list belongs to (BWP index information, CORESET index information) configured in CORESET corresponding to TCI state list;
  • RRC signaling or MAC-CE signaling informs the TCI of CORESET0 corresponding to (BWP index information, data channel (PDSCH-config) index information), the TCI of CORESET0 belongs to (BWP index information, PDSCH-config Index information)
  • the TCI state list configured in the corresponding CORESET;
  • the above MAC-CE command may be a MAC-CE command that activates TRESET of CORESET.
  • Solution E In the MAC-CE signaling carrying the TCI activated for CORESET0, when the CORESETID indication field indicates CORESET0, the serving cell ID and the first information are jointly encoded, or the specific ID of the serving cell ID is at least An indication field is used to indicate the first information, where the first information includes at least one of the following information: BWP index, CORESET index, PDSCH-config index, TCI-state list index, TCI of CORESET0 state belongs to the TCI corresponding to the first information -state lists. For example, when the CORESETID indication field does not indicate CORESET0, the MAC-CE command to activate TCI for CORESET does not carry the first information. When the CORESETID indication field indicates CORESET0, the MAC-CE command to activate TCI for CORESET carries the first information. ⁇ ⁇ One message.
  • the index of a quasi-co-location reference signal configuration indication information is a TCI state ID.
  • the number of TCIs of the first type in the TCI state list is greater than the fourth predetermined value, wherein the quasi-co-location reference signal and the synchronization signal corresponding to the TCIs of the first type satisfy the quasi-co-location relationship;
  • the number of TCI states included in the TCI state list is greater than the third predetermined value
  • the BWP and CORESET0 where the PDSCH or CORESET is located are located on the same component carrier (Component Carrier, CC), that is, a serving cell.
  • Component Carrier CC
  • the TCI state of CORESET0 belongs to the PDSCH or the TCI state list corresponding to the lowest CORESETID.
  • the TCI state list of CORESET0 is the PDSCH or the TCI state list corresponding to the lowest CORESETID.
  • Another implementation An example way is that the TCI state list of CORESET0 is composed of the first type TCI state in the PDSCH or the TCI state list corresponding to the lowest CORESETID.
  • another embodiment of the present invention provides an apparatus for determining a quasi-co-located reference signal, including:
  • the transmission configuration information list determination module 301 is configured to determine the first transmission configuration information list corresponding to the first control channel element
  • the transmission configuration information index information determination module 302 is configured to determine the index information in the first transmission configuration information list of the transmission configuration information activated for the first control channel element;
  • the first quasi-co-location reference signal determination module 303 is configured to determine the quasi-co-location reference signal activated by the first control channel element according to the index information and the first transmission configuration information list.
  • one transmission configuration information in the first transmission configuration information list corresponds to at least one quasi-co-located reference signal set.
  • a quasi-co-location parameter can only be associated with one reference signal in a quasi-co-location reference signal set
  • the difference set of the quasi-co-location parameter sets associated with different quasi-co-location reference signal sets is empty
  • a quasi-co-located reference signal set can only include at most two reference signals.
  • the transmission configuration information list determination module 301 is configured to implement at least one of the following ways to determine the first transmission configuration information list corresponding to the first control channel element:
  • the serving cell index information in the second control signaling and the first transmission configuration information list indication information are jointly encoded;
  • the second control signaling carries the first transmission configuration information list information
  • the serving cell index information in the second control signaling is used to indicate the first transmission configuration information list
  • the first predetermined condition includes at least one of the following: the first control channel element belongs to a predetermined set of control channel elements, the number of serving cells is less than the first predetermined value, and the serving cell configured with the predetermined set of control channel elements The number is less than the second predetermined value.
  • the first control signaling carries first transmission configuration information list information
  • the first control signaling carries bandwidth part index information
  • the first transmission configuration information list belongs to the second transmission configuration information configured in the configuration information of the first channel element in the bandwidth part corresponding to the bandwidth part index information List
  • the first control signaling carries at least one of the following: bandwidth part index information, channel element index information, and the first control channel element index information, where the first transmission configuration information list belongs to the bandwidth part index
  • the third transmission configuration information list configured in the configuration information of the second channel element corresponding to the information and the channel element index information.
  • the second channel element is the channel element corresponding to the channel element index information in the bandwidth part corresponding to the bandwidth part index information.
  • the first transmission configuration information list belonging to the third transmission configuration information list includes:
  • the quasi-co-location reference signal and the synchronization signal corresponding to the transmission configuration information in the third transmission configuration information list corresponding to the transmission configuration information in the first transmission configuration information list satisfy a quasi-co-location relationship.
  • the first control channel element or the first channel element or the second channel element satisfies at least one of the following:
  • the first control channel element and the control channel element included in the first channel element are two different control channel elements
  • control channel elements included in the first control channel element and the second channel element are two different control channel elements
  • the first control channel element or the control channel element included in the first channel element or the control channel element included in the second channel element is a downlink control channel element
  • the first control channel element or the control channel element included in the first channel element or the control channel element included in the second channel element include at least one of the following: control channel resource set, search space set, search space, candidate Control channel
  • the frequency domain bandwidth corresponding to the bandwidth part index information includes resources occupied by the first control channel element
  • the first channel element includes at least one of the following: a data channel element and a control channel element;
  • the frequency domain bandwidth where the first channel element and the first control channel element are located is different;
  • the second channel element includes at least one of the following: a data channel element and a control channel element;
  • the frequency domain bandwidth where the second channel element and the first control channel element are located is different.
  • the transmission configuration information list determination module 301 is configured to use at least one of the following methods to implement the determination of the first transmission according to a judgment result of whether the first control channel element belongs to a predetermined control channel element set List of configuration instructions:
  • the first transmission configuration information list is the transmission configuration information list configured for the first control channel element in the third control signaling , Where the third control signaling carries the first control channel element index;
  • the first transmission configuration information list belongs to the transmission configuration information list configured for the third channel element in the fourth control signaling, wherein the first Four control signaling does not carry the first control channel index;
  • the predetermined control channel element set includes at least one of the following:
  • Control channel resource set 0, search space set 0.
  • the third channel element satisfies at least one of the following characteristics:
  • the bandwidth part where the third channel element is located meets the first predetermined characteristic at a predetermined time
  • the third channel element satisfies the second predetermined characteristic at a predetermined moment
  • the list of transmission configuration information configured in the third channel element satisfies the third predetermined characteristic
  • intersection of the set of control channel elements included in the third channel element and the predetermined set of control channel elements is empty;
  • the third channel element includes at least one of the following: a data channel element and a control channel element.
  • the first predetermined feature includes at least one of the following:
  • the bandwidth part is in an activated state
  • the bandwidth part is the initial bandwidth part
  • the bandwidth part is the default bandwidth part
  • the bandwidth part and the bandwidth part where the first control channel element is located belong to one component carrier
  • the bandwidth portion includes resources occupied by the first control channel element
  • the bandwidth part is the bandwidth part with the lowest bandwidth part index in the bandwidth part set
  • the bandwidth portion includes at least one predetermined channel element, and the first control channel element is not included in the predetermined channel element.
  • the second predetermined feature includes at least one of the following:
  • the third channel element is a channel element transmitted in the time unit closest to the predetermined time
  • the third channel element is a control channel element with a predetermined control channel element index in a control channel element set other than the first control channel element in the time unit closest to the predetermined time;
  • the third channel element is a control channel element having a predetermined control channel element index in a set of control channel elements other than the first control channel element in the bandwidth portion that satisfies the first predetermined characteristic at the predetermined time ;
  • the third channel element is a control channel element with a predetermined control channel element index in a control channel element set other than the first control channel element in the time unit closest to the predetermined time;
  • the third channel element is a control channel element having a predetermined control channel element index in a bandwidth portion that satisfies the first predetermined characteristic at a predetermined time;
  • the predetermined control channel element index includes any one of the following: the lowest control channel element index and the highest control channel element index.
  • the transmission configuration information index information determination module 302 is set to:
  • the predetermined time includes one of the following:
  • the transmission configuration information carried in the second control signaling may be used for the start time of receiving the first control channel element or the time unit in which the start time is located;
  • the predetermined time is associated with the second control signaling information
  • the detection time of the first control channel element or the time unit where the detection time is located is located.
  • the second control signaling satisfies at least one of the following characteristics:
  • the serving cell index information and the first transmission configuration information list information in the second control signaling are jointly encoded;
  • the second control signaling carries first transmission configuration information list information
  • the serving cell index information in the second control signaling is used to indicate the first transmission configuration information list
  • the second control signaling is MAC-CE control signaling
  • the first predetermined condition includes at least one of the following: the first control channel element belongs to a predetermined set of control channel elements, the number of serving cells is less than the first predetermined value, and the serving cell configured with the predetermined set of control channel elements The number is less than the second predetermined value;
  • the first transmission configuration information list information includes at least one of the following information: bandwidth part index information, first control channel element index information, channel element index information, and transmission configuration information list index information.
  • the third predetermined feature includes at least one of the following:
  • the number of elements included in the transmission configuration information list configured in the predetermined channel element or the third channel element is greater than a third predetermined value
  • the number of transmission configuration information of the first type included in the transmission configuration information list configured in the predetermined channel element or the third channel element is greater than a fourth predetermined value, wherein each corresponding to the first type of transmission configuration information A quasi-co-location reference signal and a synchronization signal satisfy the quasi-co-location relationship;
  • the number of transmission configuration information of the second type included in the transmission configuration information list configured in the predetermined channel element or the third channel element is greater than a fifth predetermined value, wherein the association corresponding to the transmission configuration information of the second type
  • the quasi-co-location reference signal and the synchronization signal of the predetermined quasi-co-location parameter satisfy the quasi-co-location relationship.
  • the transmission configuration information list determination module 301 is configured to implement at least one of the following ways to implement the determination of the first transmission configuration according to the information on the number of bandwidth parts configured in addition to the initial bandwidth part list of information:
  • the first transmission configuration information list belongs to the configuration information of the fourth channel element in the initial bandwidth part
  • the first transmission configuration information list belongs to the bandwidth part set other than the initial bandwidth part having the lowest
  • the fifth transmission configuration information list configured in the configuration information of the fifth channel element in the bandwidth part of the bandwidth part index.
  • the transmission configuration information list determination module 301 is configured to implement at least one of the following ways to determine whether the transmission configuration information list is configured according to the channel element corresponding to the bandwidth portion satisfying the first predetermined characteristic To determine the first transmission configuration information list:
  • the channel element corresponding to the bandwidth part satisfying the first predetermined characteristic does not have a transmission configuration information list configured, it is determined that the first transmission configuration information list belongs to the configuration of the sixth channel element in the bandwidth part other than the initial bandwidth part
  • the sixth transmission configuration information list configured in the information
  • the channel element corresponding to the bandwidth part satisfying the first predetermined characteristic is configured with a transmission configuration information list, it is determined that the first transmission configuration information list belongs to the configuration information of the seventh channel element in the initial bandwidth part The seventh transmission configuration information list.
  • the first transmission configuration information list belongs to the Xth transmission configuration information list, where X is a value from two to seven, including:
  • the quasi-co-location reference signal and the synchronization signal corresponding to the quasi-co-location reference signal corresponding to the transmission configuration information in the first transmission configuration information list in the X-th transmission configuration information list satisfy a quasi-co-location relationship.
  • the class of quasi-co-location parameters meet at least one of the following:
  • the first-class quasi-co-location parameters include at least one of the following parameters:
  • Doppler frequency shift Doppler spread, average delay, delay spread, average gain
  • the class of quasi-common European address parameters does not include spatial reception filtering parameters.
  • control channel elements included in the first control channel element and the i-th channel element are two different control channel elements
  • control channel element included in at least one of the first control channel element and the i-th channel element includes at least one of the following: control channel resource set, search space set, search space, candidate control channel, and downlink control channel;
  • the i-th channel element includes at least one of the following: a data channel element and a control channel element;
  • the frequency domain bandwidth where the i-th channel element and the first control channel element are located is different;
  • the transmission configuration information list configured in the i-th channel element satisfies the third predetermined characteristic
  • the third predetermined feature includes at least one of the following:
  • the number of elements included in the transmission configuration information list configured in the predetermined channel element or the third channel element is greater than a third predetermined value
  • the number of transmission configuration information of the first type included in the transmission configuration information list configured in the predetermined channel element or the third channel element is greater than a fourth predetermined value, wherein each corresponding to the first type of transmission configuration information A quasi-co-location reference signal and a synchronization signal satisfy the quasi-co-location relationship;
  • the number of transmission configuration information of the second type included in the transmission configuration information list configured in the predetermined channel element or the third channel element is greater than a fifth predetermined value, wherein the association corresponding to the transmission configuration information of the second type
  • the quasi-co-location reference signal and the synchronization signal of the predetermined quasi-co-location parameter satisfy the quasi-co-location relationship.
  • the transmission configuration information index information determination module 302 is configured to use at least one of the following to implement the transmission configuration information determined to be activated for the first control channel element in the first transmission configuration information Index information in the list:
  • the index information is determined according to second control signaling, where the second control signaling includes the index information
  • the quasi-co-location reference signal of the first control channel element is a quasi-co-location reference corresponding to at least one transmission configuration information index predetermined in the first transmission configuration information list signal;
  • the second predetermined condition includes:
  • the number of transmission configuration information included in the first transmission configuration information list is greater than a seventh predetermined value.
  • the first control signaling or the second control signaling satisfies at least one of the following characteristics:
  • the first control signaling also carries element information of the first control channel
  • the second control signaling is MAC-CE control signaling
  • the first control signaling and the second control signaling are the same control signaling
  • the first control signaling is radio resource control RRC signaling.
  • the first quasi-co-location reference signal determination module 303 is set to:
  • the quasi-co-location reference signal activated by the first control channel element is determined according to the transmission configuration information activated by the first control channel element.
  • the quasi-co-located reference signal activated by the first control channel element corresponds to at least two synchronization signal blocks
  • the device further includes:
  • the detection timing determination module 304 is configured to determine the detection timing of the first control channel element according to at least two synchronization signal blocks corresponding to the quasi co-located reference signal activated by the first control channel element;
  • the first control channel element includes at least one of the following:
  • Control channel resource set 0, search space set 0.
  • the implementation process of the foregoing apparatus for determining a quasi-co-located reference signal is the same as the implementation process of the method for determining a quasi-co-located reference signal in the foregoing embodiment, and details are not described herein again.
  • Another embodiment of the present invention provides an apparatus for determining a quasi-co-located reference signal, which includes a processor and a computer-readable storage medium.
  • the computer-readable storage medium stores instructions. When the instructions are processed by the processor During execution, any of the above methods for determining quasi-co-located reference signals are implemented.
  • Another embodiment of the present invention provides a computer-readable storage medium on which a computer program is stored, and when the computer program is executed by a processor, any of the steps of the method for determining a quasi-co-located reference signal described above is implemented.
  • the standard does not limit the frequency domain resource where the target reference signal is located and the frequency domain resource where the target quasi-co-location reference signal is located, resulting in inaccurate acquisition of a class of quasi-co-location parameters of the target reference signal, and the channel corresponding to the target reference signal The reception of at least one of the sum signals is inaccurate, thereby reducing the spectral efficiency.
  • the above solutions are proposed for the above problems, which can effectively improve the accuracy of acquiring a class of quasi-co-location parameters of the target reference signal and improve the spectral efficiency.
  • There may be some configurations for the reference signal information in the standard and these configurations will make the system unable to work normally. Therefore, this article provides some solutions to enable the system to run normally.
  • another embodiment of the present invention provides a method for determining a quasi-co-located reference signal, including:
  • Step 400 When the third predetermined condition is satisfied, according to the set of the first time unit including the control channel element satisfying the fourth predetermined characteristic, in the second time unit closest to at least one of the channel and the signal corresponding to the reference signal , The quasi-co-location reference signal of the control channel element satisfying the fifth predetermined characteristic determines the quasi-co-location reference signal of the reference signal.
  • the method further includes:
  • Step 401 Transmit a reference signal according to the quasi-co-location reference signal of the reference signal.
  • the fourth predetermined feature includes at least one of the following:
  • control channel element is not CORESET0;
  • the control channel element includes a control channel element with an index of 0;
  • At least one of the channel and the signal corresponding to the control channel element and the reference signal is in the same frequency domain bandwidth
  • the sixth predetermined characteristic is satisfied between the control channel element and the active bandwidth portion in the first time unit
  • the first time unit meeting the fourth predetermined condition includes at least one of the following:
  • the active bandwidth portion in the first time unit is a predetermined bandwidth portion, wherein the predetermined bandwidth portion includes one of the following: a bandwidth portion with an index of 0, a bandwidth portion with an index of 1, and a control channel with an index of 0
  • the transmission configuration information list corresponding to the element belongs to the transmission configuration information list corresponding to the channel element included in the predetermined bandwidth part;
  • the bandwidth part in the activated state in the first time unit includes frequency domain resources corresponding to the initial bandwidth part
  • the sixth predetermined feature is satisfied between the active bandwidth part and the control channel element with index 0 in the first time unit.
  • control channel element and the active bandwidth portion in the first time unit satisfy at least one of the following sixth predetermined characteristics as follows:
  • the configuration information of the bandwidth part includes configuration information of the control channel element
  • the configuration information of the bandwidth part includes configuration information of at least one search space set, wherein the search space set is associated with the control channel element, that is, the frequency domain resource of the search space is occupied by the control channel element Frequency domain resources, the candidate control channels in the search space set are distributed among the frequency domain resources determined by the control channel elements;
  • the bandwidth part includes the frequency domain resource where the control channel element is located
  • the bandwidth part includes frequency domain resources corresponding to the first bandwidth part, wherein the configuration information of the first bandwidth part includes configuration information of the control channel element;
  • the intersection between the time resource in which the bandwidth part is activated and the detection time resource of the control channel element is not empty, wherein the detection time of the control channel element is at least one search space set associated with the control channel element Union of detection times.
  • control channel element satisfying the fifth predetermined characteristic includes:
  • control channel element having the lowest control channel element index in the set of control channel elements satisfying the fourth predetermined characteristic in the second time unit closest to at least one of the channel corresponding to the reference signal and the signal.
  • At least one of the channel and the signal corresponding to the reference signal satisfying the third predetermined condition includes at least one of the following:
  • the sixth frequency domain resource where at least one of the channel corresponding to the reference signal and the control channel where the signal is located and the fifth frequency domain resource where the at least one of the channel corresponding to the reference signal is located do not satisfy the fifth predetermined Conditions, and at least one of the channel corresponding to the reference signal and the scheduling signal does not include indication information for transmitting configuration information;
  • the twelfth frequency domain resource where the quasi-co-located reference signal associated with a class of quasi-co-located parameters of the control channel element satisfying the fifth predetermined feature is associated with the reference signal and at least one of the channels and signals
  • the frequency domain resource meets the fifth predetermined condition
  • the fifth frequency domain resource where at least one of them is located does not satisfy the fifth predetermined condition
  • the communication node receives at least one quasi-co-location reference signal including associated spatial reception filtering parameters in the transmission configuration indication information.
  • the predetermined threshold is obtained according to at least one of the following information:
  • the subcarrier interval used in the calculation of the time interval used in the calculation of the time interval.
  • the time interval is obtained according to at least one of the following information:
  • the subcarrier interval used in the calculation of the predetermined threshold used in the calculation of the predetermined threshold.
  • At least one of the channel and the signal corresponding to the reference signal satisfies one of the following:
  • the fifth predetermined condition is satisfied between the fifth frequency domain resource where at least one of the channel and the signal corresponding to the reference signal is located and the ninth frequency domain resource where the second signal is located, wherein the second signal and the reference Between signals, a class of quasi-co-location parameters satisfy the quasi-co-location relationship;
  • the channel and the signal corresponding to the reference signal and the reference signal are associated with a quasi-co-located reference signal associated with a class of quasi-co-location parameters where the frequency domain bandwidth is different, at least one of the channel and signal corresponding to the reference signal is located
  • the fifth frequency domain resource and the eighth frequency domain resource where the quasi-co-located reference signal associated with a type of quasi-co-location parameter associated with the reference signal meets the fifth predetermined condition;
  • the fifth frequency domain resource and the first The tenth frequency domain resource where the two signals are located meets the fifth predetermined condition, where the quasi-co-location reference signal of the second signal and the reference signal satisfies the quasi-co-location relationship with respect to the first-class quasi-co-location parameters;
  • the frequency domain bandwidth is different, and the channel and signal
  • the fifth frequency domain resource where at least one is located and the eighth frequency domain resource where the quasi-co-located reference signal associated with a type of quasi-co-location parameter associated with the reference signal does not satisfy the fifth predetermined condition, the third predetermined condition is satisfied ;
  • the third predetermined condition is met, where the quasi-co-location reference signal of the second signal and the reference signal is related to a class of quasi-co-location parameters Meet the quasi-co-location relationship.
  • the frequency domain span of the tracking reference signal is greater than or equal to the frequency domain span Y, wherein the frequency domain span Y is obtained according to one of the following ways:
  • the Y is min (52PRB, the channel corresponding to the reference signal and the frequency domain span corresponding to at least one of the signals), and min represents the minimum value;
  • Y is the frequency domain span corresponding to at least one of the channel corresponding to the reference signal and the signal;
  • the channel corresponding to the reference signal and the frequency domain span corresponding to at least one of the signals include at least one of the following:
  • the first period set includes the following period: 10 milliseconds.
  • the two frequency domain resources satisfying the fifth predetermined condition include at least one of the following:
  • the difference between the two frequency domain resources is empty, that is, the two frequency domain resources are the same frequency domain resource.
  • the frequency domain resource is CC / BWP
  • Corresponding CC2 / BWP2 is the same BWP.
  • the set of frequency domain resource blocks corresponding to one frequency domain resource and the set of frequency domain resource blocks corresponding to another frequency domain resource are the same
  • the frequency domain resource is the span corresponding to the set of frequency domain resource blocks
  • the span corresponding to the set of frequency domain resource blocks corresponding to one frequency domain resource and the span corresponding to the set of frequency domain resource blocks corresponding to another frequency domain resource are identical;
  • the difference between the frequency domain spans included in the two frequency domain resources is less than the predetermined value
  • One frequency domain resource belongs to another frequency domain resource
  • intersection of two frequency domain resources is not empty
  • the subcarrier spacing of the two frequency domain resources is the same.
  • a type of quasi co-location parameter satisfies at least one of the following:
  • a class of quasi-co-location parameters includes at least one of the following parameters:
  • Doppler frequency shift Doppler spread, average delay, delay spread, average gain
  • the class of quasi-co-location parameters does not include spatial reception filtering parameters.
  • the frequency domain resources where at least one of the channel sum, signal and control channel elements are located include at least one of the following:
  • a component carrier where at least one of the channel sum, signal and control channel elements is located;
  • the frequency domain span corresponding to the set of frequency domain resource blocks occupied by at least one of the channel sum, signal and control channel elements.
  • the method further includes:
  • the quasi-co-location of the PDSCH / AP-CSI-RS is based on the quasi co-location reference of the CORESET that satisfies the fifth predetermined characteristic in the second time unit that is closest to the PDSCH / AP-CSI-RS in the set of the first time unit that includes the CORESET satisfying the fourth predetermined characteristic
  • the signal set is acquired, and the PDSCH / AP-CSI-RS is transmitted according to the quasi-co-location reference signal of the PDSCH / AP-CSI-RS.
  • the fourth predetermined feature includes at least one of the following:
  • Feature 1 The intersection of CORESET and CORESET with index 0 is empty, that is, the CORESET is not CORESET0;
  • Feature 2 The channel and / or signal corresponding to the CORESET and the reference signal are in the same frequency domain bandwidth; for example, at least one of the CC and BWP where at least one of the CORESET and the channel and signal are the same;
  • Feature three The sixth predetermined feature is satisfied between CORESET and the active bandwidth part in the first time unit;
  • a fifth predetermined condition is satisfied between the first frequency domain resource where the control channel element is located and the second frequency domain resource corresponding to the active bandwidth portion in the first time unit;
  • Feature 5 The third frequency domain resource where the quasi-co-location reference signal associated with a class of quasi-co-location parameters associated with the control channel element and the second frequency-domain resource corresponding to the active bandwidth portion of the time unit is satisfied A fifth predetermined condition, wherein the second frequency domain resource corresponding to the bandwidth part is the PRB set included in the bandwidth part.
  • the quasi-co-location reference signal of the control channel element is a quasi-co-location reference signal associated with a class of quasi-co-location parameters associated with the control channel element.
  • the PDSCH / AP-CSI-RS meeting the third predetermined condition includes at least one of the following:
  • Condition 1 the time interval between scheduling the PDCCH of the PDSCH / AP-CSI-RS and the PDSCH / AP-CSI-RS is less than a predetermined threshold
  • Condition 2 the fourth frequency domain resource where the quasi-co-location reference signal associated with a class of quasi-co-location parameters associated with the PDCCH of the PDSCH / AP-CSI-RS is scheduled and the fifth where the PDSCH / AP-CSI-RS is located
  • the frequency domain resource does not satisfy the fifth predetermined condition, and the PDCCH does not include the indication information of the quasi-co-location reference signal of PDSCH / AP-CSI-RS, such as TCI information;
  • Condition 3 The sixth frequency domain resource where the CORESET where the PDSCH / AP-CSI-RS is located and the fifth frequency domain resource where the PDSCH / AP-CSI-RS are located do not satisfy the fifth predetermined condition, PDCCH
  • the indication information of the quasi-co-location reference signal of PDSCH / AP-CSI-RS is not included, such as TCI information;
  • Condition 4 The seventh frequency domain resource where the quasi-co-located reference signal associated with a type of quasi-co-location parameter associated with the PDSCH / AP-CSI-RS indicated in the TCI of the PDCCH of the PDSCH / AP-CSI-RS is scheduled and the The fifth frequency domain resource where at least one of the channel and the signal corresponding to the reference signal does not satisfy the fifth predetermined condition.
  • the above-mentioned quasi-co-location parameters include at least one of the following:
  • Doppler shift Doppler spread, average delay, delay spread, average gain
  • a class of quasi-co-location parameters does not include spatial reception parameters.
  • the configuration information of the bandwidth part includes the configuration information of the CORESET
  • the configuration information of the bandwidth part includes configuration information of at least one search space set, wherein the search space set is associated with the CORESET, that is, the frequency domain resource of the search space is the frequency domain resource occupied by the CORESET,
  • the candidate control channels in the search space set are distributed among the frequency domain resources determined by CORESET;
  • the bandwidth part includes the frequency domain resource where the CORESET is located;
  • the bandwidth part includes frequency domain resources corresponding to the first bandwidth part, wherein the configuration information of the first bandwidth part includes configuration information of the CORESET;
  • the intersection between the time resource in which the bandwidth part is active and the CORESET detection time resource is not empty, wherein the CORESET detection time is a union of the detection times of at least one search space set associated with the CORESET.
  • the two frequency domain resources satisfying the fifth predetermined condition include at least one of the following:
  • the difference between the two frequency domain resources is empty
  • the difference between the frequency domain spans included in the two frequency domain resources is less than the predetermined value
  • One frequency domain resource belongs to another frequency domain resource
  • intersection of two frequency domain resources is not empty
  • the subcarrier spacing of the two frequency domain resources is the same.
  • the communication node When there is no CORESET satisfying the fourth predetermined characteristic, the communication node does not want to schedule the time interval between PDSCH / AP-CSI-RS to be less than a predetermined threshold. For example, if there is no CORESET configured in the CC / BWP where the PDSCH / AP-CSI-RS is located or no CORESET satisfying the fourth predetermined characteristic, the time interval between the PDCCH and the PDSCH cannot be less than a predetermined threshold.
  • the predetermined threshold is obtained according to at least one of the following information:
  • the proportional relationship between the subcarrier interval corresponding to the capability information reported by the communication node and the subcarrier interval corresponding to at least one of the channel and the signal for example, the terminal reports that it uses the TCI information indicated by the PDCCH for PDSCH / AP-CSI-
  • the predetermined threshold is 7 time-domain symbols.
  • the predetermined threshold is 28 time-domain symbols, that is, communication
  • the absolute time lengths corresponding to the number of time domain symbols corresponding to different subcarrier intervals are different, so that when the subcarrier interval of the BWP where the PDCCH is located is 60KHz, the predetermined threshold is 7 time domain symbols.
  • the predetermined threshold is 28 time domain symbols, where PDCCH is the PDCCH scheduling PDSCH, or the subcarrier spacing of the BWP where the CORESET that satisfies the fifth predetermined characteristic is At 60 KHz, the predetermined threshold is 7 time-domain symbols.
  • the predetermined threshold is 28 time-domain symbols;
  • the subcarrier interval used in the calculation of the time interval used in the calculation of the time interval.
  • the subcarrier spacing of the BWP where the PDCCH and PDSCH are located is different.
  • the subcarrier spacing of the BWP1 where the PDCCH is located is 60 kHz
  • the subcarrier spacing of the BWP2 where the PDSCH is located is 120 KHz.
  • slot, the time interval between the PDCCH and PDSCH is obtained according to at least one of the following ways:
  • Method 1 The number of time-domain symbols corresponding to the time interval is obtained by referring to the subcarrier interval of the BWP where the PDCCH is located, as shown in FIG. 5, the time interval between the PDCCH and the PDSCH at this time is Among them, N GAP is the time interval.
  • the acquisition parameter of the number of time domain symbols corresponding to the time interval includes the ratio information of the subcarrier interval corresponding to the BWP where the PDCCH is located and the subcarrier interval corresponding to the BWP where the PDSCH / AP-CSI-RS is located, as shown in FIG. 5,
  • the subcarrier interval used in the time interval is obtained by the minimum / maximum of the subcarrier interval of BWP1 where the PDCCH is located and the subcarrier interval of BWP2 where the PDSCH is located;
  • N PDCCH and BWP1 represent the number of symbols between the PDCCH and PDSCH / AP-CSI-RS
  • the BWP1 where the PDCCH is located is referenced to the BWP1 subcarrier interval
  • N PDSCH and BWP2 represent the PDCCH and BWP2.
  • the number of symbols included in BWP2 where PDSCH / AP-CSI-RS is located with reference to the subcarrier interval of BWP2.
  • the predetermined threshold obtains the capability information reported by the communication node corresponding to the subcarrier interval according to the subcarrier interval used in the time interval, for example, the time interval calculates the time domain When the subcarrier interval used when the number of symbols is 60KHz, the predetermined threshold is 7 time domain symbols, and when the subcarrier interval used when calculating the number of time domain symbols in the time interval is 120KHz, the predetermined threshold It is 28 time domain symbols.
  • the predetermined threshold is calculated using one of ⁇ 60kHz, 120kHz ⁇ , and the time interval is calculated using the subcarrier interval of the predetermined threshold get.
  • the subcarrier spacing of the BWP where the PDCCH and PDSCH are located is 15 kHz
  • the predetermined threshold adopts the predetermined threshold corresponding to 60 KHz in the capability reporting of the communication node, which is 7 time domain symbols. If the subcarrier spacing between PDCCH and PDSCH is 15KHz 10 time-domain symbols, converted to 60KHz sub-carrier interval time-domain symbol number is
  • the time interval between the PDCCH and the PDSCH / AP-CSI-RS cannot be greater than or equal to a predetermined threshold, that is, between the PDCCH and the PDSCH / AP-CSI-RS
  • the time interval can only be less than the predetermined threshold, or when the PDCCH meets the fourth predetermined condition, the communication node does not want to receive the scheduling that the time interval between the PDCCH and the PDSCH / AP-CSI-RS is greater than or equal to the predetermined threshold, or when When the time interval between the PDCCH and the PDSCH / AP-CSI-RS is greater than a predetermined threshold, the PDCCH cannot satisfy the sixth predetermined condition, and the PDCCH is the PDSCH scheduling the PDSCH / AP-CSI-RS.
  • the sixth predetermined condition includes at least one of the quasi-co-location reference signal indication information (such as TCI information) that does not include the PDSCH / AP-CSI-RS in the PDCCH and at least one of the following conditions:
  • the fourth frequency domain resource where the quasi-co-located reference signal associated with a type of quasi-co-location parameter associated with the PDCCH and the fifth frequency-domain resource where the PDSCH / AP-CSI-RS are located do not satisfy the fifth predetermined condition;
  • the sixth frequency domain resource where the CORESET where the PDCCH is located and the fifth frequency domain resource where the PDSCH / AP-CSI-RS is located do not satisfy the fifth predetermined condition
  • None of the transmission configuration indication information includes quasi-co-located reference signals associated with spatial reception filtering parameters
  • None of the transmission configuration indication information in a frequency domain bandwidth or a frequency domain bandwidth group includes a quasi-co-located reference signal with associated spatial reception filtering parameters.
  • the first-class quasi-co-location parameters include at least one of the following parameters:
  • Doppler shift Doppler spread, average delay, delay spread, average gain
  • the quasi-co-location parameters of the first category do not include spatial reception parameters.
  • the time interval between the PDCCH and the PDSCH / AP-CSI-RS is greater than a predetermined threshold and the PDCCH does not include quasi-co-location reference signal indication information (such as TCI information) of the PDSCH / AP-CSI-RS, the following needs to be satisfied: At least one of the conditions:
  • the first frequency domain resource where the quasi-co-located reference signal associated with a class of quasi-co-location parameters associated with the PDCCH and the second frequency-domain resource where the PDSCH / AP-CSI-RS are located meets the fifth predetermined condition
  • the first frequency domain resource where the CORESET where the PDCCH is located and the second frequency domain resource where the PDSCH / AP-CSI-RS is located meet the fifth predetermined condition
  • None of the transmission configuration indication information includes quasi-co-located reference signals associated with spatial reception filtering parameters
  • None of the transmission configuration indication information in a frequency domain bandwidth or a frequency domain bandwidth group includes a quasi-co-located reference signal with associated spatial reception filtering parameters.
  • the two frequency domain resources satisfying the fifth predetermined condition include at least one of the following:
  • the difference between the two frequency domain resources is empty, that is, the two frequency domain resources are the same frequency domain resource.
  • the frequency domain resource is CC / BWP
  • Corresponding CC2 / BWP2 is the same BWP.
  • the set of frequency domain resource blocks corresponding to one frequency domain resource and the set of frequency domain resource blocks corresponding to another frequency domain resource are the same
  • the frequency domain resource is the span corresponding to the set of frequency domain resource blocks
  • the span corresponding to the set of frequency domain resource blocks corresponding to one frequency domain resource and the span corresponding to the set of frequency domain resource blocks corresponding to another frequency domain resource are identical;
  • the difference between the frequency domain spans included in the two frequency domain resources is less than the predetermined value
  • One frequency domain resource belongs to another frequency domain resource
  • intersection of two frequency domain resources is not empty
  • the subcarrier spacing of the two frequency domain resources is the same.
  • the fifth predetermined condition is satisfied between the fifth frequency domain resource where at least one of the channel and the signal corresponding to the reference signal is located and the ninth frequency domain resource where the second signal is located, wherein the second signal and the reference Between signals, a class of quasi-co-location parameters satisfy the quasi-co-location relationship;
  • the channel and the signal corresponding to the reference signal and the reference signal are associated with a quasi-co-located reference signal associated with a class of quasi-co-located parameters where the frequency domain bandwidth is different
  • the channel and signal corresponding to the reference signal At least one of the fifth frequency domain resources and the eighth frequency domain resource of the quasi co-located reference signal associated with the reference signal associated with a type of quasi-co-located reference signal satisfying a fifth predetermined condition; wherein the frequency domain bandwidth includes CC And at least one of BWP;
  • the fifth frequency domain resource and the location where the at least one of the channel and signal corresponding to the reference signal are located.
  • the ninth frequency domain resource where the second signal is located satisfies a fifth predetermined condition, where the quasi-co-location reference signal of the second signal and the reference signal satisfies a quasi-co-location relationship with respect to a class of quasi-co-location parameters.
  • the reference signal and the reference signal are associated with a class of quasi-co-location parameters.
  • the quasi-co-location reference signal satisfies the quasi-co-location relationship with respect to the predetermined class of quasi-co-location parameters;
  • the second signal and the reference signal are associated with a class of quasi-co-location parameter quasi-co-location reference signals that satisfy a quasi-co-location relationship with respect to a predetermined class of quasi-co-location parameters.
  • the predetermined quasi-co-location parameters satisfy at least one of the following:
  • the predetermined quasi-co-location parameters include at least one of the following parameters: Doppler shift (Doppler frequency shift), Doppler spread (Doppler spread), average delay (average delay), delay spread (delay spread);
  • the predetermined quasi-co-location parameters do not include spatial reception parameters.
  • the quasi-co-location reference signal of the reference signal includes at least one of the following: demodulation reference signal, measurement reference signal, phase tracking reference signal (Phase Tracking Reference Signal, PTRS, measurement reference signal for tracking (CSI-RS for Tracking, TRS ,), The channel corresponding to the demodulation reference signal.
  • At least one of the quasi co-located reference signal and the second signal includes at least one of the following: a measurement reference signal, a measurement reference signal (CSI-RS for Tracking, TRS) for tracking, and a synchronization signal.
  • a measurement reference signal CSI-RS for Tracking, TRS
  • TRS measurement reference signal
  • the two frequency domain resources satisfying the fifth predetermined condition include at least one of the following:
  • the difference between the two frequency domain resources is empty, that is, the two frequency domain resources are the same frequency domain resource.
  • the frequency domain resource is CC / BWP
  • Corresponding CC2 / BWP2 is the same BWP.
  • the set of frequency domain resource blocks corresponding to one frequency domain resource and the set of frequency domain resource blocks corresponding to another frequency domain resource are the same
  • the frequency domain resource is the span corresponding to the set of frequency domain resource blocks
  • the span corresponding to the set of frequency domain resource blocks corresponding to one frequency domain resource and the span corresponding to the set of frequency domain resource blocks corresponding to another frequency domain resource are identical;
  • the difference between the frequency domain spans included in the two frequency domain resources is less than the predetermined value
  • One frequency domain resource belongs to another frequency domain resource
  • intersection of two frequency domain resources is not empty
  • the subcarrier spacing of the two frequency domain resources is the same.
  • the number of physical resource blocks (PRBs) occupied by TRS is obtained according to at least one of the following methods:
  • the number of PRBs occupied by TRS needs to satisfy: min (52, N);
  • the number of PRBs occupied by TRS is N;
  • N is the number of PRBs included in the BWP where the reference signal is located, or the number of PRBs included in the BWP1 BWP1 includes the frequency domain resource where the reference signal is located.
  • the above parameter u is the CSI-RS subcarrier spacing parameter, that is, the CSI-RS subcarrier spacing is 2 u ⁇ 15 kilohertz (kHz).
  • the number of PRBs occupied by TRS needs to satisfy the following characteristics:
  • the number of PRBs occupied by TRS is not less than min (52, N);
  • the number of PRBs occupied by TRS is not less than N;
  • N is the number of PRBs included in the BWP where the target signal is located, or the number of PRBs included in the BWP1 BWP1 includes the frequency domain resource where the target signal is located.
  • the above parameter u is the CSI-RS subcarrier spacing parameter, that is, the CSI-RS subcarrier spacing is 2 u ⁇ 15 kilohertz (kHz).
  • the terminal does not want to receive the following configuration information: the time interval between the PDCCH and the PDSCH / AP-CSI-RS is less than a predetermined threshold, the frequency domain bandwidth index where the PDCCH is located, and where the PDSCH / AP-CSI-RS is located Has different frequency domain bandwidth indexes.
  • the frequency domain bandwidth is at least one of CC and BWP, and the PDCCH is a PDCCH scheduling the PDSCH / AP-CSI-RS.
  • the time interval between the PDCCH and the PDSCH / AP-CSI-RS is greater than or equal to a predetermined threshold, that is, when the BWP / CC is switched, the PDCCH and the PDSCH
  • the time interval between / AP-CSI-RS cannot be less than a predetermined threshold.
  • the PDSCH / AP -The TCI information of the CSI-RS is obtained according to the information indicated by the DCI, regardless of the relationship between the time interval between PDCCH and PDSCH and a predetermined threshold, such as the time interval between PDCCH and PDSCH is less than the predetermined threshold, or PDCCH and PDSCH The time interval between them is greater than or equal to the predetermined threshold, and the TCI information of the PDSCH / AP-CSI-RS is obtained according to the information indicated by the DCI.
  • the PDSCH / AP- can be obtained according to one of the following methods: CSI-RS TCI information, regardless of the relationship between the time interval between PDCCH and PDSCH and a predetermined threshold:
  • Method 1 Acquire according to the quasi-co-location reference signal of the PDCCH.
  • Method 2 According to the SSB selected by the terminal during initial access.
  • mode 1 or mode 2 can be an explicit indication from the base station
  • the frequency domain span information of the frequency domain resource where the PDSCH / AP-CSI-RS is located can be determined according to the frequency domain span information of the frequency domain resource where the PDSCH / AP-CSI-RS is located. For example, if the frequency domain span is very small, method 2 is used; when the frequency domain span is large, method 1 is used;
  • RRC is configured with TCI information for PDCCH / PDSCH.
  • type-D quasi-co-location parameters are spatial reception parameters
  • PDCCH is the quasi-co-location reference signal for scheduling PDCCH / AP-CSI-RS
  • the TCI information of PDSCH / AP-CSI-RS is PDSCH / AP-CSI-RS Quasi-co-site reference signal information.
  • the TCI configuration information for a frequency domain bandwidth / frequency domain bandwidth group received by the terminal does not include the quasi-co-location reference signal associated with the type-D quasi-co-location parameter
  • the PDCCH indication includes
  • the TCI indicates information
  • the TCI information of the PDSCH / AP-CSI-RS is obtained according to the information indicated by the DCI, regardless of the relationship between the time interval between the PDCCH and the PDSCH and a predetermined threshold.
  • the terminal When the terminal receives the TCI configuration information for a frequency domain bandwidth / frequency domain bandwidth group, the TCI configuration information does not include the quasi-co-location reference signal associated with the type-D quasi-co-location parameter, and the PDCCH indication does not include the TCI
  • the TCI information of the PDSCH / AP-CSI-RS is obtained according to the quasi-co-location reference signal of the PDCCH, regardless of the relationship between the time interval between the PDCCH and the PDSCH and a predetermined threshold.
  • a frequency domain bandwidth includes at least one of the following: a CC and a BWP.
  • one frequency domain bandwidth group belongs to one Intra-Band.
  • the length of the time interval corresponding to capability information one reported by the terminal is greater than the length of the time interval corresponding to capability information two.
  • capability information 1 indicates the minimum time interval from PDCCH to PDSCH / AP-CSI-RS during BWP handover
  • capability information 2 indicates the terminal needs to use the TCI information indicated by the PDCCH for PDSCH / AP-CSI-RS reception The minimum time interval.
  • the time interval corresponding to the capability information is calculated in units of seconds, not in units of the number of time-domain symbols.
  • the quasi-co-location reference signal of the PDSCH / AP-CSI-RS is obtained according to the quasi-co-location reference signal of the PDCCH, where the PDCCH schedules the PDSCH / AP-CSI-RS Quasi-co-site reference signal.
  • the sixth predetermined condition includes at least one of the following:
  • the PDCCH does not include quasi-co-location reference signal indication information
  • a time interval between the PDCCH and the PDSCH / AP-CSI-RS is greater than or equal to a predetermined threshold
  • None of the TCI configuration information received by the terminal includes the quasi-co-location reference signal associated with the type-D quasi-co-location parameter;
  • the TCI configuration information for a frequency domain bandwidth / frequency domain bandwidth group does not include a quasi-co-location reference signal associated with a type-D quasi-co-location parameter.
  • a CSI-RS resource ID (resource identifier) in a CC can be configured in more than one resource setting, each resource setting is configured with a BWP-ID, and a CSI-RS resource needs to be reserved
  • the BWP corresponding to the BWP-ID in multiple resources where the ID is located meets the predetermined condition, for example, the BWP-ID in multiple resources where the one CSI-RS resource is located is the same.
  • One resource setting includes at least one resource set, and each resource set includes at least one resource.
  • the above reservation is only suitable for CSI-RS for Tracking, that is, TRS reference signal.
  • one CSI-RS resource ID in one CC may be configured in more than one resource setting, and one BWP-ID is configured in each resource setting.
  • the quasi-co-location reference signal (CSI-RS resource ID, CC index information, BWP index information) is configured, and the BWP index information (that is, BWP-ID) corresponding to the CSI-RS resource ID configured in TCI is agreed Information) is the same as the BWP-ID configured in one of the resources in at least one resource where the CSI-RS resource ID is located.
  • the above reservation is only suitable for CSI-RS for Tracking, that is, TRS reference signal.
  • CORESET0 / search space 0 is configured for RRC control signaling of the quasi-colocated reference signal set, or CORESET0 / search space is activated for CORESET0 in the MAC-CE control signaling of the quasi-colocated reference signal set.
  • More than one SSB index information is configured, one SSB index information corresponds to one cycle detection timing of CORESET0 / search space 0, and the terminal obtains more than one cycle detection timing of CORESET0 / search space according to the more than one SSB index information.
  • the terminal detects CORESET0 / search space 0 in more than one cycle detection timing.
  • the base station When the quasi-co-location reference signal of PDSCH / AP-CSI-RS is obtained according to the quasi-co-location reference signal of CORESET0 / search space 0, the base station needs to notify or agree with the terminal that there is more than one SSB corresponding to CORESET0 / search space 0 index Which one or several of the (index) to get.
  • One SSB index corresponds to one SS / PBCHB (Synchronization Signal / Physical Broadcast Channel Channel Block, synchronization signal / physical broadcast channel block).
  • SS / PBCHB Synchronization Signal / Physical Broadcast Channel Channel Block, synchronization signal / physical broadcast channel block.
  • maxNumberActiveTCI-PerBWP to indicate the maximum number of TCI activated by the terminal for control and data in a BWP of a CC, where maxNumberActiveTCI-PerBWP belongs to ⁇ 1,2,4,8 ⁇ , when When the terminal reports that maxNumberActiveTCI-PerBWP is 1, the maximum number of TCIs activated for control and data in one BWP of one CC is 1. The number of TCIs controlled and activated by the base station for a BWP of a CC for a terminal cannot exceed the terminal's reporting capability.
  • the base station is a BWP of a terminal for a CC and the number of TCIs for its control and data activation does not include at least one of the following TCIs, or when maxNumberActiveTCI-PerBWP reported by the terminal is 1, the base station is a BWP of the terminal for a CC
  • the number of TCIs for control and data activation does not include at least one of the following TCIs:
  • TCI1 TCI state of COERSET0, for example, the base station configures a TCI state for CORESET0 through signaling information;
  • TCI2 The quasi-co-location reference signal of COERSET0, for example, the quasi-co-location reference signal of CORESET0 is based on the SSB selected by the terminal in random access, or the base station configures an SSB index for CORESET0 through signaling, instead of the TCI state index, It is not that when the base station configures a TCI state for CORESET0 through signaling, the quasi-co-location reference signal of CORESET0 is not counted in the number of activated TCI;
  • TCI3 quasi-co-location reference signal of CORESET-BFR (Beam Failure and Recovery).
  • the quasi-co-location reference signal of CORESET-BFR is the reference signal reported by the terminal in the beam failure request. This quasi-co-location reference signal Not counted in the number of active TCI.
  • Solution 1 After detecting the failure of the beam and before receiving the reconfiguration of the PDCCH by the base station, the number of activated TCIs is two, and the number of activated TCIs in other time periods is one;
  • Scenario 4 When the beam failure is detected and before the scheduled time to receive the reconfiguration of the PDCCH by the base station, all CORESET / all proprietary CORESET quasi-co-location reference signals are updated to new reference signals reported by the terminal.
  • another embodiment of the present invention provides an apparatus for determining a quasi-co-location reference signal, including:
  • the second quasi-co-located reference signal determination module 601 is configured to, when at least one of the channel corresponding to the reference signal and the signal satisfies the third predetermined condition, according to the set of the first time unit including the control channel element satisfying the fourth predetermined characteristic In the second time unit closest to at least one of the channel and the signal corresponding to the reference signal, the quasi-co-located reference signal of the control channel element satisfying the fifth predetermined characteristic determines the quasi-co-located reference signal of the reference signal .
  • it further includes:
  • the transmission module 602 is configured to transmit the reference signal according to the quasi-co-location reference signal of the reference signal.
  • the fourth predetermined feature includes at least one of the following:
  • control channel element is not CORESET0;
  • the control channel element includes a control channel element with an index of 0;
  • At least one of the channel and the signal corresponding to the control channel element and the reference signal is in the same frequency domain bandwidth
  • the sixth predetermined characteristic is satisfied between the control channel element and the active bandwidth portion in the first time unit
  • the first time unit meeting the fourth predetermined condition includes at least one of the following:
  • the active bandwidth portion in the first time unit is a predetermined bandwidth portion, wherein the predetermined bandwidth portion includes one of the following: a bandwidth portion with an index of 0, a bandwidth portion with an index of 1, and a control channel with an index of 0
  • the transmission configuration information list corresponding to the element belongs to the transmission configuration information list corresponding to the channel element included in the predetermined bandwidth part;
  • the bandwidth part in the activated state in the first time unit includes frequency domain resources corresponding to the initial bandwidth part
  • the sixth predetermined feature is satisfied between the active bandwidth part and the control channel element with index 0 in the first time unit.
  • satisfying the sixth predetermined characteristic between the control channel element and the active bandwidth portion in the first time unit includes at least one of the following:
  • the configuration information of the bandwidth part includes configuration information of the control channel element
  • the configuration information of the bandwidth part includes configuration information of at least one search space set, wherein the search space set is associated with the control channel element, that is, the frequency domain resource of the search space is occupied by the control channel element Frequency domain resources, the candidate control channels in the search space set are distributed among the frequency domain resources determined by the control channel elements;
  • the bandwidth part includes the frequency domain resource where the control channel element is located
  • the bandwidth part includes frequency domain resources corresponding to the first bandwidth part, wherein the configuration information of the first bandwidth part includes configuration information of the control channel element;
  • the intersection between the time resource in which the bandwidth part is activated and the detection time resource of the control channel element is not empty, wherein the detection time of the control channel element is at least one search space set associated with the control channel element Union of detection times.
  • control channel element satisfying the fifth predetermined characteristic includes:
  • control channel element having the lowest control channel element index in the set of control channel elements satisfying the fourth predetermined characteristic in the second time unit closest to at least one of the channel corresponding to the reference signal and the signal.
  • At least one of the channel and the signal corresponding to the reference signal satisfying the third predetermined condition includes at least one of the following:
  • the sixth frequency domain resource where at least one of the channel corresponding to the reference signal and the control channel where the signal is located and the fifth frequency domain resource where the at least one of the channel corresponding to the reference signal is located do not satisfy the fifth predetermined Conditions, and at least one of the channel corresponding to the reference signal and the scheduling signal does not include indication information for transmitting configuration information;
  • the twelfth frequency domain resource where the quasi-co-located reference signal associated with a class of quasi-co-located parameters of the control channel element satisfying the fifth predetermined feature is associated with the reference signal and at least one of the channels and signals
  • the frequency domain resource meets the fifth predetermined condition
  • the fifth frequency domain resource where at least one of them is located does not satisfy the fifth predetermined condition
  • the communication node receives at least one quasi-co-location reference signal including associated spatial reception filtering parameters in the transmission configuration indication information.
  • the predetermined threshold is obtained according to at least one of the following information:
  • the subcarrier interval used in the calculation of the time interval used in the calculation of the time interval.
  • the time interval is obtained according to at least one of the following information:
  • the subcarrier interval used in the calculation of the predetermined threshold used in the calculation of the predetermined threshold.
  • At least one of the channel and the signal corresponding to the reference signal satisfies one of the following:
  • the fifth predetermined condition is satisfied between the fifth frequency domain resource where at least one of the channel and the signal corresponding to the reference signal is located and the ninth frequency domain resource where the second signal is located, wherein the second signal and the reference Between signals, a class of quasi-co-location parameters satisfy the quasi-co-location relationship;
  • the channel and the signal corresponding to the reference signal and the reference signal are associated with a quasi-co-located reference signal associated with a class of quasi-co-located parameters where the frequency domain bandwidth is different, the channel and signal corresponding to the reference signal
  • the fifth frequency domain resource and the location where the at least one of the channel and signal corresponding to the reference signal are located
  • the ninth frequency domain resource where the second signal is located meets a fifth predetermined condition, where the quasi-co-location reference signal of the second signal and the reference signal satisfies a quasi-co-location relationship with respect to a class of quasi-co-location parameters;
  • the frequency domain bandwidth is different and the channel and the signal corresponding to the reference signal are at least When the fifth frequency domain resource where one is located and the eighth frequency domain resource where the quasi-co-located reference signal associated with the reference signal associated with a class of quasi-co-located parameters that do not meet the fifth predetermined condition, meet the third predetermined condition;
  • the third predetermined condition is met, where the quasi-co-location reference signal of the second signal and the reference signal is related to a class of quasi-co-location parameters Meet the quasi-co-location relationship.
  • the frequency domain span of the tracking reference signal is greater than or equal to a predetermined frequency domain Span Y, wherein the predetermined frequency domain span Y is obtained according to at least one of the following ways:
  • the Y is min (52PRB, the channel corresponding to the reference signal and the frequency domain span corresponding to at least one of the signals);
  • Y is the channel corresponding to the reference signal and / or the frequency domain span corresponding to the signal
  • the channel corresponding to the reference signal and the frequency domain span corresponding to at least one of the signals include at least one of the following:
  • the first period set includes the following period: 10 milliseconds.
  • the two frequency domain resources satisfying the fifth predetermined condition include at least one of the following:
  • the difference between the two frequency domain resources is empty, that is, the two frequency domain resources are the same frequency domain resource.
  • the frequency domain resource is CC / BWP
  • Corresponding CC2 / BWP2 is the same BWP.
  • the set of frequency domain resource blocks corresponding to one frequency domain resource and the set of frequency domain resource blocks corresponding to another frequency domain resource are the same
  • the frequency domain resource is the span corresponding to the set of frequency domain resource blocks
  • the span corresponding to the set of frequency domain resource blocks corresponding to one frequency domain resource and the span corresponding to the set of frequency domain resource blocks corresponding to another frequency domain resource are identical;
  • the difference between the frequency domain spans included in the two frequency domain resources is less than the predetermined value
  • One frequency domain resource belongs to another frequency domain resource
  • intersection of two frequency domain resources is not empty
  • the subcarrier spacing of the two frequency domain resources is the same.
  • the class of quasi-co-location parameters meet at least one of the following:
  • the first-class quasi-co-location parameters include at least one of the following parameters:
  • Doppler frequency shift Doppler spread, average delay, delay spread, average gain
  • the class of quasi-co-location parameters does not include spatial reception filtering parameters.
  • the frequency domain resource where at least one of the channel, signal and control channel elements are located includes at least one of the following:
  • a component carrier where at least one of the channel, signal and control channel elements is located;
  • the frequency domain span corresponding to the set of frequency domain resource blocks occupied by at least one of the channel, signal and control channel elements.
  • the method further includes:
  • the implementation process of the apparatus for determining a quasi-co-located reference signal in the embodiment of the present invention is the same as the implementation process of the method for determining the quasi-co-located reference signal in the foregoing embodiment, and details are not described herein again.
  • Another embodiment of the present invention provides an apparatus for determining a quasi-co-located reference signal, which includes a processor and a computer-readable storage medium.
  • the computer-readable storage medium stores instructions. When the instructions are processed by the processor During execution, any of the above methods for determining quasi-co-located reference signals are implemented.
  • Another embodiment of the present invention provides a computer-readable storage medium on which a computer program is stored, and when the computer program is executed by a processor, any of the steps of the method for determining a quasi-co-located reference signal described above is implemented.
  • Another embodiment of the present invention provides a reference signal transmission method, including:
  • the reference signal information port needs to satisfy the second predetermined rule
  • the reference signal Based on the reference signal information, at least one of the following is transmitted: the reference signal, the channel corresponding to the reference signal, and the signal corresponding to the reference signal.
  • the second predetermined rule includes at least one of the following:
  • the fifth predetermined condition is satisfied between the fifth frequency domain resource where at least one of the channel and the signal corresponding to the reference signal is located and the ninth frequency domain resource where the second signal is located, wherein the second signal and the reference Between signals, a class of quasi-co-location parameters satisfy the quasi-co-location relationship;
  • the channel and the signal corresponding to the reference signal and the reference signal are associated with a quasi-co-located reference signal associated with a class of quasi-co-located parameters where the frequency domain bandwidth is different, the channel and signal corresponding to the reference signal
  • the fifth frequency domain resource and the location where the at least one of the channel and signal corresponding to the reference signal are located.
  • the ninth frequency domain resource where the second signal is located satisfies a fifth predetermined condition, where the quasi-co-location reference signal of the second signal and the reference signal satisfies a quasi-co-location relationship with respect to a class of quasi-co-location parameters.
  • the reference signal includes at least one of the following signals: demodulation reference signal, measurement reference signal, phase tracking reference signal (Phase Tracking Reference Signal, (PTRS), measurement reference signal for tracking (CSI-RS for Tracking, TRS), the channel corresponding to the demodulation reference signal;
  • demodulation reference signal measurement reference signal
  • measurement reference signal phase tracking reference signal
  • PTRS Phase Tracking Reference Signal
  • CSI-RS for Tracking, TRS measurement reference signal for Tracking
  • At least one of the quasi co-located reference signal and the second signal includes at least one of the following: a measurement reference signal, a measurement reference signal for tracking, and a synchronization signal.
  • the frequency domain span of the tracking reference signal is greater than or equal to the frequency domain span Y, wherein the frequency domain span Y is obtained according to at least one of the following ways:
  • the Y is min (52PRB, the channel corresponding to the reference signal and the frequency domain span corresponding to at least one of the signals);
  • Y is the frequency domain span corresponding to at least one of the channel corresponding to the reference signal and the signal;
  • the channel corresponding to the reference signal and the frequency domain span corresponding to at least one of the signals include one of the following:
  • the first period set includes the following period: 10 milliseconds.
  • the second predetermined rule includes at least one of the following:
  • the quasi-co-location reference signal of the reference signal is carried according to Acquiring quasi-co-located reference signal information of the reference signal
  • the transmission configuration indication information includes the quasi-co-location reference signal associated with the spatial reception filter parameter and the control signaling does not carry the quasi-co-location reference signal information of the reference signal, the quasi-co-location reference signal of the reference signal Quasi co-located reference signal acquisition of the control channel scheduling the reference signal;
  • the quasi-co-location reference signal of the reference signal is based on The reference signal selected by the communication node in random access;
  • the The quasi-co-location reference signal is obtained according to the quasi-co-location reference signal information carrying the reference signal;
  • the reference signal When none of the transmission configuration indication information in the predetermined frequency domain bandwidth group includes the quasi-co-located reference signal associated with the spatial reception filter parameter and the control signaling does not carry the quasi-co-located reference signal information of the reference signal, the reference signal The quasi-co-located reference signal of is obtained according to the quasi-co-located reference signal of the control channel that schedules the reference signal;
  • the reference signal When none of the transmission configuration indication information in the predetermined frequency domain bandwidth group includes the quasi-co-located reference signal associated with the spatial reception filter parameter and the control signaling does not carry the quasi-co-located reference signal information of the reference signal, the reference signal The quasi co-located reference signal is obtained according to the reference signal selected by the communication node in random access;
  • the control signaling is included in the physical layer control channel
  • the reference signal information is determined according to at least one of the signaling information and the first predetermined rule, and the reference signal information port needs to satisfy the second predetermined rule, including when the control signaling does not include
  • the first predetermined rule includes at least one of the following:
  • the fifth predetermined condition is satisfied between the channel corresponding to the reference signal and the fifth frequency domain resource where at least one of the signals is located and the ninth frequency domain resource where the quasi-co-location reference signal associated with a class of quasi-co-location parameters associated with the control channel is located At this time, the quasi-co-location reference signal of the reference signal is obtained according to the quasi-co-location reference signal of the control channel;
  • the quasi co-located reference signal of the reference signal meets the fifth predetermined condition between the fifth frequency domain resource where at least one of the signal and the channel corresponding to the reference signal and the eleventh frequency domain resource where the control channel is located Obtained according to the quasi-co-location reference signal of the control channel;
  • the channel corresponding to the reference signal and the fifth frequency domain resource where at least one of the signals is located and the ninth frequency domain resource where the quasi-co-located reference signal associated with a class of quasi-co-location parameters associated with the control channel are not satisfied 5.
  • the time interval between at least one of the channel and the signal corresponding to the control channel and the reference signal is less than a predetermined threshold;
  • the control channel and the reference signal correspond to The time interval between at least one of the channel and the signal is less than a predetermined threshold
  • control channel is at least one of a control channel scheduling the reference signal and the control signaling is transmitted in the control channel.
  • the two frequency domain resources satisfying the fifth predetermined condition include at least one of the following:
  • the difference between the two frequency domain resources is empty
  • the difference between the frequency domain spans included in the two frequency domain resources is less than the predetermined value
  • One frequency domain resource belongs to another frequency domain resource
  • intersection of two frequency domain resources is not empty
  • the subcarrier spacing of the two frequency domain resources is the same.
  • the class of quasi-co-location parameters meet at least one of the following:
  • the first-class quasi-co-location parameters include at least one of the following parameters:
  • Doppler frequency shift Doppler spread, average delay, delay spread, average gain
  • the class of quasi-co-location parameters does not include spatial reception filtering parameters.
  • the frequency domain resource where at least one of the channel, signal and control channel elements are located includes at least one of the following:
  • a component carrier where at least one of the channel and the signal is located
  • the bandwidth part of the component carrier where at least one of the channel and the signal is located;
  • the frequency domain span corresponding to the set of frequency domain resource blocks occupied by at least one of the channel and the signal.
  • the reference signal information port needs to satisfy the second predetermined rule, including:
  • the control signaling includes transmission configuration indication information, where the transmission configuration indication information includes reference signal index and bandwidth part index information, wherein the bandwidth part index information belongs to the bandwidth configured in a resource where the reference signal index is located Partial index.
  • the reference signal information port needs to satisfy a second predetermined rule, including at least one of the following:
  • the control signaling includes more than one resource setting information, wherein when the more than one resource setting includes the same CSI-RS ID, the bandwidth part indexes configured in the more than one resource setting are the same , Where the more than one resource setting belongs to one CC;
  • the maximum number of configuration indication information that a base station activates for at least one of a data channel and a control channel in a BWP of a CC for a terminal does not exceed the data channel and control supported by a BWP in a CC reported by the terminal
  • the maximum number of configuration indication information that a base station activates for at least one of a data channel and a control channel in a BWP of a CC for a terminal is determined according to max (maxNumberActiveTCI-PerBWP, size (q0) +1), where size ( q0) is the number of reference signals included in the beam failure detection reference signal set q0, and maxNumberActiveTCI-PerBWP is the maximum configuration indication information reported by the terminal that at least one of the data channels and control channels supported in one BWP of a CC is activated Number.
  • Solution 1 After detecting the failure of the beam and before receiving the reconfiguration of the PDCCH by the base station, the maximum number of activated configuration indication information is 2, and the maximum number of activated configuration indication information in other time periods is 1.
  • Scenario 4 When a beam failure is detected and before the scheduled time to receive the reconfiguration of the PDCCH by the base station, all CORESET / all proprietary CORESET quasi-co-location reference signals are updated to the new reference signals reported by the terminal.
  • the reference signal information is determined according to at least one of signaling information and a first predetermined rule, and the reference signal information port needs to satisfy a second predetermined rule, and the first rule includes at least one of the following One:
  • Scheduling at least one of the control channel of the reference signal and the channel and signal corresponding to the reference signal in different frequency domain bandwidths scheduling at least one of the control channel of the reference signal and the channel and signal corresponding to the reference signal The time interval between one is greater than or equal to a predetermined threshold;
  • the length of the time interval corresponding to the capability information one reported by the terminal is greater than the length of the time interval corresponding to the capability information two, where capability information one represents the minimum time interval between PDCCH and PDSCH / AP-CSI-RS during BWP handover, capability information two It indicates the minimum time interval required for the terminal to use the TCI information indicated by the PDCCH for PDSCH / AP-CSI-RS reception.
  • the predetermined threshold is obtained according to at least one of the following information:
  • the subcarrier interval used in the time interval calculation is the subcarrier interval used in the time interval calculation.
  • the time interval is obtained according to at least one of the following information:
  • the subcarrier spacing used in the calculation of the predetermined threshold is the subcarrier spacing used in the calculation of the predetermined threshold.
  • Another embodiment of the present invention provides a reference signal transmission device, including:
  • the determining module is configured to determine the reference signal information according to at least one of the signaling information and the first predetermined rule, and the reference signal information port needs to satisfy the second predetermined rule;
  • the second transmission module is configured to transmit at least one of the following according to the reference signal information: the reference signal, the channel corresponding to the reference signal, and the signal corresponding to the reference signal.
  • the above reference signal transmission device is the same as the implementation process of the reference signal transmission method in the foregoing embodiment, and will not be repeated here.
  • the computer-readable storage medium stores instructions, and when the instructions are executed by the processor, Implement any of the above reference signal transmission methods.
  • Another embodiment of the present invention provides a computer-readable storage medium on which a computer program is stored, and when the computer program is executed by a processor, the steps of any of the above reference signal transmission methods are implemented.
  • computer storage media includes both volatile and nonvolatile implemented in any method or technology for storing information such as computer readable instructions, data structures, program modules, or other data Sex, removable and non-removable media.
  • Computer storage media include but are not limited to RAM, ROM, EEPROM, flash memory or other memory technologies, CD-ROM, digital versatile disk (DVD) or other optical disk storage, magnetic cartridges, magnetic tape, magnetic disk storage or other magnetic storage devices, or may Any other medium for storing desired information and accessible by a computer.
  • the communication medium generally contains computer readable instructions, data structures, program modules, or other data in a modulated data signal such as a carrier wave or other transmission mechanism, and may include any information delivery medium .

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Abstract

本公开提出了一种确定准共址参考信号的方法和装置,所述方法包括:确定第一控制信道元素对应的第一传输配置信息列表,确定为所述第一控制信道元素激活的传输配置信息在所述第一传输配置信息列表中的索引信息,根据所述索引信息和所述第一传输配置信息列表确定所述第一控制信道元素激活的准共址参考信号。

Description

确定准共址参考信号的方法和装置
本申请要求在2018年11月12日提交中国专利局、申请号为201811341635.2的中国专利申请的优先权,以上申请的全部内容通过引用结合在本申请中。
技术领域
本公开涉及通信领域,例如涉及一种确定准共址参考信号的方法和装置。
背景技术
新空口(New Radio,NR)中引入了控制信道资源集合(Control Resource Set,CORESET)的概念,其中,一个CORESET配置了控制信道的频域资源、准共址参考信号信息、资源映射方式等信息。终端在初始接入到基站时,基站通过系统消息为终端配置一个CORESET,称为CORESET0,终端在这个CORESET0中执行以下至少之一:侦听物理随机接入信道(Physical Random Access Channel,PRACH)响应信息和监听公共消息。
CORESET0的准共址参考信号可以是基于PRACH终端选择的单边带(Single Side Band,SSB)。由于终端选择的SSB在终端进入无线资源控制(Radio Resource Control,RRC)链接之后不是很合适,且在相关的NR信令架构中不会为CORESET0配置准共址参考信号,为了增加CORESET0的灵活性甚至可以在CORESET0的资源上发送专有控制信道,需要为CORESET0配置准共址参考信号。
发明内容
本发明实施例提供了一种确定准共址参考信号的方法和装置,能够为控制 信道元素配置准共址参考信号,例如,为CORESET0配置准共址参考信号,从而增加CORESET0的灵活性甚至可以在CORESET0的资源上发送专有控制信道。
本发明实施例提供了一种确定准共址参考信号的方法,包括:
确定第一控制信道元素对应的第一传输配置信息列表;
确定为所述第一控制信道元素激活的传输配置信息在所述第一传输配置信息列表中的索引信息;
根据所述索引信息和所述第一传输配置信息列表确定所述第一控制信道元素激活的准共址参考信号。
本发明实施例提供了一种确定准共址参考信号的装置,包括:
传输配置信息列表确定模块,设置为确定第一控制信道元素对应的第一传输配置信息列表;
传输配置信息索引信息确定模块,设置为确定为所述第一控制信道元素激活的传输配置信息在所述第一传输配置信息列表中的索引信息;
第一准共址参考信号确定模块,设置为根据所述索引信息和所述第一传输配置信息列表确定所述第一控制信道元素激活的准共址参考信号。
本发明实施例提供了一种确定准共址参考信号的装置,包括处理器和计算机可读存储介质,所述计算机可读存储介质中存储有指令,当所述指令被所述处理器执行时,实现上述任一种确定准共址参考信号的方法。
本发明实施例提供了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上述任一种确定准共址参考信号的方法的步骤。
本发明实施例提供了一种确定准共址参考信号的方法,包括:
当满足第三预定条件时,根据包括满足第四预定特征的控制信道元素的第 一时间单元的集合中,距离参考信号对应的信道和信号中至少之一最近的第二时间单元中,满足第五预定特征的控制信道元素的准共址参考信号确定所述参考信号的准共址参考信号。
本发明实施例提供了一种确定准共址参考信号的装置,包括:
第二准共址参考信号确定模块,用于根据包括满足第四预定特征的控制信道元素的第一时间单元的集合中,距离所述参考信号对应的信道和信号中至少之一最近的第二时间单元中,满足第五预定特征的控制信道元素的准共址参考信号确定所述参考信号的准共址参考信号。
本发明实施例提供了一种确定准共址参考信号的装置,包括处理器和计算机可读存储介质,所述计算机可读存储介质中存储有指令,当所述指令被所述处理器执行时,实现上述任一种确定准共址参考信号的方法。
本发明实施例提供了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上述任一种确定准共址参考信号的方法的步骤。
本发明实施例提供了一种参考信号的传输方法,包括:
根据信令信息和第一预定规则中至少之一,确定参考信号信息,参考信号信息端口需要满足第二预定规则;
根据所述参考信号信息,传输以下至少之一:所述参考信号、所述参考信号对应的信道和所述参考信号对应的信号。
本发明实施例提供了一种参考信号的传输装置,包括:
确定模块,设置为根据信令信息和第一预定规则中至少之一,确定参考信号信息,参考信号信息端口需要满足第二预定规则;
第二传输模块,设置为根据所述参考信号信息,传输以下至少之一:所述 参考信号、所述参考信号对应的信道和所述参考信号对应的信号。
本发明实施例提供了一种参考信号的传输装置,包括处理器和计算机可读存储介质,所述计算机可读存储介质中存储有指令,当所述指令被所述处理器执行时,实现上述任一种参考信号的传输方法。
本发明实施例提供了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上述任一种参考信号的传输方法的步骤。
本发明实施例包括:确定第一控制信道元素对应的第一传输配置信息列表,确定为所述第一控制信道元素激活的传输配置信息在所述第一传输配置信息列表中的索引信息,根据所述索引信息和所述第一传输配置信息列表确定所述第一控制信道元素激活的准共址参考信号。本发明实施例通过第一传输配置信息列表和在第一传输配置信息列表中的索引信息实现了为控制信道元素配置准共址参考信号,例如,为CORESET0配置准共址参考信号,从而增加CORESET0的灵活性甚至可以在CORESET0的资源上发送专有控制信道。
附图说明
附图用来提供对本发明实施例技术方案的理解,并且构成说明书的一部分,与本发明实施例的实施例一起用于解释本发明实施例的技术方案。
图1为本发明实施例信道和信号中至少之一所在的频域资源的示意图;
图2为本发明一个实施例提出的确定准共址参考信号的方法的流程图;
图3为本发明另一个实施例提出的确定准共址参考信号的装置的结构组成示意图;
图4为本发明另一个实施例提出的确定准共址参考信号的方法的流程图;
图5为本发明实施例计算时间间隔的示意图;
图6为本发明另一个实施例提出的确定准共址参考信号的装置的结构组成示意图。
具体实施方式
下文中将结合附图对本发明实施例进行详细说明。需要说明的是,在不冲突的情况下,本发明实施例及实施例中的特征可以相互任意组合。
在附图的流程图示出的步骤可以在诸如一组计算机可执行指令的计算机系统中执行。并且,虽然在流程图中示出了逻辑顺序,但是在某些情况下,可以以不同于此处的顺序执行所示出或描述的步骤。
在下述实施例中,两个参考信号之间满足准共址关系,表示两个参考信号关于至少一个准共址参数满足准共址关系,即一个参考信号的准共址参数可以根据另一个参考信号的准共址参数获取。其中,准共址参数包括如下至少之一:多普勒频移(Doppler shift)、多普勒扩展(Doppler spread)、平均延迟(average delay)、延迟扩展(delay spread)、空间接收参数(Spatial Rx parameter)、平均增益(average gain)。
在下述实施例中,包括以下至少之一:
一个准共址参数在一个准共址参考信号集合中只能关联一个参考信号;
不同准共址参考信号集合关联的准共址参数集合的差集为空;
一个准共址参考信号集合最多只能包括两个参考信号。
在下述实施例中,预定准共址参数集合属于一个准共址参考信号集合中每个参考信号关联的准共址参数集合的并集。
在下述实施例中,一个信道和一个信号中至少之一的准共址参考信号,表 示所述信道和信号中至少之一和所述准共址参考信号之间关于一类准共址参数满足准共址关系。一个信道元素的准共址参考信号,表示所述信道元素和所述准共址参考信号之间关于一类准共址参数满足准共址关系。解调参考信号和信号的端口中至少之一和准共址参考信号之间关于一类准共址参数满足准共址关系。
在下述实施例中,一个传输配置信息对应一个或多个准共址参考信号集合,其中,传输配置信息也可以称为准共址参考信号指示信息,或其他名称。
在下述实施例中,CORESET0是在系统消息中配置的公共控制信道资源,系统消息中配置CORESET0的一部分信息,当然CORESET0的一些信息也可以在UE专有(UE-Specific)信令中通知。第一节点(如终端)在空闲(Idle)态或者在RRC链接建立之前,都可以通过CORESET0中发送的公共控制信道获取第二节点(如基站)发送的控制信息,当然第一节点和第二节点建立RRC链接之后,可以在COERSET0中侦听专有控制信道。
在下述实施例中,所述控制信道元素为如下之一:控制信道资源集合(CORESET)、搜索空间集合、搜索空间、候选控制信道、搜索空间集合的时域(occasion)、搜索空间的时域(occasion)。
在下述实施例中,一个频域带宽对应如下至少之一:
一个成员载波(Component Carrier,CC)、一个BWP(Bandwidth Part,频域带宽)、一个BWP中的连续的一个频域带宽。
一个频域带宽属于另一个频域带宽包括一个频域带宽包括的频域资源属于另一个频域带宽包括的频域资源。其中,一个频域资源为一个物理资源块(Physical Resource Block,PRB),或者为绝对频域资源,绝对频域资源包括以预定子载波间隔和预定载波参考点得到的一段频域资源。
在下述实施例中,两个信息之间有关联包括以下任意一种:
一个信息的取值根据另一个信息的取值得到;
一个信息的取值范围根据另一个信息的取值或者取值范围得到;
所述两个信息的某些取值组合不能同时出现;
一个信息对应的元素的传输参数根据另一个信息得到。
在下述实施例中,所述一个信道和一个信号中至少一个所在的频域资源包括如下至少之一:
所述信道和信号中至少之一所在的成员载波,如图1所述的PDSCH(Physical Downlink Shared Channel,物理下行共享信道)/CORESET所在的CC;
所述信道和信号中至少之一所在的带宽部分,如图1所述的PDSCH/CORESET所在的BWP;
所述信道和信号中至少之一所占有的频域资源块集合,如图1所示阴影部分;
所述信道和信号中至少之一所占有的频域资源块集合对应的频域跨度,即为所述信道和信号中至少之一所占的频域资源块集合中最高PRB索引和最低PRB索引之间的PRB构成集合,如图1所示,其中一个频域资源块为一个PRB。
在下述实施例中,调度所述参考信号对应的信道和信号中至少之一的控制信道中不包括传输配置信息的指示信息包括如下两种情况:
一种情况是控制信道所在的控制资源集合中配置该控制资源集合中包括的控制信道中不包括TCI(Transmission Configuration Indication,传输配置指示)信息;
另一种情况是控制信道包括的控制信息属于预定格式。
例如,PDCCH(Physical Downlink Control Channel,物理下行控制信道)不 包括TCI信息包括如下两种情况:
一种情况是DCI(Downlink Control Information,下行控制信息)format(格式)1_1所在的CORESET中不配置tci-PresentInDCI这个参数,即这个CORESET的DCI format1_1中不包括TCI信息;
另一种情况是PDCCH中包括的是DCI format1_0,在DCI format1_0中什么时候都不包括TCI信息。
其中PDCCH为调度PDSCH/PDCCH的PDCCH。
参见图2,本发明一个实施例提出了一种确定准共址参考信号的方法,包括:
步骤200、确定第一控制信道元素对应的第一传输配置信息列表。
步骤201、确定为所述第一控制信道元素激活的传输配置信息在所述第一传输配置信息列表中的索引信息。
步骤202、根据所述索引信息和所述第一传输配置信息列表确定所述第一控制信道元素激活的准共址参考信号。
本发明实施例通过第一传输配置信息列表和在第一传输配置信息列表中的索引信息实现了为控制信道元素配置准共址参考信号,例如,为CORESET0配置准共址参考信号,从而增加CORESET0的灵活性甚至可以在CORESET0的资源上发送专有控制信道。
在本发明另一个实施例中,第一传输配置信息列表中的一个传输配置信息对应至少一个准共址参考信号集合。
其中,包括以下至少之一:
一个准共址参数在一个准共址参考信号集合中只能关联一个参考信号;
不同准共址参考信号集合关联的准共址参数集合的差集为空;
一个准共址参考信号集合最多只能包括两个参考信号。
例如,第一传输配置信息列表可以是传输配置指示状态列表(TCI state list),TCI state list中一个TCI状态(TCI state)即为一个传输配置信息,一个TCI state对应至少一个准共址参考信号集合。
在本发明另一个实施例中,确定第一控制信道元素对应的第一传输配置信息列表包括以下至少之一:
根据第一控制信令确定所述第一传输配置信息列表;
根据所述第一控制信道元素是否属于预定控制信道元素集合的判断结果,确定所述第一传输配置信息列表;
根据除初始带宽部分之外配置的带宽部分的个数信息确定所述第一传输配置信息列表,例如,当除初始带宽部分之外配置的带宽部分的个数小于预定阈值时,第一传输配置信息列表属于初始带宽部分中信道元素对应的传输配置信息列表,当除初始带宽部分之外配置的带宽部分的个数大于或等于预定阈值时,第一传输配置信息列表属于除初始带宽部分之外的带宽部分集合中具有最低带宽部分索引的带宽部分中的信道元素对应的传输配置信息列表;
根据满足第一预定特征的带宽部分对应的信道元素是否配置传输配置信息列表的判断结果,确定所述第一传输配置信息列表;
根据预定信道元素中配置的传输配置信息列表是否满足第三预定特征的判断结果,确定所述第一传输配置信息列表。
在本发明另一个实施例中,所述第一控制信令中携带第一传输配置信息列表信息;
或者,
所述第一控制信令中携带带宽部分索引信息,所述第一传输配置信息列表属于所述带宽部分索引信息对应的带宽部分中的第一信道元素的配置信息中配 置的第二传输配置信息列表;
或者,
所述第一控制信令中携带以下至少之一:带宽部分索引信息、信道元素索引信息、所述第一控制信道元素索引信息,其中,所述第一传输配置信息列表属于所述带宽部分索引信息和所述信道元素索引信息对应的第二信道元素的配置信息中配置的第三传输配置信息列表。其中,第二信道元素即为带宽部分索引信息对应的带宽部分中信道元素索引信息对应的信道元素。
在本发明实施例中,第一传输配置信息列表属于所述第三传输配置信息列表包括:
所述第三传配置信息列表中属于所述第一传输配置信息列表的传输配置信息对应的准共址参考信号和同步信号之间关于一类准共址参数满足准共址关系。
在本发明另一个实施例中,第一控制信道元素或第一信道元素或第二信道元素满足以下至少之一:
所述第一控制信道元素和所述第一信道元素包含的控制信道元素是两个不同的控制信道元素;
所述第一控制信道元素和所述第二信道元素包含的控制信道元素是两个不同的控制信道元素;
所述第一控制信道元素或所述第一信道元素包含的控制信道元素或所述第二信道元素包含的控制信道元素为下行控制信道元素;
所述第一控制信道元素或所述第一信道元素包含的控制信道元素或所述第二信道元素包含的控制信道元素包括如下至少之一:控制信道资源集合、搜索空间集合、搜索空间、候选控制信道;
所述带宽部分索引信息对应的频域带宽中包括所述第一控制信道元素所占 的资源;
所述第一信道元素包括以下至少之一:数据信道元素、控制信道元素;
所述第一信道元素和所述第一控制信道元素所在的频域带宽不同;
所述第二信道元素包括以下至少之一:数据信道元素、控制信道元素;
所述第二信道元素和所述第一控制信道元素所在的频域带宽不同。
在本发明另一个实施例中,根据第一控制信道元素是否属于预定控制信道元素集合的判断结果确定所述第一传输配置指示信息列表,包括如下至少之一:
当所述第一控制信道元素不属于所述预定控制信道元素集合时,所述第一传输配置信息列表为第三控制信令中为所述第一控制信道元素配置的传输配置信息列表,其中,所述第三控制信令中携带第一控制信道元素索引;
当所述第一控制信道元素属于所述预定控制信道元素集合时,所述第一传输配置信息列表属于第四控制信令中为第三信道元素配置的传输配置信息列表,其中,所述第四控制信令中不携带所述第一控制信道索引;
其中,所述预定控制信道元素集合中包括以下至少之一:
控制信道资源集合0、搜索空间集合0。
在本发明另一个实施例中,第三信道元素满足如下特征至少之一:
所述第三信道元素所在的带宽部分在预定时刻满足第一预定特征;
所述第三信道元素在预定时刻满足第二预定特征;
所述第三信道元素中配置的传输配置信息列表满足第三预定特征;
所述第三信道元素包括的控制信道元素集合和所述预定控制信道元素集合的交集为空;
所述第三信道元素包括以下至少之一:数据信道元素、控制信道元素。
在本发明另一个实施例中,第一预定特征包括如下至少之一:
所述带宽部分处于激活状态;
所述带宽部分为初始带宽部分(Initial BWP);
所述带宽部分为默认带宽部分(default BWP);
所述带宽部分和所述第一控制信道元素所在的带宽部分属于一个成员载波;
所述带宽部分包括所述第一控制信道元素所占的资源;
所述带宽部分为带宽部分集合中具有最低带宽部分索引的带宽部分;
所述带宽部分中包括至少一个预定类信道元素,所述预定类信道元素中不包括所述第一控制信道元素。
在本发明另一个实施例中,第二预定特征包括如下至少之一:
所述第三信道元素是距离所述预定时刻最近的时间单元中传输的信道元素;
所述第三信道元素是距离所述预定时刻最近的时间单元中的除所述第一控制信道元素之外的控制信道元素集合中具有预定控制信道元素索引的控制信道元素;
所述第三信道元素是在所述预定时刻满足所述第一预定特征的带宽部分中的除所述第一控制信道元素之外的控制信道元素集合中具有预定控制信道元素索引的控制信道元素;
所述第三信道元素是距离所述预定时刻最近的时间单元中的除所述第一控制信道元素之外的控制信道元素集合中具有预定控制信道元素索引的控制信道元素;
所述第三信道元素是在预定时刻满足所述第一预定特征的带宽部分中具有预定控制信道元素索引的控制信道元素;
其中,预定控制信道元素索引包括以下任意一个:最低控制信道元素索引、最高控制信道元素索引。
在本发明另一个实施例中,预定时刻包括如下之一:
第二控制信令的传输时刻或所述传输时刻所在的时间单元;
所述第二控制信令中携带的传输配置信息可用于所述第一控制信道元素接收的开始时刻或所述开始时刻所在的时间单元;
所述预定时刻和所述第二控制信令信息有关联;
所述第一控制信道元素的检测时刻或所述检测时刻所在的时间单元。
在本发明另一个实施例中,第二控制信令满足如下特征至少之一:
满足第一预定条件时,所述第二控制信令中服务小区索引信息和所述第一传输配置信息列表信息之间联合编码;
满足第一预定条件时,所述第二控制信令中携带第一传输配置信息列表信息;
满足第一预定条件时,所述第二控制信令中服务小区索引信息用于指示所述第一传输配置信息列表;
所述第二控制信令为MAC-CE(Medium Access Control-Control Element,媒体访问控制-控制元素)控制信令;
其中,第一预定条件包括如下至少之一:所述第一控制信道元素属于预定控制信道元素集合、服务小区的个数小于第一预定值、配置了所述预定控制信道元素集合的服务小区的个数小于第二预定值;
所述第一传输配置信息列表信息包括如下信息至少之一:带宽部分索引信息、第一控制信道元素索引信息、信道元素索引信息、传输配置信息列表索引信息。
在本发明另一个实施例中,第三预定特征包括如下至少之一:
所述预定信道元素或第三信道元素中配置的传输配置信息列表中包括的元 素个数大于第三预定值;
所述预定信道元素或所述第三信道元素中配置的传输配置信息列表中包括的第一类传输配置信息的个数大于第四预定值,其中,所述第一类传输配置信息对应的每个准共址参考信号和同步信号之间满足准共址关系;
所述预定信道元素或所述第三信道元素中配置的传输配置信息列表中包括的第二类传输配置信息的个数大于第五预定值,其中,所述第二类传输配置信息对应的关联一类准共址参数的准共址参考信号和同步信号之间满足准共址关系。
在本发明另一个实施例中,所述根据除初始带宽部分之外配置的带宽部分的个数信息确定所述第一传输配置信息列表包括以下至少之一:
当所述除初始带宽部分之外配置的带宽部分的个数小于第六预定值时,确定所述第一传输配置信息列表属于所述初始带宽部分中的第四信道元素的配置信息中配置的第四传输配置信息列表;
当所述除初始带宽部分之外配置的带宽部分的个数大于或等于第六预定值时,确定所述第一传输配置信息列表属于除所述初始带宽部分之外的带宽部分集合中具有最低带宽部分索引的带宽部分中的第五信道元素的配置信息中配置的第五传输配置信息列表。
在本发明另一个实施例中,所述根据满足第一预定特征的带宽部分对应的信道元素是否配置传输配置信息列表的判断结果,确定所述第一传输配置信息列表包括以下至少之一:
当所述满足第一预定特征的带宽部分对应的信道元素没有配置传输配置信息列表时,确定所述第一传输配置信息列表属于除初始带宽部分之外的带宽部分中的第六信道元素的配置信息中配置的第六传输配置信息列表;
当所述满足第一预定特征的带宽部分对应的信道元素配置了传输配置信息列表时,确定所述第一传输配置信息列表属于所述初始带宽部分中的第七信道元素的配置信息中配置的第七传输配置信息列表。
在本发明另一个实施例中,所述第一传输配置信息列表属于所述第X传输配置信息列表,其中X为二到七中的一个值,包括:
所述第X传输配置信息列表中属于所述第一传输配置信息列表的传输配置信息对应的准共址参考信号和同步信号之间关于一类准共址参数满足准共址关系。
在本发明另一个实施例中,所述一类准共址参数满足以下至少之一:
所述一类准共址参数包括如下参数至少之一:
多普勒频移、多普勒扩展、平均延迟、延迟扩展、平均增益;
所述一类准共欧址参数不包括空间接收滤波参数。
在本发明另一个实施例中,所述第一控制信道元素或第i信道元素,其中所述i为一到七中的一个值,满足以下至少之一:
所述第一控制信道元素和所述第i信道元素包含的控制信道元素是两个不同的控制信道元素;
所述第一控制信道元素和所述第i信道元素中至少一个包含的控制信道元素包括如下至少之一:控制信道资源集合、搜索空间集合、搜索空间、候选控制信道、下行控制信道;
所述第i信道元素包括以下至少之一:数据信道元素、控制信道元素;
所述第i信道元素和所述第一控制信道元素所在的频域带宽不同;
所述第i信道元素中配置的传输配置信息列表满足第三预定特征;
在本发明另一个实施例中,所述第三预定特征包括如下至少之一:
预定信道元素或第三信道元素中配置的传输配置信息列表中包括的元素个数大于第三预定值;
所述预定信道元素或所述第三信道元素中配置的传输配置信息列表中包括的第一类传输配置信息的个数大于第四预定值,其中,所述第一类传输配置信息对应的每个准共址参考信号和同步信号之间满足准共址关系;
所述预定信道元素或所述第三信道元素中配置的传输配置信息列表中包括的第二类传输配置信息的个数大于第五预定值,其中,所述第二类传输配置信息对应的关联预定类准共址参数的准共址参考信号和同步信号之间满足准共址关系。
在本发明另一个实施例中,确定为所述第一控制信道元素激活的传输配置信息在所述第一传输配置信息列表中的索引信息包括:
根据第二控制信令确定所述索引信息,其中,所述第二控制信令包括所述索引信息。
在本发明另一个实施例中,确定为所述第一控制信道元素激活的传输配置信息在所述第一传输配置信息列表中的索引信息包括以下至少之一:
当满足第二预定条件时,根据第二控制信令确定所述索引信息,其中,所述第二控制信令包括所述索引信息;
当不满足第二预定条件时,所述第一控制信道元素的准共址参考信号为所述第一传输配置信息列表中预定的至少一个所述传输配置信息索引对应的准共址参考信号;
其中,第二预定条件包括:
所述第一传输配置信息列表中包括的传输配置信息的个数大于第七预定值。
在本发明另一个实施例中,第一控制信令或第二控制信令满足如下特征至 少之一:
所述第一控制信令和所述第一控制信道元素之间存在关联关系;
所述第一控制信令还携带所述第一控制信道元素信息;
所述第二控制信令为媒体访问控制(Medium Access Control,MAC)-控制元素(Control Element,CE)控制信令;
所述第一控制信令和所述第二控制信令是同一个控制信令;
所述第一控制信令为无线资源控制RRC信令。
在本发明另一个实施例中,根据所述索引信息和所述第一传输配置信息列表确定所述第一控制信道元素激活的准共址参考信号包括:
根据索引信息和所述第一传输配置信息列表确定第一控制信道元素激活的传输配置信息,其中,第一控制信道元素激活的传输配置信息即为第一传输配置信息列表中索引信息对应的传输配置信息;
根据第一控制信道元素激活的传输配置信息确定第一控制信道元素激活的准共址参考信号,其中,第一控制信道元素激活的准共址参考信号为第一控制信道元素激活的传输配置信息对应的准共址参考信号集合中的准共址参考信号。
在本发明另一个实施例中,第一控制信道元素激活的准共址参考信号对应至少两个同步信号块,该方法还包括:
根据所述第一控制信道元素激活的准共址参考信号对应的至少两个同步信号块确定所述第一控制信道元素的检测时机;
其中,所述第一控制信道元素包括以下至少之一:
控制信道资源集合0、搜索空间集合0。
其中,一个同步信号块对应一个同步信号(Synchronization Signal,SS)广播信道块/物理广播信道(Physical Broadcast Channel,PBCH)块,比如一个5 毫秒(ms)的半帧中,最多包括64个SSB,不同SSB中的信道和/或信号之间不满足准共址关系。
例如,当CORESET不是CORESET0,比如为CORESET1时,RRC信令在CORESET1的配置信息中配置一个TCI state list(即所述第一传输配置信息列表,其中一个TCI state即为一个传输配置信息,一个TCI state对应至少一个准共址参考信号集合),MAC-CE信令在这个TCI state list中为这个CORESET1激活一个TCI state,所述TCI state中对应的参考信号即为CORESET1中传输的物理下行控制信道(Physical Downlink Control Channel,PDCCH)的解调参考信号(Demodulation Reference Signal,DMRS)的准共址参考信号。
如表1所示,TCI state1对应两个准共址参考信号集合:准共址参考信号集合1(CSI-RS(Channel State Information-Reference Signal,信道状态信息参考信号)1,CSI-RS2)、准共址参考信号集合2(CSI-RS3,CSI-RS4)。当一个物理下行共享信道(Physical Downlink Shared Channel,PDSCH)/CORESET的传输配置信息的索引信息配置为TCI1时,PDSCH/CORESET的DMRS端口组1的准共址参考信号为CSI-RS1和CSI-RS2中至少之一,PDSCH/CORESET的DMRS端口组1的准共址参数Doppler shift、Doppler spread、average delay和delay spread根据CSI-RS1获取,准共址参数Spatial Rx parameter根据CSI-RS2获取。PDSCH/CORESET的DMRS端口组2的准共址参考信号为CSI-RS3和CSI-RS4中至少之一,PDSCH/CORESET的DMRS端口组2的准共址参数Doppler shift、Doppler spread、average delay和delay spread根据CSI-RS3获取,准共址参数Spatial Rx parameter根据CSI-RS4获取。其中,一个准共址参数在一个准共址参考信号集合中只能关联一个准共址参考信号。
Figure PCTCN2019117599-appb-000001
Figure PCTCN2019117599-appb-000002
表1
当COERSET为CORESET0时,RRC信令在CORESET0的配置信息中不为CORESET0配置一个TCI state list,从而CORESET0没有对应的TCI state list,此时如果要在MAC-CE命令中为CORESET0激活一个TCI state,就需要确定MAC-CE中激活的TCI state所在的TCI state list,这样第一节点就知道MAC-CE命令激活的TCI state ID(即所述传输配置信息的索引信息)对应的TCI state是在哪个TCI state list中的索引,为此可以有如下方案:
方案1、CORESET0的TCI state list是预定时刻处于激活状态的带宽部分(Band Width Part,BWP)中为PDSCH配置的TCI state list;
方案2、CORESET0的TCI state list属于预定时刻处于激活状态的BWP中的除去CORESET0之外的CORESE集合中具有最低CORESETID对应的CORESET中配置的TCI state list;
方案3、CORESET0的TCI state list属于预定时刻的default BWP中为PDSCH配置的TCI state list;
方案4、CORESET0的TCI state list属于预定时刻的default BWP中的除去CORESET0之外的CORESE集合中具有最低CORESETID对应的CORESET中 配置的TCI state list;
方案5、CORESET0的TCI state list属于预定时刻的Initial BWP中为PDSCH配置的TCI state list;
方案6、CORESET0的TCI state list属于预定时刻的Initial BWP中的除去CORESET0之外的CORESE集合中具有最低CORESETID对应的CORESET中配置的TCI state list;
方案7、CORESET0的TCI state list属于预定时刻的预定BWP集合中具有最低BWPID的BWP中为PDSCH配置的TCI state list;
方案8、CORESET0的TCI state list属于预定时刻的预定BWP集合中具有最低BWPID的BWP中除去CORESET0之外的CORESE集合中最低CORESETID对应的CORESET中配置的TCI state list;
方案7、8中预定BWP集合中的BWP满足如下特征至少之一:
所述BWP中包括所述CORESET0占有的资源,比如BWP包括CORESET0所占的频域资源;
BWP处于激活状态的时间资源和CORESET0关联的搜索空间对应的检测时间资源之间交集为非空。
方案9、CORESET0的TCI state list属于距离预定时刻最近的时间单元(比如slot(时隙),当然时间单元还可以是其他时间单元)中第一节点需要接收或缓存的PDSCH对应TCI state list;
方案10、CORESET0的TCI state list属于距离预定时刻最近的时间单元(比如slot,当然时间单元还可以是其他时间单元)中第一节点需要接收或缓存或检测的除CORESET0之外的CORESET集合中具有最低CORESETID的CORESET对应的TCI state list;
方案11、除了Initial BWP之外为第一节点配置的BWP的个数小于4时,CORESET0的TCI state list属于Initial BWP中PDSCH对应的TCI state list,当除了Initial BWP之外为第一节点配置的BWP的个数大于或者等于4时,CORESET0的TCI state list属于除了Initial BWP之外BWP集合中具有最低BWPID的BWP中的PDSCH对应的TCI state list;
方案12、当Initial BWP中没有为PDSCH或除COERSET0之外的CORESET配置TCI state list时,CORESET0的TCI state list属于除Initial BWP之外的BWP中的PDSCH或除COERSET0之外的CORESET配置的TCI state list,当Initial BWP中为PDSCH或除COERSET0之外的CORESET配置的TCI state list的时候,CORESET0的TCI state list属于Initial BWP中的PDSCH或除COERSET0之外的CORESET配置的TCI state list。
上述方案中,如果一个BWP中包括多于一个PDSCH-config(配置),此时还要确定CORESET0的TCI state list是激活状态的BWP或Initial BWP或default BWP或具有最低BWPID的BWP中的哪个PDSCH-config中包括的TCI state list,比如为最低PDSCH-config-ID对应的PDSCH-config中包括的TCI state list。
上述方案中,所述预定时刻包括如下之一:
携带为CORESET0激活的TCI state的MAC-CE命令(即所述第二控制信令)的PDSCH所在的时间单元;
携带为CORESET0激活的TCI state的MAC-CE命令携带的TCI state信息可用于CORESET0的开始时刻,比如为所述MAC-CE成功接收之后的3ms;
所述预定时刻和所述MAC-CE有关联;
所述CORESET0的搜索空间的检测时刻,比如CORESET0搜索空间1在时刻1检测时,所述预定时刻为时刻1,比如CORESET0搜索空间1在时刻2检 测时,所述预定时刻为时刻2。
上述方案中是通过约定规则,得到CORESET0对应的TCI state list,本实施例的另一种方案中,也可以通过显式信令通知CORESET0对应的TCI state list。为此可以有如下方案:
方案A、RRC信令显式配置CORESET0的TCI state list;
方案B、RRC信令或MAC-CE信令通知CORESET0的TCI state list对应的BWP索引信息,CORESET0的TCI state list属于BWP索引信息对应的BWP中的PDSCH或除CORESET0之外的CORESET中配置的TCI state list;
方案C、RRC信令或MAC-CE信令通知CORESET0的TCI state list对应的(BWP索引信息,CORESET索引信息),CORESET0的TCI state list属于(BWP索引信息,CORESET索引信息)对应的CORESET中配置的TCI state list;
方案D、RRC信令或MAC-CE信令通知CORESET0的TCI state list对应的(BWP索引信息,数据信道(PDSCH-config)索引信息),CORESET0的TCI state list属于(BWP索引信息,PDSCH-config索引信息)对应的CORESET中配置的TCI state list;
在一实施方式中,上述MAC-CE命令可以为激活CORESET的TCI state的MAC-CE命令。
方案E、携带为CORESET0激活的TCI state的MAC-CE信令中,当CORESETID指示域指示为CORESET0时,serving cell(服务小区)ID和第一信息联合编码,或者,serving cell ID的特定的至少一个指示域用于指示第一信息,其中第一信息包括如下信息至少之一:BWP索引、CORESET索引、PDSCH-config索引、TCI-state list索引、CORESET0的TCI state list属于第一信息对应的TCI-state list。比如CORESETID指示域指示的不是CORESET0时, 为CORESET激活TCI state的MAC-CE命令中不携带第一信息,当CORESETID指示域指示的是CORESET0时,为CORESET激活TCI state的MAC-CE命令中携带第一信息。
上述实施例中,一个准共址参考信号配置指示信息索引为一个TCI state ID。
上述方案中的PDSCH或具有最低CORESETID的CORESET对应的TCI state list满足如下特征至少之一:
所述TCI state list中第一类TCI state的个数大于第四预定值,其中,所述第一类TCI state对应的准共址参考信号和同步信号之间满足准共址关系;
所述TCI state list中包括的TCI state的个数大于第三预定值;
所述PDSCH或CORESET所在的BWP和CORESET0是位于相同的成员载波(Component Carrier,CC),即一个服务小区(serving cell)。
上述方案中,CORESET0的TCI state list属于上述PDSCH或具有最低CORESETID对应的TCI state list,一种实施方式是,CORESET0的TCI state list就是上述PDSCH或具有最低CORESETID对应的TCI state list,另一种实施例方式是CORESET0的TCI state list由上述PDSCH或具有最低CORESETID对应的TCI state list中的所述第一类TCI state构成。
参见图3,本发明另一个实施例提出了一种确定准共址参考信号的装置,包括:
传输配置信息列表确定模块301,设置为确定第一控制信道元素对应的第一传输配置信息列表;
传输配置信息索引信息确定模块302,设置为确定为所述第一控制信道元素激活的传输配置信息在所述第一传输配置信息列表中的索引信息;
第一准共址参考信号确定模块303,设置为根据所述索引信息和所述第一传 输配置信息列表确定所述第一控制信道元素激活的准共址参考信号。
在本发明另一个实施例中,所述第一传输配置信息列表中一个传输配置信息对应至少一个准共址参考信号集合。
在本发明另一个实施例中,包括以下至少之一:
一个准共址参数在一个准共址参考信号集合中只能关联一个参考信号;
不同准共址参考信号集合关联的准共址参数集合的差集为空;
一个准共址参考信号集合最多只能包括两个参考信号。
在本发明另一个实施例中,传输配置信息列表确定模块301是设置为采用以下至少之一方式实现确定第一控制信道元素对应的第一传输配置信息列表:
根据第一控制信令确定所述第一传输配置信息列表;
根据所述第一控制信道元素是否属于预定控制信道元素集合的判断结果,确定所述第一传输配置信息列表;
根据除初始带宽部分之外配置的带宽部分的个数信息确定所述第一传输配置信息列表;
根据满足第一预定特征的带宽部分对应的信道元素是否配置传输配置信息列表的判断结果,确定所述第一传输配置信息列表;
根据预定信道元素中配置的传输配置信息列表是否满足第三预定特征的判断结果,确定所述第一传输配置信息列表;
满足第一预定条件时,第二控制信令中服务小区索引信息和所述第一传输配置信息列表指示信息之间联合编码;
满足第一预定条件时,所述第二控制信令中携带所述第一传输配置信息列表信息;
满足第一预定条件时,所述第二控制信令中服务小区索引信息用于指示所 述第一传输配置信息列表;
其中,第一预定条件包括如下至少之一:所述第一控制信道元素属于预定控制信道元素集合、服务小区的个数小于第一预定值、配置了所述预定控制信道元素集合的服务小区的个数小于第二预定值。
在本发明另一个实施例中,所述第一控制信令中携带第一传输配置信息列表信息;
或者,
所述第一控制信令中携带带宽部分索引信息,所述第一传输配置信息列表属于所述带宽部分索引信息对应的带宽部分中的第一信道元素的配置信息中配置的第二传输配置信息列表;
或者,
所述第一控制信令中携带以下至少之一:带宽部分索引信息、信道元素索引信息、所述第一控制信道元素索引信息,其中,所述第一传输配置信息列表属于所述带宽部分索引信息和所述信道元素索引信息对应的第二信道元素的配置信息中配置的第三传输配置信息列表。其中,第二信道元素即为带宽部分索引信息对应的带宽部分中信道元素索引信息对应的信道元素。
在本发明另一个实施例中,所述第一传输配置信息列表属于所述第三传输配置信息列表包括:
所述第三传配置信息列表中属于所述第一传输配置信息列表的传输配置信息对应的准共址参考信号和同步信号之间关于一类准共址参数满足准共址关系。
在本发明另一个实施例中,所述第一控制信道元素或所述第一信道元素或所述第二信道元素满足以下至少之一:
所述第一控制信道元素和所述第一信道元素包含的控制信道元素是两个不 同的控制信道元素;
所述第一控制信道元素和所述第二信道元素包含的控制信道元素是两个不同的控制信道元素;
所述第一控制信道元素或所述第一信道元素包含的控制信道元素或所述第二信道元素包含的控制信道元素为下行控制信道元素;
所述第一控制信道元素或所述第一信道元素包含的控制信道元素或所述第二信道元素包含的控制信道元素包括如下至少之一:控制信道资源集合、搜索空间集合、搜索空间、候选控制信道;
所述带宽部分索引信息对应的频域带宽中包括所述第一控制信道元素所占的资源;
所述第一信道元素包括以下至少之一:数据信道元素、控制信道元素;
所述第一信道元素和所述第一控制信道元素所在的频域带宽不同;
所述第二信道元素包括以下至少之一:数据信道元素、控制信道元素;
所述第二信道元素和所述第一控制信道元素所在的频域带宽不同。
在本发明另一个实施例中,传输配置信息列表确定模块301是设置为采用以下至少之一方式实现所述根据第一控制信道元素是否属于预定控制信道元素集合的判断结果确定所述第一传输配置指示信息列表:
当所述第一控制信道元素不属于所述预定控制信道元素集合时,所述第一传输配置信息列表为所述第三控制信令中为所述第一控制信道元素配置的传输配置信息列表,其中,所述第三控制信令中携带第一控制信道元素索引;
当所述第一控制信道元素属于所述预定控制信道元素集合时,所述第一传输配置信息列表属于第四控制信令中为第三信道元素配置的传输配置信息列表,其中,所述第四控制信令中不携带所述第一控制信道索引;
其中,所述预定控制信道元素集合中包括以下至少之一:
控制信道资源集合0、搜索空间集合0。
在本发明另一个实施例中,所述第三信道元素满足如下特征至少之一:
所述第三信道元素所在的带宽部分在预定时刻满足第一预定特征;
所述第三信道元素在预定时刻满足第二预定特征;
所述第三信道元素中配置的传输配置信息列表满足第三预定特征;
所述第三信道元素包括的控制信道元素集合和所述预定控制信道元素集合的交集为空;
所述第三信道元素包括以下至少之一:数据信道元素、控制信道元素。
在本发明另一个实施例中,所述第一预定特征包括如下至少之一:
所述带宽部分处于激活状态;
所述带宽部分为初始带宽部分;
所述带宽部分为默认带宽部分;
所述带宽部分和所述第一控制信道元素所在的带宽部分属于一个成员载波;
所述带宽部分包括所述第一控制信道元素所占的资源;
所述带宽部分为带宽部分集合中具有最低带宽部分索引的带宽部分;
所述带宽部分中包括至少一个预定类信道元素,所述预定类信道元素中不包括所述第一控制信道元素。
在本发明另一个实施例中,所述第二预定特征包括如下至少之一:
所述第三信道元素是距离所述预定时刻最近的时间单元中传输的信道元素;
所述第三信道元素是距离所述预定时刻最近的时间单元中的除所述第一控制信道元素之外的控制信道元素集合中具有预定控制信道元素索引的控制信道元素;
所述第三信道元素是在所述预定时刻满足所述第一预定特征的带宽部分中的除所述第一控制信道元素之外的控制信道元素集合中具有预定控制信道元素索引的控制信道元素;
所述第三信道元素是距离所述预定时刻最近的时间单元中的除所述第一控制信道元素之外的控制信道元素集合中具有预定控制信道元素索引的控制信道元素;
所述第三信道元素是在预定时刻满足所述第一预定特征的带宽部分中具有预定控制信道元素索引的控制信道元素;
其中,预定控制信道元素索引包括以下任意一个:最低控制信道元素索引、最高控制信道元素索引。
在本发明另一个实施例中,传输配置信息索引信息确定模块302是设置为:
根据第二控制信令确定所述索引信息,其中,所述第二控制信令包括所述索引信息;
所述预定时刻包括如下之一:
所述第二控制信令的传输时刻或所述传输时刻所在的时间单元;
所述第二控制信令中携带的传输配置信息可用于所述第一控制信道元素接收的开始时刻或所述开始时刻所在的时间单元;
所述预定时刻和所述第二控制信令信息有关联;
所述第一控制信道元素的检测时刻或所述检测时刻所在的时间单元。
在本发明另一个实施例中,第二控制信令满足如下特征至少之一:
满足第一预定条件时,所述第二控制信令中服务小区索引信息和所述第一传输配置信息列表信息之间联合编码;
满足第一预定条件时,所述第二控制信令中携带第一传输配置信息列表信 息;
满足第一预定条件时,所述第二控制信令中服务小区索引信息用于指示所述第一传输配置信息列表;
所述第二控制信令为MAC-CE控制信令;
其中,第一预定条件包括如下至少之一:所述第一控制信道元素属于预定控制信道元素集合、服务小区的个数小于第一预定值、配置了所述预定控制信道元素集合的服务小区的个数小于第二预定值;
所述第一传输配置信息列表信息包括如下信息至少之一:带宽部分索引信息、第一控制信道元素索引信息、信道元素索引信息、传输配置信息列表索引信息。
在本发明另一个实施例中,所述第三预定特征包括如下至少之一:
所述预定信道元素或所述第三信道元素中配置的传输配置信息列表中包括的元素个数大于第三预定值;
所述预定信道元素或所述第三信道元素中配置的传输配置信息列表中包括的第一类传输配置信息的个数大于第四预定值,其中,所述第一类传输配置信息对应的每个准共址参考信号和同步信号之间满足准共址关系;
所述预定信道元素或所述第三信道元素中配置的传输配置信息列表中包括的第二类传输配置信息的个数大于第五预定值,其中,所述第二类传输配置信息对应的关联预定类准共址参数的准共址参考信号和同步信号之间满足准共址关系。
在本发明另一个实施例中,传输配置信息列表确定模块301是设置为采用以下至少之一方式实现所述根据除初始带宽部分之外配置的带宽部分的个数信息确定所述第一传输配置信息列表:
当所述除初始带宽部分之外配置的带宽部分的个数小于第六预定值时,确定所述第一传输配置信息列表属于所述初始带宽部分中的第四信道元素的配置信息中配置的第四传输配置信息列表;
当所述除初始带宽部分之外配置的带宽部分的个数大于或等于第六预定值时,确定所述第一传输配置信息列表属于除所述初始带宽部分之外的带宽部分集合中具有最低带宽部分索引的带宽部分中的第五信道元素的配置信息中配置的第五传输配置信息列表。
在本发明另一个实施例中,传输配置信息列表确定模块301是设置为采用以下至少之一方式实现所述根据满足第一预定特征的带宽部分对应的信道元素是否配置传输配置信息列表的判断结果,确定所述第一传输配置信息列表:
当所述满足第一预定特征的带宽部分对应的信道元素没有配置传输配置信息列表时,确定所述第一传输配置信息列表属于除初始带宽部分之外的带宽部分中的第六信道元素的配置信息中配置的第六传输配置信息列表;
当所述满足第一预定特征的带宽部分对应的信道元素配置了传输配置信息列表时,确定所述第一传输配置信息列表属于所述初始带宽部分中的第七信道元素的配置信息中配置的第七传输配置信息列表。
在本发明另一个实施例中,所述第一传输配置信息列表属于所述第X传输配置信息列表,其中X为二到七中的一个值,包括:
所述第X传输配置信息列表中属于所述第一传输配置信息列表的传输配置信息对应的准共址参考信号和同步信号之间关于一类准共址参数满足准共址关系。
在本发明另一个实施例中,所述一类准共址参数满足以下至少之一:
所述一类准共址参数包括如下参数至少之一:
多普勒频移、多普勒扩展、平均延迟、延迟扩展、平均增益;
所述一类准共欧址参数不包括空间接收滤波参数。
在本发明另一个实施例中,所述第一控制信道元素或第i信道元素,其中所述i为一到七中的一个值,满足以下至少之一:
所述第一控制信道元素和所述第i信道元素包含的控制信道元素是两个不同的控制信道元素;
所述第一控制信道元素和所述第i信道元素中至少一个包含的控制信道元素包括如下至少之一:控制信道资源集合、搜索空间集合、搜索空间、候选控制信道、下行控制信道;
所述第i信道元素包括以下至少之一:数据信道元素、控制信道元素;
所述第i信道元素和所述第一控制信道元素所在的频域带宽不同;
所述第i信道元素中配置的传输配置信息列表满足第三预定特征;
在本发明另一个实施例中,所述第三预定特征包括如下至少之一:
所述预定信道元素或所述第三信道元素中配置的传输配置信息列表中包括的元素个数大于第三预定值;
所述预定信道元素或所述第三信道元素中配置的传输配置信息列表中包括的第一类传输配置信息的个数大于第四预定值,其中,所述第一类传输配置信息对应的每个准共址参考信号和同步信号之间满足准共址关系;
所述预定信道元素或所述第三信道元素中配置的传输配置信息列表中包括的第二类传输配置信息的个数大于第五预定值,其中,所述第二类传输配置信息对应的关联预定类准共址参数的准共址参考信号和同步信号之间满足准共址关系。
在本发明另一个实施例中,传输配置信息索引信息确定模块302是设置为 采用以下至少之一实现所述确定为所述第一控制信道元素激活的传输配置信息在所述第一传输配置信息列表中的索引信息:
当满足第二预定条件时,根据第二控制信令确定所述索引信息,其中,所述第二控制信令包括所述索引信息;
当不满足所述第二预定条件时,所述第一控制信道元素的准共址参考信号为所述第一传输配置信息列表中预定的至少一个所述传输配置信息索引对应的准共址参考信号;
其中,所述第二预定条件包括:
所述第一传输配置信息列表中包括的传输配置信息的个数大于第七预定值。
在本发明另一个实施例中,所述第一控制信令或所述第二控制信令满足如下特征至少之一:
所述第一控制信令和所述第一控制信道元素之间存在关联关系;
所述第一控制信令还携带所述第一控制信道元素信息;
所述第二控制信令为MAC-CE控制信令;
所述第一控制信令和所述第二控制信令是同一个控制信令;
所述第一控制信令为无线资源控制RRC信令。
在本发明另一个实施例中,第一准共址参考信号确定模块303是设置为:
根据所述索引信息和所述第一传输配置信息列表确定所述第一控制信道元素激活的传输配置信息;
根据所述第一控制信道元素激活的传输配置信息确定所述第一控制信道元素激活的准共址参考信号。
在本发明另一个实施例中,第一控制信道元素激活的准共址参考信号对应至少两个同步信号块,该装置还包括:
检测时机确定模块304,设置为根据所述第一控制信道元素激活的准共址参考信号对应的至少两个同步信号块确定所述第一控制信道元素的检测时机;
其中,所述第一控制信道元素包括以下至少之一:
控制信道资源集合0、搜索空间集合0。
上述确定准共址参考信号的装置的实现过程与前述实施例确定准共址参考信号的方法的实现过程相同,这里不再赘述。
本发明另一个实施例提出了一种确定准共址参考信号的装置,包括处理器和计算机可读存储介质,所述计算机可读存储介质中存储有指令,当所述指令被所述处理器执行时,实现上述任一种确定准共址参考信号的方法。
本发明另一个实施例提出了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上述任一种确定准共址参考信号的方法的步骤。
目前,标准中对于目标参考信号所在的频域资源和目标的准共址参考信号所在的频域资源没有限定,导致目标参考信号的一类准共址参数获取不准确,目标参考信号对应的信道和信号中至少之一的接收不准确,从而降低了频谱效率。本文中针对上述问题提出上述解决方案,可以有效提高目标参考信号的一类准共址参数的获取准确度,提高频谱效率。标准中对于参考信号信息可能出现某些配置,这些配置会使得系统无法正常工作,为此本文提供了一些解决方案,以使得系统能够正常运行。
参见图4,本发明另一个实施例提出了一种确定准共址参考信号的方法,包括:
步骤400、当满足第三预定条件时,根据包括满足第四预定特征的控制信道元素的第一时间单元的集合中,距离参考信号对应的信道和信号中至少之一最 近的第二时间单元中,满足第五预定特征的控制信道元素的准共址参考信号确定所述参考信号的准共址参考信号。
在本发明另一个实施例中,该方法还包括:
步骤401、根据参考信号的准共址参考信号传输参考信号。
在本发明另一个实施例中,所述第四预定特征包括以下至少之一:
所述控制信道元素和索引为0的控制信道元素的交集为空,即控制信道元素不为CORESET0;
当所述第一时间单元满足第四预定条件时,所述控制信道元素包括索引为0的控制信道元素;
所述控制信道元素和所述参考信号对应的信道和信号中至少之一在相同的频域带宽;
所述控制信道元素和所述第一时间单元中处于激活状态的带宽部分之间满足第六预定特征;
所述控制信道元素所在的第一频域资源和所述第一时间单元中处于激活状态的带宽部分对应的第二频域资源之间满足第五预定条件;
所述控制信道元素关联一类准共址参数的准共址参考信号所在的第三频域资源和所述第一时间单元中处于激活状态的带宽部分对应的第二频域资源之间满足第五预定条件,其中,带宽部分对应的第二频域资源即为带宽部分包括的PRB集合。
在本发明另一个实施例中,所述第一时间单元满足第四预定条件包括如下至少之一:
所述第一时间单元中处于激活状态的带宽部分为预定带宽部分,其中,所述预定带宽部分包括如下之一:索引为0的带宽部分、索引为1的带宽部分, 索引为0的控制信道元素对应的传输配置信息列表属于所述预定带宽部分中包括的信道元素对应的传输配置信息列表;
所述第一时间单元中处于激活状态的带宽部分包括初始带宽部分对应的频域资源;
所述第一时间单元中处于激活状态的带宽部分和索引为0的控制信道元素之间满足第六预定特征。
在本发明另一个实施例中,所述控制信道元素和所述第一时间单元中处于激活状态的带宽部分之间满足第六预定特征如下至少之一:
所述带宽部分的配置信息中包括所述控制信道元素的配置信息;
所述带宽部分的配置信息中包括至少一个搜索空间集合的配置信息,其中,所述搜索空间集合和所述控制信道元素关联,即所述搜索空间的频域资源为所述控制信道元素占有的频域资源,所述搜索空间集合中的候选控制信道在所述控制信道元素确定的频域资源中分布;
所述带宽部分包括所述控制信道元素所在的频域资源;
所述带宽部分包括第一带宽部分对应的频域资源,其中,所述第一带宽部分的配置信息中包括所述控制信道元素的配置信息;
所述带宽部分处于激活状态的时间资源和所述控制信道元素的检测时间资源之间的交集非空,其中,所述控制信道元素的检测时间为所述控制信道元素关联的至少一个搜索空间集合的检测时间的并集。
在本发明另一个实施例中,所述满足第五预定特征的控制信道元素包括:
距离所述参考信号对应的信道和信号中至少之一最近的第二时间单元中满足所述第四预定特征的控制信道元素构成的集合中具有最低控制信道元素索引的控制信道元素。
在本发明另一个实施例中,参考信号对应的信道和信号中至少之一满足第三预定条件包括以下至少之一:
调度所述参考信号对应的信道和信号中至少之一的控制信道与所述参考信号对应的信道和信号中至少之一之间的时间间隔小于预定阈值;
调度所述参考信号对应的信道和信号中至少之一的控制信道关联一类准共址参数的准共址参考信号所在的第四频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源不满足第五预定条件,且调度所述参考信号对应的信道和信号中至少之一的控制信道中不包括传输配置信息的指示信息;
调度所述参考信号对应的信道和信号中至少之一的控制信道所在的第六频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源不满足第五预定条件,且调度所述参考信号对应的信道和信号中至少之一的控制信道中不包括传输配置信息的指示信息;
所述满足第五预定特征的控制信道元素关联一类准共址参数的准共址参考信号所在的第十二频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源满足第五预定条件;
第二信号所在的第十三频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源满足第五预定条件,其中所述第二信号和所述满足第五预定特征的控制信道的准共址参考信号或所述调度所述参考信号的控制信道的准共址参考信号关于一类准共址参数满足准共址关系;
所述满足第五预定特征的控制信道元素所在的第十三频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源满足第五预定条件;
调度所述参考信号的控制信道中,指示所述参考信号的传输配置信息中关联一类准共址参数的准共址参考信号所在的第七频域资源与所述参考信号对应 的信道和信号中至少之一所在的第五频域资源不满足第五预定条件;
通信节点收到至少一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号。
在本发明另一个实施例中,所述预定阈值根据如下信息至少之一获取:
上报的能力信息;
所述参考信号对应的信道和信号中至少之一对应的子载波间隔;
上报的能力信息对应的子载波间隔;
调度所述参考信号对应的信道和信号中至少之一的控制信道对应的子载波间隔;
满足所述第五预定特征的控制信道元素对应的子载波间隔;
所述时间间隔计算时所采用的子载波间隔。
在本发明另一个实施例中,所述时间间隔根据如下信息至少之一获取:
调度所述参考信号对应的信道和信号中至少之一的控制信道对应的子载波间隔;
所述参考信号对应的信道和信号中至少之一对应的子载波间隔;
所述预定阈值计算时所采用的子载波间隔。
在本发明另一个实施例中,所述参考信号对应的信道和信号中至少之一满足如下之一:
所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述参考信号关联一类准共址参数的准共址参考信号所在的第八频域资源之间满足第五预定条件;
所述参考信号对应的信道和信号中至少之一所在的第五频域资源和第二信号所在的第九频域资源之间满足第五预定条件,其中,所述第二信号和所述参 考信号之间关于一类准共址参数满足准共址关系;
当所述参考信号对应的信道和信号中至少之一和参考信号关联一类准共址参数的准共址参考信号所在的频域带宽不同时,参考信号对应的信道和信号中至少之一所在的第五频域资源和所述参考信号关联一类准共址参数的准共址参考信号所在的第八频域资源满足第五预定条件;
当所述参考信号对应的信道和信号中至少之一和所述第二信号所在的频域带宽不同时,参考信号对应的信道和信号中至少之一所在的第五频域资源和所述第二信号所在的第十频域资源满足第五预定条件,其中,所述第二信号和参考信号的准共址参考信号关于一类准共址参数满足准共址关系;
当所述参考信号对应的信道和信号中至少之一和所述参考信号关联一类准共址参数的准共址参考信号所在的频域带宽不同,且所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述参考信号关联一类准共址参数的准共址参考信号所在的第八频域资源不满足第五预定条件时,满足所述第三预定条件;
当所述参考信号对应的信道和信号中至少之一和所述第二信号所在的频域带宽不同且所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述第二信号所在的第九频域资源满足第五预定条件时,满足所述第三预定条件,其中,所述第二信号和所述参考信号的准共址参考信号关于一类准共址参数满足准共址关系。
在本发明另一个实施例中,所述参考信号的准共址参考信号和所述第二信号中至少之一为跟踪参考信号时,所述跟踪参考信号的频域跨度大于或等于频域跨度Y,其中,所述频域跨度Y根据如下方式之一获取:
当所述跟踪参考信号的周期属于第一周期集合时,所述Y为min(52PRB, 所述参考信号对应的信道和信号中至少之一对应的频域跨度),min表示求最小值;
当所述跟踪参考信号的周期不属于第一周期集合时,所述Y为所述参考信号对应的信道和信号中至少之一对应的频域跨度;
其中,所述参考信号对应的信道和信号中至少之一对应的频域跨度包括如下至少之一:
所述参考信号对应的信道和信号中至少之一所在的带宽部分包括的频域资源块集合;
所述参考信号对应的信道和信号中至少之一所占的频域资源块集合中的最高索引频域资源块和最高索引资源块之间的频域资源块集合。
在本发明另一个实施例中,所述第一周期集合包括如下周期:10毫秒。
在本发明另一个实施例中,两个频域资源满足第五预定条件包括如下至少之一:
两个频域资源的差集为空,即两个频域资源是相同的频域资源,比如频域资源为CC/BWP时,则一个频域资源对应的CC1/BWP1和另一个频域资源对应的CC2/BWP2是相同的BWP,又如,频域资源为频域资源块集合时,一个频域资源对应的频域资源块集合和另一个频域资源对应的频域资源块集合是相同的,又如,频域资源为频域资源块集合对应的跨度时,一个频域资源对应的频域资源块集合对应的跨度和另一个频域资源对应的频域资源块集合对应的跨度是相同的;
两个频域资源包括的频域跨度的差值小于预定值;
其中一个频域资源属于另一个频域资源;
两个频域资源的交集非空;
两个频域资源的子载波间隔相同。
在本发明另一个实施例中,一类准共址参数满足以下至少之一:
一类准共址参数包括以下参数至少之一:
多普勒频移、多普勒扩展、平均延迟、延迟扩展、平均增益;
所述一类准共址参数不包括空间接收滤波参数。
在本发明另一个实施例中,所述信道和、信号和控制信道元素中至少之一所在的频域资源包括如下至少之一:
所述信道和、信号和控制信道元素中至少之一所在的成员载波;
所述信道和、信号和控制信道元素中至少之一所在的成员载波的带宽部分;
所述信道和、信号和控制信道元素中至少之一所占有的频域资源块集合;
所述信道和、信号和控制信道元素中至少之一所占有的频域资源块集合对应的频域跨度。
在本发明另一个实施例中,该方法还包括:
当不存在包括满足第四预定特征的控制信道元素的第一时间单元时,不希望收到满足所述第三预定条件的调度信息。
实施例1
在本实施例中,当PDSCH/AP-CSI-RS(Aperiodic-Channel State Information-Reference Signal,非周期信道状态信息参考信号)满足第三预定条件时,PDSCH/AP-CSI-RS的准共址参考信号根据包括满足第四预定特征的CORESET的第一时间单元的集合中,距离所述PDSCH/AP-CSI-RS最近的第二时间单元中,满足第五预定特征的CORESET的准共址参考信号集合获取,根据PDSCH/AP-CSI-RS的准共址参考信号传输PDSCH/AP-CSI-RS。
其中,第四预定特征包括以下至少之一:
特征一:所述CORESET和索引为0的CORESET的交集为空,即所述CORESET不是CORESET0;
特征二:所述CORESET和参考信号对应的信道和/或信号在相同的频域带宽;比如,CORESET和信道和信号中至少之一所在的CC和BWP中至少之一相同;
特征三:CORESET和第一时间单元中的处于激活状态的带宽部分之间满足第六预定特征;
特征四:所述控制信道元素所在的第一频域资源和所述第一时间单元中处于激活状态的带宽部分对应的第二频域资源之间满足第五预定条件;
特征五:所述控制信道元素关联一类准共址参数的准共址参考信号所在的第三频域资源和所述时间单元中处于激活状态的带宽部分对应的第二频域资源之间满足第五预定条件,其中,带宽部分对应的第二频域资源即为带宽部分包括的PRB集合。
所述控制信道元素的准共址参考信号为所述控制信道元素关联一类准共址参数的准共址参考信号。
PDSCH/AP-CSI-RS满足第三预定条件包括如下至少之一:
条件一:调度所述PDSCH/AP-CSI-RS的PDCCH和PDSCH/AP-CSI-RS之间的时间间隔小于预定阈值;
条件二:调度所述PDSCH/AP-CSI-RS的PDCCH的关联一类准共址参数的准共址参考信号所在的第四频域资源和所述PDSCH/AP-CSI-RS所在的第五频域资源不满足第五预定条件,PDCCH中不包括PDSCH/AP-CSI-RS的准共址参考信号的指示信息,比如TCI信息;
条件三:调度所述PDSCH/AP-CSI-RS的PDCCH所在的CORESET所在的 第六频域资源和所述PDSCH/AP-CSI-RS所在的第五频域资源不满足第五预定条件,PDCCH中不包括PDSCH/AP-CSI-RS的准共址参考信号的指示信息,比如TCI信息;
条件四:调度所述PDSCH/AP-CSI-RS的PDCCH的TCI中指示的PDSCH/AP-CSI-RS关联一类准共址参数的准共址参考信号所在的第七频域资源和所述参考信号对应的信道和信号中至少之一所在的第五频域资源不满足第五预定条件。
上述一类准共址参数包括如下至少之一:
Doppler shift、Doppler spread、average delay、delay spread、average gain;
或者,一类准共址参数不包括空间接收参数。
CORESET和第一时间单元中的处于激活状态的带宽部分之间满足第六预定特征包括如下至少之一:
所述带宽部分的配置信息中包括所述CORESET的配置信息;
所述带宽部分的配置信息中至少包括一个搜索空间集合的配置信息,其中,所述搜索空间集合和所述CORESET关联,即所述搜索空间的频域资源为所述CORESET占有的频域资源,所述搜索空间集合中的候选控制信道在所述CORESET确定的频域资源中分布;
所述带宽部分包括所述CORESET所在的频域资源;
所述带宽部分包括第一带宽部分对应的频域资源,其中,所述第一带宽部分的配置信息中包括所述CORESET的配置信息;
所述带宽部分处于激活状态的时间资源和所述CORESET的检测时间资源之间的交集非空,其中,CORESET的检测时间为所述CORESET关联的至少一个搜索空间集合的检测时间的并集。
两个频域资源满足第五预定条件包括如下至少之一:
两个频域资源的差集为空;
两个频域资源包括的频域跨度的差值小于预定值;
其中一个频域资源属于另一个频域资源;
两个频域资源的交集非空;
两个频域资源的子载波间隔相同。
当不存在满足第四预定特征的CORESET时,通信节点不希望调度PDSCH/AP-CSI-RS之间的时间间隔小于预定阈值。比如在PDSCH/AP-CSI-RS所在的CC/BWP中没有配置CORESET或者没有配置满足第四预定特征的CORESET,则PDCCH和PDSCH之间的时间间隔不能小于预定阈值。
所述预定阈值根据如下信息至少之一获取:
通信节点上报的能力信息;
参考信号对应的信道和中至少之一对应的子载波间隔;
通信节点上报的能力信息对应的子载波间隔和所述信道和信号中至少之一对应的子载波间隔之间的比例关系,比如终端上报其将PDCCH指示的TCI信息用于PDSCH/AP-CSI-RS接收需要的最小时长,在子载波间隔为60kHz时为7个时域符号,对于子载波间隔为120kHz时为28个时域符号,则当PDSCH/AP-CSI-RS所在的BWP的子载波间隔为60KHz时,所述预定阀值为7个时域符号,当PDSCH/AP-CSI-RS所在的BWP的子载波间隔为120KHz时,所述预定阀值为28个时域符号,即通信节点能力上报中,不同的子载波间隔对应的时域符号数对应的绝对时长不同,从而当PDCCH所在的BWP的子载波间隔为60KHz时,所述预定阀值为7个时域符号,当PDCCH所在的BWP的子载波间隔为120KHz时,所述预定阀值为28个时域符号,其中PDCCH是调度 PDSCH的PDCCH,或者当所述满足第五预定特征的CORESET所在的BWP的子载波间隔为60KHz时,所述预定阀值为7个时域符号,当所述满足第五预定特征的CORESET所在的BWP的子载波间隔为120KHz时,所述预定阀值为28个时域符号;
调度所述参考信号对应的信道和信号中至少之一的控制信道对应的子载波间隔;
满足所述第五预定特征的控制信道元素对应的子载波间隔;
所述时间间隔计算时所采用的子载波间隔。
如图3所示,PDCCH和PDSCH所在BWP的子载波间隔不同,比如PDCCH所在的BWP1的子载波间隔为60kHz,PDSCH所在的BWP2的子载波间隔为120KHz,BWP2中两个slot对应BWP1中的一个slot,所述PDCCH和PDSCH之间的时间间隔根据如下方式至少之一获取:
方式一:时间间隔对应的时域符号数以PDCCH所在的BWP的子载波间隔为参照得到,如图5所示,此时PDCCH和PDSCH之间的时间间隔为
Figure PCTCN2019117599-appb-000003
其中,N GAP为时间间隔。
方式二:时间间隔对应的时域符号数获取参数中包括PDCCH所在的BWP对应的子载波间隔和PDSCH/AP-CSI-RS所在的BWP对应的子载波间隔的比例信息,如图5所示,
Figure PCTCN2019117599-appb-000004
方式三:所述时间间隔所采用的子载波间隔为所述PDCCH所在的BWP1的子载波间隔和PDSCH所在的BWP2的子载波间隔的最小者/最大者得到;
方式四:时间间隔为PDCCH所在(slot,BWP的子载波间隔BWP1)获得的第一时域符号个数与PDSCH所在(slot,BWP的子载波间隔BWP2)获得的 第二时域符号个数的和,如图5所示,此时时间间隔为N GAP=N PDSCH,BWP2+N PDCCH,BWP1=2+11=13。
上述方式中,N PDCCH,BWP1表示在PDCCH和PDSCH/AP-CSI-RS之间,在PDCCH所在的BWP1中包括的以BWP1的子载波间隔为参照的符号数,N PDSCH,BWP2表示在PDCCH和PDSCH/AP-CSI-RS之间,在PDSCH/AP-CSI-RS所在的BWP2中包括的以BWP2的子载波间隔为参照的符号数。
在上述时间间隔的获取方式一~三中,所述预定阀值根据所述时间间隔所采用的子载波间隔得到该子载波间隔对应的通信节点上报的能力信息,比如所述时间间隔计算时域符号数时所采用的子载波间隔为60KHz时,所述预定阀值为7个时域符号,所述时间间隔计算时域符号数时所采用的子载波间隔为120KHz时,所述预定阀值为28个时域符号。
在上述PDCCH和PDSCH所在的BWP的子载波间隔不属于{60kHz,120kHz}时,所述预定阈值采用{60kHz,120kHz}其中之一计算,所述时间间隔以所述预定阈值采用的子载波间隔得到。比如PDCCH和PDSCH所在的BWP的子载波间隔为15kHz,所述预定阈值采用通信节点能力上报中对应60KHz的预定阈值,即为7个时域符号,则如果PDCCH和PDSCH之间间隔子载波间隔为15KHz的10时域符号,换算为子载波间隔为60KHz的时域符号数为
Figure PCTCN2019117599-appb-000005
实施例2
在本实施例中,当PDCCH满足第六预定条件时,PDCCH和PDSCH/AP-CSI-RS之间的时间间隔不能大于或等于预定阈值,即此时PDCCH和PDSCH/AP-CSI-RS之间的时间间隔只能小于预定阈值,或当PDCCH满足第 四预定条件时,通信节点不希望收到PDCCH和PDSCH/AP-CSI-RS之间的时间间隔大于或等于预定阈值这样的调度,或者当PDCCH和PDSCH/AP-CSI-RS之间的时间间隔大于预定阈值时,PDCCH不能满足第六预定条件,所述PDCCH为调度PDSCH/AP-CSI-RS的PDSCH。
其中,第六预定条件包括PDCCH中不包括PDSCH/AP-CSI-RS的准共址参考信号指示信息(比如TCI信息)与如下条件至少之一:
PDCCH的关联一类准共址参数的准共址参考信号所在的第四频域资源和所述PDSCH/AP-CSI-RS所在的第五频域资源不满足第五预定条件;
PDCCH所在的CORESET所在的第六频域资源和所述PDSCH/AP-CSI-RS所在的第五频域资源不满足第五预定条件;
没有一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号;
一个频域带宽或者一个频域带宽组中的传输配置指示信息没有一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号。
所述一类准共址参数包括如下参数至少之一:
Doppler shift、Doppler spread、average delay、delay spread、average gain;
或者所述一类准共址参数不包括空间接收参数。
所述当PDCCH和PDSCH/AP-CSI-RS之间的时间间隔大于预定阈值且PDCCH中不包括PDSCH/AP-CSI-RS的准共址参考信号指示信息(比如TCI信息)时,需要满足如下条件至少之一:
PDCCH的关联一类准共址参数的准共址参考信号所在的第一频域资源和所述PDSCH/AP-CSI-RS所在的第二频域资源满足第五预定条件;
PDCCH所在的CORESET所在的第一频域资源和所述PDSCH/AP-CSI-RS 所在的第二频域资源满足第五预定条件;
没有一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号;
一个频域带宽或者一个频域带宽组中的传输配置指示信息没有一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号。
两个频域资源满足第五预定条件包括如下至少之一:
两个频域资源的差集为空,即两个频域资源是相同的频域资源,比如频域资源为CC/BWP时,则一个频域资源对应的CC1/BWP1和另一个频域资源对应的CC2/BWP2是相同的BWP,又如,频域资源为频域资源块集合时,一个频域资源对应的频域资源块集合和另一个频域资源对应的频域资源块集合是相同的,又如,频域资源为频域资源块集合对应的跨度时,一个频域资源对应的频域资源块集合对应的跨度和另一个频域资源对应的频域资源块集合对应的跨度是相同的;
两个频域资源包括的频域跨度的差值小于预定值;
其中一个频域资源属于另一个频域资源;
两个频域资源的交集非空;
两个频域资源的子载波间隔相同。
实施例3
在本实施例中,包括以下至少之一:
所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述参考信号关联一类准共址参数的准共址参考信号所在的第八频域资源之间满足第五预定条件;
所述参考信号对应的信道和信号中至少之一所在的第五频域资源和第二信 号所在的第九频域资源之间满足第五预定条件,其中,所述第二信号和所述参考信号之间关于一类准共址参数满足准共址关系;
当所述参考信号对应的信道和信号中至少之一和所述参考信号关联一类准共址参数的准共址参考信号所在的频域带宽不同时,所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述参考信号关联一类准共址参数的准共址参考信号所在的第八频域资源满足第五预定条件;其中,所述频域带宽包括CC和BWP中至少之一;
当所述参考信号对应的信道和信号中至少之一和所述第二信号所在的频域带宽不同时,所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述第二信号所在的第九频域资源满足第五预定条件,其中,所述第二信号和所述参考信号的准共址参考信号关于一类准共址参数满足准共址关系。
参考信号和参考信号关联一类准共址参数的准共址参考信号关于预定类准共址参数满足准共址关系;
所述第二信号和参考信号关联一类准共址参数的准共址参考信号关于预定类准共址参数满足准共址关系。
所述预定类准共址参数满足以下至少之一:
所述预定类准共址参数包括如下参数至少之一:Doppler shift(多普勒频移)、Doppler spread(多普勒扩展)、average delay(平均延迟)、delay spread(延迟扩展);
所述预定类准共址参数不包括空间接收参数。
参考信号的准共址参考信号包括如下至少之一:解调参考信号、测量参考信号、相位跟踪参考信号(Phase Tracking Reference Signal,PTRS、用于跟踪的测量参考信号(CSI-RS for Tracking,TRS,)、解调参考信号对应的信道。
准共址参考信号和所述第二信号中至少之一包括如下至少之一:测量参考信号、用于跟踪的测量参考信号(CSI-RS for Tracking,TRS)、同步信号。
两个频域资源满足第五预定条件包括如下至少之一:
两个频域资源的差集为空,即两个频域资源是相同的频域资源,比如频域资源为CC/BWP时,则一个频域资源对应的CC1/BWP1和另一个频域资源对应的CC2/BWP2是相同的BWP,又如,频域资源为频域资源块集合时,一个频域资源对应的频域资源块集合和另一个频域资源对应的频域资源块集合是相同的,又如,频域资源为频域资源块集合对应的跨度时,一个频域资源对应的频域资源块集合对应的跨度和另一个频域资源对应的频域资源块集合对应的跨度是相同的;
两个频域资源包括的频域跨度的差值小于预定值;
其中一个频域资源属于另一个频域资源;
两个频域资源的交集非空;
两个频域资源的子载波间隔相同。
特别地,比如参考信号的准共址参考信号是TRS时或者第二信号是TRS时,TRS占有的物理资源块(Physical Resource Block,PRB)的个数根据如下方式至少之一获取:
当TRS的周期为2 u×10个时隙(slot)时,TRS占有的PRB个数需要满足:min(52,N);
当TRS的周期不为2 u×10个slot时,TRS占有的PRB个数为N;
其中,N为参考信号所在的BWP包含的PRB的个数,或者为BWP1包含的PRB的个数
Figure PCTCN2019117599-appb-000006
BWP1中包括参考信号所在的频域资源,上述参数u为CSI-RS的子载波间隔参数,即CSI-RS的子载波间隔为2 u×15千赫兹(kHz)。
参考信号的准共址参考信号是TRS或者所述第二信号为TRS时,则TRS占有的PRB的个数需要满足如下特征:
当TRS的周期为2 u×10个slot时,TRS占有的PRB个数不小于min(52,N);
当TRS的周期不为2 u×10个slot时,TRS占有的PRB个数为不小于N;
其中,N为目标信号所在的BWP包含的PRB的个数,或者为BWP1包含的PRB的个数
Figure PCTCN2019117599-appb-000007
BWP1中包括目标信号所在的频域资源,上述参数u为CSI-RS的子载波间隔参数,即CSI-RS的子载波间隔为2 u×15千赫兹(kHz)。
实施例4
在本实施例中,终端不希望收到如下的配置信息:PDCCH和PDSCH/AP-CSI-RS之间的时间间隔小于预定阈值,PDCCH所在的频域带宽索引和PDSCH/AP-CSI-RS所在的频域带宽索引不同。其中所述频域带宽为CC和BWP中至少之一,PDCCH为调度所述PDSCH/AP-CSI-RS的PDCCH。
即PDCCH所在的频域带宽索引和PDSCH所在的频域带宽索引不同时,PDCCH和PDSCH/AP-CSI-RS之间的时间间隔大于或者等于预定阈值,即BWP/CC切换的时候,PDCCH和PDSCH/AP-CSI-RS之间的时间间隔不能小于预定阈值。
实施例5
在本实施例中,当终端收到的TCI配置信息中都不包括关联type(类型)-D准共址参数的准共址参考信号,且PDCCH的指示中包括TCI指示信息时,PDSCH/AP-CSI-RS的TCI信息根据DCI指示的信息获取,不管PDCCH和PDSCH之间的时间间隔和预定阈值之间的关系,比如PDCCH和PDSCH之间的时间间隔小于所述预定阈值,还是PDCCH和PDSCH之间的时间间隔大于或等于所述预定阈值,PDSCH/AP-CSI-RS的TCI信息都根据DCI指示的信息获取。
当终端收到的TCI配置信息中都不包括关联type-D准共址参数的准共址参考信号,且PDCCH的指示中不包括TCI指示信息时,可以根据如下方式之一获取PDSCH/AP-CSI-RS的TCI信息,不管PDCCH和PDSCH之间的时间间隔和预定阈值之间的关系:
方式一:根据PDCCH的准共址参考信号获取。
方式二:根据终端在初始接入时选择的SSB。
究竟用方式一还是方式二,可以是基站显式指示;
或者根据PDSCH/AP-CSI-RS所在的频域资源的频域跨度信息确定,比如频域跨度很小时,就用方式二,频域跨度很大时,就用方式一;
或者约定就用一种方式;
或者根据SSB的周期,当SSB的周期小于预定值时,根据方式二获取,否则根据方式一获取;
或者根据是否RRC为PDCCH/PDSCH配置了TCI信息。
其中,type-D准共址参数为空间接收参数,PDCCH为调度PDCCH/AP-CSI-RS的准共址参考信号,PDSCH/AP-CSI-RS的TCI信息即PDSCH/AP-CSI-RS的准共址参考信号信息。
实施例6
在本实施例中,当终端收到的针对一个频域带宽/频域带宽组的TCI配置信息中都不包括关联type-D准共址参数的准共址参考信号,且PDCCH的指示中包括TCI指示信息时,PDSCH/AP-CSI-RS的TCI信息根据DCI指示的信息获取,不管PDCCH和PDSCH之间的时间间隔和预定阈值之间的关系。
当终端收到的针对一个频域带宽/频域带宽组的TCI配置信息中TCI配置信息中都不包括关联type-D准共址参数的准共址参考信号,且PDCCH的指示中 不包括TCI指示信息时,PDSCH/AP-CSI-RS的TCI信息根据PDCCH的准共址参考信号获取,不管PDCCH和PDSCH之间的时间间隔和预定阈值之间的关系。
其中,一个频域带宽包括以下至少之一:一个CC和一个BWP。
在一实施方式中,一个频域带宽组属于一个Intra-Band。
实施例7
在本实施例中,终端上报的能力信息一对应的时间间隔长度大于能力信息二对应的时间间隔长度。其中能力信息一表示BWP切换时,PDCCH到PDSCH/AP-CSI-RS之间的最小时间间隔,能力信息二表示终端将PDCCH指示的TCI信息用于PDSCH/AP-CSI-RS的接收所需要的最小时间间隔。
能力信息对应的时间间隔以秒为单元计算,而不是以时域符号个数为单位计算。
实施例8
在本实施例中,当满足第六预定条件时,PDSCH/AP-CSI-RS的准共址参考信号根据PDCCH的准共址参考信号获取,其中PDCCH为调度所述PDSCH/AP-CSI-RS的准共址参考信号。
所述第六预定条件包括如下至少之一:
所述PDCCH中不包括准共址参考信号指示信息;
所述PDCCH和所述PDSCH/AP-CSI-RS之间的时间间隔大于或者等于预定阈值;
终端收到的TCI配置信息中都不包括关联type-D准共址参数的准共址参考信号;
针对一个频域带宽/频域带宽组的TCI配置信息中都不包括关联type-D准共址参数的准共址参考信号。
实施例9
在本实施例中,一个CC中的一个CSI-RS resource ID(资源标识)可以被配置在多于一个的resource setting中,每个resource setting中配置一个BWP-ID,需要预定一个CSI-RS resource ID所在的多个resource setting中的BWP-ID对应的BWP满足预定条件,比如一个CSI-RS resource ID所在的多个resource setting中的BWP-ID相同。其中一个resource setting包括至少一个resource set(资源集合),每个resource set中包括至少一个resource。
上述预定仅适合于CSI-RS for Tracking,即TRS参考信号。
实施例10
在本实施例中,一个CC中的一个CSI-RS resource ID可以被配置在多于一个的resource setting中,每个resource setting中配置一个BWP-ID。
在TCI的配置信息中,会配置准共址参考信号(CSI-RS resource ID,CC索引信息,BWP索引信息),约定TCI中配置的CSI-RS resource ID对应的BWP索引信息(即BWP-ID信息)和该CSI-RS resource ID所在的至少一个resource setting中的其中一个resource setting中配置的BWP-ID相同。
上述预定仅适合于CSI-RS for Tracking,即TRS参考信号。
实施例11
在本实施例中,为CORESET0/搜索空间0配置准共址参考信号集合的RRC控制信令中,或者为CORESET0激活准共址参考信号集合的MAC-CE控制信令中,为CORESET0/搜索空间配置多于一个的SSB索引信息,一个SSB索引信息对应CORESET0/搜索空间0的一个周期检测时机,终端根据所述多于一个的SSB索引信息得到CORESET0/搜索空间多于一个的周期检测时机。
终端在多于一个的周期检测时机中检测CORESET0/搜索空间0。
当PDSCH/AP-CSI-RS的准共址参考信号根据CORESET0/搜索空间0的准共址参考信号获取时,基站需要通知或者和终端约定是CORESET0/搜索空间0对应的多于一个的SSB index(索引)中的哪一个或者哪几个获取。
其中一个SSB index对应一个SS/PBCHB(Synchronization Signal/Physical Broadcast Channel Block,同步信号/物理广播信道块)。
实施例12
在NR中规定了终端要上报maxNumberActiveTCI-PerBWP用于指示终端在一个CC的一个BWP中为控制和数据激活的TCI的最大个数,其中maxNumberActiveTCI-PerBWP属于{1,2,4,8},当终端上报maxNumberActiveTCI-PerBWP为1的时候,一个CC的一个BWP中为控制和数据激活的TCI的最大个数为1。基站为终端在一个CC的一个BWP为其控制和数据激活的TCI个数不能超过终端上报的能力。其中基站为终端在一个CC的一个BWP为其控制和数据激活的TCI个数不包括如下至少之一的TCI,或者终端上报的maxNumberActiveTCI-PerBWP为1时,基站为终端在一个CC的一个BWP为其控制和数据激活的TCI个数不包括如下TCI至少之一:
TCI1:COERSET0的TCI state,比如基站通过信令信息为CORESET0配置了一个TCI state;
TCI2:COERSET0的准共址参考信号,比如CORESET0的准共址参考信号是根据终端在随机接入中选择的SSB时,或者基站通过信令为CORESET0配置一个SSB索引,而不是TCI state索引,也不是基站通过信令为CORESET0配置一个TCI state时,CORESET0的准共址参考信号不计算在激活TCI个数中;
TCI3:CORESET-BFR(Beam Failure and Recovery,波束失败和恢复)的准共址参考信号,CORESET-BFR的准共址参考信号为终端在波束失败请求中上报的 参考信号,此准共址参考信号不计算在激活TCI个数中。
当终端上报的maxNumberActiveTCI-PerBWP为1时,由于BFR是随机发生,这样一种方式是CORESET-BFR之外就不能有激活的TCI,或者可以采用如下方案中的至少之一:
方案1:检测到波束失败之后到收到基站对于PDCCH的重配置之前,激活TCI个数是2个,其他时间段激活TCI个数是1个;
方案2:激活TCI个数根据max(maxNumberActiveTCI-PerBWP,size(q0)+1)确定,其中size(q0)是波束失败检测参考信号集合q0中包括的参考信号个数,max表示求最大值;
方案3:当为终端配置BFR参数之后或者终端上报的能力信息中支持BFR功能时,终端上报的maxNumberActiveTCI-PerBWP信息不能为1;
方案4:当检测到波束失败之后预定时刻到收到基站对于PDCCH的重配置之前,所有CORESET/所有专有CORESET的准共址参考信号更新为终端上报的新参考信号。
参见图6,本发明另一个实施例提出了一种确定准共址参考信号的装置,包括:
第二准共址参考信号确定模块601,设置为当参考信号对应的信道和信号中至少之一满足第三预定条件时,根据包括满足第四预定特征的控制信道元素的第一时间单元的集合中,距离所述参考信号对应的信道和信号中至少之一最近的第二时间单元中,满足第五预定特征的控制信道元素的准共址参考信号确定所述参考信号的准共址参考信号。
在本发明另一个实施例中,还包括:
传输模块602,设置为根据所述参考信号的准共址参考信号传输所述参考信 号。
在本发明另一个实施例中,所述第四预定特征包括以下至少之一:
所述控制信道元素和索引为0的控制信道元素的交集为空,即控制信道元素不为CORESET0;
当所述第一时间单元满足第四预定条件时,所述控制信道元素包括索引为0的控制信道元素;
所述控制信道元素和所述参考信号对应的信道和信号中至少之一在相同的频域带宽;
所述控制信道元素和所述第一时间单元中处于激活状态的带宽部分之间满足第六预定特征;
所述控制信道元素所在的第一频域资源和所述第一时间单元中处于激活状态的带宽部分对应的第二频域资源之间满足第五预定条件;
所述控制信道元素关联一类准共址参数的准共址参考信号所在的第三频域资源和所述第一时间单元中处于激活状态的带宽部分对应的第二频域资源之间满足第五预定条件。
在本发明另一个实施例中,所述第一时间单元满足第四预定条件包括如下至少之一:
所述第一时间单元中处于激活状态的带宽部分为预定带宽部分,其中,所述预定带宽部分包括如下之一:索引为0的带宽部分、索引为1的带宽部分,索引为0的控制信道元素对应的传输配置信息列表属于所述预定带宽部分中包括的信道元素对应的传输配置信息列表;
所述第一时间单元中处于激活状态的带宽部分包括初始带宽部分对应的频域资源;
所述第一时间单元中处于激活状态的带宽部分和索引为0的控制信道元素之间满足第六预定特征。
在本发明另一个实施例中,控制信道元素和所述第一时间单元中处于激活状态的带宽部分之间满足第六预定特征包括如下至少之一:
所述带宽部分的配置信息中包括所述控制信道元素的配置信息;
所述带宽部分的配置信息中包括至少一个搜索空间集合的配置信息,其中,所述搜索空间集合和所述控制信道元素关联,即所述搜索空间的频域资源为所述控制信道元素占有的频域资源,所述搜索空间集合中的候选控制信道在所述控制信道元素确定的频域资源中分布;
所述带宽部分包括所述控制信道元素所在的频域资源;
所述带宽部分包括第一带宽部分对应的频域资源,其中,所述第一带宽部分的配置信息中包括所述控制信道元素的配置信息;
所述带宽部分处于激活状态的时间资源和所述控制信道元素的检测时间资源之间的交集非空,其中,所述控制信道元素的检测时间为所述控制信道元素关联的至少一个搜索空间集合的检测时间的并集。
在本发明另一个实施例中,所述满足第五预定特征的控制信道元素包括:
距离所述参考信号对应的信道和信号中至少之一最近的第二时间单元中满足所述第四预定特征的控制信道元素构成的集合中具有最低控制信道元素索引的控制信道元素。
在本发明另一个实施例中,参考信号对应的信道和信号中至少之一满足第三预定条件包括以下至少之一:
调度所述参考信号对应的信道和信号中至少之一的控制信道与所述参考信号对应的信道和信号中至少之一之间的时间间隔小于预定阈值;
调度所述参考信号对应的信道和信号中至少之一的控制信道关联一类准共址参数的准共址参考信号所在的第四频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源不满足第五预定条件,且调度所述参考信号对应的信道和信号中至少之一的控制信道中不包括传输配置信息的指示信息;
调度所述参考信号对应的信道和信号中至少之一的控制信道所在的第六频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源不满足第五预定条件,且调度所述参考信号对应的信道和信号中至少之一的控制信道中不包括传输配置信息的指示信息;
所述满足第五预定特征的控制信道元素关联一类准共址参数的准共址参考信号所在的第十二频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源满足第五预定条件;
第二信号所在的第十三频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源满足第五预定条件,其中所述第二信号和所述满足第五预定特征的控制信道的准共址参考信号或所述调度所述参考信号的控制信道的准共址参考信号关于一类准共址参数满足准共址关系;
所述满足第五预定特征的控制信道元素所在的第十三频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源满足第五预定条件;
调度所述参考信号的控制信道中,指示所述参考信号的传输配置信息中关联一类准共址参数的准共址参考信号所在的第七频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源不满足第五预定条件;
通信节点收到至少一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号。
在本发明另一个实施例中,所述预定阈值根据如下信息至少之一获取:
上报的能力信息;
所述参考信号对应的信道和信号中至少之一对应的子载波间隔;
上报的能力信息对应的子载波间隔;
调度所述参考信号对应的信道和信号中至少之一的控制信道对应的子载波间隔;
满足所述第五预定特征的控制信道元素对应的子载波间隔;
所述时间间隔计算时所采用的子载波间隔。
在本发明另一个实施例中,所述时间间隔根据如下信息至少之一获取:
调度所述参考信号对应的信道和信号中至少之一的控制信道对应的子载波间隔;
所述参考信号对应的信道和信号中至少之一对应的子载波间隔;
所述预定阈值对应的子载波间隔;
所述预定阈值计算时所采用的子载波间隔。
在本发明另一个实施例中,所述参考信号对应的信道和信号中至少之一满足如下之一:
所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述参考信号关联一类准共址参数的准共址参考信号所在的第八频域资源之间满足第五预定条件;
所述参考信号对应的信道和信号中至少之一所在的第五频域资源和第二信号所在的第九频域资源之间满足第五预定条件,其中,所述第二信号和所述参考信号之间关于一类准共址参数满足准共址关系;
当所述参考信号对应的信道和信号中至少之一和所述参考信号关联一类准共址参数的准共址参考信号所在的频域带宽不同时,所述参考信号对应的信道 和信号中至少之一所在的第五频域资源和所述参考信号关联一类准共址参数的准共址参考信号所在的第八频域资源满足第五预定条件;
当所述参考信号对应的信道和信号中至少之一和所述第二信号所在的频域带宽不同时,所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述第二信号所在的第九频域资源满足第五预定条件,其中,所述第二信号和所述参考信号的准共址参考信号关于一类准共址参数满足准共址关系;
当所述参考信号对应的信道和信号中至少之一和所述参考信号关联一类准共址参数的准共址参考信号所在的频域带宽不同且所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述参考信号关联一类准共址参数的准共址参考信号所在的第八频域资源不满足第五预定条件时,满足所述第三预定条件;
当所述参考信号对应的信道和信号中至少之一和所述第二信号所在的频域带宽不同且所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述第二信号所在的第九频域资源满足第五预定条件时,满足所述第三预定条件,其中,所述第二信号和所述参考信号的准共址参考信号关于一类准共址参数满足准共址关系。
在本发明另一个实施例中,所述参考信号的准共址参考信号和所述第二信号中至少之一为跟踪参考信号时,所述跟踪参考信号的频域跨度大于或等于预定频域跨度Y,其中,所述预定频域跨度Y根据如下方式至少之一获取:
当所述跟踪参考信号的周期属于第一周期集合时,所述Y为min(52PRB,所述参考信号对应的信道和信号中至少之一对应的频域跨度);
当所述跟踪参考信号的周期不属于第一周期集合时,所述Y为所述参考信号对应的信道和/或信号对应的频域跨度;
其中,所述参考信号对应的信道和信号中至少之一对应的频域跨度包括如下至少之一:
所述参考信号对应的信道和信号中至少之一所在的带宽部分包括的频域资源块集合;
所述参考信号对应的信道和信号中至少之一所占的频域资源块集合中的最高索引频域资源块和最高索引资源块之间的频域资源块集合。
在本发明另一个实施例中,所述第一周期集合包括如下周期:10毫秒。
在本发明另一个实施例中,两个频域资源满足第五预定条件包括如下至少之一:
两个频域资源的差集为空,即两个频域资源是相同的频域资源,比如频域资源为CC/BWP时,则一个频域资源对应的CC1/BWP1和另一个频域资源对应的CC2/BWP2是相同的BWP,又如,频域资源为频域资源块集合时,一个频域资源对应的频域资源块集合和另一个频域资源对应的频域资源块集合是相同的,又如,频域资源为频域资源块集合对应的跨度时,一个频域资源对应的频域资源块集合对应的跨度和另一个频域资源对应的频域资源块集合对应的跨度是相同的;
两个频域资源包括的频域跨度的差值小于预定值;
其中一个频域资源属于另一个频域资源;
两个频域资源的交集非空;
两个频域资源的子载波间隔相同。
在本发明另一个实施例中,所述一类准共址参数满足以下至少之一:
所述一类准共址参数包括以下参数至少之一:
多普勒频移、多普勒扩展、平均延迟、延迟扩展、平均增益;
所述一类准共址参数不包括空间接收滤波参数。
在本发明另一个实施例中,所述信道、信号和控制信道元素中至少之一所在的频域资源包括如下至少之一:
所述信道、信号和控制信道元素中至少之一所在的成员载波;
所述信道、信号和控制信道元素中至少之一所在的成员载波的带宽部分;
所述信道、信号和控制信道元素中至少之一所占有的频域资源块集合;
所述信道、信号和控制信道元素中至少之一所占有的频域资源块集合对应的频域跨度。
在本发明另一个实施例中,该方法还包括:
当不存在包括满足第四预定特征的控制信道元素的第一时间单元时,不希望收到满足所述第三预定条件的调度信息。
本发明实施例的确定准共址参考信号的装置的实现过程与前述实施例确定准共址参考信号的方法的实现过程相同,这里不再赘述。
本发明另一个实施例提出了一种确定准共址参考信号的装置,包括处理器和计算机可读存储介质,所述计算机可读存储介质中存储有指令,当所述指令被所述处理器执行时,实现上述任一种确定准共址参考信号的方法。
本发明另一个实施例提出了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上述任一种确定准共址参考信号的方法的步骤。
本发明另一个实施例提出了一种参考信号的传输方法,包括:
根据信令信息和第一预定规则中至少之一,确定参考信号信息,参考信号信息端口需要满足第二预定规则;
根据所述参考信号信息,传输以下至少之一:所述参考信号、所述参考信 号对应的信道和所述参考信号对应的信号。
在本发明另一个实施例中,所述第二预定规则包括如下至少之一:
所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述参考信号关联一类准共址参数的准共址参考信号所在的第八频域资源之间满足第五预定条件;
所述参考信号对应的信道和信号中至少之一所在的第五频域资源和第二信号所在的第九频域资源之间满足第五预定条件,其中,所述第二信号和所述参考信号之间关于一类准共址参数满足准共址关系;
当所述参考信号对应的信道和信号中至少之一和所述参考信号关联一类准共址参数的准共址参考信号所在的频域带宽不同时,所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述参考信号关联一类准共址参数的准共址参考信号所在的第八频域资源满足第五预定条件;
当所述参考信号对应的信道和信号中至少之一和所述第二信号所在的频域带宽不同时,所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述第二信号所在的第九频域资源满足第五预定条件,其中,所述第二信号和所述参考信号的准共址参考信号关于一类准共址参数满足准共址关系。
在本发明另一个实施例中,所述参考信号包括如下信号至少之一:解调参考信号、测量参考信号、相位跟踪参考信号(Phase Tracking Reference Signal,(PTRS)、用于跟踪的测量参考信号(CSI-RS for Tracking,TRS)、解调参考信号对应的信道;
所述准共址参考信号和所述第二信号中至少之一包括如下至少之一:测量参考信号、用于跟踪的测量参考信号、同步信号。
在本发明另一个实施例中,所述参考信号的准共址参考信号和所述第二信 号中至少之一为跟踪参考信号时,所述跟踪参考信号的频域跨度大于或等于频域跨度Y,其中,所述频域跨度Y根据如下方式至少之一获取:
当所述跟踪参考信号的周期属于第一周期集合时,所述Y为min(52PRB,所述参考信号对应的信道和信号中至少之一对应的频域跨度);
当所述跟踪参考信号的周期不属于第一周期集合时,所述Y为所述参考信号对应的信道和信号中至少之一对应的频域跨度;
其中,所述参考信号对应的信道和信号中至少之一对应的频域跨度包括如下之一:
所述参考信号对应的信道和信号中至少之一所在的带宽部分包括的频域资源块集合;
所述参考信号对应的信道和信号中至少之一所占的频域资源块集合中的最高索引频域资源块和最高索引资源块之间的频域资源块集合。
在本发明另一个实施例中,所述第一周期集合包括如下周期:10毫秒。
在本发明另一个实施例中,所述第二预定规则包括如下至少之一:
没有一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号且控制信令中携带所述参考信号的准共址参考信号信息时,所述参考信号的准共址参考信号根据携带所述参考信号的准共址参考信号信息获取,
没有一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号且控制信令中不携带所述参考信号的准共址参考信号信息时,所述参考信号的准共址参考信号根据调度所述参考信号的控制信道的准共址参考信号获取;
没有一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号且控制信令中不携带所述参考信号的准共址参考信号信息时,所述参考信号的准共址参考信号根据通信节点在随机接入中选择的参考信号获取;
在预定频域带宽组中没有一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号且控制信令中携带所述参考信号的准共址参考信号信息时,所述参考信号的准共址参考信号根据携带所述参考信号的准共址参考信号信息获取;
在预定频域带宽组中没有一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号且控制信令中不携带所述参考信号的准共址参考信号信息时,所述参考信号的准共址参考信号根据调度所述参考信号的控制信道的准共址参考信号获取;
在预定频域带宽组中没有一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号且控制信令中不携带所述参考信号的准共址参考信号信息时,所述参考信号的准共址参考信号根据通信节点在随机接入中选择的参考信号获取;
其中所述控制信令包含在物理层控制信道中;
在本发明另一个实施例中,所述根据信令信息和第一预定规则中至少之一,确定参考信号信息,参考信号信息端口需要满足第二预定规则,包括,当控制信令中不包括准共址参考信号指示信息时,所述第一预定规则包括如下至少之一:
所述参考信号对应的信道和信号中至少之一所在的第五频域资源和控制信道关联一类准共址参数的准共址参考信号所在的第九频域资源之间满足第五预定条件时,所述参考信号的准共址参考信号根据控制信道准共址参考信号获取;
所述参考信号对应的信道和信号中至少之一所在的第五频域资源和控制信道所在的第十一频域资源之间满足第五预定条件时,所述参考信号的准共址参考信号根据控制信道的准共址参考信号获取;
所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述控制信道关联一类准共址参数的准共址参考信号所在的第九频域资源之间不满足第五预定条件时,控制信道和所述参考信号对应的信道和信号中至少之一之间的时间间隔小于预定阈值;
所述参考信号对应的信道和信号中至少之一所在的第五频域资源和控制信道所在的第十一频域资源之间不满足第五预定条件时,控制信道和所述参考信号对应的信道和信号中至少之一之间的时间间隔小于预定阈值;
其中所述控制信道为调度所述参考信号的控制信道和所述控制信令中至少之一在所述控制信道中传输。
在本发明另一个实施例中,两个频域资源满足第五预定条件包括如下至少之一:
两个频域资源的差集为空;
两个频域资源包括的频域跨度的差值小于预定值;
其中一个频域资源属于另一个频域资源;
两个频域资源的交集非空;
两个频域资源的子载波间隔相同。
在本发明另一个实施例中,所述一类准共址参数满足以下至少之一:
所述一类准共址参数包括以下参数至少之一:
多普勒频移、多普勒扩展、平均延迟、延迟扩展、平均增益;
所述一类准共址参数不包括空间接收滤波参数。
在本发明另一个实施例中,所述信道、信号和控制信道元素中至少之一所在的频域资源包括如下至少之一:
所述信道和信号中至少之一所在的成员载波;
所述信道和信号中至少之一所在的成员载波的带宽部分;
所述信道和信号中至少之一所占有的频域资源块集合;
所述信道和信号中至少之一所占有的频域资源块集合对应的频域跨度。
在本发明另一个实施例中,所述参考信号信息端口需要满足第二预定规则,包括:
所述控制信令中包括传输配置指示信息,其中传输配置指示信息中包括参考信号索引和带宽部分索引信息,其中所述带宽部分索引信息属于所述参考信号索引所在的一个resource setting中配置的带宽部分索引。
在本发明另一个实施例中,所述参考信号信息端口需要满足第二预定规则,包括如下至少之一:
所述控制信令中包括多于一个的resource setting配置信息,其中所述多于一个的resource setting中包括相同的CSI-RS ID时,所述多于一个的resource seting中配置的带宽部分索引相同,其中所述多于一个的resource setting属于一个CC;
基站为一个终端在一个CC的一个BWP中的为数据信道和控制信道中至少之一激活的配置指示信息的最大个数,不超过终端上报的在一个CC的一个BWP中支持的数据信道和控制信道中至少之一激活的配置指示信息的最大个数;
基站为一个终端在一个CC的一个BWP中的为数据信道和控制信道中至少之一激活的配置指示信息的最大个数根据max(maxNumberActiveTCI-PerBWP,size(q0)+1)确定,其中size(q0)是波束失败检测参考信号集合q0中包括的参考信号个数,maxNumberActiveTCI-PerBWP是终端上报的在一个CC的一个BWP中支持的数据信道和控制信道中至少之一激活的配置指示信息的最大个数。
在本发明另一个实施例中,在计算所述基站为一个终端在一个CC的一个BWP中的为数据信道和控制信道中至少之一激活的配置指示信息的个数时,不 包括如下至少之一:
COERSET0的TCI state;
COERSET0的准共址参考信号;
CORESET-BFR的准共址参考信号。
在本发明另一个实施例中,当终端上报的在一个CC的一个BWP中支持的数据信道和控制信道中至少之一激活的配置指示信息的最大个数为1时,采用如下方案至少之一:
方案1:检测到波束失败之后到收到基站对于PDCCH的重配置之前,激活的配置指示信息的最大个数是2个,其他时间段激活的配置指示信息的最大个数是1个;
方案2:激活的配置指示信息的最大个数根据max(maxNumberActiveTCI-PerBWP,size(q0)+1)确定,其中size(q0)是波束失败检测参考信号集合q0中包括的参考信号个数;
方案3:当为终端配置BFR参数之后或者终端上报的能力信息中支持BFR功能时,终端上报的maxNumberActiveTCI-PerBWP信息不能为1;
方案4:当检测到波束失败之后预定时刻到收到基站对于PDCCH的重配置之前,所有CORESET/所有专有CORESET的准共址参考信号更新为终端上报的新参考信号。
在本发明另一个实施例中,所述根据信令信息和第一预定规则中至少之一,确定参考信号信息,参考信号信息端口需要满足第二预定规则,所述第一规则包括如下至少之一:
调度所述参考信号的控制信道和所述参考信号对应的信道和信号中至少之一在不同的频域带宽时,调度所述参考信号的控制信道和所述参考信号对应的 信道和信号中至少之一之间的时间间隔大于或者等于预定阈值;
终端上报的能力信息一对应的时间间隔长度大于能力信息二之对应的时间间隔长度,其中能力信息一表示BWP切换时,PDCCH到PDSCH/AP-CSI-RS之间的最小时间间隔,能力信息二表示终端将PDCCH指示的TCI信息用于PDSCH/AP-CSI-RS的接收所需要的最小时间间隔。
在本发明另一个实施例中,所述预定阈值根据如下信息至少之一获取:
上报的能力信息;
所述参考信号对应的信道和信号中至少之一对应的子载波间隔;
上报的能力信息对应的子载波间隔;
调度所述参考信号的控制信道对应的子载波间隔;
满足所述第五预定特征的控制信道元素对应的子载波间隔;
时间间隔计算时所采用的子载波间隔。
在本发明另一个实施例中,所述时间间隔根据如下信息至少之一获取:
调度所述参考信号的控制信道对应的子载波间隔;
所述参考信号对应的信道和信号中至少之一对应的子载波间隔;
预定阈值计算时所采用的子载波间隔。
本发明另一个实施例提出了一种参考信号的传输装置,包括:
确定模块,设置为根据信令信息和第一预定规则中至少之一,确定参考信号信息,参考信号信息端口需要满足第二预定规则;
第二传输模块,设置为根据所述参考信号信息,传输以下至少之一:所述参考信号、所述参考信号对应的信道和所述参考信号对应的信号。
上述参考信号的传输装置与前述实施例的参考信号的传输方法的实现过程相同,这里不再赘述。
本发明另一个实施例提出了一种参考信号的传输装置,包括处理器和计算机可读存储介质,所述计算机可读存储介质中存储有指令,当所述指令被所述处理器执行时,实现上述任一种参考信号的传输方法。
本发明另一个实施例提出了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上述任一种参考信号的传输方法的步骤。
本领域普通技术人员可以理解,上文中所公开方法中的全部或某些步骤、系统、装置中的功能模块/单元可以被实施为软件、固件、硬件及其适当的组合。在硬件实施方式中,在以上描述中提及的功能模块/单元之间的划分不一定对应于物理组件的划分;例如,一个物理组件可以具有多个功能,或者一个功能或步骤可以由若干物理组件合作执行。某些组件或所有组件可以被实施为由处理器,如数字信号处理器或微处理器执行的软件,或者被实施为硬件,或者被实施为集成电路,如专用集成电路。这样的软件可以分布在计算机可读介质上,计算机可读介质可以包括计算机存储介质(或非暂时性介质)和通信介质(或暂时性介质)。如本领域普通技术人员公知的,术语计算机存储介质包括在用于存储信息(诸如计算机可读指令、数据结构、程序模块或其他数据)的任何方法或技术中实施的易失性和非易失性、可移除和不可移除介质。计算机存储介质包括但不限于RAM、ROM、EEPROM、闪存或其他存储器技术、CD-ROM、数字多功能盘(DVD)或其他光盘存储、磁盒、磁带、磁盘存储或其他磁存储装置、或者可以用于存储期望的信息并且可以被计算机访问的任何其他的介质。此外,本领域普通技术人员公知的是,通信介质通常包含计算机可读指令、数据结构、程序模块或者诸如载波或其他传输机制之类的调制数据信号中的其他数据,并且可包括任何信息递送介质。

Claims (62)

  1. 一种确定准共址参考信号的方法,包括:
    确定第一控制信道元素对应的第一传输配置信息列表;
    确定为所述第一控制信道元素激活的传输配置信息在所述第一传输配置信息列表中的索引信息;
    根据所述索引信息和所述第一传输配置信息列表确定所述第一控制信道元素激活的准共址参考信号。
  2. 根据权利要求1所述的方法,其中,所述第一传输配置信息列表中的一个传输配置信息对应至少一个准共址参考信号集合。
  3. 根据权利要求1所述的方法,其中,所述确定第一控制信道元素对应的第一传输配置信息列表包括以下至少之一:
    根据第一控制信令确定所述第一传输配置信息列表;
    根据所述第一控制信道元素是否属于预定控制信道元素集合的判断结果,确定所述第一传输配置信息列表;
    根据除初始带宽部分之外配置的带宽部分的个数信息确定所述第一传输配置信息列表;
    根据满足第一预定特征的带宽部分对应的信道元素是否配置传输配置信息列表的判断结果,确定所述第一传输配置信息列表;
    根据预定信道元素中配置的传输配置信息列表是否满足第三预定特征的判断结果,确定所述第一传输配置信息列表。
  4. 根据权利要求3所述的方法,其中,
    所述第一控制信令中携带第一传输配置信息列表信息;
    或者,
    所述第一控制信令中携带带宽部分索引信息,所述第一传输配置信息列表属于所述带宽部分索引信息对应的带宽部分中的第一信道元素的配置信息中配置的第二传输配置信息列表;
    或者,
    所述第一控制信令中携带以下至少之一:带宽部分索引信息、信道元素索引信息、所述第一控制信道元素索引信息,其中,所述第一传输配置信息列表属于所述带宽部分索引信息和所述信道元素索引信息对应的第二信道元素的配置信息中配置的第三传输配置信息列表。
  5. 根据权利要求3所述的方法,其中,所述根据第一控制信道元素是否属于预定控制信道元素集合的判断结果确定所述第一传输配置指示信息列表,包括如下至少之一:
    当所述第一控制信道元素不属于所述预定控制信道元素集合时,所述第一传输配置信息列表为第三控制信令中为所述第一控制信道元素配置的传输配置信息列表,其中,所述第三控制信令中携带第一控制信道元素索引;
    当所述第一控制信道元素属于所述预定控制信道元素集合时,所述第一传输配置信息列表属于第四控制信令中为第三信道元素配置的传输配置信息列表,其中,所述第四控制信令中不携带所述第一控制信道索引;
    其中,所述预定控制信道元素集合中包括以下至少之一:控制信道资源集合0、搜索空间集合0。
  6. 根据权利要求5所述的方法,其中,所述第三信道元素满足如下特征至少之一:
    所述第三信道元素所在的带宽部分在预定时刻满足所述第一预定特征;
    所述第三信道元素在预定时刻满足第二预定特征;
    所述第三信道元素中配置的传输配置信息列表满足所述第三预定特征;
    所述第三信道元素包括的控制信道元素集合和所述预定控制信道元素集合的交集为空;
    所述第三信道元素包括以下至少之一:数据信道元素、控制信道元素。
  7. 根据权利要求3或6所述的方法,其中,所述第一预定特征包括如下至少之一:
    所述带宽部分处于激活状态;
    所述带宽部分为初始带宽部分;
    所述带宽部分为默认带宽部分;
    所述带宽部分和所述第一控制信道元素所在的带宽部分属于一个成员载波;
    所述带宽部分包括所述第一控制信道元素所占的资源;
    所述带宽部分为带宽部分集合中具有最低带宽部分索引的带宽部分;
    所述带宽部分中包括至少一个预定类信道元素,所述预定类信道元素中不包括所述第一控制信道元素。
  8. 根据权利要求6所述的方法,其中,所述第二预定特征包括如下至少之一:
    所述第三信道元素是距离所述预定时刻最近的时间单元中传输的信道元素;
    所述第三信道元素是距离所述预定时刻最近的时间单元中的除所述第一控制信道元素之外的控制信道元素集合中具有预定控制信道元素索引的控制信道元素;
    所述第三信道元素是在所述预定时刻满足所述第一预定特征的带宽部分中的除所述第一控制信道元素之外的控制信道元素集合中具有预定控制信道元素索引的控制信道元素;
    所述第三信道元素是距离所述预定时刻最近的时间单元中的除所述第一控制信道元素之外的控制信道元素集合中具有预定控制信道元素索引的控制信道元素;
    所述第三信道元素是在预定时刻满足所述第一预定特征的带宽部分中具有预定控制信道元素索引的控制信道元素;
    其中,所述预定控制信道元素索引包括以下任意一个:最低控制信道元素索引、最高控制信道元素索引。
  9. 根据权利要求1所述的方法,其中,所述确定为所述第一控制信道元素激活的传输配置信息在所述第一传输配置信息列表中的索引信息包括:
    根据第二控制信令确定所述索引信息,其中,所述第二控制信令包括所述索引信息。
  10. 根据权利要求6~9任一项所述的方法,其中,所述预定时刻包括如下之一:
    所述第二控制信令的传输时刻或所述传输时刻所在的时间单元;
    所述第二控制信令中携带的传输配置信息可用于所述第一控制信道元素接收的开始时刻或所述开始时刻所在的时间单元;
    所述预定时刻和所述第二控制信令信息有关联;
    所述第一控制信道元素的检测时刻或所述检测时刻所在的时间单元。
  11. 根据权利要求10所述的方法,其中,所述第二控制信令满足如下特征至少之一:
    满足第一预定条件时,所述第二控制信令中服务小区索引信息和第一传输配置信息列表信息之间联合编码;
    满足第一预定条件时,所述第二控制信令中携带所述第一传输配置信息列 表信息;
    满足第一预定条件时,所述第二控制信令中服务小区索引信息用于指示所述第一传输配置信息列表;
    其中,所述第二控制信令为媒体访问控制-控制元素MAC-CE控制信令;
    所述第一预定条件包括如下至少之一:所述第一控制信道元素属于预定控制信道元素集合、所述服务小区的个数小于第一预定值、配置了所述预定控制信道元素集合的服务小区的个数小于第二预定值;
    所述第一传输配置信息列表信息包括如下信息至少之一:带宽部分索引信息、第一控制信道元素索引信息、信道元素索引信息、传输配置信息列表索引信息。
  12. 根据权利要求3或6所述的方法,其中,所述第三预定特征包括如下至少之一:
    所述预定信道元素或所述第三信道元素中配置的传输配置信息列表中包括的元素个数大于第三预定值;
    所述预定信道元素或所述第三信道元素中配置的传输配置信息列表中包括的第一类传输配置信息的个数大于第四预定值,其中,所述第一类传输配置信息对应的每个准共址参考信号和同步信号之间满足准共址关系;
    所述预定信道元素或所述第三信道元素中配置的传输配置信息列表中包括的第二类传输配置信息的个数大于第五预定值,其中,所述第二类传输配置信息对应的关联预定类准共址参数的准共址参考信号和同步信号之间满足准共址关系。
  13. 根据权利要求3所述的方法,其中,所述根据除初始带宽部分之外配置的带宽部分的个数信息确定所述第一传输配置信息列表包括以下至少之一:
    当所述除初始带宽部分之外配置的带宽部分的个数小于第六预定值时,确定所述第一传输配置信息列表属于所述初始带宽部分中的第四信道元素的配置信息中配置的第四传输配置信息列表;
    当所述除初始带宽部分之外配置的带宽部分的个数大于或等于第六预定值时,确定所述第一传输配置信息列表属于除所述初始带宽部分之外的带宽部分集合中具有最低带宽部分索引的带宽部分中的第五信道元素的配置信息中配置的第五传输配置信息列表。
  14. 根据权利要求3所述的方法,其中,所述根据满足第一预定特征的带宽部分对应的信道元素是否配置传输配置信息列表的判断结果,确定所述第一传输配置信息列表包括以下至少之一:
    当所述满足第一预定特征的带宽部分对应的信道元素没有配置传输配置信息列表时,确定所述第一传输配置信息列表属于除初始带宽部分之外的带宽部分中的第六信道元素的配置信息中配置的第六传输配置信息列表;
    当所述满足第一预定特征的带宽部分对应的信道元素配置了传输配置信息列表时,确定所述第一传输配置信息列表属于所述初始带宽部分中的第七信道元素的配置信息中配置的第七传输配置信息列表。
  15. 根据权利要求4~14中的任意一项所述的方法,其中,所述第一传输配置信息列表属于第X传输配置信息列表,包括:
    所述第X传输配置信息列表中属于所述第一传输配置信息列表的传输配置信息对应的准共址参考信号和同步信号之间关于一类准共址参数满足准共址关系,其中所述X为二到七中的一个值。
  16. 根据权利要求5~14中的任意一项所述的方法,其中,所述第一控制信道元素或第i信道元素,满足以下至少之一:
    所述第一控制信道元素和所述第i信道元素包含的控制信道元素是两个不同的控制信道元素;
    所述第一控制信道元素包含的控制信道元素包括如下至少之一:控制信道资源集合、搜索空间集合、搜索空间、候选控制信道、下行控制信道;
    所述第i信道元素包含的控制信道元素包括如下至少之一:控制信道资源集合、搜索空间集合、搜索空间、候选控制信道、下行控制信道;
    所述第i信道元素包括以下至少之一:数据信道元素、控制信道元素;
    所述第i信道元素和所述第一控制信道元素所在的频域带宽不同;
    所述第i信道元素中配置的传输配置信息列表满足第三预定特征;
    其中,所述i为一到七中的一个值。
  17. 根据权利要求3或6或16所述的方法,其中,所述第三预定特征包括如下至少之一:
    所述预定信道元素或所述第三信道元素中配置的传输配置信息列表中包括的元素个数大于第三预定值;
    所述预定信道元素或所述第三信道元素中配置的传输配置信息列表中包括的第一类传输配置信息的个数大于第四预定值,其中,所述第一类传输配置信息对应的每个准共址参考信号和同步信号之间满足准共址关系;
    所述预定信道元素或所述第三信道元素中配置的传输配置信息列表中包括的第二类传输配置信息的个数大于第五预定值,其中,所述第二类传输配置信息对应的关联一类准共址参数的准共址参考信号和同步信号之间满足准共址关系。
  18. 根据权利要求4~17中的任意一项所述的方法,其中,所述一类准共址参数满足以下至少之一:
    所述一类准共址参数包括如下参数至少之一:多普勒频移、多普勒扩展、平均延迟、延迟扩展、平均增益;
    所述一类准共址参数不包括空间接收滤波参数。
  19. 根据权利要求1~18任一项所述的方法,其中,所述确定为所述第一控制信道元素激活的传输配置信息在所述第一传输配置信息列表中的索引信息包括以下至少之一:
    当满足第二预定条件时,根据第二控制信令确定所述索引信息,其中,所述第二控制信令包括所述索引信息;
    当不满足所述第二预定条件时,所述第一控制信道元素的准共址参考信号为所述第一传输配置信息列表中预定的至少一个传输配置信息索引对应的准共址参考信号;
    其中,所述第二预定条件包括:所述第一传输配置信息列表中包括的传输配置信息的个数大于第七预定值。
  20. 根据权利要求3~18中的任意一项所述的方法,其中,所述第一控制信令或所述第二控制信令满足如下特征至少之一:
    所述第一控制信令和所述第一控制信道元素之间存在关联关系;
    所述第一控制信令还携带所述第一控制信道元素信息;
    所述第二控制信令为MAC-CE控制信令;
    所述第一控制信令和所述第二控制信令是同一个控制信令;
    所述第一控制信令为无线资源控制RRC信令。
  21. 根据权利要求1~18任一项所述的方法,其中,所述第一控制信道元素激活的准共址参考信号对应至少两个同步信号块,所述方法还包括:
    根据所述第一控制信道元素激活的准共址参考信号对应的至少两个同步信 号块确定所述第一控制信道元素的检测时机;
    其中,所述第一控制信道元素包括以下至少之一:控制信道资源集合0、搜索空间集合0。
  22. 一种确定准共址参考信号的装置,包括:
    传输配置信息列表确定模块,设置为确定第一控制信道元素对应的第一传输配置信息列表;
    传输配置信息索引信息确定模块,设置为确定为所述第一控制信道元素激活的传输配置信息在所述第一传输配置信息列表中的索引信息;
    第一准共址参考信号确定模块,设置为根据所述索引信息和所述第一传输配置信息列表确定所述第一控制信道元素激活的准共址参考信号。
  23. 一种确定准共址参考信号的装置,包括处理器和计算机可读存储介质,所述计算机可读存储介质中存储有指令,其中,当所述指令被所述处理器执行时,实现如权利要求1~21任一项所述的确定准共址参考信号的方法。
  24. 一种计算机可读存储介质,其上存储有计算机程序,其中,所述计算机程序被处理器执行时实现如权利要求1~21任一项所述的确定准共址参考信号的方法的步骤。
  25. 一种确定准共址参考信号的方法,包括:
    当满足第三预定条件时,根据包括满足第四预定特征的控制信道元素的第一时间单元的集合中,距离参考信号对应的信道和信号中至少之一最近的第二时间单元中,满足第五预定特征的控制信道元素的准共址参考信号确定所述参考信号的准共址参考信号。
  26. 根据要求25所述的方法,其中,所述第四预定特征包括以下至少之一:
    所述控制信道元素和索引为0的控制信道元素的交集为空;
    当所述第一时间单元满足第四预定条件时,所述控制信道元素包括索引为0的控制信道元素;
    所述控制信道元素和所述参考信号对应的信道和信号中至少之一在相同的频域带宽;
    所述控制信道元素和所述第一时间单元中处于激活状态的带宽部分之间满足第六预定特征;
    所述控制信道元素所在的第一频域资源和所述第一时间单元中处于激活状态的带宽部分对应的第二频域资源之间满足第五预定条件;
    所述控制信道元素关联一类准共址参数的准共址参考信号所在的第三频域资源和所述第一时间单元中处于激活状态的带宽部分对应的第二频域资源之间满足所述第五预定条件。
  27. 根据权利要求26所述的方法,其中,所述第一时间单元满足第四预定条件包括如下至少之一:
    所述第一时间单元中处于激活状态的带宽部分为预定带宽部分,其中,所述预定带宽部分包括如下之一:索引为0的带宽部分、索引为1的带宽部分,索引为0的控制信道元素对应的传输配置信息列表属于所述预定带宽部分中包括的信道元素对应的传输配置信息列表;
    所述第一时间单元中处于激活状态的带宽部分包括初始带宽部分对应的频域资源;
    所述第一时间单元中处于激活状态的带宽部分和索引为0的控制信道元素之间满足所述第六预定特征。
  28. 根据权利要求26或27所述的方法,其中,所述控制信道元素和所述第一时间单元中处于激活状态的带宽部分之间满足第六预定特征包括如下至少 之一:
    所述带宽部分的配置信息中包括所述控制信道元素的配置信息;
    所述带宽部分的配置信息中包括至少一个搜索空间集合的配置信息,其中,所述搜索空间集合和所述控制信道元素关联;
    所述带宽部分包括所述控制信道元素所在的频域资源;
    所述带宽部分包括第一带宽部分对应的频域资源,其中,所述第一带宽部分的配置信息中包括所述控制信道元素的配置信息;
    所述带宽部分处于激活状态的时间资源和所述控制信道元素的检测时间资源之间的交集非空,其中,所述控制信道元素的检测时间为所述控制信道元素关联的至少一个搜索空间集合的检测时间的并集。
  29. 根据权利要求25所述的方法,其中,所述满足第五预定特征的控制信道元素包括:
    距离所述参考信号对应的信道和信号中至少之一最近的第二时间单元中满足所述第四预定特征的控制信道元素构成的集合中具有最低控制信道元素索引的控制信道元素。
  30. 根据权利要求25~29中的任意一项,其中,所述参考信号对应的信道和信号中至少之一满足第三预定条件包括以下至少之一:
    调度所述参考信号对应的信道和信号中至少之一的控制信道与所述参考信号对应的信道和信号中至少之一之间的时间间隔小于预定阈值;
    调度所述参考信号对应的信道和信号至少之一的控制信道关联一类准共址参数的准共址参考信号所在的第四频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源不满足第五预定条件,且调度所述参考信号对应的信道和信号中至少之一的控制信道中不包括传输配置信息的指示信息;
    调度所述参考信号对应的信道和信号中至少之一的控制信道所在的第六频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源不满足第五预定条件,且调度所述参考信号对应的信道和信号中至少之一的控制信道中不包括传输配置信息的指示信息;
    所述满足第五预定特征的控制信道元素关联一类准共址参数的准共址参考信号所在的第十二频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源满足第五预定条件;
    第二信号所在的第十三频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源满足第五预定条件,其中所述第二信号和所述满足第五预定特征的控制信道的准共址参考信号或所述调度所述参考信号的控制信道的准共址参考信号关于一类准共址参数满足准共址关系;
    所述满足第五预定特征的控制信道元素所在的第十三频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源满足第五预定条件;
    调度所述参考信号的控制信道中,指示所述参考信号的传输配置信息中关联的一类准共址参数的准共址参考信号所在的第七频域资源与所述参考信号对应的信道和信号中至少之一所在的第五频域资源不满足第五预定条件;
    收到至少一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号。
  31. 根据权利要求30所述的方法,其中,所述预定阈值根据如下信息至少之一获取:
    上报的能力信息;
    所述参考信号对应的信道和信号中至少之一对应的子载波间隔;
    上报的能力信息对应的子载波间隔;
    调度所述参考信号对应的信道和信号中至少之一的控制信道对应的子载波间隔;
    满足所述第五预定特征的控制信道元素对应的子载波间隔;
    所述时间间隔计算时所采用的子载波间隔。
  32. 根据权利要求30所述的方法,其中,所述时间间隔根据如下信息至少之一获取:
    调度所述参考信号对应的信道和信号中至少之一的控制信道对应的子载波间隔;
    所述参考信号对应的信道和信号中至少之一对应的子载波间隔;
    所述预定阈值计算时所采用的子载波间隔。
  33. 根据权利要求25所述的方法,其中,所述参考信号对应的信道和信号中至少之一满足如下之一:
    所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述参考信号关联一类准共址参数的准共址参考信号所在的第八频域资源之间满足第五预定条件;
    所述参考信号对应的信道和信号中至少之一所在的第五频域资源和第二信号所在的第九频域资源之间满足第五预定条件,其中,所述第二信号和所述参考信号之间关于一类准共址参数满足准共址关系;
    当所述参考信号对应的信道和信号中至少之一和所述参考信号关联一类准共址参数的准共址参考信号所在的频域带宽不同时,所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述参考信号关联一类准共址参数的准共址参考信号所在的第八频域资源满足第五预定条件;
    当所述参考信号对应的信道和信号中至少之一和所述第二信号所在的频域 带宽不同时,所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述第二信号所在的第十频域资源满足第五预定条件,其中,所述第二信号和所述参考信号的准共址参考信号关于一类准共址参数满足准共址关系;
    当所述参考信号对应的信道和信号中至少之一和所述参考信号关联一类准共址参数的准共址参考信号所在的频域带宽不同,且所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述参考信号关联一类准共址参数的准共址参考信号所在的第八频域资源不满足第五预定条件时,满足所述第三预定条件;
    当所述参考信号对应的信道和信号中至少之一和所述第二信号所在的频域带宽不同且所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述第二信号所在的第九频域资源满足第五预定条件时,满足所述第三预定条件,其中,所述第二信号和所述参考信号的准共址参考信号关于一类准共址参数满足准共址关系。
  34. 根据权利要求33所述的方法,其中,所述参考信号的准共址参考信号和所述第二信号中至少之一为跟踪参考信号时,所述跟踪参考信号的频域跨度大于或等于频域跨度Y,其中,所述频域跨度Y根据如下方式之一获取:
    当所述跟踪参考信号的周期属于第一周期集合时,所述Y为min(52个物理资源块PRB,所述参考信号对应的信道和信号中至少之一对应的频域跨度),min表示求最小值;
    当所述跟踪参考信号的周期不属于第一周期集合时,所述Y为所述参考信号对应的信道和信号中至少之一对应的频域跨度;
    其中,所述参考信号对应的信道和信号中至少之一对应的频域跨度包括如下至少之一:
    所述参考信号对应的信道和信号中至少之一所在的带宽部分包括的频域资源块集合;
    所述参考信号对应的信道和信号中至少之一所占的频域资源块集合中的最高索引频域资源块和最高索引资源块之间的频域资源块集合。
  35. 根据权利要求34所述的方法,其中,所述第一周期集合包括如下周期:10毫秒。
  36. 根据权利要求26~35中任意一项所述的方法,其中,两个频域资源满足第五预定条件包括如下至少之一:
    两个频域资源的差集为空;
    两个频域资源包括的频域跨度的差值小于预定值;
    其中一个频域资源属于另一个频域资源;
    两个频域资源的交集非空;
    两个频域资源的子载波间隔相同。
  37. 根据权利要求26~35中任意一项所述的方法,其中,所述一类准共址参数满足以下至少之一:
    所述一类准共址参数包括以下参数至少之一:多普勒频移、多普勒扩展、平均延迟、延迟扩展、平均增益;
    所述一类准共址参数不包括空间接收滤波参数。
  38. 根据权利要求25~35中的任意一项所述的方法,其中,所述信道、信号和控制信道元素中至少之一所在的频域资源包括如下至少之一:
    所述信道和信号中至少之一所在的成员载波;
    所述信道和信号中至少之一所在的成员载波的带宽部分;
    所述信道和信号中至少之一所占有的频域资源块集合;
    所述信道和信号中至少之一所占有的频域资源块集合对应的频域跨度。
  39. 根据权利要求25~29中的任意一项所述的方法,所述方法还包括:
    当不存在包括满足第四预定特征的控制信道元素的第一时间单元时,不希望收到满足所述第三预定条件的调度信息。
  40. 一种确定准共址参考信号的装置,包括:
    第二准共址参考信号确定模块,设置为根据包括满足第四预定特征的控制信道元素的第一时间单元的集合中,距离所述参考信号对应的信道和信号中至少之一最近的第二时间单元中,满足第五预定特征的控制信道元素的准共址参考信号确定所述参考信号的准共址参考信号。
  41. 一种确定准共址参考信号的装置,包括处理器和计算机可读存储介质,所述计算机可读存储介质中存储有指令,其中,当所述指令被所述处理器执行时,实现如权利要求25~39任一项所述的确定准共址参考信号的方法。
  42. 一种计算机可读存储介质,其上存储有计算机程序,其中,所述计算机程序被处理器执行时实现如权利要求25~39任一项所述的确定准共址参考信号的方法的步骤。
  43. 一种参考信号的传输方法,包括:
    根据信令信息和第一预定规则中至少之一,确定参考信号信息,参考信号信息端口需要满足第二预定规则;
    根据所述参考信号信息,传输以下至少之一:
    参考信号、所述参考信号对应的信道和所述参考信号对应的信号。
  44. 根据权利要求43所述的方法,其中,所述第二预定规则包括如下至少之一:
    所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述 参考信号关联一类准共址参数的准共址参考信号所在的第八频域资源之间满足第五预定条件;
    所述参考信号对应的信道和信号中至少之一所在的第五频域资源和第二信号所在的第九频域资源之间满足第五预定条件,其中,所述第二信号和所述参考信号之间关于一类准共址参数满足准共址关系;
    当所述参考信号对应的信道和信号中至少之一和所述参考信号关联一类准共址参数的准共址参考信号所在的频域带宽不同时,所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述参考信号关联一类准共址参数的准共址参考信号所在的第八频域资源满足第五预定条件;
    当所述参考信号对应的信道和信号中至少之一和所述第二信号所在的频域带宽不同时,所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述第二信号所在的第九频域资源满足第五预定条件,其中,所述第二信号和所述参考信号的准共址参考信号关于一类准共址参数满足准共址关系。
  45. 根据权利要求44所述的方法,其中,所述方法包括以下至少之一:
    所述参考信号包括如下信号至少之一:解调参考信号、测量参考信号、相位跟踪参考信号、用于跟踪的测量参考信号、解调参考信号对应的信道;
    所述准共址参考信号和所述第二信号中至少之一包括如下至少之一:测量参考信号、用于跟踪的测量参考信号、同步信号。
  46. 根据权利要求44所述的方法,其中,所述参考信号的准共址参考信号和所述第二信号中至少之一为跟踪参考信号时,所述跟踪参考信号的频域跨度大于或等于频域跨度Y,其中,所述频域跨度Y根据如下方式至少之一获取:
    当所述跟踪参考信号的周期属于第一周期集合时,所述Y为min(52个物理资源块PRB,所述参考信号对应的信道和信号中至少之一对应的频域跨度), min表示求最小值;
    当所述跟踪参考信号的周期不属于第一周期集合时,所述Y为所述参考信号对应的信道和信号中至少之一对应的频域跨度;
    其中,所述参考信号对应的信道和信号中至少之一对应的频域跨度包括如下之一:
    所述参考信号对应的信道和信号中至少之一所在的带宽部分包括的频域资源块集合;
    所述参考信号对应的信道和信号中至少之一所占的频域资源块集合中的最高索引频域资源块和最高索引资源块之间的频域资源块集合。
  47. 根据权利要求46所述的方法,其中,所述第一周期集合包括如下周期:10毫秒。
  48. 根据权利要求43所述的方法,其中,所述第二预定规则包括如下至少之一:
    没有一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号且控制信令中携带所述参考信号的准共址参考信号信息时,所述参考信号的准共址参考信号根据携带所述参考信号的准共址参考信号信息获取;
    没有一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号且控制信令中不携带所述参考信号的准共址参考信号信息时,所述参考信号的准共址参考信号根据调度所述参考信号的控制信道的准共址参考信号获取;
    没有一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号且控制信令中不携带所述参考信号的准共址参考信号信息时,所述参考信号的准共址参考信号根据通信节点在随机接入中选择的参考信号获取;
    在预定频域带宽组中没有一个传输配置指示信息中包括关联空间接收滤波 参数的准共址参考信号且控制信令中携带所述参考信号的准共址参考信号信息时,所述参考信号的准共址参考信号根据携带所述参考信号的准共址参考信号信息获取;
    在预定频域带宽组中没有一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号且控制信令中不携带所述参考信号的准共址参考信号信息时,所述参考信号的准共址参考信号根据调度所述参考信号的控制信道的准共址参考信号获取;
    在预定频域带宽组中没有一个传输配置指示信息中包括关联空间接收滤波参数的准共址参考信号且控制信令中不携带所述参考信号的准共址参考信号信息时,所述参考信号的准共址参考信号根据通信节点在随机接入中选择的参考信号获取;
    其中所述控制信令包含在物理层控制信道中。
  49. 根据权利要求43所述的方法,其中,所述根据信令信息和第一预定规则中至少之一,确定参考信号信息,所述参考信号信息端口需要满足第二预定规则,包括:
    当控制信令中不包括准共址参考信号指示信息时,所述第一预定规则包括如下至少之一:
    所述参考信号对应的信道和信号中至少之一所在的第五频域资源和控制信道关联一类准共址参数的准共址参考信号所在的第九频域资源之间满足第五预定条件时,所述参考信号的准共址参考信号根据控制信道准共址参考信号获取;
    所述参考信号对应的信道和信号中至少之一所在的第五频域资源和控制信道所在的第十一频域资源之间满足第五预定条件时,所述参考信号的准共址参考信号根据控制信道的准共址参考信号获取;
    所述参考信号对应的信道和信号中至少之一所在的第五频域资源和所述控制信道关联一类准共址参数的准共址参考信号所在的第九频域资源之间不满足第五预定条件时,控制信道和所述参考信号对应的信道和信号中至少之一之间的时间间隔小于预定阈值;
    所述参考信号对应的信道和信号中至少之一所在的第五频域资源和控制信道所在的第十一频域资源之间不满足第五预定条件时,控制信道和所述参考信号对应的信道和信号中至少之一之间的时间间隔小于预定阈值;
    其中所述控制信道为调度所述参考信号的控制信道和所述控制信令中至少之一在所述控制信道中传输。
  50. 根据权利要求25~28、32~34、44~47中任意一项所述的方法,其中,两个频域资源满足第五预定条件包括如下至少之一:
    两个频域资源的差集为空;
    两个频域资源包括的频域跨度的差值小于预定值;
    其中一个频域资源属于另一个频域资源;
    两个频域资源的交集非空;
    两个频域资源的子载波间隔相同。
  51. 根据权利要求25~27、32~34,44~47中任意一项所述的方法,其中,所述一类准共址参数满足以下至少之一:
    所述一类准共址参数包括以下参数至少之一:
    多普勒频移、多普勒扩展、平均延迟、延迟扩展、平均增益;
    所述一类准共址参数不包括空间接收滤波参数。
  52. 根据权利要求24~28、32~34、44~47中的任意一项所述的方法,其中,所述信道、信号和控制信道元素中至少之一所在的频域资源包括如下至少之一:
    所述信道和信号中至少之一所在的成员载波;
    所述信道和信号中至少之一所在的成员载波的带宽部分;
    所述信道和信号中至少之一所占有的频域资源块集合;
    所述信道和信号中至少之一所占有的频域资源块集合对应的频域跨度。
  53. 根据权利要求43所述的方法,其中,所述参考信号信息端口需要满足第二预定规则,包括:
    所述控制信令中包括传输配置指示信息,其中所述传输配置指示信息中包括参考信号索引和带宽部分索引信息,其中所述带宽部分索引信息属于所述参考信号索引所在的一个资源设置中配置的带宽部分索引。
  54. 根据权利要求43所述的方法,其中,所述参考信号信息端口需要满足第二预定规则,包括如下至少之一:
    所述控制信令中包括多于一个的资源设置的配置信息,其中所述多于一个的资源设置中包括相同的信道状态信息参考信号标识CSI-RS ID时,所述多于一个的资源设置中配置的带宽部分索引相同,其中所述多于一个的资源设置属于一个成员载波CC;
    基站为一个终端在一个CC的一个带宽部分BWP中的为数据信道和控制信道中至少之一激活的配置指示信息的最大个数,不超过所述终端上报的在一个CC的一个BWP中支持的数据信道和控制信道中至少之一激活的配置指示信息的最大个数;
    所述基站为一个终端在一个CC的一个BWP中的为数据信道和控制信道中至少之一激活的配置指示信息的最大个数根据max(maxNumberActiveTCI-PerBWP,size(q0)+1)确定,其中size(q0)是波束失败检测参考信号集合q0中包括的参考信号个数,maxNumberActiveTCI-PerBWP 是所述终端上报的在一个CC的一个BWP中支持的数据信道和控制信道中至少之一激活的配置指示信息的最大个数,max表示求最大值。
  55. 根据权利要求54所述的方法,其中,在计算所述基站为一个终端在一个CC的一个BWP中的为数据信道和控制信道中至少之一激活的配置指示信息的个数时,不包括如下至少之一:
    控制信道资源集合COERSET0的传输配置指示TCI状态;
    所述COERSET0的准共址参考信号;
    控制信道资源集合-波束失败和恢复CORESET-BFR的准共址参考信号。
  56. 根据权利要求54所述的方法,其中,当所述终端上报的在一个CC的一个BWP中支持的数据信道和控制信道中至少之一激活的配置指示信息的最大个数为1时,采用如下方案至少之一:
    检测到波束失败之后到收到所述基站对于物理下行控制信道PDCCH的重配置之前,所述激活的配置指示信息的最大个数是2个,其他时间段所述激活的配置指示信息的最大个数是1个;
    所述激活的配置指示信息的最大个数根据max(maxNumberActiveTCI-PerBWP,size(q0)+1)确定,其中size(q0)是所述波束失败检测参考信号集合q0中包括的参考信号个数;
    当为所述终端配置BFR参数之后或者所述终端上报的能力信息中支持BFR功能时,所述终端上报的maxNumberActiveTCI-PerBWP信息不能为1;
    当检测到波束失败之后预定时刻到收到所述基站对于所述PDCCH的重配置之前,所有CORESET/所有专有CORESET的准共址参考信号更新为所述终端上报的新参考信号。
  57. 根据权利要求43所述的方法,其中,所述第一预定规则包括如下至少 之一:
    调度所述参考信号的控制信道和所述参考信号对应的信道和信号中至少之一在不同的频域带宽时,调度所述参考信号的控制信道和所述参考信号对应的信道和信号中至少之一之间的时间间隔大于或者等于预定阈值;
    终端上报的能力信息一对应的时间间隔长度大于能力信息二之对应的时间间隔长度,其中能力信息一表示BWP切换时,PDCCH到物理下行共享信道PDSCH/非周期信道状态信息参考信号AP-CSI-RS之间的最小时间间隔,能力信息二表示终端将PDCCH指示的TCI信息用于PDSCH/AP-CSI-RS的接收所需要的最小时间间隔。
  58. 根据权利要求44~57中任意一项所述的方法,其中,所述预定阈值根据如下信息至少之一获取:
    上报的能力信息;
    所述参考信号对应的信道和信号中至少之一对应的子载波间隔;
    上报的能力信息对应的子载波间隔;
    调度所述参考信号的控制信道对应的子载波间隔;
    满足所述第五预定特征的控制信道元素对应的子载波间隔;
    所述时间间隔计算时所采用的子载波间隔。
  59. 根据权利要求58所述的方法,其中,所述时间间隔根据如下信息至少之一获取:
    调度所述参考信号的控制信道对应的子载波间隔;
    所述参考信号对应的信道和信号至少之一对应的子载波间隔;
    所述预定阈值计算时所采用的子载波间隔。
  60. 一种参考信号的传输装置,包括:
    确定模块,设置为根据信令信息和第一预定规则中至少之一,确定参考信号信息,参考信号信息端口需要满足第二预定规则;
    第二传输模块,设置为根据所述参考信号信息,传输以下至少之一:所述参考信号、所述参考信号对应的信道和所述参考信号对应的信号。
  61. 一种参考信号的传输装置,包括处理器和计算机可读存储介质,所述计算机可读存储介质中存储有指令,其中,当所述指令被所述处理器执行时,实现如权利要求43~59任一项所述的参考信号的传输方法。
  62. 一种计算机可读存储介质,其上存储有计算机程序,其中,所述计算机程序被处理器执行时实现如权利要求43~59任一项所述的参考信号的传输方法的步骤。
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